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 W77E516A DATA SHEET 8-BIT MICROCONTROLLER
Table of Contents1. 2. 3. 4. 5. GENERAL DESCRIPTION ................................................................................................................. 3 FEATURES ........................................................................................................................................ 3 PIN CONFIGURATIONS .................................................................................................................... 4 PIN DESCRIPTION ............................................................................................................................ 5 FUNCTIONAL DESCRIPTION ........................................................................................................... 6 5.1 5.2 5.3 5.4 5.5 5.6 5.7 6. 6.1 6.2 6.3 6.4 6.5 6.6 6.7 6.8 6.9 7. 7.1 7.2 7.3 7.4 7.5 7.6 7.7 8. 9. 10. I/O Ports ............................................................................................................................... 6 Serial I/O .............................................................................................................................. 6 Timers .................................................................................................................................. 7 Interrupts .............................................................................................................................. 7 Data Pointers ....................................................................................................................... 7 Power Management ............................................................................................................. 7 On-chip Data SRAM............................................................................................................. 7 Program Memory ................................................................................................................. 8 Data Memory........................................................................................................................ 8 Special Function Registers ................................................................................................ 10 Instruction........................................................................................................................... 32 Instruction Timing............................................................................................................... 39 Power Management ........................................................................................................... 47 Reset Conditions................................................................................................................ 49 Reset State ........................................................................................................................ 50 Interrupts ............................................................................................................................ 51 Timer/Counters 0 & 1 ......................................................................................................... 55 Time-base Selection .......................................................................................................... 56 Timer/Counter 2 ................................................................................................................. 58 Watchdog Timer................................................................................................................. 61 Serial Port .......................................................................................................................... 63 Framing Error Detection..................................................................................................... 68 Multiprocessor Communications ........................................................................................ 68
MEMORY ORGANIZATION ............................................................................................................... 8
PROGRAMMABLE TIMERS/COUNTERS ....................................................................................... 55
TIMED ACCESS PROTECTION ...................................................................................................... 70 SECURITY BITS .............................................................................................................................. 72 ELECTRICAL CHARACTERISTICS................................................................................................. 73 10.1 Absolute Maximum Ratings ............................................................................................... 73
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10.2 10.3 10.4 10.5 10.6 11. 11.1 11.2 11.3 12. 12.1 12.2 13. 13.1 13.2 13.3 14. 15. 14.1 DC Characteristics ............................................................................................................. 73 AC Characteristics ............................................................................................................. 74 External Clock Characteristics ........................................................................................... 74 AC Specification................................................................................................................. 75 MOVX Characteristics Using Strech Memory Cycles ........................................................ 76 Program Memory Read Cycle............................................................................................ 78 Data Memory Read Cycle .................................................................................................. 78 Data Memory Write Cycle .................................................................................................. 79 Crystal connections............................................................................................................ 80 Expanded External Data Memory and Oscillator ............................................................... 81 40-pin DIP .......................................................................................................................... 82 44-pin PLCC....................................................................................................................... 82 44-pin QFP......................................................................................................................... 83 In-system Programming Software Examples ..................................................................... 84
TIMING WAVEFORMS .................................................................................................................... 78
TYPICAL APPLICATION CIRCUITS ................................................................................................ 80
PACKAGE DIMENSIONS................................................................................................................. 82
APPLICATION NOTE....................................................................................................................... 84 VERSION HISTORY ........................................................................................................................ 89
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Publication Release Date: November 19, 2007 Revision A9
W77E516A
1. GENERAL DESCRIPTION
The W77E516 is a fast 8051 compatible microcontroller with a redesigned processor core without wasted clock and memory cycles. As a result, it executes every 8051 instruction faster than the original 8051 for the same crystal speed. Typically, the instruction executing time of W77E516 is 1.5 to 3 times faster then that of traditional 8051, depending on the type of instruction. In general, the overall performance is about 2.5 times better than the original for the same crystal speed. Giving the same throughput with lower clock speed, power consumption has been improved. Consequently, the W77E516 is a fully static CMOS design; it can also be operated at a lower crystal clock. The W77E516 contains In-System Programmable (ISP) 64 KB Flash EPROM; 4KB auxiliary Flash EPROM for loader program; operating voltage from 4.5V to 5.5V; on-chip 1 KB MOVX SRAM; three power saving modes.
2. FEATURES
* * * * * * * * * * * * * * * * * * * 8-bit CMOS microcontroller High speed architecture of 4 clocks/machine cycle runs up to 40 MHz Pin compatible with standard 80C52 Instruction-set compatible with MCS-51 64KB on-chip Flash-EPROM Four 8-bit I/O Ports; Port 0 has internal pull-up resisters enabled by software One extra 4-bit I/O port and Wait State control signal (available on 44-pin PLCC/QFP package) Three 16-bit Timers 12 interrupt sources with two levels of priority On-chip oscillator and clock circuitry Two enhanced full duplex serial ports 64KB In-system Programmable Flash EPROM (APROM) 4KB Auxiliary Flash EPROM for loader program (LDROM) 256 bytes scratch-pad RAM 1KB on-chip SRAM for MOVX instruction Programmable Watchdog Timer Dual 16-bit Data Pointers Software programmable access cycle to external RAM/peripherals Packages: - Lead Free(RoHs) DIP 40: W77E516A40DL - Lead Free(RoHs) PLCC 44: W77E516A40PL - Lead Free(RoHs) QFP 44: W77E516A40FL
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Publication Release Date: November 19, 2007 Revision A9
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3. PIN CONFIGURATIONS
40-Pin DIP
T2, P1.0 T2EX, P1.1 RXD1, P1.2 TXD1, P1.3 INT2, P1.4 INT3, P1.5 INT4, P1.6 INT5, P1.7 RST RXD, P3.0 TXD, P3.1 INT0, P3.2 INT1, P3.3 T0, P3.4 T1, P3.5 WR, P3.6 RD, P3.7 XTAL2 XTAL1 VSS 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 40 39 38 37 36 35 34 33 32 31 30 29 28 27 26 25 24 23 22 21 VDD P0.0, AD0 P0.1, AD1 P0.2, AD2 P0.3, AD3 P0.4, AD4 P0.5, AD5 P0.6, AD6 P0.7, AD7 EA ALE PSEN P2.7, A15 P2.6, A14 P2.5, A13 P2.4, A12 P2.3, A11 P2.2, A10 P2.1, A9 P2.0, A8
44-Pin PLCC
I N T 2 , P 1 . 4 T X D 1 , P 1 . 3 R X D 1 , P 1 . 2 T 2 E X , P 1 . 1
44-Pin QFP
I N T 2 , P 1 . 4 T X D 1 , P 1 . 3 R X D 1 , P 1 . 2 T 2 E X , P 1 . 1 A D 1 , P 0 . 1 A D 2 , P 0 . 2 A D 3 , P 0 . 3
T 2 , P 1 . 0
P 4V .D 2D
A D 0 , P 0 . 0
A D 1 , P 0 . 1
A D 2 , P 0 . 2
A D 3 , P 0 . 3 INT3, P1.5 INT4, P1.6 INT5, P1.7 RST RXD, P3.0 P4.3 TXD, P3.1 INT0, P3.2 INT1, P3.3 T0, P3.4 T1, P3.5 1 2
T 2 , P 1 . 0
P 4V .D 2D
A D 0 , P 0 . 0
INT3, P1.5 INT4, P1.6 INT5, P1.7 RST RXD, P3.0 P4.3 TXD, P3.1 INT0, P3.2 INT1, P3.3 T0, P3.4 T1, P3.5
6 5 4 3 2 1 44 43 42 41 40 7 39 8 38 9 37 10 36 11 35 12 34 13 33 14 32 15 31 16 30 29 17 18 19 20 21 22 23 24 25 26 27 28 P 3 . 6 , / W R P 3 . 7 , / R D X T A L 2 XVPP TS42 AS. . 00 L ,, 1 /A W8 A I T P 2 . 1 , A 9 P 2 . 2 , A 1 0 P 2 . 3 , A 1 1 P 2 . 4 , A 1 2
P0.4, AD4 P0.5, AD5 P0.6, AD6 P0.7, AD7 EA P4.1 ALE PSEN P2.7, A15 P2.6, A14 P2.5, A13
44 43 42 41 40 39 38 37 36 35 34 33 32 31 3 30 4 29 5 28 6 27 7 26 8 9 25 10 24 23 11 12 13 14 15 16 17 18 19 20 21 22 P 3 . 6 , / W R P 3 . 7 , / R D X T A L 2 XVP TS4 AS. 0 L , 1 / W A I T P 2 . 0 , A 8 P 2 . 1 , A 9 P 2 . 2 , A 1 0 P 2 . 3 , A 1 1 P 2 . 4 , A 1 2
P0.4, AD4 P0.5, AD5 P0.6, AD6 P0.7, AD7 EA P4.1 ALE PSEN P2.7, A15 P2.6, A14 P2.5, A13
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Publication Release Date: November 19, 2007 Revision A9
W77E516A
4. PIN DESCRIPTION
SYMBOL
EA PSEN
TYPE I O O I I O I I I/O
DESCRIPTIONS EXTERNAL ACCESS ENABLE: It should be kept high for internal program access.. PROGRAM STORE ENABLE: PSEN enables the external ROM data onto the Port 0 address/data bus during fetch and MOVC operations. ADDRESS LATCH ENABLE: ALE is used to enable the address latch that separates the address from the data on Port 0. RESET: A high on this pin for two machine cycles while the oscillator is running resets the device. CRYSTAL1: This is the crystal oscillator input. This pin may be driven by an external clock. CRYSTAL2: This is the crystal oscillator output. It is the inversion of XTAL1. GROUND: Ground potential POWER SUPPLY: Supply voltage for operation. PORT 0: Port 0 is an open-drain bi-directional I/O port. This port also provides a multiplexed low order address/data bus during accesses to external memory. Port 0 has internal pull-up resisters enabled by software. PORT 1: Port 1 is a bi-directional I/O port with internal pull-ups. The bits have alternate functions which are described below: T2(P1.0): Timer/Counter 2 external count input T2EX(P1.1): Timer/Counter 2 Reload/Capture/Direction control RXD1(P1.2): Serial port 1 RXD TXD1(P1.3): Serial port 1 TXD INT2(P1.4): External Interrupt 2
INT3 (P1.5): External Interrupt 3 INT4(P1.6): External Interrupt 4
ALE RST XTAL1 XTAL2 VSS VDD P0.0 - P0.7
P1.0 - P1.7
I/O
P2.0 - P2.7
I/O
INT5 (P1.7): External Interrupt 5 PORT 2: Port 2 is a bi-directional I/O port with internal pull-ups. This port also provides the upper address bits for accesses to external memory. PORT 3: Port 3 is a bi-directional I/O port with internal pull-ups. All bits have alternate functions, which are described below: RXD(P3.0): Serial Port 0 input TXD(P3.1): Serial Port 0 output INT0 (P3.2): External Interrupt 0
INT1(P3.3): External Interrupt 1 T0(P3.4): Timer 0 External Input T1(P3.5): Timer 1 External Input
P3.0 - P3.7
I/O
WR (P3.6): External Data Memory Write Strobe
P4.0 - P4.3
* Note: TYPE
I/O
RD (P3.7): External Data Memory Read Strobe PORT 4: Port 4 is a 4-bit bi-directional I/O port. The P4.0 also provides the alternate function WAIT which is the wait state control signal.
I: input, O: output, I/O: bi-directional.
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Publication Release Date: November 19, 2007 Revision A9
W77E516A
5. FUNCTIONAL DESCRIPTION
The W77E516 is 8052 pin compatible and instruction set compatible. It includes the resources of the standard 8052 such as four 8-bit I/O Ports, three 16-bit timer/counters, and full duplex serial port and interrupt sources. The W77E516 features a faster running and better performance 8-bit CPU with a redesigned core processor without wasted clock and memory cycles. It improves the performance not just by running at high frequency but also by reducing the machine cycle duration from the standard 8052 period of twelve clocks to four clock cycles for the majority of instructions. This improves performance by an average of 1.5 to 3 times. The W77E516 also provides dual Data Pointers (DPTRs) to speed up block data memory transfers. It can also adjust the duration of the MOVX instruction (access to off-chip data memory) between two machine cycles and nine machine cycles. This flexibility allows the W77E516 to work efficiently with both fast and slow RAMs and peripheral devices. In addition, the W77E516 contains on-chip 1KB MOVX SRAM, the address of which is between 0000H and 03FFH. It only can be accessed by MOVX instruction; this on-chip SRAM is optional under software control. The W77E516 is an 8052 compatible device that gives the user the features of the original 8052 device, but with improved speed and power consumption characteristics. It has the same instruction set as the 8051 family, with one addition: DEC DPTR (op-code A5H, the DPTR is decreased by 1). While the original 8051 family was designed to operate at 12 clock periods per machine cycle, the W77E516 operates at a much reduced clock rate of only 4 clock periods per machine cycle. This naturally speeds up the execution of instructions. Consequently, the W77E516 can run at a higher speed as compared to the original 8052, even if the same crystal is used. Since the W77E516 is a fully static CMOS design, it can also be operated at a lower crystal clock, giving the same throughput in terms of instruction execution, yet reducing the power consumption. The 4 clocks per machine cycle feature in the W77E516 is responsible for a three-fold increase in execution speed. The W77E516 has all the standard features of the 8052, and has a few extra peripherals and features as well.
5.1
I/O Ports
The W77E516 has four 8-bit ports and one extra 4-bit port. Port 0 can be used as an Address/Data bus when external program is running or external memory/device is accessed by MOVC or MOVX instruction. In these cases, it has strong pull-ups and pull-downs, and does not need any external pullups. Otherwise it can be used as a general I/O port with open-drain circuit. Port 2 is used chiefly as the upper 8-bits of the Address bus when port 0 is used as an address/data bus. It also has strong pull-ups and pull-downs when it serves as an address bus. Port 1 and 3 act as I/O ports with alternate functions. Port 4 is only available on 44-pin PLCC/QFP package type. It serves as a general purpose I/O port as Port 1 and Port 3. The P4.0 has an alternate function WAIT that is the wait state control signal. When wait state control signal is enabled, P4.0 is input only.
5.2
Serial I/O
The W77E516 has two enhanced serial ports that are functionally similar to the serial port of the original 8052 family. However the serial ports on the W77E516 can operate in different modes in order to obtain timing similarity as well. Note that the serial port 0 can use Timer 1 or 2 as baud rate generator, but the serial port 1 can only use Timer 1 as baud rate generator. The serial ports have the enhanced features of Automatic Address recognition and Frame Error detection. Publication Release Date: November 19, 2007 Revision A9
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W77E516A
5.3 Timers
The W77E516 has three 16-bit timers that are functionally similar to the timers of the 8052 family. When used as timers, they can be set to run at either 4 clocks or 12 clocks per count, thus providing the user with the option of operating in a mode that emulates the timing of the original 8052. The W77E516 has an additional feature, the watchdog timer. This timer is used as a System Monitor or as a very long time period timer.
5.4
Interrupts
The Interrupt structure in the W77E516 is slightly different from that of the standard 8052. Due to the presence of additional features and peripherals, the number of interrupt sources and vectors has been increased. The W77E516 provides 12 interrupt resources with two-priority level, including six external interrupt sources, timer interrupts, serial I/O interrupts and power-fail interrupt.
5.5
Data Pointers
The original 8052 had only one 16-bit Data Pointer (DPL, DPH). In the W77E516, there is an additional 16-bit Data Pointer (DPL1, DPH1). This new Data Pointer uses two SFR locations that were unused in the original 8052. In addition there is an added instruction, DEC DPTR (op-code A5H), which helps in improving programming flexibility for the user.
5.6
Power Management
Like the standard 80C52, the W77E516 also has IDLE and POWER DOWN modes of operation. The W77E516 provides a new Economy mode that allow user to switch the internal clock rate divided by 4, 64 or 1024. In the IDLE mode, the clock to the CPU core is stopped while the timers; serial ports and interrupts clock continue to operate. In the POWER DOWN mode, the entire clock is stopped and the chip operation is completely stopped. This is the lowest power consumption state.
5.7
On-chip Data SRAM
The W77E516 has 1K Bytes of data space SRAM which is read/write accessible and is memory mapped. This on-chip MOVX SRAM is reached by the MOVX instruction. It is not used for executable program memory. There is no conflict or overlap among the 256 bytes Scratchpad RAM and the 1K Bytes MOVX SRAM as they use different addressing modes and separate instructions. Setting the DME0 bit in the PMR register enables the on-chip MOVX SRAM. After a reset, the DME0 bit is cleared such that the on-chip MOVX SRAM is disabled, and all data memory spaces 0000H - FFFFH access to the external memory.
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Publication Release Date: November 19, 2007 Revision A9
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6. MEMORY ORGANIZATION
The W77E516 separates the memory into two separate sections, the Program Memory and the Data Memory. The Program Memory is used to store the instruction op-codes, while the Data Memory is used to store data or for memory mapped devices.
6.1
Program Memory
The Program Memory on the W77E516 can be up to 64Kbytes long. All instructions are fetched for execution from this memory area. The MOVC instruction can also access this memory region.
6.2
Data Memory
The W77E516 can access up to 64Kbytes of external Data Memory. This memory region is accessed by the MOVX instructions. Unlike the 8051 derivatives, the W77E516 contains on-chip 1K bytes MOVX SRAM of Data Memory, which can only be accessed by MOVX instructions. These 1K bytes of SRAM are between address 0000H and 03FFH. Access to the on-chip MOVX SRAM is optional under software control. When enabled by software, any MOVX instruction that uses this area will go to the on-chip RAM. MOVX addresses greater than 03FFH automatically go to external memory through Port 0 and 2. When disabled, the 1KB memory area is transparent to the system memory map. Any MOVX directed to the space between 0000H and FFFFH goes to the expanded bus on Port 0 and 2. This is the default condition. In addition, the W77E516 has the standard 256 bytes of on-chip Scratchpad RAM. This can be accessed either by direct addressing or by indirect addressing. There are also some Special Function Registers (SFRs), which can only be accessed by direct addressing. Since the Scratchpad RAM is only 256 bytes, it can be used only when data contents are small. In the event that larger data contents are present, two selections can be used. One is on-chip MOVX SRAM, the other is the external Data Memory. The on-chip MOVX SRAM can only be accessed by a MOVX instruction, the same as that for external Data Memory. However, the on-chip RAM has the fastest access times.
FFh 80h 7Fh
Indirect Addressing RAM Direct & Indirect Addressing RAM
SFRs Direct Addressing
FFFFh
64 K Bytes External Data Memory
64K Bytes On-chip Program Memory
00h
APROM
03FFh 0000h
1K Bytes
On-chip SRAM
4K Bytes
0000h
0FFFh
LDROM
Figure 1.
Memory Map
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Publication Release Date: November 19, 2007 Revision A9
W77E516A
FFh 80h 7Fh 30h 2Fh 2Eh 2Dh 2Ch 2Bh 2Ah 29h 28h 27h 26h 25h 24h 23h 22h 21h 20h 1Fh 18h 17h 10h 0Fh 08h 07h 00h
Indirect RAM Direct RAM
7F 77 6F 67 5F 57 4F 47 3F 37 2F 27 1F 17 0F 07 7E 76 6E 66 5E 56 4E 46 3E 36 2E 26 1E 16 0E 06 7D 75 6D 65 5D 55 4D 45 3D 35 2D 25 1D 15 0D 05 7C 74 6C 64 5C 54 4C 44 3C 34 2C 24 1C 14 0C 04 Bank 3 Bank 2 Bank 1 Bank 0 7B 73 6B 63 5B 53 4B 43 3B 33 2B 23 1B 13 0B 03 7A 72 6A 62 5A 52 4A 42 3A 32 2A 22 1A 12 0A 02 79 71 69 61 59 51 49 41 39 31 29 21 19 11 09 01 78 70 68 60 58 50 48 40 38 30 28 20 18 10 08 00
Bit Addressable 20H - 2FH
Figure 2.
Scratchpad RAM / Register Addressing
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Publication Release Date: November 19, 2007 Revision A9
W77E516A
6.3 Special Function Registers
The W77E516 uses Special Function Registers (SFRs) to control and monitor peripherals and their Modes. The SFRs reside in the register locations 80-FFh and are accessed by direct addressing only. Some of the SFRs are bit addressable. This is very useful in cases where one wishes to modify a particular bit without changing the others. The SFRs that are bit addressable are those whose addresses end in 0 or 8. The W77E516 contains all the SFRs present in the standard 8052. However, some additional SFRs have been added. In some cases unused bits in the original 8052 have been given new functions. The list of SFRs is as follows. The table is condensed with eight locations per row. Empty locations indicate that there are no registers at these addresses. When a bit or register is not implemented, it will read high. Table 1. Special Function Register Location Table F8 F0 E8 E0 D8 D0 C8 C0 B8 B0 A8 A0 98 90 88 80 EIP B EIE ACC WDCON PSW T2CON SCON1 IP P3 IE P2 SCON0 P1 TCON P0 SBUF EXIF TMOD SP SADDR SADDR1 P4CSIN P42AL P4CONA TL0 DPL P42AH P4CONB TL1 DPH P43AL P40AL TH0 DPL1 SFRAL SFRAH P4 P43AH P40AH TH1 DPH1 P41AL CKCON DPS PCON CHPCON P41AH SFDFD SFRCN T2MOD SBUF1 SADEN RCAP2L WSCON SADEN1 RCAP2H TL2 PMR TH2 STATUS TA
Note: The SFRs in the column with dark borders are bit-addressable.
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Publication Release Date: November 19, 2007 Revision A9
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A brief description of the SFRs now follows.
Port 0
Bit: 7 P0.7 Mnemonic: P0 6 P0.6 5 P0.5 4 P0.4 3 P0.3 2 P0.2 1 P0.1 0 P0.0
Address: 80h
Port 0 is an open-drain bi-directional I/O port. This port also provides a multiplexed low order address/data bus during accesses to external memory. Besides, it has internal pull-up resisters enabled by setting P0UP of P4CSIN (A2H) to high.
Stack Pointer
Bit: 7 SP.7 Mnemonic: SP 6 SP.6 5 SP.5 4 SP.4 3 SP.3 2 SP.2 1 SP.1 0 SP.0
Address: 81h
The Stack Pointer stores the Scratchpad RAM address where the stack begins. In other words, it always points to the top of the stack.
Data Pointer Low
Bit: 7 DPL.7 Mnemonic: DPL This is the low byte of the standard 8052 16-bit data pointer. 6 DPL.6 5 DPL.5 4 DPL.4 3 DPL.3 2 DPL.2 1 DPL.1 0 DPL.0
Address: 82h
Data Pointer High
Bit: 7 DPH.7 Mnemonic: DPH This is the high byte of the standard 8052 16-bit data pointer. 6 DPH.6 5 DPH.5 4 DPH.4 3 DPH.3 2 DPH.2 Address: 83h 1 DPH.1 0 DPH.0
Data Pointer Low1
Bit: 7 6 5 4 3 2 1 0 DPL1.7 DPL1.6 DPL1.5 DPL1.4 DPL1.3 DPL1.2 DPL1.1 DPL1.0 Mnemonic: DPL1 Address: 84h
This is the low byte of the new additional 16-bit data pointer that has been added to the W77E516. The user can switch between DPL, DPH and DPL1, DPH1 simply by setting register DPS = 1. The instructions that use DPTR will now access DPL1 and DPH1 in place of DPL and DPH. If they are not required they can be used as conventional register locations by the user. Publication Release Date: November 19, 2007 Revision A9
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W77E516A
Data Pointer High1
Bit: 7 6 5 4 3 2 1 0 DPH1.7 DPH1.6 DPH1.5 DPH1.4 DPH1.3 DPH1.2 DPH1.1 DPH1.0 Mnemonic: DPH1 Address: 85h
This is the high byte of the new additional 16-bit data pointer that has been added to the W77E516. The user can switch between DPL, DPH and DPL1, DPH1 simply by setting register DPS = 1. The instructions that use DPTR will now access DPL1 and DPH1 in place of DPL and DPH. If they are not required they can be used as conventional register locations by the user.
Data Pointer Select
Bit: 7 Mnemonic: DPS 6 5 4 3 2 Address: 86h 1 0 DPS.0
DPS.0: This bit is used to select either the DPL, DPH pair or the DPL1, DPH1 pair as the activeData Pointer. When set to 1, DPL1, DPH1 will be selected, otherwise DPL, DPH will be selected. DPS.1 - 7: These bits are reserved, but will read 0.
Power Control
Bit: 7 SM0D Mnemonic: PCON 6
SMOD0
5 -
4 -
3 GF1
2 GF0
1 PD
0 IDL
Address: 87h
SMOD : This bit doubles the serial port baud rate in mode 1, 2, and 3 when set to 1. SMOD0: Framing Error Detection Enable: When SMOD0 is set to 1, then SCON.7(SCON1.7) indicates a Frame Error and acts as the FE(FE_1) flag. When SMOD0 is 0, then SCON.7(SCON1.7) acts as per the standard 8052 function. GF1-0: These two bits are general purpose user flags. PD: Setting this bit causes the W77E516 to go into the POWER DOWN mode. In this mode all the clocks are stopped and program execution is frozen. IDL: Setting this bit causes the W77E516 to go into the IDLE mode. In this mode the clocks to the CPU are stopped, so program execution is frozen. But the clock to the serial, timer and interrupt blocks is not stopped, and these blocks continue operating.
Timer Control
Bit: 7 TF1 Mnemonic: TCON 6 TR1 5 TF0 4 TR0 3 IE1 2 IT1 1 IE0 0 IT0
Address: 88h
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Publication Release Date: November 19, 2007 Revision A9
W77E516A
TF1: Timer 1 overflow flag: This bit is set when Timer 1 overflows. It is cleared automatically when the program does a timer 1 interrupt service routine. Software can also set or clear this bit. TR1: Timer 1 run control: This bit is set or cleared by software to turn timer/counter on or off. TF0: Timer 0 overflow flag: This bit is set when Timer 0 overflows. It is cleared automatically when the program does a timer 0 interrupt service routine. Software can also set or clear this bit. TR0: Timer 0 run control: This bit is set or cleared by software to turn timer/counter on or off. IE1: Interrupt 1 edge detect: Set by hardware when an edge/level is detected on INT1. This bit is cleared by hardware when the service routine is vectored to only if the interrupt was edge triggered. Otherwise it follows the pin. IT1: Interrupt 1 type control: Set/cleared by software to specify falling edge/ low level triggered external inputs. IE0: Interrupt 0 edge detect: Set by hardware when an edge/level is detected on INT0 . This bit is cleared by hardware when the service routine is vectored to only if the interrupt was edge triggered. Otherwise it follows the pin. IT0: Interrupt 0 type control: Set/cleared by software to specify falling edge/ low level triggered external inputs.
Timer Mode Control
Bit: 7 GATE 6
C/T
5 M1
4 M0
3 GATE
2
C/T
1 M1
0 M0
TIMER1 Mnemonic: TMOD
TIMER0 Address: 89h
GATE: Gating control: When this bit is set, Timer/counter x is enabled only while INTx pin is high and TRx control bit is set. When cleared, Timer x is enabled whenever TRx control bit is set.
C / T : Timer or Counter Select: When cleared, the timer is incremented by internal clocks. When set, the timer counts high-to-low edges of the Tx pin.
M1, M0: Mode Select bits: M1 0 0 1 1 M0 0 1 0 1 Mode Mode 0: 8-bits with 5-bit prescale. Mode 1: 16-bits, no prescale. Mode 2: 8-bits with auto-reload from THx Mode 3: (Timer 0) TL0 is an 8-bit timer/counter controlled by the standard Timer 0 control bits. TH0 is a 8-bit timer only controlled by Timer 1 control bits. (Timer 1) Publication Release Date: November 19, 2007 Revision A9
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W77E516A
Timer/counter is stopped.
Timer 0 LSB
Bit: 7 TL0.7 Mnemonic: TL0 TL0.7 - 0: Timer 0 LSB 6 TL0.6 5 TL0.5 4 TL0.4 3 TL0.3 2 TL0.2 1 TL0.1 0 TL0.0
Address: 8Ah
Timer 1 LSB
Bit: 7 TL1.7 Mnemonic: TL1 TL1.7 - 0: Timer 1 LSB 6 TL1.6 5 TL1.5 4 TL1.4 3 TL1.3 2 TL1.2 1 TL1.1 0 TL1.0
Address: 8Bh
Timer 0 MSB
Bit: 7 TH0.7 Mnemonic: TH0 TH0.7 - 0: Timer 0 MSB 6 TH0.6 5 TH0.5 4 TH0.4 3 TH0.3 2 TH0.2 1 TH0.1 0 TH0.0
Address: 8Ch
Timer 1 MSB
Bit: 7 TH1.7 Mnemonic: TH1 TH1.7 - 0: Timer 1 MSB 6 TH1.6 5 TH1.5 4 TH1.4 3 TH1.3 2 TH1.2 1 TH1.1 0 TH1.0
Address: 8Dh
Clock Control
Bit: 7 WD1 Mnemonic: CKCON 6 WD0 5 T2M 4 T1M 3 T0M 2 MD2 1 MD1 0 MD0
Address: 8Eh
WD1 - 0: Watchdog timer mode select bits: These bits determine the time-out period for the watchdog timer. In all four time-out options the reset time-out is 512 clocks more than the interrupt time-out period.
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WD1 0 0 1 1
WD0 0 1 0 1
INTERRUPT TIME-OUT 2 2 2 2
17 20 23 26
RESET TIME-OUT 2 2 2 2
17 20 23 26
+ 512 + 512 + 512 + 512
T2M: Timer 2 clock select: When T2M is set to 1, timer 2 uses a divide by 4 clock, and when set to 0 it uses a divide by 12 clock. T1M: Timer 1 clock select: When T1M is set to 1, timer 1 uses a divide by 4 clock, and when set to 0 it uses a divide by 12 clock. T0M: Timer 0 clock select: When T0M is set to 1, timer 0 uses a divide by 4 clock, and when set to 0 it uses a divide by 12 clock. MD2 - 0: Stretch MOVX select bits: These three bits are used to select the stretch value for the MOVX instruction. Using a variable MOVX length enables the user to access slower external memory devices or peripherals without the need for external circuits. The RD or WR strobe will be stretched by the selected interval. When accessing the on-chip SRAM, the MOVX instruction is always in 2 machine cycles regardless of the stretch setting. By default, the stretch has value of 1. If the user needs faster accessing, then a stretch value of 0 should be selected. MD2 0 0 0 0 1 1 1 1 MD1 0 0 1 1 0 0 1 1 MD0 0 1 0 1 0 1 0 1 Stretch value 0 1 2 3 4 5 6 7 MOVX duration 2 machine cycles 3 machine cycles (Default) 4 machine cycles 5 machine cycles 6 machine cycles 7 machine cycles 8 machine cycles 9 machine cycles
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Port 1
Bit: 7 P1.7 Mnemonic: P1 6 P1.6 5 P1.5 4 P1.4 3 P1.3 2 P1.2 1 P1.1 0 P1.0
Address: 90h
P1.7 - 0: General purpose I/O port. Most instructions will read the port pins in case of a port read access, however in case of read-modify-write instructions, the port latch is read. Some pins also have alternate input or output functions. This alternate functions are described below: P1.0: T2 P1.1: T2EX P1.2: RXD1 P1.3: TXD1 P1.4: INT2 P1.5: INT3 P1.6: INT4 P1.7: INT5 External I/O for Timer/Counter 2 Timer/Counter 2 Capture/Reload Trigger Serial Port 1 Receive Serial Port 1 Transmit External Interrupt 2 External Interrupt 3 External Interrupt 4 External Interrupt 5
External Interrupt Flag
Bit: 7 IE5 Mnemonic: EXIF 6 IE4 5 IE3 4 IE2 3 2 Address: 91h 1 0 -
IE5: External Interrupt 5 flag. Set by hardware when a falling edge is detected on INT5 . IE4: External Interrupt 4 flag. Set by hardware when a rising edge is detected on INT4. IE3: External Interrupt 3 flag. Set by hardware when a falling edge is detected on INT3 . IE2: External Interrupt 2 flag. Set by hardware when a rising edge is detected on INT2.
Port 4 Control Register A
Bit: 7 P41M1 Mnemonic: P4CONA 6 P41M0 5 P41C1 4 P41C0 3 P40M1 2 P40M0 1 P40C1 0 P40C0
Address: 92h
Port 4 Control Register B
Bit: 7 P43M1 Mnemonic: P4CONB 6 P43M0 5 P43C1 4 P43C0 3 P42M1 2 P42M0 1 P42C1 0 P42C0
Address: 93h
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BIT NAME FUNCTION Port 4 alternate modes. = 00: Mode 0. P4.x is a general purpose I/O port which is the same as Port 1. = 01: Mode 1. P4.x is a Read Strobe signal for chip select purpose. The address range depends on the SFR P4xAH, P4xAL and bits P4xC1, P4xC0. = 10: Mode 2. P4.x is a Write Strobe signal for chip select purpose. The address range depends on the SFR P4xAH, P4xAL and bits P4xC1, P4xC0. = 11: Mode 3. P4.x is a Read/Write Strobe signal for chip select purpose. The address range depends on the SFR P4xAH, P4xAL and bits P4xC1, P4xC0 Port 4 Chip-select Mode address comparison: = 00: Compare the full address (16 bits length) with the base address registers P4xAH and P4xAL. P4xC1, P4xC0 = 01: Compare the 15 high bits (A15 - A1) of address bus with the base address registers P4xAH and P4xAL. = 10: Compare the 14 high bits (A15 - A2) of address bus with the base address registers P4xAH and P4xAL. = 11: Compare the 8 high bits (A15 - A8) of address bus with the base address registers P4xAH and P4xAL.
P4xM1, P4xM0
P4.0 Base Address Low Byte Register
Bit: 7 A7 Mnemonic: P40AL 6 A6 5 A5 4 A4 3 A3 2 A2 1 A1 0 A0
Address: 94h
P4.0 Base Address High Byte Register
Bit: 7 A15 Mnemonic: P40AH 6 A14 5 A13 4 A12 3 A11 2 A10 1 A9 0 A8
Address: 95h
P4.1 Base Address Low Byte Register
Bit: 7 A7 Mnemonic: P41AL 6 A6 5 A5 4 A4 3 A3 2 A2 1 A1 0 A0
Address: 96h
P4.1 Base Address High Byte Register
Bit: 7 A15 Mnemonic: P41AH 6 A14 5 A13 4 A12 3 A11 2 A10 1 A9 0 A8
Address: 97h Publication Release Date: November 19, 2007 Revision A9
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Serial Port Control
Bit: 7 SM0/FE Mnemonic: SCON 6 SM1 5 SM2 4 REN 3 TB8 2 RB8 1 TI 0 RI
Address: 98h
SM0/FE: Serial port 0, Mode 0 bit or Framing Error Flag: The SMOD0 bit in PCON SFR determines whether this bit acts as SM0 or as FE. The operation of SM0 is described below. When used as FE, this bit will be set to indicate an invalid stop bit. This bit must be manually cleared in software to clear the FE condition. SM1: Serial port Mode bit 1: SM0 0 0 1 1 SM1 0 1 0 1 Mode 0 1 2 3 Description Synchronous Asynchronous Asynchronous Asynchronous Length 8 10 11 11 Baud rate 4/12 Tclk Variable 64/32 Tclk Variable
SM2: Multiple processors communication. Setting this bit to 1 enables the multiprocessor communication feature in mode 2 and 3. In mode 2 or 3, if SM2 is set to 1, then RI will not be activated if the received 9th data bit (RB8) is 0. In mode 1, if SM2 = 1, then RI will not be activated if a valid stop bit was not received. In mode 0, the SM2 bit controls the serial port clock. If set to 0, then the serial port runs at a divide by 12 clock of the oscillator. This gives compatibility with the standard 8052. When set to 1, the serial clock become divide by 4 of the oscillator clock. This results in faster synchronous serial communication. REN: Receive enable: When set to 1 serial reception is enabled, otherwise reception is disabled. TB8: This is the 9th bit to be transmitted in modes 2 and 3. This bit is set and cleared by software as desired. RB8: In modes 2 and 3 this is the received 9th data bit. In mode 1, if SM2 = 0, RB8 is the stop bit that was received. In mode 0 it has no function. TI: Transmit interrupt flag: This flag is set by hardware at the end of the 8th bit time in mode 0, or at the beginning of the stop bit in all other modes during serial transmission. This bit must be cleared by software. RI: Receive interrupt flag: This flag is set by hardware at the end of the 8th bit time in mode 0, or halfway through the stop bits time in the other modes during serial reception. However the restrictions of SM2 apply to this bit. This bit can be cleared only by software.
Serial Data Buffer
Bit: 7 6 5 4 3 2 1 0 SBUF.7 SBUF.6 SBUF.5 SBUF.4 SBUF.3 SBUF.2 SBUF.1 SBUF.0 Mnemonic: SBUF Address: 99h
SBUF.7 - 0: Serial data on the serial port 0 is read from or written to this location. It actually consists of two separate internal 8-bit registers. One is the receive resister, and the Publication Release Date: November 19, 2007 Revision A9
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other is the transmit buffer. Any read access gets data from the receive data buffer, while write access is to the transmit data buffer.
P4.2 Base Address Low Byte Register
Bit: 7 A7 Mnemonic: P42AL 6 A6 5 A5 4 A4 3 A3 2 A2 1 A1 0 A0
Address: 9Ah
P4.2 Base Address High Byte Register
Bit: 7 A15 Mnemonic: P42AH 6 A14 5 A13 4 A12 3 A11 2 A10 1 A9 0 A8
Address: 9Bh
P4.3 Base Address Low Byte Register
Bit: 7 A7 Mnemonic: P43AL 6 A6 5 A5 4 A4 3 A3 2 A2 1 A1 0 A0
Address: 9Ch
P4.3 Base Address High Byte Register
Bit: 7 A15 Mnemonic: P43AH 6 A14 5 A13 4 A12 3 A11 2 A10 1 A9 0 A8
Address: 9Dh
ISP Control Register
Bit: 7 SWRST/HWB Mnemonic: CHPCON 6 5 LDAP 4 3 2 1 LDSEL 0 ENP
Address: 9Fh
SWRST/HWB: Set this bit to launch a whole device reset that is same as asserting high to RST pin, micro controller will be back to initial state and clear this bit automatically. To read this bit, its alternate function to indicate the ISP hardware reboot mode is invoking when read it in high. LDAP: This bit is Read Only. High: device is executing the program in LDROM. Low: device is executing the program in APROM. LDSEL: Loader program residence selection. Set to high to route the device fetching code from LDROM. ENP: In System Programming Mode Enable. Set this be to launch the ISP mode. Device will operate ISP procedures, such as Erase, Program and Read operations, according to Publication Release Date: November 19, 2007 Revision A9
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correlative SFRs settings. During ISP mode, device achieves ISP operations by the way of IDLE state. In the other words, device is not indeed in IDLE mode is set bit PCON.1 while ISP is enabled. Clear this bit to disable ISP mode, device get back to normal operation including IDLE state.
Port 2
Bit: 7 P2.7 Mnemonic: P2 6 P2.6 5 P2.5 4 P2.4 3 P2.3 2 P2.2 1 P2.1 0 P2.0
Address: A0h
P2.7 - 0: Port 2 is a bi-directional I/O port with internal pull-ups. This port also provides the upper address bits for accesses to external memory.
Port 4 Chip-Select Polarity
Bit: 7 6 5 4 3 2 1 0 P0UP P43INV P42INV P42INV P40INV Mnemonic: P4CSIN
Address: A2h
P4xINV: The active polarity of P4.x when set it as chip-select signal. High = Active High. Low = Active Low. P0UP: Enable Port 0 weak pull up.
Port 4
Bit: 7 Mnemonic: P4 6 5 4 3 P4.3 2 P4.2 1 P4.1 0 P4.0
Address: A5h
P4.3 - 0: Port 4 is a bi-directional I/O port with internal pull-ups. Port 4 can not use bit-addressable instruction (SETB or CLR).
Interrupt Enable
Bit: 7 EA Mnemonic: IE EA: Global enable. Enable/disable all interrupts except for PFI. ES1: Enable Serial Port 1 interrupt. ET2: Enable Timer 2 interrupt. ES: Enable Serial Port 0 interrupt. ET1: Enable Timer 1 interrupt EX1: Enable external interrupt 1 ET0: Enable Timer 0 interrupt EX0: Enable external interrupt 0 Publication Release Date: November 19, 2007 Revision A9 6 ES1 5 ET2 4 ES 3 ET1 2 EX1 1 ET0 0 EX0
Address: A8h
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Slave Address
Bit: 7 6 5 4 3 2 1 0
Mnemonic: SADDR
Address: A9h
SADDR: The SADDR should be programmed to the given or broadcast address for serial port 0 to which the slave processor is designated.
Slave Address 1
Bit: 7 6 5 4 3 2 1 0
Mnemonic: SADDR1
Address: Aah
SADDR1: The SADDR1 should be programmed to the given or broadcast address for serial port 1 to which the slave processor is designated.
ISP Address Low Byte
Bit: 7 A7 Mnemonic: SFRAL 6 A6 5 A5 4 A4 3 A3 2 A2 1 A1 Address: Ach 0 A0
Low byte destination address for In System Programming operations. SFRAH and SFRAL address a specific ROM bytes for erasure, escription or read.
ISP Address High Byte
Bit: 7 A15 Mnemonic: SFRAH 6 A14 5 A13 4 A12 3 A11 2 A10 1 A9 0 A8
Address: Adh
High byte destination address for In System Programming operations. SFRAH and SFRAL address a specific ROM bytes for erasure, escription or read.
ISP Data Buffer
Bit: 7 D7 Mnemonic: SFRFD 6 D6 5 D5 4 D4 3 D3 2 D2 1 D1 0 D0
Address: Aeh
In ISP mode, read/write a specific byte ROM content must go through SFRFD register.
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ISP Operation Modes Bit: 7 6 WFWIN Mnemonic: SFRCN NOE: Flash EPROM output enable. NCE: Flash EPROM chip enable. CTRL[3:0]: Mode Selection.
ISP MODE
Erase 4KB LDROM Erase 64K APROM Program 4KB LDROM Program 64KB APROM Read 4KB LDROM Read 64KB APROM
5 NOE
4 NCE
3 CTRL3
2 CTRL2
1 CTRL1
0 CTRL0
Address: Afh
WFWIN: Destination ROM bank for programming, erasure and read. 0 = APROM, 1 = LDROM.
BANK
0 0 0 0 0 0
WFWIN
1 0 1 0 1 0
NOE
1 1 1 1 0 0
NCE
0 0 0 0 0 0
CTRL<3:0>
0010 0010 0001 0001 0000 0000
SFRAH, SFRAL
X X Address in Address in Address in Address in
SFRFD
X X Data in Data in Data out Data out
Port 3
Bit: 7 P3.7 Mnemonic: P3 6 P3.6 5 P3.5 4 P3.4 3 P3.3 2 P3.2 1 P3.1 0 P3.0
Address: B0h
P3.7 - 0: General purpose I/O port. Each pin also has an alternate input or output function. The alternate functions are described below. P3.7 P3.6 P3.5 P3.4 P3.3 P3.2 P3.1 P3.0
RD
WR T1 T0
Strobe for read from external RAM Strobe for write to external RAM Timer/counter 1 external count input Timer/counter 0 external count input External interrupt 1 External interrupt 0 Serial port 0 output Serial port 0 input
INT1 INT0 TxD RxD
Interrupt Priority
Bit: 7 Mnemonic: IP 6 PS1 5 PT2 4 PS 3 PT1 2 PX1 1 PT0 0 PX0
Address: B8h
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IP.7: PS1: PT2: PS: PT1: PX1: PT0: PX0: This bit is un-implemented and will read high. This bit defines the Serial port 1 interrupt priority. This bit defines the Timer 2 interrupt priority. This bit defines the Serial port 0 interrupt priority. This bit defines the Timer 1 interrupt priority. This bit defines the External interrupt 1 priority. This bit defines the Timer 0 interrupt priority. This bit defines the External interrupt 0 priority.
PS = 1 sets it to higher priority level. PT2 = 1 sets it to higher priority level. PS = 1 sets it to higher priority level. PT1 = 1 sets it to higher priority level. PX1 = 1 sets it to higher priority level. PT0 = 1 sets it to higher priority level. PX0 = 1 sets it to higher priority level.
Slave Address Mask Enable
Bit: 7 6 5 4 3 2 1 0
Mnemonic: SADEN
Address: B9h
SADEN: This register enables the Automatic Address Recognition feature of the Serial port 0. When a bit in the SADEN is set to 1, the same bit location in SADDR will be compared with the incoming serial data. When SADEN.n is 0, then the bit becomes a "don't care" in the comparison. This register enables the Automatic Address Recognition feature of the Serial port 0. When all the bits of SADEN are 0, interrupt will occur for any incoming address.
Slave Address Mask Enable 1
Bit: 7 6 5 4 3 2 1 0
Mnemonic: SADEN1
Address: Bah
SADEN1: This register enables the Automatic Address Recognition feature of the Serial port 1. When a bit in the SADEN1 is set to 1, the same bit location in SADDR1 will be compared with the incoming serial data. When SADEN1.n is 0, then the bit becomes a "don't care" in the comparison. This register enables the Automatic Address Recognition feature of the Serial port 1. When all the bits of SADEN1 are 0, interrupt will occur for any incoming address.
Serial Port Control 1
Bit: 7 SM0_1/FE_1 Mnemonic: SCON1 6 SM1_1 5 SM2_1 4 REN_1 3 TB8_1 2 RB8_1 1 TI_1 0 RI_1
Address: C0h
SM0_1/FE_1: Serial port 1, Mode 0 bit or Framing Error Flag 1: The SMOD0 bit in PCON SFR determines whether this bit acts as SM0_1 or as FE_1, the operation of SM0_1 is described below. When used as FE_1, this bit will be set to indicate an invalid stop bit. This bit must be manually cleared in software to clear the FE_1 condition.
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SM1_1: Serial port 1 Mode bit 1: SM0_1 0 0 1 1 SM1_1 0 1 0 1 Mode 0 1 2 3 Description Synchronous Asynchronous Asynchronous Asynchronous Length 8 10 11 11 Baud rate 4/12 Tclk variable 64/32 Tclk variable
SM2_1: Multiple processors communication. Setting this bit to 1 enables the multiprocessor communication feature in mode 2 and 3. In mode 2 or 3, if SM2_1 is set to 1, then RI_1 will not be activated if the received 9th data bit (RB8_1) is 0. In mode 1, if SM2_1 = 1, then RI_1 will not be activated if a valid stop bit was not received. In mode 0, the SM2_1 bit controls the serial port 1 clock. If set to 0, then the serial port 1 runs at a divide by 12 clock of the oscillator. This gives compatibility with the standard 8052. When set to 1, the serial clock become divide by 4 of the oscillator clock. This results in faster synchronous serial communication. REN_1: Receive enable: When set to 1 serial reception is enabled, otherwise reception is disabled. TB8_1: This is the 9th bit to be transmitted in modes 2 and 3. This bit is set and cleared by software as desired. RB8_1: In modes 2 and 3 this is the received 9th data bit. In mode 1, if SM2_1 = 0, RB8_1 is the stop bit that was received. In mode 0 it has no function. TI_1: Transmit interrupt flag: This flag is set by hardware at the end of the 8th bit time in mode 0, or at the beginning of the stop bit in all other modes during serial transmission. This bit must be cleared by software. RI_1: Receive interrupt flag: This flag is set by hardware at the end of the 8th bit time in mode 0, or halfway through the stop bits time in the other modes during serial reception. However the restrictions of SM2_1 apply to this bit. This bit can be cleared only by software.
Serial Data Buffer 1
Bit: 7 6 5 4 3 2 1 Address: C1h 0 SBUF1.7 SBUF1.6 SBUF1.5 SBUF1.4 SBUF1.3 SBUF1.2 SBUF1.1 SBUF1.0 Mnemonic: SBUF1
SBUF1.7 - 0: Serial data of the serial port 1 is read from or written to this location. It actually consists of two separate 8-bit registers. One is the receive resister, and the other is the transmit buffer. Any read access gets data from the receive data buffer, while write accesses are to the transmit data buffer.
WSCON
Bit: 7 WS Mnemonic: WSCON 6 5 4 3 2 1 0 -
Address: C2h
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WS: Wait State Signal Enable. Setting this bit enables the WAIT signal on P4.0. The device will sample the wait state control signal WAIT via P4.0 during MOVX instruction. This bit is time access protected. TA WSCON REG CKCON MOV MOV ORL REG C2H REG 8EH TA, #AAH TA, #55H WSCON, #10000000B; Set WS bit and stretch value = 0 to enable wait signal. C7H
Power Management Register
Bit: 7 CD1 6 CD0 5 SWB 4 3 2
ALE-OFF
1 -
0 DME0
Mnemonic: PMR
Address: C4h
CD1, CD0: Clock Divide Control. These bit selects the number of clocks required to generate one machine cycle. There are three modes including divide by 4, 64 or 1024. Switching between modes must first go back divide by 4 mode. For instance, to go from 64 to 1024 clocks/machine cycle the device must first go from 64 to 4 clocks/machine cycle, and then from 4 to 1024 clocks/machine cycle. CD1, 0 0 1 1 CD0 0 1 0 1 Clocks/machine Cycle Reserved 4 64 1024
SWB: Switchback Enable. Setting this bit allows an enabled external interrupt or serial port activity to force the CD1, CD0 to divide by 4 state (0,1). The device will switch modes at the start of the jump to interrupt service routine while a external interrupt is enabled and actually recognized by micro controller. While a serial port reception, the switchback occurs at the start of the instruction following the falling edge of the start bit. ALE0FF: This bit disables the expression of the ALE signal on the device pin during all on-board program and data memory accesses. External memory accesses will automatically enable ALE independent of ALEOFF. 0 = ALE expression is enable; 1 = ALE expression is disable DME0: This bit determines the on-chip MOVX SRAM to be enabled or disabled. Set this bit to 1 will enable the on-chip 1KB MOVX SRAM.
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Status Register
Bit: 7 Mnemonic: STATUS 6 HIP 5 LIP 4 XTUP 3 SPTA1 2 SPRA1 1 SPTA0 0 SPRA0
Address: C5h
HIP: High Priority Interrupt Status. When set, it indicates that software is servicing a high priority interrupt. This bit will be cleared when the program executes the corresponding RETI instruction. LIP: Low Priority Interrupt Status. When set, it indicates that software is servicing a low priority interrupt. This bit will be cleared when the program executes the corresponding RETI instruction. XTUP: Crystal Oscillator Warm-up Status. When set, this bit indicates CPU has detected clock to be ready. Each time the crystal oscillator is restarted by exit from power down mode, hardware will clear this bit. This bit is set to 1 after a power-on reset. SPTA1: Serial Port 1 Transmit Activity. This bit is set during serial port 1 is currently transmitting data. It is cleared when TI_1 bit is set by hardware. Changing the Clock Divide Control bits CD0, CD1 will be ignored when this bit is set to 1 and SWB = 1. SPRA1: Serial Port 1 Receive Activity. This bit is set during serial port 1 is currently receiving a data. It is cleared when RI_1 bit is set by hardware. Changing the Clock Divide Control bits CD0, CD1 will be ignored when this bit is set to 1 and SWB = 1. SPTA0: Serial Port 0 Transmit Activity. This bit is set during serial port 0 is currently transmitting data. It is cleared when TI bit is set by hardware. Changing the Clock Divide Control bits CD0, CD1 will be ignored when this bit is set to 1 and SWB = 1. SPRA0: Serial Port 0 Receive Activity. This bit is set during serial port 0 is currently receiving a data. It is cleared when RI bit is set by hardware. Changing the Clock Divide Control bits CD0, CD1 will be ignored when this bit is set to 1 and SWB = 1.
Timed Access
Bit: 7 TA.7 Mnemonic: TA 6 TA.6 5 TA.5 4 TA.4 3 TA.3 2 TA.2 1 TA.1 0 TfA.0
Address: C7h
TA: The Timed Access register controls the access to protected bits. To access protected bits, the user must first write AAH to the TA. This must be immediately followed by a write of 55H to TA. Now a window is opened in the protected bits for three machine cycles, during which the user can write to these bits.
Timer 2 Control
Bit: 7 TF2 Mnemonic: T2CON 6 EXF2 5 RCLK 4 TCLK 3 EXEN2 2 TR2 1
C / T2
0
CP / RL2
Address: C8h
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TF2: Timer 2 overflow flag: This bit is set when Timer 2 overflows. It is also set when the count is equal to the capture register in down count mode. It can be set only if RCLK and TCLK are both 0. It is cleared only by software. Software can also set or clear this bit. EXF2: Timer 2 External Flag: A negative transition on the T2EX pin (P1.1) or timer 2 overflow will cause this flag to set based on the CP / RL2 , EXEN2 and DCEN bits. If set by a negative transition, this flag must be cleared by software. Setting this bit in software or detection of a negative transition on T2EX pin will force a timer interrupt if enabled. RCLK: Receive Clock Flag: This bit determines the serial port 0 time-base when receiving data in serial modes 1 or 3. If it is 0, then timer 1 overflow is used for baud rate generation, otherwise timer 2 overflow is used. Setting this bit forces timer 2 in baud rate generator mode. TCLK: Transmit Clock Flag: This bit determines the serial port 0 time-base when transmitting data in modes 1 and 3. If it is set to 0, the timer 1 overflow is used to generate the baud rate clock otherwise timer 2 overflow is used. Setting this bit forces timer 2 in baud rate generator mode. EXEN2: Timer 2 External Enable. This bit enables the capture/reload function on the T2EX pin if Timer 2 is not generating baud clocks for the serial port. If this bit is 0, then the T2EX pin will be ignored, otherwise a negative transition detected on the T2EX pin will result in capture or reload. TR2: Timer 2 Run Control. This bit enables/disables the operation of timer 2. Clearing this bit will halt the timer 2 and preserve the current count in TH2, TL2.
C / T2 : Counter/Timer Select. This bit determines whether timer 2 will function as a timer or a counter. Independent of this bit, the timer will run at 2 clocks per tick when used in baud rate generator mode. If it is set to 0, then timer 2 operates as a timer at a speed depending on T2M bit (CKCON.5), otherwise it will count negative edges on T2 pin.
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CP / RL2 : Capture/Reload Select. This bit determines whether the capture or reload function will be used for timer 2. If either RCLK or TCLK is set, this bit will be ignored and the timer will function in an auto-reload mode following each overflow. If the bit is 0 then autoreload will occur when timer 2 overflows or a falling edge is detected on T2EX pin if EXEN2 = 1. If this bit is 1, then timer 2 captures will occur when a falling edge is detected on T2EX pin if EXEN2 = 1.
Timer 2 Mode Control
Bit: 7 HC5 Mnemonic: T2MOD 6 HC4 5 HC3 4 HC2 3 T2CR 2 1 T2OE 0 DCEN
Address: C9h
HC5: Hardware Clear INT5 flag. Setting this bit allows the flag of external interrupt 5 to be automatically cleared by hardware while entering the interrupt service routine. HC4: Hardware Clear INT4 flag. Setting this bit allows the flag of external interrupt 4 to be automatically cleared by hardware while entering the interrupt service routine. HC3: Hardware Clear INT3 flag. Setting this bit allows the flag of external interrupt 3 to be automatically cleared by hardware while entering the interrupt service routine. HC3: Hardware Clear INT2 flag. Setting this bit allows the flag of external interrupt 3 to be automatically cleared by hardware while entering the interrupt service routine. T2CR: Timer 2 Capture Reset. In the Timer 2 Capture Mode this bit enables/disables hardware automatically reset Timer 2 while the value in TL2 and TH2 have been transferred into the capture register. T2OE: Timer 2 Output Enable. This bit enables/disables the Timer 2 clock out function. DCEN: Down Count Enable: This bit, in conjunction with the T2EX pin, controls the direction that timer 2 counts in 16-bit auto-reload mode.
Timer 2 Capture LSB
Bit: 7
RCAP2L.7
6
RCAP2L.6
5
4
3
2
1
0
RCAP2L.0
RCAP2L.5 RCAP2L.4 RCAP2L.3 RCAP2L.2 RCAP2L.1
Mnemonic: RCAP2L
Address: Cah
RCAP2L: This register is used to capture the TL2 value when a timer 2 is configured in capture mode. RCAP2L is also used as the LSB of a 16-bit reload value when timer 2 is configured in auto-reload mode.
Timer 2 Capture MSB
Bit: 7 6 5 4 3 2 1 0
RCAP2H.7 RCAP2H.6 RCAP2H.5 RCAP2H.4 RCAP2H.3 RCAP2H.2 RCAP2H.1 RCAP2H.0
Mnemonic: RCAP2H
Address: CBh Publication Release Date: November 19, 2007 Revision A9
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RCAP2H: This register is used to capture the TH2 value when a timer 2 is configured in capture mode. RCAP2H is also used as the MSB of a 16-bit reload value when timer 2 is configured in auto-reload mode.
Timer 2 LSB
Bit: 7 TL2.7 Mnemonic: TL2 TL2: Timer 2 LSB 6 TL2.6 5 TL2.5 4 TL2.4 3 TL2.3 2 TL2.2 1 TL2.1 0 TL2.0
Address: CCh
Timer 2 MSB
Bit: 7 TH2.7 Mnemonic: TH2 TH2: Timer 2 MSB 6 TH2.6 5 TH2.5 4 TH2.4 3 TH2.3 2 TH2.2 1 TH2.1 0 TH2.0
Address: CDh
Program Status Word
Bit: 7 CY Mnemonic: PSW 6 AC 5 F0 4 RS1 3 RS0 2 OV Address: D0h 1 F1 0 P
CY: Carry flag: Set for an arithmetic operation which results in a carry being generated from the ALU. It is also used as the accumulator for the bit operations. AC: Auxiliary carry: Set when the previous operation resulted in a carry from the high order nibble. F0: User flag 0: General purpose flag that can be set or cleared by the user. RS.1 - 0: Register bank select bits: RS1 0 0 1 1 RS0 0 1 0 1 Register bank 0 1 2 3 Address 00-07h 08-0Fh 10-17h 18-1Fh
OV: Overflow flag: Set when a carry was generated from the seventh bit but not from the 8th bit as a result of the previous operation, or vice-versa. F1: P: User Flag 1: General purpose flag that can be set or cleared by the user by software. Parity flag: Set/cleared by hardware to indicate odd/even number of 1's in the accumulator.
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W77E516A
Watchdog Control
Bit: 7 SMOD_1 Mnemonic: WDCON 6 POR 5 4 3 WDIF 2 WTRF 1 EWT 0 RWT
Address: D8h
SMOD_1: This bit doubles the Serial Port 1 baud rate in mode 1, 2, and 3 when set to 1. POR: Power-on reset flag. Hardware will set this flag on a power up condition. This flag can be read or written by software. A write by software is the only way to clear this bit once it is set. WDIF: Watchdog Timer Interrupt Flag. If the watchdog interrupt is enabled, hardware will set this bit to indicate that the watchdog interrupt has occurred. If the interrupt is not enabled, then this bit indicates that the time-out period has elapsed. This bit must be cleared by software. WTRF: Watchdog Timer Reset Flag. Hardware will set this bit when the watchdog timer causes a reset. Software can read it but must clear it manually. A power-fail reset will also clear the bit. This bit helps software in determining the cause of a reset. If EWT = 0, the watchdog timer will have no affect on this bit. EWT: Enable Watchdog timer Reset. Setting this bit will enable the Watchdog timer Reset function. RWT: Reset Watchdog Timer. This bit helps in putting the watchdog timer into a know state. It also helps in resetting the watchdog timer before a time-out occurs. Failing to set the EWT before time-out will cause an interrupt, if EWDI (EIE.4) is set, and 512 clocks after that a watchdog timer reset will be generated if EWT is set. This bit is self-clearing by hardware. The WDCON SFR is set to a 0x0x0xx0b on an external reset. WTRF is set to a 1 on a Watchdog timer reset, but to a 0 on power on/down resets. WTRF is not altered by an external reset. POR is set to 1 by a power-on reset. EWT is set to 0 on a Power-on reset and unaffected by other resets. All the bits in this SFR have unrestricted read access. POR, EWT, WDIF and RWT require Timed Access procedure to write. The remaining bits have unrestricted write accesses. Please refer TA register escription. TA REG C7H WDCON REG D8H CKCON REG 8EH MOV TA, #AAH MOV TA, #55H SETB WDCON.0 ORL CKCON, #11000000B MOV TA, #AAH MOV TA, #55H ORL WDCON, #00000010B
; Reset watchdog timer ; Select 26 bits watchdog timer
; Enable watchdog
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W77E516A
Accumulator
Bit: 7 ACC.7 Mnemonic: ACC 6 ACC.6 5 ACC.5 4 ACC.4 3 ACC.3 2 ACC.2 Address: E0h 1 ACC.1 0 ACC.0
ACC.7 - 0: The A (or ACC) register is the standard 8052 accumulator.
Extended Interrupt Enable
Bit: 7 Mnemonic: EIE EIE.7 - 5: Reserved bits, will read high EWDI: Enable Watchdog timer interrupt EX5: External Interrupt 5 Enable. EX4: External Interrupt 4 Enable. EX3: External Interrupt 3 Enable. EX2: External Interrupt 2 Enable. 6 5 4 EWDI 3 EX5 2 EX4 1 EX3 Address: E8h 0 EX2
B Register
Bit: 7 B.7 Mnemonic: B 6 B.6 5 B.5 4 B.4 3 B.3 2 B.2 1 B.1 0 B.0
Address: F0h
B.7 - 0: The B register is the standard 8052 register that serves as a second accumulator.
Extended Interrupt Priority
Bit: 7 Mnemonic: EIP EIP.7 - 5: Reserved bits. PWDI: Watchdog timer interrupt priority. PX5: External Interrupt 5 Priority. PX4: External Interrupt 4 Priority. PX3: External Interrupt 3 Priority. PX2: External Interrupt 2 Priority. 0 = Low priority, 1 = High priority. 0 = Low priority, 1 = High priority. 0 = Low priority, 1 = High priority. 0 = Low priority, 1 = High priority. 6 5 4 PWDI 3 PX5 2 PX4 1 PX3 Address: F8h 0 PX2
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W77E516A
6.4 Instruction
The W77E516 executes all the instructions of the standard 8032 family. The operation of these instructions, their effect on the flag bits and the status bits is exactly the same. However, timing of these instructions is different. The reason for this is two fold. Firstly, in the W77E516, each machine cycle consists of 4 clock periods, while in the standard 8032 it consists of 12 clock periods. Also, in the W77E516 there is only one fetch per machine cycle i.e. 4 clocks per fetch, while in the standard 8032 there can be two fetches per machine cycle, which works out to 6 clocks per fetch. The advantage the W77E516 has is that since there is only one fetch per machine cycle, the number of machine cycles in most cases is equal to the number of operands that the instruction has. In case of jumps and calls there will be an additional cycle that will be needed to calculate the new address. But overall the W77E516 reduces the number of dummy fetches and wasted cycles, thereby improving efficiency as compared to the standard 8032. Table 2. Instructions that affect Flag settings
AUXILIARY CARRY
X X X
INSTRUCTION CARRY OVERFLOW
ADD ADDC SUBB MUL DIV DA A RRC A RLC A SETB C X X X 0 0 X X X 1 X X X X X
INSTRUCTION
CLR C CPL C ANL C, bit ANL C, bit ORL C, bit ORL C, bit MOV C, bit CJNE
CARRY
0 X X X X X X X
OVERFLOW
AUXILIARY CARRY
A "X" indicates that the modification is as per the result of instruction. Table 3. Instruction Timing for W77E516
INSTRUCTION
NOP ADD A, R0 ADD A, R1 ADD A, R2 ADD A, R3 ADD A, R4 ADD A, R5
HEX OP-CODE
00 28 29 2A 2B 2C 2D
BYTES
1 1 1 1 1 1 1
W77E516 MACHINE CYCLES
1 1 1 1 1 1 1
W77E516 CLOCK CYCLES
4 4 4 4 4 4 4
8032 CLOCK CYCLES
12 12 12 12 12 12 12
W77E516 VS. 8032 SPEED RATIO
3 3 3 3 3 3 3
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W77E516A
Table 3. Instruction Timing for W77E516, continued
INSTRUCTION ADD A, R6 ADD A, R7 ADD A, @R0 ADD A, @R1 ADD A, direct ADD A, #data ADDC A, R0 ADDC A, R1 ADDC A, R2 ADDC A, R3 ADDC A, R4 ADDC A, R5 ADDC A, R6 ADDC A, R7 ADDC A, @R0 ADDC A, @R1 ADDC A, direct ADDC A, #data ACALL addr11
HEX OP-CODE 2E 2F 26 27 25 24 38 39 3A 3B 3C 3D 3E 3F 36 37 35 34 71, 91, B1, 11, 31, 51, D1, F1 01, 21, 41, 61, 81, A1, C1, E1 58 59 5A 5B 5C 5D 5E 5F 56 57 55 54 52 53 82 B0 B5
BYTES 1 1 1 1 2 2 1 1 1 1 1 1 1 1 1 1 2 2 2
W77E516 MACHINE CYCLES 1 1 1 1 2 2 1 1 1 1 1 1 1 1 1 1 2 2 3
W77E516 CLOCK CYCLES 4 4 4 4 8 8 4 4 4 4 4 4 4 4 4 4 8 8 12
8032 CLOCK CYCLES 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 24
W77E516 VS. 8032 SPEED RATIO 3 3 3 3 1.5 1.5 3 3 3 3 3 3 3 3 3 3 1.5 1.5 2
AJMP ADDR11 ANL A, R0 ANL A, R1 ANL A, R2 ANL A, R3 ANL A, R4 ANL A, R5 ANL A, R6 ANL A, R7 ANL A, @R0 ANL A, @R1 ANL A, direct ANL A, #data ANL direct, A ANL direct, #data ANL C, bit ANL C, /bit CJNE A, direct, rel
2 1 1 1 1 1 1 1 1 1 1 2 2 2 3 2 2 3
3 1 1 1 1 1 1 1 1 1 1 2 2 2 3 2 2 4
12 4 4 4 4 4 4 4 4 4 4 8 8 8 12 8 8 16
24 12 12 12 12 12 12 12 12 12 12 12 12 12 24 24 24 24
2 3 3 3 3 3 3 3 3 3 3 1.5 1.5 1.5 2 3 3 1.5
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W77E516A
Table 3. Instruction Timing for W77E516, continued
INSTRUCTION CJNE A, #data, rel CJNE @R0, #data, rel CJNE @R1, #data, rel CJNE R0, #data, rel CJNE R1, #data, rel CJNE R2, #data, rel CJNE R3, #data, rel CJNE R4, #data, rel CJNE R5, #data, rel CJNE R6, #data, rel CJNE R7, #data, rel CLR A CPL A CLR C CLR bit CPL C CPL bit DEC A DEC R0 DEC R1 DEC R2 DEC R3 DEC R4 DEC R5 DEC R6 DEC R7 DEC @R0 DEC @R1 DEC direct DEC DPTR DIV AB DA A DJNZ R0, rel DJNZ R1, rel DJNZ R5, rel DJNZ R2, rel DJNZ R3, rel
HEX OP-CODE B4 B6 B7 B8 B9 BA BB BC BD BE BF E4 F4 C3 C2 B3 B2 14 18 19 1A 1B 1C 1D 1E 1F 16 17 15 A5 84 D4 D8 D9 DD DA DB
BYTES 3 3 3 3 3 3 3 3 3 3 3 1 1 1 2 1 2 1 1 1 1 1 1 1 1 1 1 1 2 1 1 1 2 2 2 2 2
W77E516 MACHINE CYCLES 4 4 4 4 4 4 4 4 4 4 4 1 1 1 2 1 2 1 1 1 1 1 1 1 1 1 1 1 2 2 5 1 3 3 3 3 3
W77E516 CLOCK CYCLES 16 16 16 16 16 16 16 16 16 16 16 4 4 4 8 4 8 4 4 4 4 4 4 4 4 4 4 4 8 8 20 4 12 12 12 12 12
8032 CLOCK CYCLES 24 24 24 24 24 24 24 24 24 24 24 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 48 12 24 24 24 24 24
W77E516 VS. 8032 SPEED RATIO 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 3 3 3 1.5 3 1.5 3 3 3 3 3 3 3 3 3 3 3 1.5 2.4 3 2 2 2 2 2
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W77E516A
Table 3. Instruction Timing for W77E516, continued
INSTRUCTION
HEX OP-CODE
BYTES
W77E516 MACHINE CYCLES
W77E516 CLOCK CYCLES
8032 CLOCK CYCLES
W77E516 VS. 8032 SPEED RATIO
DJNZ R4, rel DJNZ R6, rel DJNZ R7, rel DJNZ direct, rel INC A INC R0 INC R1 INC R2 INC R3 INC R4 INC R5 INC R6 INC R7 INC @R0 INC @R1 INC direct INC DPTR JMP @A+DPTR JZ rel JNZ rel JC rel JNC rel JB bit, rel JNB bit, rel JBC bit, rel LCALL addr16 LJMP addr16 MUL AB MOV A, R0 MOV A, R1 MOV A, R2 MOV A, R3 MOV A, R4 MOV A, R5 MOV A, R6 MOV A, R7 MOV A, @R0 MOV A, @R1
DC DE DF D5 04 08 09 0A 0B 0C 0D 0E 0F 06 07 05 A3 73 60 70 40 50 20 30 10 12 02 A4 E8 E9 EA EB EC ED EE EF E6 E7
2 2 2 3 1 1 1 1 1 1 1 1 1 1 1 2 1 1 2 2 2 2 3 3 3 3 3 1 1 1 1 1 1 1 1 1 1 1
3 3 3 4 1 1 1 1 1 1 1 1 1 1 1 2 2 2 3 3 3 3 4 4 4 4 4 5 1 1 1 1 1 1 1 1 1 1
12 12 12 16 4 4 4 4 4 4 4 4 4 4 4 8 8 8 12 12 12 12 16 16 16 16 16 20 4 4 4 4 4 4 4 4 4 4
24 24 24 24 12 12 12 12 12 12 12 12 12 12 12 12 24 24 24 24 24 24 24 24 24 24 24 48 12 12 12 12 12 12 12 12 12 12
2 2 2 1.5 3 3 3 3 3 3 3 3 3 3 3 1.5 3 3 2 2 2 2 1.5 1.5 1.5 1.5 1.5 2.4 3 3 3 3 3 3 3 3 3 3
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W77E516A
Table 3. Instruction Timing for W77E516, continued
INSTRUCTION MOV A, direct MOV A, #data MOV R0, A MOV R1, A MOV R2, A MOV R3, A MOV R4, A MOV R5, A MOV R6, A MOV R7, A MOV R0, direct MOV R1, direct MOV R2, direct MOV R3, direct MOV R4, direct MOV R5, direct MOV R6, direct MOV R7, direct MOV R0, #data MOV R1, #data MOV R2, #data MOV R3, #data MOV R4, #data MOV R5, #data MOV R6, #data MOV R7, #data MOV @R0, A MOV @R1, A MOV @R0, direct MOV @R1, direct MOV @R0, #data MOV @R1, #data MOV direct, A MOV direct, R0 MOV direct, R1 MOV direct, R2 MOV direct, R3
HEX OP-CODE E5 74 F8 F9 FA FB FC FD FE FF A8 A9 AA AB AC AD AE AF 78 79 7A 7B 7C 7D 7E 7F F6 F7 A6 A7 76 77 F5 88 89 8A 8B
BYTES 2 2 1 1 1 1 1 1 1 1 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 1 1 2 2 2 2 2 2 2 2 2
W77E516 MACHINE CYCLES 2 2 1 1 1 1 1 1 1 1 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 1 1 2 2 2 2 2 2 2 2 2
W77E516 CLOCK CYCLES 8 8 4 4 4 4 4 4 4 4 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 8 4 4 8 8 8 8 8 8 8 8 8
8032 CLOCK CYCLES 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12
W77E516 VS. 8032 SPEED RATIO 1.5 1.5 3 3 3 3 3 3 3 3 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 3 3 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5 1.5
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W77E516A
Table 3. Instruction Timing for W77E516, continued
INSTRUCTION
MOV direct, R4 MOV direct, R5 MOV direct, R6 MOV direct, R7 MOV direct, @R0 MOV direct, @R1 MOV direct, direct MOV direct, #data MOV DPTR, #data 16 MOVC A, @A+DPTR MOVC A, @A+PC MOVX A, @R0 MOVX A, @R1 MOVX A, @DPTR MOVX @R0, A MOVX @R1, A MOVX @DPTR, A MOV C, bit MOV bit, C ORL A, R0 ORL A, R1 ORL A, R2 ORL A, R3 ORL A, R4 ORL A, R5 ORL A, R6 ORL A, R7 ORL A, @R0 ORL A, @R1 ORL A, direct ORL A, #data ORL direct, A ORL direct, #data ORL C, bit ORL C, /bit PUSH direct POP direct RET
HEX OP-CODE
8C 8D 8E 8F 86 87 85 75 90 93 83 E2 E3 E0 F2 F3 F0 A2 92 48 49 4A 4B 4C 4D 4E 4F 46 47 45 44 42 43 72 A0 C0 D0 22
BYTES
2 2 2 2 2 2 3 3 3 1 1 1 1 1 1 1 1 2 2 1 1 1 1 1 1 1 1 1 1 2 2 2 3 2 2 2 2 1
W77E516 MACHINE CYCLES
2 2 2 2 2 2 3 3 3 2 2 2-9 2-9 2-9 2-9 2-9 2-9 2 2 1 1 1 1 1 1 1 1 1 1 2 2 2 3 2 2 2 2 2
W77E516 CLOCK CYCLES
8 8 8 8 8 8 12 12 12 8 8 8 - 36 8 - 36 8 - 36 8 - 36 8 - 36 8 - 36 8 8 4 4 4 4 4 4 4 4 4 4 8 8 8 12 8 6 8 8 8
8032 CLOCK CYCLES
12 12 12 12 12 12 24 24 24 24 24 24 24 24 24 24 24 12 24 12 12 12 12 12 12 12 12 12 12 12 12 12 24 24 24 24 24 24
W77E516 VS. 8032 SPEED RATIO
1.5 1.5 1.5 1.5 1.5 1.5 2 2 2 3 3 3 - 0.66 3 - 0.66 3 - 0.66 3 - 0.66 3 - 0.66 3 - 0.66 1.5 3 3 3 3 3 3 3 3 3 3 3 1.5 1.5 1.5 2 3 3 3 3 3
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Table 3. Instruction Timing for W77E516, continued
INSTRUCTION
HEX OP-CODE
BYTES
W77E516 MACHINE CYCLES
W77E516 CLOCK CYCLES
8032 CLOCK CYCLES
W77E516 VS. 8032 SPEED RATIO
RETI RL A RLC A RR A RRC A SETB C SETB bit SWAP A SJMP rel SUBB A, R0 SUBB A, R1 SUBB A, R2 SUBB A, R3 SUBB A, R4 SUBB A, R5 SUBB A, R6 SUBB A, R7 SUBB A, @R0 SUBB A, @R1 SUBB A, direct SUBB A, #data XCH A, R0 XCH A, R1 XCH A, R2 XCH A, R3 XCH A, R4 XCH A, R5 XCH A, R6 XCH A, R7 XCH A, @R0 XCH A, @R1 XCHD A, @R0 XCHD A, @R1 XCH A, direct XRL A, R0 XRL A, R1 XRL A, R2
32 23 33 03 13 D3 D2 C4 80 98 99 9A 9B 9C 9D 9E 9F 96 97 95 94 C8 C9 CA CB CC CD CE CF C6 C7 D6 D7 C5 68 69 6A
1 1 1 1 1 1 2 1 2 1 1 1 1 1 1 1 1 1 1 2 2 1 1 1 1 1 1 1 1 1 1 1 1 2 1 1 1
2 1 1 1 1 1 2 1 3 1 1 1 1 1 1 1 1 1 1 2 2 1 1 1 1 1 1 1 1 1 1 1 1 2 1 1 1
8 4 4 4 4 4 8 4 12 4 4 4 4 4 4 4 4 4 4 8 8 4 4 4 4 4 4 4 4 4 4 4 4 8 4 4 4
24 12 12 12 12 12 12 12 24 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12 12
3 3 3 3 3 3 1.5 3 2 3 3 3 3 3 3 3 3 3 3 1.5 1.5 3 3 3 3 3 3 3 3 3 3 3 3 1.5 3 3 3
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W77E516A
Table 3. Instruction Timing for W77E516, continued
INSTRUCTION
XRL A, R3 XRL A, R4 XRL A, R5 XRL A, R6 XRL A, R7 XRL A, @R0 XRL A, @R1 XRL A, direct XRL A, #data XRL direct, A XRL direct, #data
HEX OP-CODE
6B 6C 6D 6E 6F 66 67 65 64 62 63
BYTES
1 1 1 1 1 1 1 2 2 2 3
W77E516 MACHINE CYCLES
1 1 1 1 1 1 1 2 2 2 3
W77E516 CLOCK CYCLES
4 4 4 4 4 4 4 8 8 8 12
8032 CLOCK CYCLES
12 12 12 12 12 12 12 12 12 12 24
W77E516 VS. 8032 SPEED RATIO
3 3 3 3 3 3 3 1.5 1.5 1.5 2
6.5
Instruction Timing
The instruction timing for the W77E516 is an important aspect, especially for those users who wish to use software instructions to generate timing delays. Also, it provides the user with an insight into the timing differences between the W77E516 and the standard 8032. In the W77E516 each machine cycle is four clock periods long. Each clock period is designated a state. Thus each machine cycle is made up of four states, C1, C2, C3 and C4 in that order. Due to the reduced time for each instruction execution, both the clock edges are used for internal timing. Hence it is important that the duty cycle of the clock be as close to 50% as possible to avoid timing conflicts. As mentioned earlier, the W77E516 does one op-code fetch per machine cycle. Therefore, in most of the instructions, the number of machine cycles needed to execute the instruction is equal to the number of bytes in the instruction. Of the 256 available op-codes, 128 of them are single cycle instructions. Thus more than half of all opcodes in the W77E516 are executed in just four clock periods. Most of the two-cycle instructions are those that have two byte instruction codes. However there are some instructions that have only one byte instructions, yet they are two cycle instructions. One instruction which is of importance is the MOVX instruction. In the standard 8032, the MOVX instruction is always two machine cycles long. However in the W77E516, the user has a facility to stretch the duration of this instruction from 2 machine cycles to 9 machine cycles. The RD and WR strobe lines are also proportionately elongated. This gives the user flexibility in accessing both fast and slow peripherals without the use of external circuitry and with minimum software overhead. The rest of the instructions are either three, four or five machine cycle instructions. Note that in the W77E516, based on the number of machine cycles, there are five different types, while in the standard 8032 there are only three. However, in the W77E516 each machine cycle is made of only 4 clock periods compared to the 12 clock periods for the standard 8032. Therefore, even though the number of categories has increased, each instruction is at least 1.5 to 3 times faster than the standard 8032 in terms of clock periods.
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W77E516A
Single Cycle C1 CLK ALE PSEN AD7-0 PORT 2 A7-0 Data_ in D7-0 Address A15-8 C2 C3 C4
Figure 3. Single Cycle Instruction Timing
Instruction Fetch C1 CLK ALE PSEN AD7-0 PORT 2
PC OP-CODE
Address A15-8
Operand Fetch C4 C1 C2 C3
C2
C3
C4
PC+1
OPERAND
Address A15-8
Figure 4. Two Cycle Instruction Timing
Instruction Fetch C1 CLK ALE PSEN AD7-0 PORT 2 A7-0 OP-CODE C2 C3 C4 C1
Operand Fetch C2 C3 C4 C1
Operand Fetch C2 C3 C4
A7-0
OPERAND
A7-0
OPERAND
Address A15-8
Address A15-8
Address A15-8
Figure 5. Three Cycle Instruction Timing
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W77E516A
Instruction Fetch C1 CLK ALE PSEN AD7-0 A7-0 OP-CODE C2 C3 C4
Operand Fetch C1 C2 C3 C4
Operand Fetch C1 C2 C3 C4
Operand Fetch C1 C2 C3 C4
A7-0
OPERAND
A7-0
OPERAND
A7-0 OPERAND
Port 2
Address A15-8
Address A15-8
Address A15-8
Address A15-8
Figure 6. Four Cycle Instruction Timing
Instruction Fetch
C1 C2 C3 C4
Operand Fetch
C1 C2 C3 C4
Operand Fetch
C1 C2 C3 C4
Operand Fetch
C1 C2 C3 C4
Operand Fetch
C1 C2 C3 C4
CLK ALE PSEN AD7-0 A7-0
OP-CODE
A7-0 OPERAND Address A15-8
A7-0 OPERAND Address A15-8
A7-0 OPERAND Address A15-8
A7-0 OPERAND Address A15-8
PORT 2
Address A15-8
Figure 7. Five Cycle Instruction Timing
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W77E516A
MOVX Instruction The W77E516, like the standard 8032, uses the MOVX instruction to access external Data Memory. This Data Memory includes both off-chip memory as well as memory mapped peripherals. While the results of the MOVX instruction are the same as in the standard 8032, the operation and the timing of the strobe signals have been modified in order to give the user much greater flexibility. The MOVX instruction is of two types, the MOVX @Ri and MOVX @DPTR. In the MOVX @Ri, the address of the external data comes from two sources. The lower 8-bits of the address are stored in the Ri register of the selected working register bank. The upper 8-bits of the address come from the port 2 SFR. In the MOVX @DPTR type, the full 16-bit address is supplied by the Data Pointer. Since the W77E516 has two Data Pointers, DPTR and DPTR1, the user has to select between the two by setting or clearing the DPS bit. The Data Pointer Select bit (DPS) is the LSB of the DPS SFR, which exists at location 86h. No other bits in this SFR have any effect, and they are set to 0. When DPS is 0, then DPTR is selected, and when set to 1, DPTR1 is selected. The user can switch between DPTR and DPTR1 by toggling the DPS bit. The quickest way to do this is by the INC instruction. The advantage of having two Data Pointers is most obvious while performing block move operations. The accompanying code shows how the use of two separate Data Pointers speeds up the execution time for code performing the same task. Block Move with single Data Pointer: ; SH and SL are the high and low bytes of Source Address ; DH and DL are the high and low bytes of Destination Address ; CNT is the number of bytes to be moved Machine cycles of W77E516 # MOV MOV MOV MOV MOV LOOP: MOV MOV MOVX INC MOV MOV MOV MOV MOVX INC MOV MOV DJNZ R2, #CNT R3, #SL R4, #SH R5, #DL R6, #DH DPL, R3 DPH, R4 A, @DPTR DPTR R3, DPL R4, DPH DPL, R5 DPH, R6 @DPTR, A DPTR DPL, R5 DPH, R6 R2, LOOP ; Load R2 with the count value ; Save low byte of Source Address in R3 ; Save high byte of Source address in R4 ; Save low byte of Destination Address in R5 ; Save high byte of Destination address in R6 ; Load DPL with low byte of Source address ; Load DPH with high byte of Source address ; Get byte from Source to Accumulator ; Increment Source Address to next byte ; Save low byte of Source address in R3 ; Save high byte of Source Address in R4 ; Load low byte of Destination Address in DPL ; Load high byte of Destination Address in DPH ; Write data to destination ; Increment Destination Address ; Save low byte of new destination address in R5 ; Save high byte of new destination address in R6 ; Decrement count and do LOOP again if count <> 0 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2
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W77E516A
Machine cycles in standard 8032 = 10 + (26 * CNT) Machine cycles in W77E516 = 10 + (26 * CNT) If CNT = 50 Clock cycles in standard 8032= ((10 + (26 *50)) * 12 = (10 + 1300) * 12 = 15720 Clock cycles in W77E516 = ((10 + (26 * 50)) * 4 = (10 + 1300) * 4 = 5240 Block Move with Two Data Pointers in W77E516: ; SH and SL are the high and low bytes of Source Address ; DH and DL are the high and low bytes of Destination Address ; CNT is the number of bytes to be moved Machine cycles of W77E516 # 2 2 3 2 3 2 2 2 2 2 2 3
MOV MOV MOV INC MOV LOOP: MOVX INC DEC MOVX INC INC DJNZ
R2, #CNT DPS, #00h DPTR, #DHDL DPS DPTR, #SHSL A, @DPTR DPTR DPS @DPTR, A DPTR DPS R2, LOOP
; Load R2 with the count value ; Clear DPS to point to DPTR ; Load DPTR with Destination address ; Set DPS to point to DPTR1 ; Load DPTR1 with Source address ; Get data from Source block ; Increment source address ; Clear DPS to point to DPTR ; Write data to Destination ; Increment destination address ; Set DPS to point to DPTR1 ; Check if all done
Machine cycles in W77E516 = 12 + (15 * CNT) If CNT = 50 Clock cycles in W77E516 = (12 + (15 * 50)) * 4 = (12 + 750) * 4 = 3048 We can see that in the first program the standard 8032 takes 15720 cycles, while the W77E516 takes only 5240 cycles for the same code. In the second program, written for the W77E516, program execution requires only 3048 clock cycles. If the size of the block is increased then the saving is even greater. External Data Memory Access Timing The timing for the MOVX instruction is another feature of the W77E516. In the standard 8032, the MOVX instruction has a fixed execution time of 2 machine cycles. However in the W77E516, the duration of the access can be varied by the user. The instruction starts off as a normal op-code fetch of 4 clocks. In the next machine cycle, the W77E516 puts out the address of the external Data Memory and the actual access occurs here. The user can change the duration of this access time by setting the STRETCH value. The Clock Control SFR (CKCON) has three bits that control the stretch value. These three bits are M2-0 (bits 2-0 of CKCON). These three bits give the user 8 different access time options. The stretch can be varied from 0 to 7, resulting in MOVX instructions that last from 2 to 9 machine cycles in length. Note that the Publication Release Date: November 19, 2007 Revision A9
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stretching of the instruction only results in the elongation of the MOVX instruction, as if the state of the CPU was held for the desired period. There is no effect on any other instruction or its timing. By default, the Stretch value is set at 1, giving a MOVX instruction of 3 machine cycles. If desired by the user the stretch value can be set to 0 to give the fastest MOVX instruction of only 2 machine cycles. Table 4. Data Memory Cycle Stretch Values
M2 M1 M0 MACHINE CYCLES /RD OR /WR STROBE WIDTH IN CLOCKS /RD OR /WR STROBE WIDTH @25 MHZ /RD OR /WR STROBE WIDTH @40 MHZ
0 0 0 0 1 1 1 1
0 0 1 1 0 0 1 1
0 1 0 1 0 1 0 1
2 3(default) 4 5 6 7 8 9
2 4 8 12 16 20 24 28
80 nS 160 nS 320 nS 480 nS 640 nS 800 nS 960 nS 1120 nS
50 nS 100 nS 200 nS 300 nS 400 nS 500 nS 600 nS 700 nS
Last Cycle of Previous Instruction
First Machine cycle
Second Machine cycle
Next Instruction Machine Cycle
MOVX instruction cycle
C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4
CLK ALE PSEN WR PORT 0
A0-A7 D0-D7 A0-A7 D0-D7 A0-A7 D0-D7 A0-A7 D0-D7
MOVX Inst. Address
Next Inst. Address
MOVX Inst.
MOVX Data Address MOVX Data out A15-A8 A15-A8
Next Inst. Read
A15-A8
PORT 2
A15-A8
Figure 8: Data Memory Write with Stretch Value = 0
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Last Cycle of Previous Instruction
First
Second
Third
Machine Cycle Machine Cycle Machine Cycle MOVX instruction cycle
Next Instruction Machine Cycle
C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4
CLK ALE PSEN WR PORT 0
A0-A7
D0-D7
A0-A7
D0-D7
A0-A7
D0-D7
A0-A7
D0-D7
MOVX Inst. Address
Next Inst. Address
MOVX Data Address
MOVX Data out
MOVX Inst.
Next Inst. Read A15-A8 A15-A8 A15-A8
PORT 2
A15-A8
Figure 9: Dada Memory Write with Stretch Value = 1
Last Cycle of Previous Instruction
First Machine Cycle
Second Machine Cycle
Third Machine Cycle
Fourth Machine Cycle
Next Instruction Machine Cycle
MOVX instruction cycle C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4 C1 C2 C3 C4
CLK ALE PSEN WR PORT 0
A0-A7
D0-D7
A0-A7
D0-D7
A0-A7
D0-D7
A0-A7
D0-D7
MOVX Inst. Address
Next Inst. Address
MOVX Data Address
MOVX Data out
MOVX Inst.
Next Inst. Read A15-A8 A15-A8 A15-A8
PORT 2
A15-A8
Figure 10: Dada Memory Write with Stretch Value = 2
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Wait State Control Signal Either with the software using stretch value to change the required machine cycle of MOVX instruction, the W77E516 provides another hardware signal WAIT to implement the wider duration of external data access timing. This wait state control signal is the alternate function of P4.0 such that it can only be invoked to 44-pin PLCC/QFP package type. The wait state control signal can be enabled by setting WS (ROMMAP.7) bit. When enabled, the setting of stretch value decides the minimum length of MOVX instruction cycle and the device will sample the WAIT pin at each C3 state before the rising edge of read/write strobe signal during MOVX instruction. Once this signal being recongnized, one more machine cycle (wait state cycle) will be inserted into next cycle. The inserted wait state cycles are unlimited, so the MOVX instruction cycle will end in which the wait state control signal is deactivated. Using wait state control signal allows a dynamically access timimg to a selected external peripheral. The WS bit is accessed by the Timed Access (TA register) Protection procedure. Wait State Control Signal Timing (when Stretch = 1)
Wait State Control Signal Timing (when Stretch = 2)
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Power Management
The W77E516 has several features that help the user to modify the power consumption of the device. The power saving features are basically the POWER DOWN mode, ECONOMY mode and the IDLE mode of operation.
6.5.1
Idle Mode
The user can put the device into idle mode by writing 1 to the bit PCON.0. The instruction that sets the idle bit is the last instruction that will be executed before the device goes into Idle Mode. In the Idle mode, the clock to the CPU is halted, but not to the Interrupt, Timer, Watchdog timer and Serial port blocks. This forces the CPU state to be frozen; the Program counter, the Stack Pointer, the Program Status Word, the Accumulator and the other registers hold their contents. The ALE and PSEN pins are held high during the Idle state. The port pins hold the logical states they had at the time Idle was activated. The Idle mode can be terminated in two ways. Since the interrupt controller is still active, the activation of any enabled interrupt can wake up the processor. This will automatically clear the Idle bit, terminate the Idle mode, and the Interrupt Service Routine (ISR) will be executed. After the ISR, execution of the program will continue from the instruction which put the device into Idle mode. The Idle mode can also be exited by activating the reset. The device can be put into reset either by applying a high on the external RST pin, a Power on/fail reset condition or a Watchdog timer reset. The external reset pin has to be held high for at least two machine cycles I.e. 8 clock periods to be recognized as a valid reset. In the reset condition the program counter is reset to 0000h and all the SFRs are set to the reset condition. Since the clock is already running there is no delay and execution starts immediately. In the Idle mode, the Watchdog timer continues to run, and if enabled, a time-out will cause a watchdog timer interrupt which will wake up the device. The software must reset the Watchdog timer in order to preempt the reset which will occur after 512 clock periods of the time-out. When the W77E516 is exiting from an Idle mode with a reset, the instruction following the one which put the device into Idle mode is not executed. So there is no danger of unexpected writes.
6.5.2
Economy Mode
The power consumption of microcontroller relates to operating frequency. The W77E516 offers a Economy mode to reduce the internal clock rate dynamically without external components. By default, one machine cycle needs 4 clocks. In Economy mode, software can select 4, 64 or 1024 clocks per machine cycle. It keeps the CPU operating at a acceptable speed but eliminates the power consumption. In the Idle mode, the clock of the core logic is stopped, but all clocked peripherals such as watchdog timer are still running at a rate of clock/4. In the Economy mode, all clocked peripherals run at the same reduced clocks rate as in core logic. So the Economy mode may provide a lower power consumption than idle mode. Software invokes the Economy mode by setting the appropriate bits in the SFRs. Setting the bits CD0(PMR.6),CD1(PMR.7) decides the instruction cycle rate as below: CD1 0 0 1 1 CD0 0 1 0 1 Clocks/Machine Cycle Reserved 4 (default) 64 1024
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The selection of instruction rate is going to take effect after a delay of one instruction cycle. Switching to divide by 64 or 1024 mode must first go from divide by 4 mode. This means software can not switch directly between clock/64 and clock/1024 mode. The CPU has to return clock/4 mode first, then go to clock/64 or clock/1024 mode. The W77E516 allows the user to use internal RC oscillator instead of external crystal. Setting the XT/ RG bit (EXIF.3) selects the crystal or RC oscillator as the clock source. When invoking RC oscillator in Economy mode, software may set the XTOFF bit to turn off the crystal amplifier for saving power. The CPU would run at the clock rate of approximately 2 - 4 MHz divided by 4, 64 or 1024. The RC oscillator is not precise so that can not be invoked to the operation which needs the accurate timebase such as serial communication. The RGMD(EXIF.2) indicates current clock source. When switching the clock source, CPU needs one instruction cycle delay to take effect new setting. If crystal amplifier is disabled and RC oscillator is present clock source, software must first clear the XTOFF bit to turn on crystal amplifier before switch to crystal operation. Hardware will set the XTUP bit (STATUS.4) once the crystal is warm-up and ready for use. It is unable to set XT/ RG bit to 1 if XTUP = 0. In Economy mode, the serial port can not receive/transmit data correctly because the baud rate is changed. In some systems, the external interrupts may require the fastest process such that the reducing of operating speed is restricted. In order to solve these dilemmas, the W77E516 offers a switchback feature which allows the CPU back to clock/4 mode immediately when triggered by serial operation or external interrupts. The switchback feature is enabled by setting the SWB bit (PMR.5). A serial port reception/transmission or qualified external interrupt which is enabled and acknowledged without block conditions will cause CPU to return to divide by 4 mode. For the serial port reception, a switchback is generated by a falling edge associated with start bit if the serial port reception is enabled. When a serial port transmission, an instruction which writes a byte of data to serial port buffer will cause a switchback to ensure the correct transmission. The switchback feature is unaffected by serial port interrupt flags. After a switchback is generated, the software can manually return the CPU to Economy mode. Note that the modification of clock control bits CD0 and CD1 will be ignored during serial port transmit/receive when switchback is enabled. The Watchdog timer reset, power-on/fail reset or external reset will force the CPU to return to divide by 4 mode.
6.5.3
Power Down Mode
The device can be put into Power Down mode by writing 1 to bit PCON.1. The instruction that does this will be the last instruction to be executed before the device goes into Power Down mode. In the Power Down mode, all the clocks are stopped and the device comes to a halt. All activity is completely stopped and the power consumption is reduced to the lowest possible value. In this state the ALE and PSEN pins are pulled low. The port pins output the values held by their respective SFRs. The W77E516 will exit the Power Down mode with a reset or by an external interrupt pin enabled as either level or edge detect. An external reset can be used to exit the Power down state. The high on RST pin terminates the Power Down mode, and restarts the clock. The program execution will restart from 0000h. In the Power down mode, the clock is stopped, so the Watchdog timer cannot be used to provide the reset to exit Power down mode. The W77E516 can be woken from the Power Down mode by forcing an external interrupt pin activated, provided the corresponding interrupt is enabled, while the global enable(EA) bit is set. If these conditions are met, then the low level on the external pin re-starts the oscillator. Then device executes the interrupt service routine for the corresponding external interrupt. After the interrupt service routine is completed, the program execution returns to the instruction after the one which put the device into Power Down mode and continues from there. When RGSL(EXIF.1) bit is set to 1, the Publication Release Date: November 19, 2007 Revision A9
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CPU will use the internal RC oscillator instead of crystal to exit Power Down mode. The microcontroller will automatically switch from RC oscillator to crystal after clock is stable. The RC oscillator runs at approximately 2 - 4 MHz. Using RC oscillator to exit from Power Down mode saves the time for waiting crystal start-up. It is useful in the low power system which usually be awakened from a short operation then returns to Power Down mode. Table 5. Status of external pins during Idle and Power Down MODE Idle Idle Power Down Power Down PROGRAM MEMORY Internal External Internal External ALE 1 1 0 0
PSEN
PORT0 Data Float Data Float
PORT1 Data Data Data Data
PORT2 Data Address Data Data
PORT3 Data Data Data Data
1 1 0 0
6.6
Reset Conditions
The user has several hardware related options for placing the W77E516 into reset condition. In general, most register bits go to their reset value irrespective of the reset condition, but there are a few flags whose state depends on the source of reset. The user can use these flags to determine the cause of reset using software. There are three ways of putting the device into reset state. They are External reset, Power on reset and Watchdog reset.
6.6.1
External Reset
The device continuously samples the RST pin at state C4 of every machine cycle. Therefore the RST pin must be held for at least 2 machine cycles to ensure detection of a valid RST high. The reset circuitry then synchronously applies the internal reset signal. Thus the reset is a synchronous operation and requires the clock to be running to cause an external reset. Once the device is in reset condition, it will remain so as long as RST is 1. Even after RST is deactivated, the device will continue to be in reset state for up to two machine cycles, and then begin program execution from 0000h. There is no flag associated with the external reset condition. However since the other two reset sources have flags, the external reset can be considered as the default reset if those two flags are cleared.
6.6.2
Watchdog Timer Reset
The Watchdog timer is a free running timer with programmable time-out intervals. The user can clear the watchdog timer at any time, causing it to restart the count. When the time-out interval is reached an interrupt flag is set. If the Watchdog reset is enabled and the watchdog timer is not cleared, then 512 clocks from the flag being set, the watchdog timer will generate a reset. This places the device into the reset condition. The reset condition is maintained by hardware for two machine cycles. Once the reset is removed the device will begin execution from 0000h.
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6.7 Reset State
Most of the SFRs and registers on the device will go to the same condition in the reset state. The Program Counter is forced to 0000h and is held there as long as the reset condition is applied. However, the reset state does not affect the on-chip RAM. The data in the RAM will be preserved during the reset. However, the stack pointer is reset to 07h, and therefore the stack contents will be lost. The RAM contents will be lost if the VDD falls below approximately 2V, as this is the minimum voltage level required for the RAM to operate normally. Therefore after a first time power on reset the RAM contents will be indeterminate. During a power fail condition, if the power falls below 2V, the RAM contents are lost. Hence it should be assumed that after a power on/fail reset, POR = 1, the RAM contents are lost. After a reset most SFRs are cleared. Interrupts and Timers are disabled. The Watchdog timer is disabled if the reset source was a POR. The port SFRs have FFh written into them which puts the port pins in a high state. Port 0 floats as it does not have on-chip pull-ups. Table 6. SFR Reset Value
SFR NAME P0 SP DPL DPH DPL1 DPH1 DPS PCON TCON TMOD TL0 TL1 TH0 TH1 CKCON P1 SCON SBUF P2 SADDR1 SCON1 ROMMAP EXIF P4 RESET VALUE 11111111b 00000111b 00000000b 00000000b 00000000b 00000000b 00000000b 00xx0000b 00000000b 00000000b 00000000b 00000000b 00000000b 00000000b 00000001b 11111111b 00000000b SFR NAME IE SADDR P3 IP SADEN T2CON T2MOD RCAP2L RCAP2H TL2 TH2 TA PSW WDCON ACC EIE B EIP PC SADEN1 SBUF1 PMR STATUS RESET VALUE 00000000b 00000000b 11111111b x0000000b 00000000b 00000000b 00000x00b 00000000b 00000000b 00000000b 00000000b 11111111b 00000000b 0x0x0xx0b 00000000b
xxx00000b
00000000b xxx00000b 00000000b 00000000b
xxxxxxxxb
11111111b 00000000b 00000000b 01xxxxxxb 0000xxx0b
xxxxxxxxb
010xx0x0b 000x0000b
xxxx1111b Publication Release Date: November 19, 2007 Revision A9
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The WDCON SFR bits are set/cleared in reset condition depending on the source of the reset. External reset WDCON 0x0x0xx0b Watchdog reset 0x0x01x0b Power on reset 01000000b
The POR bit WDCON.6 is set only by the power on reset. The WTRF bit WDCON.2 is set when the Watchdog timer causes a reset. A power on reset will also clear this bit. The EWT bit WDCON.1 is cleared by power on resets. This disables the Watchdog timer resets. A watchdog or external reset does not affect the EWT bit.
6.8
Interrupts
The W77E516 has a two priority level interrupt structure with 12 interrupt sources. Each of the interrupt sources has an individual priority bit, flag, interrupt vector and enable bit. In addition, the interrupts can be globally enabled or disabled.
6.8.1
Interrupt Sources
The External Interrupts INT0 and INT1 can be either edge triggered or level triggered, depending on bits IT0 and IT1. The bits IE0 and IE1 in the TCON register are the flags which are checked to generate the interrupt. In the edge triggered mode, the INTx inputs are sampled in every machine cycle. If the sample is high in one cycle and low in the next, then a high to low transition is detected and the interrupts request flag Iex in TCON or EXIF is set. The flag bit requests the interrupt. Since the external interrupts are sampled every machine cycle, they have to be held high or low for at least one complete machine cycle. The Iex flag is automatically cleared when the service routine is called. If the level triggered mode is selected, then the requesting source has to hold the pin low till the interrupt is serviced. The Iex flag will not be cleared by the hardware on entering the service routine. If the interrupt continues to be held low even after the service routine is completed, then the processor may acknowledge another interrupt request from the same source. Note that the external interrupts INT2 to INT5 are edge triggered only. By default, the individual interrupt flag corresponding to external interrupt 2 to 5 must be cleared manually by software. It can be configured with hardware cleared by setting the corresponding bit HCx in the T2MOD register. For instance, if HC2 is set hardware will clear IE2 flag after program enters the interrupt 2 service routine. The Timer 0 and 1 Interrupts are generated by the TF0 and TF1 flags. These flags are set by the overflow in the Timer 0 and Timer 1. The TF0 and TF1 flags are automatically cleared by the hardware when the timer interrupt is serviced. The Timer 2 interrupt is generated by a logical OR of the TF2 and the EXF2 flags. These flags are set by overflow or capture/reload events in the timer 2 operation. The hardware does not clear these flags when a timer 2 interrupt is executed. Software has to resolve the cause of the interrupt between TF2 and EXF2 and clear the appropriate flag. The Watchdog timer can be used as a system monitor or a simple timer. In either case, when the time-out count is reached, the Watchdog timer interrupt flag WDIF (WDCON.3) is set. If the interrupt is enabled by the enable bit EIE.4, then an interrupt will occur. The Serial block can generate interrupts on reception or transmission. There are two interrupt sources from the Serial block, which are obtained by the RI and TI bits in the SCON SFR and RI_1 and TI_1 in the SCON1 SFR. These bits are not automatically cleared by the hardware, and the user will have to clear these bits using software.
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All the bits that generate interrupts can be set or reset by hardware, and thereby software initiated interrupts can be generated. Each of the individual interrupts can be enabled or disabled by setting or clearing a bit in the IE SFR. IE also has a global enable/disable bit EA, which can be cleared to disable all the interrupts, except PFI, at once.
6.8.2
Priority Level Structure
There are two priority levels for the interrupts, high and low. The interrupt source can be individually set to either high or low levels. Naturally, a higher priority interrupt cannot be interrupted by a lower priority interrupt. However there exists a pre-defined hierarchy amongst the interrupts themselves. This hierarchy comes into play when the interrupt controller has to resolve simultaneous requests having the same priority level. This hierarchy is defined as shown below; the interrupts are numbered starting from the highest priority to the lowest. Table 7. Priority structure of interrupts SOURCE External Interrupt 0 Timer 0 Overflow External Interrupt 1 Timer 1 Overflow Serial Port Timer 2 Overflow Serial Port 1 External Interrupt 2 External Interrupt 3 External Interrupt 4 External Interrupt 5 Watchdog Timer FLAG IE0 TF0 IE1 TF1 RI + TI TF2 + EXF2 RI_1 + TI_1 IE2 IE3 IE4 IE5 WDIF PRIORITY LEVEL 1 (highest) 2 3 4 5 6 7 8 9 10 11 12 (lowest)
The interrupt flags are sampled every machine cycle. In the same machine cycle, the sampled interrupts are polled and their priority is resolved. If certain conditions are met then the hardware will execute an internally generated LCALL instruction which will vector the process to the appropriate interrupt vector address. The conditions for generating the LCALL are 1. An interrupt of equal or higher priority is not currently being serviced. 2. The current polling cycle is the last machine cycle of the instruction currently being executed. 3. The current instruction does not involve a write to IP, IE, EIP or EIE registers and is not a RETI. If any of these conditions are not met, then the LCALL will not be generated. The polling cycle is repeated every machine cycle, with the interrupts sampled in the same machine cycle. If an interrupt flag is active in one cycle but not responded to, and is not active when the above conditions are met, the denied interrupt will not be serviced. This means that active interrupts are not remembered; every polling cycle is new. Publication Release Date: November 19, 2007 Revision A9
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The processor responds to a valid interrupt by executing an LCALL instruction to the appropriate service routine. This may or may not clear the flag which caused the interrupt. In case of Timer interrupts, the TF0 or TF1 flags are cleared by hardware whenever the processor vectors to the appropriate timer service routine. In case of external interrupt, INT0 and INT1, the flags are cleared only if they are edge triggered. In case of Serial interrupts, the flags are not cleared by hardware. In the case of Timer 2 interrupt, the flags are not cleared by hardware. The Power-Fail interrupt PFI flag and Watchdog timer interrupt flag WDIF have to be cleared by software. The hardware LCALL behaves exactly like the software LCALL instruction. This instruction saves the Program Counter contents onto the Stack, but does not save the Program Status Word PSW. The PC is reloaded with the vector address of that interrupt which caused the LCALL. These vector address for the different sources are as follows. Table 8. Vector locations for interrupt sources SOURCE Timer 0 Overflow Timer 1 Overflow Timer 2 Interrupt External Interrupt 2 External Interrupt 4 Watchdog Timer VECTOR ADDRESS 000Bh 001Bh 002Bh 0043h 0053h 0063h SOURCE External Interrupt 0 External Interrupt 1 Serial Port Serial Port 1 External Interrupt 3 External Interrupt 5 VECTOR ADDRESS 0003h 0013h 0023h 003Bh 004Bh 005Bh
The vector table is not evenly spaced; this is to accommodate future expansions to the device family. Execution continues from the vectored address till an RETI instruction is executed. On execution of the RETI instruction the processor pops the Stack and loads the PC with the contents at the top of the stack. The user must take care that the status of the stack is restored to what is was after the hardware LCALL, if the execution is to return to the interrupted program. The processor does not notice anything if the stack contents are modified and will proceed with execution from the address put back into PC. Note that a RET instruction would perform exactly the same process as a RETI instruction, but it would not inform the Interrupt Controller that the interrupt service routine is completed, and would leave the controller still thinking that the service routine is underway.
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6.8.3 Interrupt Response Time
The response time for each interrupt source depends on several factors, such as the nature of the interrupt and the instruction underway. In the case of external interrupts INT0 to INT5 , they are sampled at C3 of every machine cycle and then their corresponding interrupt flags Iex will be set or reset. The Timer 0 and 1 overflow flags are set at C3 of the machine cycle in which overflow has occurred. These flag values are polled only in the next machine cycle. If a request is active and all three conditions are met, then the hardware generated LCALL is executed. This LCALL itself takes four machine cycles to be completed. Thus there is a minimum time of five machine cycles between the interrupt flag being set and the interrupt service routine being executed. A longer response time should be anticipated if any of the three conditions are not met. If a higher or equal priority is being serviced, then the interrupt latency time obviously depends on the nature of the service routine currently being executed. If the polling cycle is not the last machine cycle of the instruction being executed, then an additional delay is introduced. The maximum response time (if no other interrupt is in service) occurs if the W77E516 is performing a write to IE, IP, EIE or EIP and then executes a MUL or DIV instruction. From the time an interrupt source is activated, the longest reaction time is 12 machine cycles. This includes 1 machine cycle to detect the interrupt, 2 machine cycles to complete the IE, IP, EIE or EIP access, 5 machine cycles to complete the MUL or DIV instruction and 4 machine cycles to complete the hardware LCALL to the interrupt vector location. Thus in a single-interrupt system the interrupt response time will always be more than 5 machine cycles and not more than 12 machine cycles. The maximum latency of 12 machine cycle is 48 clock cycles. Note that in the standard 8051 the maximum latency is 8 machine cycles which equals 96 machine cycles. This is a 50% reduction in terms of clock periods.
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7. PROGRAMMABLE TIMERS/COUNTERS
The W77E516 has three 16-bit programmable timer/counters and one programmable Watchdog timer. The Watchdog timer is operationally quite different from the other two timers.
7.1
Timer/Counters 0 & 1
The W77E516 has two 16-bit Timer/Counters. Each of these Timer/Counters has two 8 bit registers which form the 16 bit counting register. For Timer/Counter 0 they are TH0, the upper 8 bits register, and TL0, the lower 8 bit register. Similarly Timer/Counter 1 has two 8 bit registers, TH1 and TL1. The two can be configured to operate either as timers, counting machine cycles or as counters counting external inputs. When configured as a "Timer", the timer counts clock cycles. The timer clock can be programmed to be thought of as 1/12 of the system clock or 1/4 of the system clock. In the "Counter" mode, the register is incremented on the falling edge of the external input pin, T0 in case of Timer 0, and T1 for Timer 1. The T0 and T1 inputs are sampled in every machine cycle at C4. If the sampled value is high in one machine cycle and low in the next, then a valid high to low transition on the pin is recognized and the count register is incremented. Since it takes two machine cycles to recognize a negative transition on the pin, the maximum rate at which counting will take place is 1/24 of the master clock frequency. In either the "Timer" or "Counter" mode, the count register will be updated at C3. Therefore, in the "Timer" mode, the recognized negative transition on pin T0 and T1 can cause the count register value to be updated only in the machine cycle following the one in which the negative edge was detected. The "Timer" or "Counter" function is selected by the "C/ T " bit in the TMOD Special Function Register. Each Timer/Counter has one selection bit for its own; bit 2 of TMOD selects the function for Timer/Counter 0 and bit 6 of TMOD selects the function for Timer/Counter 1. In addition each Timer/Counter can be set to operate in any one of four possible modes. The mode selection is done by bits M0 and M1 in the TMOD SFR.
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7.2 Time-base Selection
The W77E516 gives the user two modes of operation for the timer. The timers can be programmed to operate like the standard 8051 family, counting at the rate of 1/12 of the clock speed. This will ensure that timing loops on the W77E516 and the standard 8051 can be matched. This is the default mode of operation of the W77E516 timers. The user also has the option to count in the turbo mode, where the timers will increment at the rate of 1/4 clock speed. This will straight-away increase the counting speed three times. This selection is done by the T0M and T1M bits in CKCON SFR. A reset sets these bits to 0, and the timers then operate in the standard 8051 mode. The user should set these bits to 1 if the timers are to operate in turbo mode.
7.2.1
Mode 0
In Mode 0, the timer/counters act as a 8 bit counter with a 5 bit, divide by 32 pre-scale. In this mode we have a 13 bit timer/counter. The 13 bit counter consists of 8 bits of THx and 5 lower bits of TLx. The upper 3 bits of TLx are ignored. The negative edge of the clock increments the count in the TLx register. When the fifth bit in TLx moves from 1 to 0, then the count in the THx register is incremented. When the count in THx moves from FFh to 00h, then the overflow flag TFx in TCON SFR is set. The counted input is enabled only if TRx is set and either GATE = 0 or INTx = 1. When C/ T is set to 0, then it will count clock cycles, and if C/ T is set to 1, then it will count 1 to 0 transitions on T0 (P3.4) for timer 0 and T1 (P3.5) for timer 1. When the 13 bit count reaches 1FFFh the next count will cause it to roll-over to 0000h. The timer overflow flag TFx of the relevant timer is set and if enabled an interrupts will occur. Note that when used as a timer, the time-base may be either clock cycles/12 or clock cycles/4 as selected by the bits TxM of the CKCON SFR.
Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
T0M = CKCON.3 (T1M = CKCON.4) 1/4 1 0 C/T = TMOD.2 (C/T = TMOD.6) 0 1 0
Timer 1 functions are shown in brackets
M1,M0 = TMOD.1,TMOD.0 (M1,M0 = TMOD.5,TMOD.4) 00 4 TL0 (TL1) 7 01 0 TH0 (TH1) 7
1/12
T0 = P3.4 (T1 = P3.5) TR0 = TCON.4 (TR1 = TCON.6) GATE = TMOD.3 (GATE = TMOD.7) INT0 = P3.2 (INT1 = P3.3)
TFx TF0 (TF1)
Interrupt
Figure 11: Timer/Counter
Mode 0 & Mode 1
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7.2.2 Mode 1
Mode 1 is similar to Mode 0 except that the counting register forms a 16 bit counter, rather than a 13 bit counter. This means that all the bits of THx and TLx are used. Roll-over occurs when the timer moves from a count of FFFFh to 0000h. The timer overflow flag TFx of the relevant timer is set and if enabled an interrupt will occur. The selection of the time-base in the timer mode is similar to that in Mode 0. The gate function operates similarly to that in Mode 0.
7.2.3
Mode 2
In Mode 2, the timer/counter is in the Auto Reload Mode. In this mode, TLx acts as a 8 bit count register, while THx holds the reload value. When the TLx register overflows from FFh to 00h, the TFx bit in TCON is set and TLx is reloaded with the contents of THx, and the counting process continues from here. The reload operation leaves the contents of the THx register unchanged. Counting is enabled by the TRx bit and proper setting of GATE and INTx pins. As in the other two modes 0 and 1, mode 2 allows counting of either clock cycles (clock/12 or clock/4) or pulses on pin Tn.
Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
T0M = CKCON.3 (T1M = CKCON.4) 1/4 1 0 C/T = TMOD.2 (C/T = TMOD.6) 0 1
Timer 1 functions are shown in brackets
TL0 (TL1)
1/12
T0 = P3.4 (T1 = P3.5) TR0 = TCON.4 (TR1 = TCON.6) GATE = TMOD.3 (GATE = TMOD.7) INT0 = P3.2 (INT1 = P3.3)
0
7
TFx
TF0 (TF1)
Interrupt
0
TH0 (TH1)
7
Figure 12: Timer/Counter Mode 2
7.2.4
Mode 3
Mode 3 has different operating methods for the two timer/counters. For timer/counter 1, mode 3 simply freezes the counter. Timer/Counter 0, however, configures TL0 and TH0 as two separate 8 bit count registers in this mode. The logic for this mode is shown in the figure. TL0 uses the Timer/Counter 0 control bits C/ T , GATE, TR0, INT0 and TF0. The TL0 can be used to count clock cycles (clock/12 or clock/4) or 1-to-0 transitions on pin T0 as determined by C/ T (TMOD.2). TH0 is forced as a clock cycle counter (clock/12 or clock/4) and takes over the use of TR1 and TF1 from Timer/Counter 1. Mode 3 is used in cases where an extra 8 bit timer is needed. With Timer 0 in Mode 3, Timer 1 can still be used in Modes 0, 1 and 2., but its flexibility is somewhat limited. While its basic functionality is maintained, it no longer has control over its overflow flag TF1 and the enable bit TR1. Timer 1 can still be used as a timer/counter and retains the use of GATE and INT1 pin. In this condition it can be
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turned on and off by switching it out of and into its own Mode 3. It can also be used as a baud rate generator for the serial port.
T0M = CKCON.3 1 0 1 C/T = TMOD.2 0 TL0
Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
1/4 1/12
0
7
TF0
Interrupt
T0 = P3.4 TR0 = TCON.4 GATE = TMOD.3 INT0 = P3.2
TH0 TR1 = TCON.6
0
Figure 13. Timer/Counter 0 Mode 3
7
TF1
Interrupt
7.3
Timer/Counter 2
Timer/Counter 2 is a 16 bit up/down counter which is configured by the T2MOD register and controlled by the T2CON register. Timer/Counter 2 is equipped with a capture/reload capability. As with the Timer 0 and Timer 1 counters, there exists considerable flexibility in selecting and controlling the clock, and in defining the operating mode. The clock source for Timer/Counter 2 may be selected for either the external T2 pin (C/ T2 = 1) or the crystal oscillator, which is divided by 12 or 4 (C/ T2 = 0). The clock is then enabled when TR2 is a 1, and disabled when TR2 is a 0. The modes available on Timer 2 are described below. MODE Auto-reload Mode Capture Mode Baud Rate Generator Programmable Clock Out RCLK+TCLK 0 0 1 X CP/RL2 0 1 X 0 T2OE 0 X 0 1
7.3.1
Capture Mode
The capture mode is enabled by setting the CP/ RL2 bit in the T2CON register to a 1. In the capture mode, Timer/Counter 2 serves as a 16 bit up counter. When the counter rolls over from FFFFh to 0000h, the TF2 bit is set, which will generate an interrupt request. If the EXEN2 bit is set, then a negative transition of T2EX pin will cause the value in the TL2 and TH2 register to be captured by the RCAP2L and RCAP2H registers. This action also causes the EXF2 bit in T2CON to be set, which will also generate an interrupt. Setting the T2CR bit (T2MOD.3), the W77E516 allows hardware to reset timer 2 automatically after the value of TL2 and TH2 have been captured.
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Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
1/4 1/12
T2M = CKCON.5 1 C/T2 = T2CON.1 0 0 1 TL2 TH2 T2CON.7 TF2
T2 = P1.0 TR2 = T2CON.2 T2EX = P1.1 EXEN2 = T2CON.3
Timer 2 Interrupt
RCAP2L RCAP2H L H
EXF2 T2CON.6
Figure 14. 16-Bit Capture Mode
7.3.2
Auto-reload Mode, Counting Up
The auto-reload mode as an up counter is enabled by clearing the CP/ RL2 bit in the T2CON register and clearing the DCEN bit in T2MOD register. In this mode, Timer/Counter 2 is a 16 bit up counter. When the counter rolls over from FFFFh, a reload is generated that causes the contents of the RCAP2L and RCAP2H registers to be reloaded into the TL2 and TH2 registers. The reload action also sets the TF2 bit. If the EXEN2 bit is set, then a negative transition of T2EX pin will also cause a reload. This action also sets the EXF2 bit in T2CON.
Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
1/4
1/12
T2M = CKCON.5
1
0
C/T2 = T2CON.1 0 TL2 TH2
T2CON.7
T2 = P1.0 TR2 = T2CON.2 T2EX = P1.1
1
TF2
Timer 2 Interrupt
RCAP2L RCAP2H
EXEN2 = T2CON.3
EXF2 T2CON.6
Figure 15. 16-Bit Auto-reload Mode, Counting Up
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7.3.3 Auto-reload Mode, Counting Up/Down
Timer/Counter 2 will be in auto-reload mode as an up/down counter if CP/ RL2 bit in T2CON is cleared and the DCEN bit in T2MOD is set. In this mode, Timer/Counter 2 is an up/down counter whose direction is controlled by the T2EX pin. A 1 on this pin cause the counter to count up. An overflow while counting up will cause the counter to be reloaded with the contents of the capture registers. The next down count following the case where the contents of Timer/Counter equal the capture registers will load an FFFFh into Timer/Counter 2. In either event a reload will set the TF2 bit. A reload will also toggle the EXF2 bit. However, the EXF2 bit can not generate an interrupt while in this mode.
Down Counting Reload Value
Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
T2M = CKCON.5 1/4 1/12
0FFh
0FFh
1 0
C/T = T2CON.1 0 T2CON.7
TL2 TH2
T2 = P1.0 TR2 = T2CON.2
1
TF2
Timer 2 Interrupt
RCAP2L
RCAP2H
T2EX = P1.1
Up Counting Reload Value
EXF2 T2CON.6
DCEN = 1
Figure 16. 16-Bit Auto-reload Up/Down Counter
7.3.4
Baud Rate Generator Mode
The baud rate generator mode is enabled by setting either the RCLK or TCLK bits in T2CON register. While in the baud rate generator mode, Timer/Counter 2 is a 16 bit counter with auto reload when the count rolls over from FFFFh. However, rolling over does not set the TF2 bit. If EXEN2 bit is set, then a negative transition of the T2EX pin will set EXF2 bit in the T2CON register and cause an interrupt request.
Clock Source Mode input
div. by 4 osc/2 div. by 64 osc/32 div. by 1024 osc/512
C/T = T2CON.1 0 TL2 TH2
T2 = P1.0 TR2 = T2CON.2 T2EX = P1.1
1
Timer 2 overflow
RCAP2L RCAP2H
EXEN2 = T2CON.3
EXF2 T2CON.6
Timer 2 Interrupt
Figure 17. Baud Rate Generator Mode
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7.3.5 Programmable Clock-out
Timer 2 is equipped with a new clock-out feature which outputs a 50% duty cycle clock on P1.0. It can be invoked as a programmable clock generator. To configure Timer 2 with clock-out mode, software must initiate it by setting bit T2OE = 1, C/T2 = 0 and CP/RL = 0. Setting bit TR2 will start the timer. This mode is similar to the baud rate generator mode, it will not generate an interrupt while Timer 2 overflow. So it is possible to use Timer 2 as a baud rate generator and a clock generator at the same time. The clock-out frequency is determined by the following equation: The Clock-out Frequency = Oscillator Frequency / [4 X (65536-RCAP2H, RCAP2L)]
Clock Source Mode input
div. by 4 osc/2 div. by 64 osc/32 div. by 1024 osc/512
TL2
TH2
1/2
T2=P1.0
TR2 = T2CON.2 T2EX = P1.1
RCAP2L RCAP2H
EXEN2 = T2CON.3
EXF2 T2CON.6
Figure 18. Programmable Clock-Out Mode
Timer 2 Interrupt
7.4
Watchdog Timer
The Watchdog timer is a free-running timer which can be programmed by the user to serve as a system monitor, a time-base generator or an event timer. It is basically a set of dividers that divide the system clock. The divider output is selectable and determines the time-out interval. When the time-out occurs a flag is set, which can cause an interrupt if enabled, and a system reset can also be caused if it is enabled. The interrupt will occur if the individual interrupt enable and the global enable are set. The interrupt and reset functions are independent of each other and may be used separately or together depending on the users software.
0 Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
16
WD1,WD0
WDIF EWDI(EIE.4)
Interrupt
17
19
00 01 10 11 Time-out
WTRF
20
22
512 clock delay Reset Watchdog RWT (WDCON.0) 23 25 Enable Watchdog timer reset EWT(WDCON.1)
Reset
Figure 19. Watchdog Timer
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The Watchdog timer should first be restarted by using RWT. This ensures that the timer starts from a known state. The RWT bit is used to restart the watchdog timer. This bit is self clearing, i.e. after writing a 1 to this bit the software will automatically clear it. The watchdog timer will now count clock cycles. The time-out interval is selected by the two bits WD1 and WD0 (CKCON.7 and CKCON.6). When the selected time-out occurs, the Watchdog interrupt flag WDIF (WDCON.3) is set. After the time-out has occurred, the watchdog timer waits for an additional 512 clock cycles. If the Watchdog Reset EWT (WDCON.1) is enabled, then 512 clocks after the time-out, if there is no RWT, a system reset due to Watchdog timer will occur. This will last for two machine cycles, and the Watchdog timer reset flag WTRF (WDCON.2) will be set. This indicates to the software that the watchdog was the cause of the reset. When used as a simple timer, the reset and interrupt functions are disabled. The timer will set the WDIF flag each time the timer completes the selected time interval. The WDIF flag is polled to detect a time-out and the RWT allows software to restart the timer. The Watchdog timer can also be used as a very long timer. The interrupt feature is enabled in this case. Every time the time-out occurs an interrupt will occur if the global interrupt enable EA is set. The main use of the Watchdog timer is as a system monitor. This is important in real-time control applications. In case of some power glitches or electro-magnetic interference, the processor may begin to execute errant code. If this is left unchecked the entire system may crash. Using the watchdog timer interrupt during software development will allow the user to select ideal watchdog reset locations. The code is first written without the watchdog interrupt or reset. Then the watchdog interrupt is enabled to identify code locations where interrupt occurs. The user can now insert instructions to reset the watchdog timer which will allow the code to run without any watchdog timer interrupts. Now the watchdog timer reset is enabled and the watchdog interrupt may be disabled. If any errant code is executed now, then the reset watchdog timer instructions will not be executed at the required instants and watchdog reset will occur. The watchdog time-out selection will result in different time-out values depending on the clock speed. The reset, when enabled, will occur 512 clocks after the time-out has occurred. WDIF, EWT and RWT bits are protected by TA register. Table 9. Time-out values for the Watchdog timer
WD1 0 0 1 1 WD0 0 1 0 1 WATCHDOGIN TERVAL 2
17
NUMBER OF CLOCKS 131072 1048576 8388608 67108864
TIME @1.8432 MHz 71.11 mS 568.89 mS 4551.11 mS 36408.88 mS
TIME @10 MHz 13.11 mS 104.86 mS 838.86 mS 6710.89 mS
TIME @25 MHz 5.24 mS 41.94 mS 335.54 mS 2684.35 mS
220 223 2
26
The Watchdog timer will de disabled by a power-on/fail reset. The Watchdog timer reset does not disable the watchdog timer, but will restart it. In general, software should restart the timer to put it into a known state. The control bits that support the Watchdog timer are discussed below.
7.4.1
Watch Dog Control
WDIF: WDCON.3 - Watchdog Timer Interrupt flag. This bit is set whenever the time-out occurs in the watchdog timer. If the Watchdog interrupt is enabled (EIE.4), then an interrupt will occur (if the global interrupt enable is set and other interrupt requirements are met). Software or any reset can clear this bit. Publication Release Date: November 19, 2007 Revision A9
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WTRF: WDCON.2 - Watchdog Timer Reset flag. This bit is set whenever a watchdog reset occurs. This bit is useful for determined the cause of a reset. Software must read it, and clear it manually. A Power-fail reset will clear this bit. If EWT = 0, then this bit will not be affected by the watchdog timer. EWT: WDCON.1 - Enable Watchdog timer Reset. This bit when set to 1 will enable the Watchdog timer reset function. Setting this bit to 0 will disable the Watchdog timer reset function, but will leave the timer running RWT: WDCON.0 - Reset Watchdog Timer. This bit is used to clear the Watchdog timer and to restart it. This bit is self-clearing, so after the software writes 1 to it the hardware will automatically clear it. If the Watchdog timer reset is enabled, then the RWT has to be set by the user within 512 clocks of the time-out. If this is not done then a Watchdog timer reset will occur.
7.4.2
Clock Control
WD1, WD0: CKCON.7, CKCON.6 - Watchdog Timer Mode select bits. These two bits select the time-out interval for the watchdog timer. The reset time is 512 clock longer than the interrupt timeout value. The default Watchdog time-out is 2 clocks, which is the shortest time-out period. The EWT, WDIF and RWT bits are protected by the Timed Access procedure. This prevents software from accidentally enabling or disabling the watchdog timer. More importantly, it makes it highly improbable that errant code can enable or disable the watchdog timer.
17
7.5
Serial Port
Serial port in the W77E516 is a full duplex port. The W77E516 provides the user with additional features such as the Frame Error Detection and the Automatic Address Recognition. The serial ports are capable of synchronous as well as asynchronous communication. In Synchronous mode the W77E516 generates the clock and operates in a half duplex mode. In the asynchronous mode, full duplex operation is available. This means that it can simultaneously transmit and receive data. The transmit register and the receive buffer are both addressed as SBUF Special Function Register. However any write to SBUF will be to the transmit register, while a read from SBUF will be from the receive buffer register. The serial port can operate in four different modes as described below.
7.5.1
Mode 0
This mode provides synchronous communication with external devices. In this mode serial data is transmitted and received on the RXD line. TXD is used to transmit the shift clock. The TxD clock is provided by the W77E516 whether the device is transmitting or receiving. This mode is therefore a half duplex mode of serial communication. In this mode, 8 bits are transmitted or received per frame. The LSB is transmitted/received first. The baud rate is fixed at 1/12 or 1/4 of the oscillator frequency. This baud rate is determined by the SM2 bit (SCON.5). When this bit is set to 0, then the serial port runs at 1/12 of the clock. When set to 1, the serial port runs at 1/4 of the clock. This additional facility of programmable baud rate in mode 0 is the only difference between the standard 8051 and the W77E516. The functional block diagram is shown below. Data enters and leaves the Serial port on the RxD line. The TxD line is used to output the shift clock. The shift clock is used to shift data into and out of the
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W77E516 and the device at the other end of the line. Any instruction that causes a write to SBUF will start the transmission. The shift clock will be activated and data will be shifted out on the RxD pin till all 8 bits are transmitted. If SM2 = 1, then the data on RxD will appear 1 clock period before the falling edge of shift clock on TxD. The clock on TxD then remains low for 2 clock periods, and then goes high again. If SM2 = 0, the data on RxD will appear 3 clock periods before the falling edge of shift clock on TxD. The clock on TxD then remains low for 6 clock periods, and then goes high again. This ensures that at the receiving end the data on RxD line can either be clocked on the rising edge of the shift clock on TxD or latched when the TxD clock is low.
Clock Source Mode input
div. by 4 osc/1 div. by 64 osc/16 div. by 1024 osc/256
Write to SBUF 12
SM2 0 1
Internal Data Bus
PARIN LOAD CLOCK
SOUT
RXD P3.0 Alternate Output Function
4
TX START TX CLOCK
TX SHIFT TI RI
Transmit Shift Register Serial Port Interrupt TXD P3.1 Alternate Output function Read SBUF SBUF Internal Data Bus
SERIAL CONTROLLE
RX CLOCK
SHIFT CLOCK LOAD SBUF RX SHIFT CLOCK PAROUT SIN
RI REN RXD P3.0 Alternate Iutput function
RX START
SBUF
Receive Shift Register
Figure 20. Serial Port Mode 0
The TI flag is set high in C1 following the end of transmission of the last bit. The serial port will receive data when REN is 1 and RI is zero. The shift clock (TxD) will be activated and the serial port will latch data on the rising edge of shift clock. The external device should therefore present data on the falling edge on the shift clock. This process continues till all the 8 bits have been received. The RI flag is set in C1 following the last rising edge of the shift clock on TxD. This will stop reception, till the RI is cleared by software.
7.5.2
Mode 1
In Mode 1, the full duplex asynchronous mode is used. Serial communication frames are made up of 10 bits transmitted on TXD and received on RXD. The 10 bits consist of a start bit (0), 8 data bits (LSB first), and a stop bit (1). On receive, the stop bit goes into RB8 in the SFR SCON. The baud rate in this mode is variable. The serial baud can be programmed to be 1/16 or 1/32 of the Timer 1 overflow. Since the Timer 1 can be set to different reload values, a wide variation in baud rates is possible. Transmission begins with a write to SBUF. The serial data is brought out on to TxD pin at C1 following the first roll-over of divide by 16 counter. The next bit is placed on TxD pin at C1 following the next rollover of the divide by 16 counter. Thus the transmission is synchronized to the divide by 16 counter and not directly to the write to SBUF signal. After all 8 bits of data are transmitted, the stop bit is
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transmitted. The TI flag is set in the C1 state after the stop bit has been put out on TxD pin. This will be at the 10th rollover of the divide by 16 counter after a write to SBUF. Reception is enabled only if REN is high. The serial port actually starts the receiving of serial data, with the detection of a falling edge on the RxD pin. The 1-to-0 detector continuously monitors the RxD line, sampling it at the rate of 16 times the selected baud rate. When a falling edge is detected, the divide by 16 counter is immediately reset. This helps to align the bit boundaries with the rollovers of the divide by 16 counter. The 16 states of the counter effectively divide the bit time into 16 slices. The bit detection is done on a best of three basis. The bit detector samples the RxD pin, at the 8th, 9th and 10th counter states. By using a majority 2 of 3 voting system, the bit value is selected. This is done to improve the noise rejection feature of the serial port. If the first bit detected after the falling edge of RxD pin is not 0, then this indicates an invalid start bit, and the reception is immediately aborted. The serial port again looks for a falling edge in the RxD line. If a valid start bit is detected, then the rest of the bits are also detected and shifted into the SBUF. After shifting in 8 data bits, there is one more shift to do, after which the SBUF and RB8 are loaded and RI is set. However certain conditions must be met before the loading and setting of RI can be done. 1. RI must be 0 and 2. Either SM2 = 0, or the received stop bit = 1. If these conditions are met, then the stop bit goes to RB8, the 8 data bits go into SBUF and RI is set. Otherwise the received frame may be lost. After the middle of the stop bit, the receiver goes back to looking for a 1-to-0 transition on the RxD pin.
Timer 1 Overflow Timer 2 Overflow (for Serial Port 0 only) Write to SBUF 1 0 1
/16
TX START TX CLOCK TX SHIFT TI
Transmit Shift Register
STOP
/2 SMOD= (SMOD_1) 0
Internal Data Bus
PARIN START LOAD CLOCK SOUT
TXD
TCLK
RCLK
0
1 /16
SERIAL CONTROLLER
RX CLOCK
RI
Serial Port Interrupt
SAMPLE
1-TO-0 DETECTOR
RX START
LOAD SBUF RX SHIFT CLOCK PAROUT SBUF RB8
Read SBUF Internal Data Bus
RXD
BIT DETECTOR
SIN
D8
Receive Shift Register
Figure 21: Serial Port
Mode 1
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7.5.3 Mode 2
This mode uses a total of 11 bits in asynchronous full-duplex communication. The functional description is shown in the figure below. The frame consists of one start bit (0), 8 data bits (LSB first), a programmable 9th bit (TB8) and a stop bit (1). The 9th bit received is put into RB8. The baud rate is programmable to 1/32 or 1/64 of the oscillator frequency, which is determined by the SMOD bit in PCON SFR. Transmission begins with a write to SBUF. The serial data is brought out on to TxD pin at C1 following the first roll-over of the divide by 16 counter. The next bit is placed on TxD pin at C1 following the next rollover of the divide by 16 counter. Thus the transmission is synchronized to the divide by 16 counter, and not directly to the write to SBUF signal. After all 9 bits of data are transmitted, the stop bit is transmitted. The TI flag is set in the C1 state after the stop bit has been put out on TxD pin. This will be at the 11th rollover of the divide by 16 counter after a write to SBUF. Reception is enabled only if REN is high. The serial port actually starts the receiving of serial data, with the detection of a falling edge on the RxD pin. The 1-to-0 detector continuously monitors the RxD line, sampling it at the rate of 16 times the selected baud rate. When a falling edge is detected, the divide by 16 counter is immediately reset. This helps to align the bit boundaries with the rollovers of the divide by 16 counter. The 16 states of the counter effectively divide the bit time into 16 slices. The bit detection is done on a best of three basis. The bit detector samples the RxD pin, at the 8th, 9th and 10th counter states. By using a majority 2 of 3 voting system, the bit value is selected. This is done to improve the noise rejection feature of the serial port. If the first bit detected after the falling edge of RxD pin, is not 0, then this indicates an invalid start bit, and the reception is immediately aborted. The serial port again looks for a falling edge in the RxD line. If a valid start bit is detected, then the rest of the bits are also detected and shifted into the SBUF. After shifting in 9 data bits, there is one more shift to do, after which the SBUF and RB8 are loaded and RI is set. However certain conditions must be met before the loading and setting of RI can be done. 1. RI must be 0 and 2. Either SM2 = 0, or the received stop bit = 1. If these conditions are met, then the D8 bit goes to RB8, the 8 data bits go into SBUF and RI is set. Otherwise the received frame may be lost. After the middle of the stop bit, the receiver goes back to looking for a 1-to-0 transition on the RxD pin.
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Clock Source Mode input
div. by 4 osc/2 div. by 64 osc/32 div. by 1024 osc/512
TB8
/26
SMOD= (SMOD_1)
Write to SBUF 1
Internal Data Bus
D8 STOP PARIN START SOUT LOAD CLOCK
T
TXD
0
TX START
/16 /16 SAMPLE
1-TO-0 DETECTOR
TX CLOCK
TX SHIFT
Transmit Shift Register
TI
SERIAL CONTROLLER RX CLOCK RX START
RI
Serial Port Interrupt Read SBUF
CLOCK PAROUT
LOAD SBUF RX SHIFT SBUF RB8
RXD
BIT DETECTOR
SIN
D8
Internal Data Bus
Receive Shift Register
Figure 22. Serial Port
Mode 2
7.5.4
Mode 3
This mode is similar to Mode 2 in all respects, except that the baud rate is programmable. The user must first initialize the Serial related SFR SCON before any communication can take place. This involves selection of the Mode and baud rate. The Timer 1 should also be initialized if modes 1 and 3 are used. In all four modes, transmission is started by any instruction that uses SBUF as a destination register. Reception is initiated in Mode 0 by the condition RI = 0 and REN = 1. This will generate a clock on the TxD pin and shift in 8 bits on the RxD pin. Reception is initiated in the other modes by the incoming start bit if REN = 1. The external device will start the communication by transmitting the start bit. Table 10.
SM1
Serial Ports Modes
SM0 MODE TYPE BAUD CLOCK FRAME SIZE START BIT STOP BIT 9TH BIT FUNCTION
0 0 1 1
0 1 0 1
0 1 2 3
Synch. Asynch. Asynch. Asynch.
4 or 12 TCLKs Timer 1 or 2
32 or 64 TCLKs
8 bits 10 bits 11 bits 11 bits
No 1 1 1
No 1 1 1
None None 0, 1 0, 1
Timer 1 or 2
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Timer 1 Overflow
Timer 2 Overflow (for Serial Port 0 only) Write to SBUF 1 0 1
16 TX START TX CLOCK
STOP
TB8 Internal Data Bus
D8 PARIN START LOAD CLOCK SOUT
2 SMOD= (SMOD_1) 0
TXD
TCLK
TX SHIFT TI
Transmit Shift Register
RCLK
0
1 16
SERIAL CONTROLLER
RX CLOCK RX START
RI
Serial Port Interrupt
SAMPLE
1-TO-0 DETECTOR
LOAD SBUF RX SHIFT CLOCK PAROUT SBUF RB8
Read SBUF Internal Data Bus
RXD
BIT DETECTOR
SIN
D8
Receive Shift Register
Figure 23: Serial Port Mode 3
7.6 Framing Error Detection
A Frame Error occurs when a valid stop bit is not detected. This could indicate incorrect serial data communication. Typically the frame error is due to noise and contention on the serial communication line. The W77E516 has the facility to detect such framing errors and set a flag which can be checked by software. The Frame Error FE(FE_1) bit is located in SCON.7(SCON1.7). This bit is normally used as SM0 in the standard 8051 family. However, in the W77E516 it serves a dual function and is called SM0/FE (SM0_1/FE_1). There are actually two separate flags, one for SM0 and the other for FE. The flag that is actually accessed as SCON.7(SCON1.7) is determined by SMOD0 (PCON.6) bit. When SMOD0 is set to 1, then the FE flag is indicated in SM0/FE. When SMOD0 is set to 0, then the SM0 flag is indicated in SM0/FE. The FE bit is set to 1 by hardware but must be cleared by software. Note that SMOD0 must be 1 while reading or writing to FE or FE_1. If FE is set, then any following frames received without any error will not clear the FE flag. The clearing has to be done by software.
7.7
Multiprocessor Communications
Multiprocessor communications makes use of the 9th data bit in modes 2 and 3. In the W77E516, the RI flag is set only if the received byte corresponds to the Given or Broadcast address. This hardware feature eliminates the software overhead required in checking every received address, and greatly simplifies the software programmer task.
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In the multiprocessor communication mode, the address bytes are distinguished from the data bytes by transmitting the address with the 9th bit set high. When the master processor wants to transmit a block of data to one of the slaves, it first sends out the address of the targeted slave (or slaves). All the slave processors should have their SM2 bit set high when waiting for an address byte. This ensures that they will be interrupted only by the reception of a address byte. The Automatic address recognition feature ensures that only the addressed slave will be interrupted. The address comparison is done in hardware not software. The addressed slave clears the SM2 bit, thereby clearing the way to receive data bytes. With SM2 = 0, the slave will be interrupted on the reception of every single complete frame of data. The unaddressed slaves will be unaffected, as they will be still waiting for their address. In Mode 1, the 9th bit is the stop bit, which is 1 in case of a valid frame. If SM2 is 1, then RI is set only if a valid frame is received and the received byte matches the Given or Broadcast address. The Master processor can selectively communicate with groups of slaves by using the Given Address. All the slaves can be addressed together using the Broadcast Address. The addresses for each slave are defined by the SADDR and SADEN SFRs. The slave address is an 8-bit value specified in the SADDR SFR. The SADEN SFR is actually a mask for the byte value in SADDR. If a bit position in SADEN is 0, then the corresponding bit position in SADDR is don't care. Only those bit positions in SADDR whose corresponding bits in SADEN are 1 are used to obtain the Given Address. This gives the user flexibility to address multiple slaves without changing the slave address in SADDR. The following example shows how the user can define the Given Address to address different slaves. Slave 1: SADDR 1010 0100 SADEN 1111 1010 Given 1010 0x0x Slave 2: SADDR 1010 0111 SADEN 1111 1001 Given 1010 0xx1 The Given address for slave 1 and 2 differ in the LSB. For slave 1, it is a don't care, while for slave 2 it is 1. Thus to communicate only with slave 1, the master must send an address with LSB = 0 (1010 0000). Similarly the bit 1 position is 0 for slave 1 and don't care for slave 2. Hence to communicate only with slave 2 the master has to transmit an address with bit 1 = 1 (1010 0011). If the master wishes to communicate with both slaves simultaneously, then the address must have bit 0 = 1 and bit 1 = 0. The bit 3 position is don't care for both the slaves. This allows two different addresses to select both slaves (1010 0001 and 1010 0101). The master can communicate with all the slaves simultaneously with the Broadcast Address. This address is formed from the logical Oring of the SADDR and SADEN SFRs. The zeros in the result are defined as don't cares in most cases the Broadcast Address is FFh. In the previous case, the Broadcast Address is (1111111X) for slave 1 and (11111111) for slave 2. The SADDR and SADEN SFRs are located at address A9h and B9h respectively. On reset, these two SFRs are initialized to 00h. This results in Given Address and Broadcast Address being set as XXXX XXXX(i.e. all bits don't care). This effectively removes the multiprocessor communications feature, since any selectivity is disabled.
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8. TIMED ACCESS PROTECTION
The W77E516 has several new features, like the Watchdog timer, on-chip ROM size adjustment, wait state control signal and Power on/fail reset flag, which are crucial to proper operation of the system. If left unprotected, errant code may write to the Watchdog control bits resulting in incorrect operation and loss of control. In order to prevent this, the W77E516 has a protection scheme which controls the write access to critical bits. This protection scheme is done using a timed access. In this method, the bits which are to be protected have a timed write enable window. A write is successful only if this window is active, otherwise the write will be discarded. This write enable window is open for 3 machine cycles if certain conditions are met. After 3 machine cycles, this window automatically closes. The window is opened by writing Aah and immediately 55h to the Timed Access(TA) SFR. This SFR is located at address C7h. The suggested code for opening the timed access window is TA MOV MOV REG 0C7h ; define new register TA, located at 0C7h TA, #0Aah TA, #055h
When the software writes Aah to the TA SFR, a counter is started. This counter waits for 3 machine cycles looking for a write of 55h to TA. If the second write (55h) occurs within 3 machine cycles of the first write (Aah), then the timed access window is opened. It remains open for 3 machine cycles, during which the user may write to the protected bits. Once the window closes the procedure must be repeated to access the other protected bits. Examples of Timed Assessing are shown below. Example 1: Valid access MOV MOV MOV TA, #0Aah TA, #055h WDCON, #00h 3 M/C 3 M/C 3 M/C Note: M/C = Machine Cycles
Example 2: Valid access MOV MOV NOP SETB MOV MOV NOP NOP CLR POR EWT TA, #0Aah TA, #055h Example 3: Invalid access 3 M/C 3 M/C 1 M/C 1 M/C 2 M/C TA, #0Aah TA, #055h 3 M/C 3 M/C 1 M/C 2 M/C
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Example 4: Invalid Access MOV NOP MOV SETB TA, #055h EWT TA, #0Aah 3 M/C 1 M/C 3 M/C 2 M/C
In the first two examples, the writing to the protected bits is done before the 3 machines cycle window closes. In Example 3, however, the writing to the protected bit occurs after the window has closed, and so there is effectively no change in the status of the protected bit. In Example 4, the second write to TA occurs 4 machine cycles after the first write, therefore the timed access window in not opened at all, and the write to the protected bit fails.
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9. SECURITY BITS
Using device programmer, the Flash EPROM can be programmed and verified repeatedly. Until the code inside the Flash EPROM is confirmed OK, the code can be protected. The protection of Flash EPROM and those operations on it are described below. The W77E516 has Special Setting Register which can be accessed by device programmer. The register can only be accessed from the Flash EPROM operation mode. Those bits of the Security Registers can not be changed once they have been programmed from high to low. They can only be reset through erase-all operation.
B7 B6
B5 B4 B3 B2
B1 B0
Security Bits
B5 : 0 -> Eable H/W reboot with P4.3 B4 : 0 -> Enable H/W reboot with P2.6, P2.7 B1 : 0 -> MOVC Inhibited B0 : 0-> Data out lock Default 1 for each bit.
Special Setting Registers
B0: Lock bit This bit is used to protect the customer's program code in the W77E516. It may be set after the programmer finishes the programming and verifies sequence. Once this bit is set to logic 0, both the Flash EPROM data and Special Setting Registers can not be accessed again. B1: MOVC Inhibit This bit is used to restrict the accessible region of the MOVC instruction. It can prevent the MOVC instruction in external program memory from reading the internal program code. When this bit is set to logic 0, a MOVC instruction in external program memory space will be able to access code only in the external memory, not in the internal memory. A MOVC instruction in internal program memory space will always be able to access the ROM data in both internal and external memory. If this bit is logic 1, there are no restrictions on the MOVC instruction. B4: H/W Reboot with P2.6 and P2.7 If this bit is set to logic 0, enable to reboot 4k LDFLASH mode while RST =H, P2.6 = L and P2.7 = L state. CPU will start from LDFLASH to update the user's program. B5: H/W Reboot with P4.3 If this bit is set to logic 0, enable to reboot 4k LDFLASH mode while RST =H and P4.3 = L state. CPU will start from LDFLASH to update the user's program.
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10. ELECTRICAL CHARACTERISTICS
10.1 Absolute Maximum Ratings
PARAMETER DC Power Supply Input Voltage Operating Temperature Storage Temperatute SYMBOL VDD - VSS VIN TA Tst CONDITION -0.3 VSS -0.3 0 -55 RATING +7.0 VDD +0.3 +70 +150 UNIT V V C C
Note: Exposure to conditions beyond those listed under Absolute Maximum Ratings may adversely affect the life and reliability of the device.
10.2 DC Characteristics
(VDD-VSS = 5V 10%, TA = 25C, Fosc = 20 MHz, unless otherwise specified.)
PARAMETER Operating Voltage Operating Current Idle Current Power Down Current Input Current P1, P2, P3 Input Current RST[*1] Input Leakage Current P0, EA Logic 1 to 0 Transition Current P1, P2, P3 Input Low Voltage P0, P1, P2, P3, EA Input Low Voltage RST[*1] Input Low Voltage XTAL1[*3] Input High Voltage P0, P1, P2, P3, EA Input High Voltage RST Input High Voltage XTAL1[*3]
SYM. VDD IDD IIDLE IPWDN IIN1 IIN2 ILK ITL[*4] VIL1 VIL2 VIL3 VIH1 VIH2 VIH3
SPECIFICATION MIN. MAX. UNIT 4.5 5.5 V -50 -10 -10 -500 0 0 0 2.4 3.5 3.5 50 24 50 +10 +300 +10 -200 0.8 0.8 0.8 VDD +0.2 VDD +0.2 VDD +0.2 mA mA A A A A A V V V V V V
TEST CONDITIONS No load VDD = RST = 5.5V Idle mode VDD = 5.5V Power-down mode VDD = 5.5V VDD = 5.5V VIN = 0V or VDD VDD = 5.5V 0 < VIN < VDD VDD = 5.5V 0V < VIN < VDD VDD = 5.5V VIN = 2.0V VDD = 4.5V VDD = 4.5V VDD = 4.5V VDD = 5.5V VDD = 5.5V VDD = 5.5V
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DC Characteristics, continued.
PARAMETER Output Low Voltage P1, P2, P3 Output Low Voltage P0, ALE, PSEN [*2] Output High Voltage P1, P2, P3 Output High Voltage P0, ALE, PSEN [*2]
Notes: *1. RST pin is a Schmitt trigger input.
SYM. VOL1 VOL2 VOH1 VOH2
SPECIFICATION MIN. MAX. UNIT 2.4 2.4 0.45 0.45 V V V V
TEST CONDITIONS VDD = 4.5V IOL = +4 mA VDD = 4.5V IOL = +10 mA VDD = 4.5V IOH = -120 A VDD = 4.5V IOH = -8 mA
*2. P0, ALE and PSEN are tested in the external access mode. *3. XTAL1 is a CMOS input. *4. Pins of P1, P2, P3, P4 can source a transition current when they are being externally driven from 1 to 0. The transition current reaches its maximum value when VIN approximates to 2V.
10.3 AC Characteristics
tCLCL tCLCH tCLCX tCHCL tCHCX
10.4 External Clock Characteristics
PARAMETER Clock High Time Clock Low Time Clock Rise Time Clock Fall Time
Note: Duty cycle is 50 %.
SYMBOL tCHCX tCLCX tCLCH tCHCL
MIN. 12.5 12.5 -
TYP. -
MAX. 10 10
UNITS nS nS nS nS
NOTES
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10.5 AC Specification
PARAMETER Oscillator Frequency ALE Pulse Width Address Valid to ALE Low Address Hold After ALE Low Address Hold After ALE Low for MOVX Write ALE Low to Valid Instruction In ALE Low to PSEN Low
PSEN Pulse Width PSEN Low to Valid Instruction In
SYM. 1/tCLCL tLHLL tAVLL tLLAX1 tLLAX2 tLLIV tLLPL tPLPH tPLIV tPXIX tPXIZ tAVIV1 tAVIV2 tPLAZ tRHDX tRHDZ tRLAZ
VARIABLE CLOCK MIN. 0 1.5 tCLCL - 5 0.5 tCLCL - 5 0.5 tCLCL - 5 0.5 tCLCL - 5
VARIABLE CLOCK MAX. 40
UNITS MHz nS nS nS nS
2.5 tCLCL - 20 0.5 tCLCL - 5 2.0 tCLCL - 5 2.0 tCLCL - 20 0 tCLCL - 5 3.0 tCLCL - 20 3.5 tCLCL - 20 0 0 tCLCL - 5 0.5 tCLCL - 5
nS nS nS nS nS nS nS nS nS nS nS nS
Input Instruction Hold After PSEN Input Instruction Float After PSEN Port 0 Address to Valid Instr. In Port 2 Address to Valid Instr. In
PSEN Low to Address Float
Data Hold After Read Data Float After Read
RD Low to Address Float
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10.6 MOVX Characteristics Using Strech Memory Cycles
PARAMETER Data Access ALE Pulse Width Address Hold After ALE Low for MOVX Write
RD Pulse Width
SYM. tLLHL2 tLLAX2 tRLRH tWLWH tRLDV tRHDX tRHDZ tLLDV tAVDV1 tAVDV2 tLLWL tAVWL tAVWL2 tQVWX tWHQX tRLAZ tWHLH
VARIABLE CLOCK MIN.
1.5 tCLCL - 5 2.0 tCLCL - 5 0.5 tCLCL - 5 2.0 tCLCL - 5 tMCS - 10 2.0 tCLCL - 5 tMCS - 10
VARIABLE CLOCK MAX.
UNITS nS nS nS nS
STRECH
tMCS = 0 tMCS > 0
tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0 tMCS = 0 tMCS > 0
WR Pulse Width RD Low to Valid Data In
2.0 tCLCL - 20 tMCS - 20 0 tCLCL - 5 2.0 tCLCL - 5 2.5 tCLCL - 5 tMCS + 2tCLCL - 40 3.0 tCLCL - 20 2.0tCLCL - 5 3.5 tCLCL - 20 2.5 tCLCL - 5 0.5 tCLCL - 5 1.5 tCLCL - 5 tCLCL - 5 2.0 tCLCL - 5 1.5 tCLCL - 5 2.5 tCLCL - 5 -5 1.0 tCLCL - 5 tCLCL - 5 2.0 tCLCL - 5 0.5 tCLCL - 5 0 1.0 tCLCL - 5 10 1.0 tCLCL + 5 0.5 tCLCL + 5 1.5 tCLCL + 5
nS nS nS nS nS nS nS nS nS nS nS nS
nS
Data Hold after Read Data Float after Read ALE Low to Valid Data In Port 0 Address to Valid Data In Port 2 Address to Valid Data In ALE Low to RD or WR Low Port 0 Address to RD or WR Low Port 2 Address to RD or WR Low Data Valid to WR Transition Data Hold after Write
RD Low to Address Float RD or WR High to ALE High
tMCS = 0 tMCS > 0
Note: tMCS is a time period related to the Stretch memory cycle selection. The following table shows the time period of tMCS for each selection of the Stretch value.
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M2 0 0 0 0 1 1 1 1
M1 0 0 1 1 0 0 1 1
M0 0 1 0 1 0 1 0 1
MOVX CYCLES 2 machine cycles 3 machine cycles 4 machine cycles 5 machine cycles 6 machine cycles 7 machine cycles 8 machine cycles 9 machine cycles
TMCS 0 4 tCLCL 8 tCLCL 12 tCLCL 16 tCLCL 20 tCLCL 24 tCLCL 28 tCLCL
Explanation of Logic Symbols In order to maintain compatibility with the original 8051 family, this device specifies the same parameter for each device, using the same symbols. The explanation of the symbols is as follows. T C H I Q V X Time Clock Logic level high Instruction Output Data Valid No longer a valid state A D L P R W Z Address Input Data Logic level low
PSEN RD signal WR signal Tri-state
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11. TIMING WAVEFORMS
11.1 Program Memory Read Cycle
tLHLL
ALE
tLLIV tAVLL tPLPH tPLIV tLLPL tPLAZ tLLAX1 tPXIX
INSTRUCTION IN ADDRESS A0-A7
PSEN
tPXIZ
PORT 0
ADDRESS A0-A7
tAVIV1 tAVIV2
PORT 2 ADDRESS A8-A15 ADDRESS A8-A15
11.2 Data Memory Read Cycle
ALE
tLLDV tWHLH
PSEN
tLLWL tLLAX1 tAVLL tAVWL1
tRLRH tRLDV
RD
tRLAZ
tRHDZ tRHDX
DATA IN ADDRESS A0-A7
PORT 0 INSTRUCTION IN
ADDRESS A0-A7
tAVDV1 tAVDV2
PORT 2 ADDRESS A8-A15
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11.3 Data Memory Write Cycle
ALE
tWHLH
PSEN
tLLWL tLLAX2 tAVLL tAVWL1
tWLWH
WR
tQVWX
PORT 0 INSTRUCTION IN ADDRESS A0-A7 DATA OUT
tWHQX
ADDRESS A0-A7
tAVDV2
PORT 2 ADDRESS A8-A15
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12. TYPICAL APPLICATION CIRCUITS
12.1 Crystal connections
C1 XTAL1 R XTAL2 C2
Figure A
CRYSTAL 16 MHz 24 MHz 33 MHz 40 MHz
C1 30P 15P 5P 1P
C2 30P 15P 5P 1P
R 4.7K 3.3K
The above table shows the reference values for crystal applications.
Note: C1, C2, R components refer to Figure A.
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12.2 Expanded External Data Memory and Oscillator
VCC VCC 31 19 10 u OSCILLATOR 18 8.2 K 9 12 13 14 15 1 2 3 4 5 6 7 8 XTAL2 RST INT0 INT1 T0 T1 P1.0 P1.1 P1.2 P1.3 P1.4 P1.5 P1.6 P1.7 W77E516 AD0 AD1 AD2 AD3 AD4 AD5 AD6 AD7 3 4 7 8 13 14 17 18 A0 A1 A2 A3 A4 A5 A6 A7 11 12 13 15 16 17 18 19 AD0 AD1 AD2 AD3 AD4 AD5 AD6 AD7
EA XTAL1
P0.0 P0.1 P0.2 P0.3 P0.4 P0.5 P0.6 P0.7 P2.0 P2.1 P2.2 P2.3 P2.4 P2.5 P2.6 P2.7 RD WR PSEN ALE TXD RXD
39 38 37 36 35 34 33 32 21 22 23 24 25 26 27 28 17 16 29 30 11 10
AD0 AD1 AD2 AD3 AD4 AD5 AD6 AD7 A8 A9 A10 A11 A12 A13 A14
D0 D1 D2 D3 D4 D5 D6 D7 OC G
Q0 Q1 Q2 Q3 Q4 Q5 Q6 Q7
2 5 6 9 12 15 16 19
GND 1 11
74F373
A0 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13 A14
10 9 8 7 6 5 4 3 25 24 21 23 2 26 1
GND 20 22 27
A0 A1 A2 A3 A4 A5 A6 A7 A8 A9 A10 A11 A12 A13 A14 CE OE WR 20256
D0 D1 D2 D3 D4 D5 D6 D7
Figure B
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13. PACKAGE DIMENSIONS
13.1 40-pin DIP
Symbol
Dimension in inches
Dimension in mm
Min.
0.010 0.150 0.016 0.048 0.008
Nom.
Max.
0.210
Min.
0.254
Nom.
Max.
5.334
D 40 21
E1
A A1 A2 B B1 c D E E1 e1 L
a
0.155 0.018 0.050 0.010 2.055
0.160 0.022 0.054 0.014 2.070 0.610 0.550 0.110 0.140 15
3.81 0.406 1.219 0.203
3.937 0.457 1.27 0.254 52.20
4.064 0.559 1.372 0.356 52.58 15.494 13.97 2.794 3.556 15
0.590 0.540 0.090 0.120 0 0.630
0.600 0.545 0.100 0.130
14.986 13.72 2.286 3.048 0 16.00
15.24 13.84 2.54 3.302
1 S A A2 L B B
1
20 E c A1
eA S
Notes:
0.650
0.670 0.090
16.51
17.01 2.286
Base Plane Seating Plane
e1
a
eA
1. Dimension D Max. & S include mold flash or tie bar burrs. 2. Dimension E1 does not include interlead flash. 3. Dimension D & E1 include mold mismatch and . are determined at the mold parting line. 4. Dimension B1 does not include dambar protrusion/intrusion. 5. Controlling dimension: Inches. 6. General appearance spec. should be based on final visual inspection spec.
13.2 44-pin PLCC
HD D
6 1 44 40
Symbol
39
Dimension in inches
Dimension in mm
Min. Nom. Max.
0.185 0.020 0.145 0.026 0.016 0.008 0.648 0.648 0.590 0.590 0.680 0.680 0.090 0.150 0.028 0.018 0.010 0.653 0.653 0.155 0.032 0.022 0.014
Min. Nom. Max.
4.699 0.508 3.683 0.66 0.203 3.81 0.711 0.254 16.59 16.59 3.937 0.813 0.559 0.356 16.71 16.71 16.00 16.00 17.78 17.78 2.794 0.10
7
E
HE
GE
17
29
18
28
c
A A1 A2 b1 b c D E e GD GE HD HE L y
Notes:
0.406 0.457
0.658 16.46 0.658 16.46
0.050
BSC
1.27
BSC
0.610 0.610 0.690 0.690 0.100
0.630 14.99 15.49 0.630 14.99 15.49 0.700 17.27 0.700 17.27 0.110 0.004 2.296 17.53 17.53 2.54
L A2 A
e
Seating Plane GD
b b1
A1 y
1. Dimension D & E do not include interlead flash. 2. Dimension b1 does not include dambar protrusion/intrusion. 3. Controlling dimension: Inches 4. General appearance spec. should be based on final visual inspection spec.
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13.3 44-pin QFP
HD D
44 34
Dimension in inch
Dimension in mm
Symbol
Min. Nom. Max.
--0.002 0.075 0.01 0.004 0.390 0.390 0.025 0.510 0.510 0.025 0.051 --0.01 0.081 0.014 0.006 0.394 0.394 0.031 0.520 0.520 0.031 0.063 --0.02 0.087 0.018 0.010 0.398 0.398 0.036 0.530 0.530 0.037 0.075 0.003 0 7
Min. Nom.
--0.05 1.90 0.25 0.101 9.9 9.9 0.635 12.95 12.95 0.65 1.295 --0.25 2.05 0.35 0.152 10.00 10.00 0.80 13.2 13.2 0.8 1.6
Max.
--0.5 2.20 0.45 0.254 10.1 10.1 0.952 13.45 13.45 0.95 1.905 0.08
1
33
E HE
11
12
e
b
22
A A1 A2 b c D E e HD HE L L1 y
Notes:
c
0
7
A2 A A1 L L1 Detail F
Seating Plane
See Detail F
y
1. Dimension D & E do not include interlead flash. 2. Dimension b does not include dambar protrusion/intrusion. 3. Controlling dimension: Millimeter 4. General appearance spec. should be based on final visual inspection spec.
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14. APPLICATION NOTE
14.1 In-system Programming Software Examples
This application note illustrates the in-system programmability of the Winbond W77E516 MTP-ROM microcontroller. In this example, microcontroller will boot from 64 KB APROM bank and waiting for a key to enter in-system programming mode for re-programming the contents of 64 KB APROM. While entering in-system programming mode, microcontroller executes the loader program in 4KB LDROM bank. The loader program erases the 64 KB APROM then reads the new code data from external SRAM buffer (or through other interfaces) to update the 64KB APROM. EXAMPLE 1: ;******************************************************************************************************************* ;* Example of 64K APROM program: Program will scan the P1.0. if P1.0 = 0, enters in-system ;* programming mode for updating the content of APROM code else executes the current ROM code. ;* XTAL = 24 MHz ;*******************************************************************************************************************
.chip 8052 .RAMCHK OFF .symbols CHPCON TA SFRAL SFRAH SFRFD SFRCN EQU EQU EQU EQU EQU EQU 9FH C7H ACH ADH AEH AFH
ORG 0H LJMP 100H ; JUMP TO MAIN PROGRAM ;************************************************************************ ;* TIMER0 SERVICE VECTOR ORG = 000BH ;************************************************************************ ORG 00BH CLR TR0 ; TR0 = 0, STOP TIMER0 MOV TL0,R6 MOV TH0,R7 RETI ;************************************************************************ ;* 64K APROM MAIN PROGRAM ;************************************************************************ ORG 100H MAIN_64K: MOV A,P1 ; SCAN P1.0 ANL A,#01H CJNE A,#01H,PROGRAM_64K ; IF P1.0 = 0, ENTER IN-SYSTEM PROGRAMMING MODE JMP NORMAL_MODE PROGRAM_64: MOV TA,#AAH MOV TA,#55H MOV CHPCON,#03H
; CHPCON register is written protect by TA register. ; CHPCON = 03H, ENTER IN-SYSTEM PROGRAMMING MODE
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MOV SFRCN,#30H MOV TCON,#00H ; TR = 0 TIMER0 STOP MOV IP, #00H ; IP = 00H MOV IE, #82H ; TIMER0 INTERRUPT ENABLE FOR WAKE-UP FROM IDLE MODE MOV R6, #F0H ; TL0 = F0H MOV R7, #FFH ; TH0 = FFH MOV TL0, R6 MOV TH0, R7 MOV TMOD, #01H ; TMOD = 01H, SET TIMER0 A 16-BIT TIMER MOV TCON, #10H ; TCON = 10H, TR0 = 1,GO MOV PCON, #01H ; ENTER IDLE MODE FOR LAUNCHING THE IN-SYSTEM PROGRAMMING ;************** ****************************************************************** ;* Normal mode 64KB APROM program: depending user's application ;******************************************************************************** NORMAL_MODE: . ; User's application program . .
EXAMPLE 2:
;***************************************************************************************************************************** ;* Example of 4KB LDROM program: This loader program will erase the 64KB APROM first, then reads the new ;* code from external SRAM and program them into 64KB APROM bank. XTAL = 24 MHz ;***************************************************************************************************************************** .chip 8052 .RAMCHK OFF .symbols CHPCON TA SFRAL SFRAH SFRFD SFRCN EQU EQU EQU EQU EQU EQU ORG 000H LJMP 100H 9FH C7H ACH ADH AEH AFH ; JUMP TO MAIN PROGRAM
;************************************************************************ ;* 1. TIMER0 SERVICE VECTOR ORG = 0BH ;************************************************************************ ORG 000BH CLR TR0 ; TR0 = 0, STOP TIMER0 MOV TL0, R6 MOV TH0, R7 RETI ;************************************************************************ ;* 4KB LDROM MAIN PROGRAM ;************************************************************************ ORG 100H
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MAIN_4K: MOV MOV MOV MOV MOV MOV MOV MOV MOV MOV MOV MOV MOV
TA, #AAH TA, #55H CHPCON, #03H TCON, #00H TMOD, #01H IP, #00H IE, #82H R6, #F0H R7, #FFH TL0, R6 TH0, R7 TCON, #10H PCON, #01H
; CHPCON = 03H, ENABLE IN-SYSTEM PROGRAMMING. ; TCON = 00H, TR = 0 TIMER0 STOP ; TMOD = 01H, SET TIMER0 A 16BIT TIMER ; IP = 00H ; IE = 82H, TIMER0 INTERRUPT ENABLED
; TCON = 10H, TR0 = 1, GO ; ENTER IDLE MODE
UPDATE_64K: MOV TCON, #00H MOV IP, #00H MOV IE, #82H MOV TMOD,#01H MOV R6, #D0H MOV R7,#8AH MOV TL0,R6 MOV TH0,R7 ERASE_P_4K: MOV SFRCN, #22H
; TCON = 00H , TR = 0 TIM0 STOP ; IP = 00H ; IE = 82H, TIMER0 INTERRUPT ENABLED ; TMOD = 01H, MODE1 ; SET WAKE-UP TIME FOR ERASE OPERATION, ABOUT 15 mS DEPENDING ON USER'S SYSTEM CLOCK RATE.
; SFRCN = 22H, ERASE 64K APROM0 ; SFRCN = A2H, ERASE 64K APROM1 MOV TCON, #10H ; TCON = 10H, TR0 = 1,GO MOV PCON, #01H ; ENTER IDLE MODE (FOR ERASE OPERATION) ;********************************************************************* ;* BLANK CHECK ;********************************************************************* MOV SFRCN, #0H ; SFRCN = 00H, READ 64KB APROM0 ; SFRCN = 80H, READ 64KB APROM1 MOV SFRAH, #0H ; START ADDRESS = 0H MOV SFRAL, #0H MOV R6, #FDH ; SET TIMER FOR READ OPERATION, ABOUT 1.5 S. MOV R7, #FFH MOV TL0, R6 MOV TH0, R7 BLANK_CHECK_LOOP: SETB TR0 ; ENABLE TIMER 0 MOV PCON, #01H ; ENTER IDLE MODE MOV A, SFRFD ; READ ONE BYTE CJNE A, #FFH, BLANK_CHECK_ERROR INC SFRAL ; NEXT ADDRESS MOV A, SFRAL JNZ BLANK_CHECK_LOOP INC SFRAH MOV A, SFRAH CJNE A, #0H,BLANK_CHECK_LOOP ; END ADDRESS = FFFFH JMP PROGRAM_64KROM
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BLANK_CHECK_ERROR: JMP $ ;******************************************************************************* ;* RE-PROGRAMMING 64KB APROM BANK ;******************************************************************************* PROGRAM_64KROM: MOV R2, #00H ; TARGET LOW BYTE ADDRESS MOV R1, #00H ; TARGET HIGH BYTE ADDRESS MOV DPTR, #0H MOV SFRAH, R1 ; SFRAH, TARGET HIGH ADDRESS MOV SFRCN, #21H ; SFRCN = 21H, PROGRAM 64K APROM0 ; SFRCN = A1H, PROGRAM 64K APROM1 MOV R6, #9CH ; SET TIMER FOR PROGRAMMING, ABOUT 50 S. MOV R7, #FFH MOV TL0, R6 MOV TH0, R7 PROG_D_64K: MOV SFRAL,R2 CALL GET_BYTE_FROM_PC_TO_ACC MOV @DPTR, A MOV SFRFD, A MOV TCON, #10H MOV PCON, #01H INC DPTR INC R2 CJNE R2, #0H, PROG_D_64K INC R1 MOV SFRAH, R1 CJNE R1,#0H, PROG_D_64K ; SFRAL = LOW BYTE ADDRESS ; THIS PROGRAM IS BASED ON USER'S CIRCUIT. ; SAVE DATA INTO SRAM TO VERIFY CODE. ; SFRFD = DATA IN ; TCON = 10H, TR0 = 1,GO ; ENTER IDLE MODE (PRORGAMMING)
;***************************************************************************** ; * VERIFY 64KB APROM BANK ;***************************************************************************** MOV R4, #03H ; ERROR COUNTER MOV R6, #FDH ; SET TIMER FOR READ VERIFY, ABOUT 1.5 S. MOV R7, #FFH MOV TL0, R6 MOV TH0, R7 MOV DPTR, #0H ; The start address of sample code MOV R2, #0H ; Target low byte address MOV R1, #0H ; Target high byte address MOV SFRAH, R1 ; SFRAH, Target high address MOV SFRCN, #00H ; SFRCN = 00H, Read APROM0 ; SFRCN = 80H , Read APROM1
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READ_VERIFY_64K: MOV SFRAL,R2 ; SFRAL = LOW ADDRESS MOV TCON, #10H ; TCON = 10H, TR0 = 1,GO MOV PCON, #01H INC R2 MOVX A, @DPTR INC DPTR CJNE A, SFRFD, ERROR_64K CJNE R2, #0H, READ_VERIFY_64K INC R1 MOV SFRAH, R1 CJNE R1, #0H, READ_VERIFY_64K ;****************************************************************************** ;* PROGRAMMING COMPLETLY, SOFTWARE RESET CPU ;****************************************************************************** MOV TA, #AAH MOV TA, #55H MOV CHPCON, #83H ; SOFTWARE RESET. CPU will restart from APROM0 ERROR_64K: DJNZ R4, UPDATE_64K .
; IF ERROR OCCURS, REPEAT 3 TIMES. ; IN-SYST PROGRAMMING FAIL, USER'S PROCESS TO DEAL WITH IT.
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15. VERSION HISTORY
VERSION A1 A2 A3 A4 A5 A6 A7 A8 A9 DATE Aug. 2002 Feb. 22, 2005 April 18, 2005 Aug 11, 2005 September 29, 2006 November 6, 2006 February 1, 2007 April 17, 2007 November 19, 2007 13 50 80 PAGE 3 85 3, 5, 12 72 Initial Issued Add lead free package part number Add Important Notice Add Port 0 pull-up resisters information Remove encrypt description function of Security bits B2 DESCRIPTION
Remove block diagram Remove all leaded package parts Revise the Timer Mode Setting to "Mode 1: 16-bits, no prescale". Revise that Power Down Mode is released by external interrupt configured as either level or edge detect. Remove NVM description Change chapter 12.1 Figure A to crystal connections
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Important Notice
Winbond products are not designed, intended, authorized or warranted for use as components in systems or equipment intended for surgical implantation, atomic energy control instruments, airplane or spaceship instruments, transportation instruments, traffic signal instruments, combustion control instruments, or for other applications intended to support or sustain life. Further more, Winbond products are not intended for applications wherein failure of Winbond products could result or lead to a situation wherein personal injury, death or severe property or environmental damage could occur. Winbond customers using or selling these products for use in such applications do so at their own risk and agree to fully indemnify Winbond for any damages resulting from such improper use or sales.
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Publication Release Date: November 19, 2007 Revision A9


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