GMS3637004 HYNIX | Alldatasheet
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4-BIT SINGLE CHIP MICROCOMPUTERS GMS36/37XXX(T) SERIES USER\`S MANUAL
- GMS36/37004(T)
- GMS36/37112(T)
- GMS36/37140(T) JAN. 2000 Rev. 1.0
Revision 1.0 Published by /G22/G22 HYUNDAI ELECTRONICS INDUSTRIES Co., Ltd. 2000 All Right Reserved. Editor's E-Mail : lbkd@hei.co.kr kanghan@hei.co.kr rhja@hei.co.kr Additional information of this manual may be served by Hyundai Electronics Industries Offices in Korea or Distributors and Representative listed at address directory. Hyundai Electronics Industries reserves the right to make changes to any Information here at any time without notice. The information, diagrams, and other data in this manual are correct and reliable; however, Hyundai Electronics Industries Co., Ltd. is in no way responsible for any violations of patents or other rights of the third party generated by the use of this manual.
Chapter 3 PACKAGE DIMENSIONS Chapter 4 FUNCTIONAL DESCRIPTION Table of Contents
AC/DC timing requirements for program / read mode ...…………….9-3 Program / verify timing diagrams in kHz version ……………....9-4 Program / verify timing diagrams in MHz version ……………….9-8 Caution when programming …..………….9-14
- GMS36XXX
Description
The GMS36XXX series are remote control transmitter which uses CMOS technology. This enables transmission code outputs of different configurations, multiple custom code output, and double push key output for easy fabrication. The GMS36XXX series are suitable for remote control of TV, VCR, FANS, Air- conditioners, Audio Equipment, Toys, Games etc.
Features
- Program memory : 1,024 bytes for GMS36004/112/140
- Data memory : 32 /GD8 4 bits
- 43 types of instruction set
- 3 levels of subroutine nesting
- Operating frequency : 300kHz ~ 1MHz at kHz version 2.4MHz ~ 4MHz at MHz version
- Instruction cycle : fOSC /6 at kHz version fOSC /48 at MHz version
- CMOS process (Single 3.0V power supply)
- Stop mode (Through internal instruction)
- Released stop mode by key input (Masked option)
- Built in Power-on Reset circuit
- Built in Low Voltage Detection circuit
- Built in capacitor for ceramic oscillation circuit at kHZ version
- Built in a watch dog timer (WDT)
- Built in transistor for I.R LED Drive : IOL =210mA at VDD =3V and VO =0.3V
- Low operating voltage: 2.0 ~ 3.6V (at 300kHz ~ 4MHz) Chapter 1. GMS36XXX Series GMS36004 GMS36112 GMS36140 Program memory 1,024 1,024 1,024 Data memory 32 /GD8 4 I/O ports - 4 4 Input ports 4 4 4 Output ports 6 (D0~D5) 6 (D0~D5) 10 (D0~D9) Package 16DIP/SOP 20DIP/SOP/SSOP 24Skinny DIP/SOP 32 /GD8 4 32 /GD8 4 Table 1-1 GMS36XXX series members
Fig 1-1 Block Diagram (In case of GMS36140) RAM 16word x 2page x 4bit Y-Reg ACC ST R-Latch X-Reg MUX /G30/G38/G3B 3 6 7 8 11 239 10 12 13 14 15 16 17 18 19 20 21 5 4 Instruction Decoder Power-on Reset Watchdog timer 24 1 41 0 4 1044 4 OSC1 OSC2 K0 ~ K3 R0 ~ R3 D0 ~ D9 REMOUT VDD GND OSC Control Signal PGND Low-Voltage Detection D-Latch Program counter 3-level Stack ROM 64word /GD8 16page /GD8 8bit I.R. LED Drive Tr. Pulse Generator ALU RAM Word Selector Chapter 1. GMS36XXX
Chapter 1. GMS36XXX Pin Assignment Fig 1-2 GMS36004 Pin Assignment (16DIP/SOP) Fig 1-3 GMS36112 Pin Assignment (20DIP/SOP/SSOP) GND OSC1 OSC2 VDD REMOUT PGND GND OSC1 OSC2 VDD REMOUT PGND Fig 1-4 GMS36140 Pin Assignment (24Skinny-DIP/SOP) GND OSC1 OSC2 VDD REMOUT PGND
Connected to 2.0~ 3.6V power supply Connected to 0V power supply. K0 ~ K3 Input GND - VDD - Each can be set and reset independently. The output is the structure of N-channel-open-drain. High current output port driving I.R. LED. The output is in the form of N-channel-open-drain. D0 ~ D9 Output R0 ~ R3 I/O REMOUT Output Oscillator input. Input to the oscillator circuit and connection point for ceramic resonator. Internal capacitors available at kHz version. A feedback resistor is internally connected between this pin and OSC2. Connect a resonator between this pin and OSC1. OSC1 Input OSC2 Output High current Tr. ground pin. (connected to GND) High current output Tr. is connected between this pin and REMOUT. PGND - Chapter 1. GMS36XXX Pin Description 4-bit input port with built in pull-up resistor. STOP mode is released by "L" input of each pin.(masked option) 4-bit I/O port. (Input mode is set only when each of them output "H".) In outputting, each can be set and reset independently(or at once.) The output is in the form of C-MOS. Pull-up resistor and STOP release mode can be respectively selected as masked option for each pin. (It is released by ‘’L’’ input at STOP.)
- Built in MOS Tr for pull-up, about 140/GCF . K0 ~ K3 I - Open drain output. - Output Tr. disable at reset. REMOUT O PGND - REMOUT PGND DATA RESET - Open drain output. - "L" output at reset. D0 ~ D9 O pull-up Pin I/O NoteI/O circuit - CMOS output. - "H" output at reset. (Option) - Built in MOS Tr for pull-up, about 140/GCF . R0 ~ R3 I/O pull-up Chapter 1. GMS36XXX
- Built in feedback- resistor about 1/GD0OSC2 O Pin I/O Note (Option) - Built in resonance capacitor at kHz version - C1=C2 = 100pF /GB2 15% [C1,C2 are not available for MHz version] OSC1 I I/O circuit - Built in damping-resistor [No resistor in MHz operation] OSC1 STOP OSC2 C1 C2 Rf Rd Chapter 1. GMS36XXX
0 or 1 SO : D(Y) /GE0 1 (High-Z) RO : D(Y) /GE0 0 Operation REMOUT port repeats ‘’L’’ and ‘’H’’ in pulse frequency. (when PMR = 5, it is fixed at ‘’L’’ ) SO : REMOUT (PMR) /GE0 0 RO : REMOUT (PMR) /GE0 1 (High-Z) Value of Y-reg 0 ~ 7 0 or 1 8 0 or 1 SO : D0 ~ D9 /GE0 1 (High-Z) RO : D0 ~ D9 /GE0 0 0 or 1 SO : R(Y-Ah) /GE0 1 RO : R(Y-Ah) /GE0 0 A ~ D 0 or 1 SO : R0 ~ R3 /GE0 1 RO : R0 ~ R3 /GE0 0 E 0 or 1 SO : D0 ~ D9 /GE0 1 (High-Z), R0 ~ R3 /GE0 1 RO : D0 ~ D9 /GE0 0, R0 ~ R3 /GE0 0 F 2 or 3 SO : D(8) /GE0 1 (High-Z) RO : D(8) /GE0 0 2 or 3 SO : D(9) /GE0 1 (High-Z) RO : D(9) /GE0 0 Optional Features The GMS36XXX series offer the following optional features. Theses options are masked.
- I/O terminals having pull-up resistor : R0 ~ R3
- Input terminals having STOP release mode : K0 ~ K3, R0 ~ R3.
- Output form at STOP mode D0 ~ D9 : ‘’ L’’ or keep before stop mode. Theses options are offered default.
- Ceramic oscillation circuit contained (or not contained) [ This option is not available for MHz Ceramic oscillator. ]
- Instruction cycle selection : T = 48 / f OSC or 6 / fOSC Chapter 1. GMS36XXX
Electrical Characteristics
Absolute maximum ratings (Ta = 25/GCE ) Recommended operating condition Parameter Supply Voltage Power dissipation Storage temperature range Input voltage Output voltage Unit V mW /GCE V V Symbol VDD PD Tstg VIN VOUT Max. rating -0.3 ~ 5.0 700 * -55 ~ 125 -0.3 ~ VDD +0.3 -0.3 ~ VDD +0.3 * Thermal derating above 25/GCE : 6mW per degree /GCE rise in temperature. Parameter Supply Voltage Operating temperature Symbol VDD Topr Condition 300KHz ~ 4MHz Rating 2.0 ~ 3.6 -20 ~ +70 Unit V /GCE Chapter 1. GMS36XXX
Electrical characteristics (Ta=25/GCE , VDD = 3V) *1 Refer to /GB9 Fig.1-5 IOL2 vs. VOL2 Graph /GBA *2 Refer to /GB9 Fig.1-6 IOL1 vs. VOL1 Graph /GBA *3 IDD1 , IDD2 , is measured at RESET mode. Symbol Limits Min. Typ. Max. Unit - - 1 uAIIH -1 - - uAIIL 70 140 300 /GCFR PU1 70 140 300 /GCFR PU2 0.3 1.0 3.0 /GD0R FD 2.1 - - VVIH1 - - 0.9 VVIL1 - 0.15 0.4 VVOL2 - 0.4 0.9 VVOL3 2.1 2.5 - VVOH3 170 210 250 mA - - 1 uAIOLK1 - - 1 uAIOLK2 - - 1 uAISTP - 0.2 1.0 mAIDD1 - 0.5 1.5 mAIDD2 300 - 1000 kHzfOSC 2.4 - 4 MHzfOSC IOL1 fOSC /6 fOSC /48 Parameter Input H current Input L current K, R Input H voltage K, R Input L voltage D, R Output L voltage OSC2 Output L voltage OSC2 Output H voltage REMOUT Output L current REMOUT leakage current D, R Output leakage current Current on STOP mode Operating Supply current 1 Operating Supply current 2 System colck frequency K Pull-up Resistance R Pull-up Resistance Feedback Resistance Condition V I = VDD , R having no Pull-up VI = GND, R having no Pull-up I OL2 = 3mA IOL3 = 40uA (kHz) , 150uA(MHz) IOH3 = -40uA (kHz), -150uA(MHz) VOL1 = 0.3V VOUT = VDD , Output off VOUT = VDD , Output off At STOP mode fOSC = 455kHz fOSC = 4MHz kHz Version MHz Version. VI = GND VI = GND, Output off VOSC1 = GND, VOSC2 = GND Chapter 1. GMS36XXX
/G5B /G5C/G5B /G5B /G5D/G5B /G5B /G5E/G5B /G5B /G5F/G5B /G5B /G60/G5B /G5B /G61/G5B /G5B /G62/G5B /G5B /G63/G5B /G5B /G64/G5B /G5B /G5C /G5B/G5B/G5B /G5B/G59 /G5B /G5B/G59 /G5F /G5B/G59 /G63 /G5C/G59 /G5D /G5C/G59 /G61 /G5D/G59 /G5B /G5D/G59 /G5F /G5D/G59 /G63 /G5E/G59 /G5D /G5E/G59 /G61 /G5F/G59 /G5B /G81/G7A /G77 /G5C /G86 /G81 /G88 /G74/G7A /G77 /G5C /G86/G98 /G6C /G88 /G81 /G6E /G6E /G68 /G5E/G59 /G61/G81 /G81 /G6E /G6E /G68 /G5E/G59 /G5B/G81 /G81 /G6E /G6E /G68 /G5D/G59 /G5B/G81 /G7F/G8C /G68 /G5D /G60 /G8A Fig 1-6. IOL1 vs. VOL1 Graph. ( REMOUT port) Fig 1-5. IOL2 vs. VOL2 Graph. ( D, R Port ) /GB4 /GA8/GB5 /G91 /G86/G89 /GCE /G84 /G88 /G8C /G85/G86 /G85/G8A /G86/G84 /G86/G88 /G84/G82/G84 /G84/G82/G88 /G84/G82/G8C /G85/G82/G86 /G85/G82/G8A /G86/G82/G84 /G86/G82/G88 /G86/G82/G8C /G87/G82/G86 /G87/G82/G8A /G88/G82/G84 /GAA/GA3/GA0/G86 /GAF/GAA/GB1 /G9D/GA3/GA0/G86 /GAF/GC1/G95/GB1 /GAA /G97/G97 /G91 /G87/G82 /G84/GAA Chapter 1. GMS36XXX
- GMS37XXX
The GMS37XXX series are remote control transmitter which uses CMOS technology. This enables transmission code outputs of different configurations, multiple custom code output, and double push key output for easy fabrication. The GMS37XXX series are suitable for remote control of TV, VCR, FANS, Air- conditioners, Audio Equipment, Toys, Games etc. It is possible to structure the 8 x 7 key matrix for GMS37112, and the 4 x 7 key matrix for GMS37004.
- Program memory : 1,024 bytes for GMS37004/112/140
- Data memory : 32 /GD8 4 bits
- 43 types of instruction set
- 3 levels of subroutine nesting
- Operating frequency : 300kHz ~ 1MHz at kHz version 2.4MHz ~ 4MHz at MHz version
- Instruction cycle : fOSC /6 at kHz version fOSC /48 at MHz version
- CMOS process (Single 3.0V power supply)
- Stop mode (Through internal instruction)
- Released stop mode by key input (Masked option)
- Built in Power-on Reset circuit
- Built in Low Voltage Detection circuit
- Built in capacitor for ceramic oscillation circuit at kHZ version
- Built in a watch dog timer (WDT)
- Low operating voltage: 2.0 ~ 3.6V (at 300kHz ~ 4MHz) Chapter 2. GMS37XXX Table 2-1 GMS37XXX series members Series GMS37004 GMS37112 GMS37140 Program memory 1,024 1,024 1,024 Data memory 32 /GD8 4 I/O ports - 4 4 Input ports 4 4 4 Output ports 7 (D0~D6) 7 (D0~D6) 10 (D0~D9) Package 16DIP/SOP 20DIP/SOP/SSOP 24Skinny DIP/SOP 32 /GD8 4 32 /GD8 4
Fig 2-1 Block Diagram (In case of GMS37140) RAM 16word x 2page x 4bit Y-Reg ACC ST R-Latch X-Reg MUX /G30/G38/G3B 3 6 7 8 11 239 10 12 13 14 15 16 17 18 19 20 21 5 4 Instruction Decoder Power-on Reset Watchdog timer 24 1 41 0 4 4 44 OSC1 OSC2 K0 ~ K3 R0 ~ R3 D0 D1 D2 D3 D4 D5 D6 D7 D8 D9REMOUT VDD GND OSC Control Signal NC Low-Voltage Detection D-Latch Program counter 3-level Stack ROM 64word /GD8 16page /GD8 8bit Pulse Generator ALU RAM Word Selector * NC : No connection Chapter 2. GMS37XXX
Chapter 2. GMS37XXX Pin Assignment Fig 2-2 GMS37004 Pin Assignment (16DIP/SOP) Fig 2-3 GMS37112 Pin Assignment (20DIP/SOP/SSOP) GND OSC1 OSC2 K3/Vpp VDD REMOUT GND OSC1 OSC2 K3/Vpp VDD REMOUT Fig 2-4 GMS37140 Pin Assignment (24Skinny-DIP/SOP) GND OSC1 OSC2 K3/Vpp VDD REMOUT NC
Connected to 2.0~ 3.6V power supply Connected to 0V power supply. 4-bit input port with built in pull-up resistor. STOP mode is released by "L" input of each pin. ( masked option)K0 ~ K3 Input GND - VDD - Each can be set and reset independently. The output is the structure of N-channel-open-drain. 4-bit I/O port. (Input mode is set only when each of them output "H".) In outputting, each can be set and reset independently(or at once.) The output is in the form of C-MOS. Pull-up resistor and STOP release mode can be respectively selected as masked option for each pin. (It is released by "L" input at STOP) High current output port. The output is in the form of CMOS. The state of large current on is "H". D0 ~ D9 Output R0 ~ R3 I/O REMOUT Output Oscillator input. Input to the oscillator circuit and connection point for ceramic resonator. Internal capacitors available at kHz version. A feedback resistor is internally connected between this pin and OSC2. Connect a resonator between this pin and OSC1. OSC1 Input OSC2 Output Chapter 2. GMS37XXX
Chapter 2. GMS37XXX Pin Circuit - CMOS output. - "L" output at reset. - High current output source. REMOUT O - Built in MOS Tr for pull-up, about 140/GCF . K0 ~ K3 I pull-up Pin I/O NoteI/O circuit - CMOS output. - "H" output at reset. (Option) - Built in MOS Tr for pull-up, about 140/GCF . R0 ~ R3 I/O pull-up - Open drain output. - "L" output at reset.D0 ~ D9 O
- Built in feedback- resistor about 1/GD0OSC2 O Pin I/O Note (Option) - Built in resonance capacitor at kHz version - C1=C2 = 100pF /GB2 15% [C1,C2 are not available for MHz version] OSC1 I I/O circuit - Built in damping-resistor [No resistor in MHz operation] OSC1 STOP OSC2 C1 C2 Rf Rd Chapter 2. GMS37XXX
0 or 1 SO : D(Y) /GE0 1 (High-Z) RO : D(Y) /GE0 0 OperationValue of Y-reg 0 ~ 7 REMOUT port repeats ‘’H’’ and ‘’L’’ in pulse frequency. (when PMR = 5, it is fixed at ‘’H’’ ) SO : REMOUT (PMR) /GE0 1 RO : REMOUT (PMR) /GE0 0 0 or 1 8 0 or 1 SO : D0 ~ D9 /GE0 1 (High-Z) RO : D0 ~ D9 /GE0 0 0 or 1 SO : R(Y-Ah) /GE0 1 RO : R(Y-Ah) /GE0 0 A ~ D 0 or 1 SO : R0 ~ R3 /GE0 1 RO : R0 ~ R3 /GE0 0 E 0 or 1 SO : D0 ~ D9 /GE0 1 (High-Z), R0 ~ R3 /GE0 1 RO : D0 ~ D9 /GE0 0, R0 ~ R3 /GE0 0 F 2 or 3 SO : D(8) /GE0 1 (High-Z) RO : D(8) /GE0 0 2 or 3 SO : D(9) /GE0 1 (High-Z) RO : D(9) /GE0 0 Optional Features The GMS37XXX series offer the following optional features. Theses options are masked.
- I/O terminals having pull-up resistor : R0 ~ R3
- Input terminals having STOP release mode : K0 ~ K3, R0 ~ R3.
- Output form at STOP mode D0 ~ D9 : ‘’L’’ or keep before stop mode. Theses options are offered default.
- Ceramic oscillation circuit contained (or not contained) [ This option is not available for MHz Ceramic oscillator. ]
- Instruction cycle selection : T = 48 / f OSC or 6 / fOSC Chapter 2. GMS37XXX
Absolute maximum ratings (Ta = 25/GCE ) Recommended operating condition Parameter Supply Voltage Power dissipation Storage temperature range Input voltage Output voltage Unit V mW /GCE V V Symbol VDD PD Tstg VIN VOUT Max. rating -0.3 ~ 5.0 700 * -55 ~ 125 -0.3 ~ VDD +0.3 -0.3 ~ VDD +0.3 * Thermal derating above 25/GCE : 6mW per degree /GCE rise in temperature. Parameter Supply Voltage Operating temperature Symbol VDD Topr Condition 300KHz ~ 4MHz Rating 2.0 ~ 3.6 -20 ~ +70 Unit V /GCE Chapter 2. GMS37XXX
Electrical characteristics (Ta=25/GCE , VDD = 3V) *1 Refer to /GB9 Fig.2-5 IOL2 vs. VOL2 Graph /GBA *2 Refer to /GB9 Fig.2-6 IOL1 vs. VOL1 Graph /GBA *3 Refer to /GB9 Fig.2-7 IOH1 vs. VOH1 Graph /GBA *4 IDD1 , IDD2 , is measured at RESET mode. Symbol Limits Min. Typ. Max. Unit - - 1 uAIIH -1 - - uAIIL 70 140 300 /GCFR PU1 70 140 300 /GCFR PU2 0.3 1.0 3.0 /GD0R FD 2.1 - - VVIH1 - - 0.9 VVIL1 - 0.15 0.4 VVOL2 - 0.4 0.9 VVOL3 2.1 2.5 - VVOH3 1 2.2 4 mA -5 -15 -30 mA - - 1 uAIOLK2 - - 1 uAISTP - 0.2 1.0 mAIDD1 - 0.5 1.5 mAIDD2 300 - 1000 kHzfOSC 2.4 - 4 MHzfOSC IOL1 fOSC /6 fOSC /48 Parameter Input H current Input L current K, R Input H voltage K, R Input L voltage D, R Output L voltage OSC2 Output L voltage OSC2 Output H voltage REMOUT Output L current REMOUT Output H current D, R Output leakage current Current on STOP mode Operating Supply current 1 Operating Supply current 2 System colck frequency K Pull-up Resistance R Pull-up Resistance Feedback Resistance Condition V I = VDD , R having no Pull-up VI = GND, R having no Pull-up I OL2 = 3mA IOL3 = 40uA (kHz), 150uA (MHz) IOH3 = -40uA (kHz), -150uA (MHz) VOL1 = 0.4V VOH1 = 2V VOUT = VDD , Output off At STOP mode fOSC = 455kHz fOSC = 4MHz kHz Version MHz Version. VI = GND VI = GND, Output off VOSC1 = GND, VOSC2 = GND Chapter 2. GMS37XXX IOH1
/G5B /G5C /G5D /G5E /G5F /G60 /G61 /G62 /G63 /G5B/G59 /G5B /G5B/G59 /G5F /G5B/G59 /G63 /G5C/G59 /G5D /G5C/G59 /G61 /G5D/G59 /G5B /G5D/G59 /G5F /G5D/G59 /G63 /G5E/G59 /G5D /G5E/G59 /G61 /G5F/G59 /G5B /G81/G7A /G77 /G5C /G86 /G81 /G88 /G81 /G6E /G6E /G68 /G5E/G59 /G61/G81 /G81 /G6E /G6E /G68 /G5E/G59 /G5B/G81 /G81 /G6E /G6E /G68 /G5D/G59 /G5B/G81 /G7F/G8C /G68 /G5D /G60 /G8A Fig 2-5. IOL2 vs. VOL2 Graph. ( D, R Port ) Fig 2-6. IOL1 vs VOL1 Graph (REMOUT Port) /GB4 /GA8/GB5 /G91 /G86/G89 /GCE /G84 /G88 /G8C /G85/G86 /G85/G8A /G86/G84 /G86/G88 /G84/G82/G84 /G84/G82/G88 /G84/G82/G8C /G85/G82/G86 /G85/G82/G8A /G86/G82/G84 /G86/G82/G88 /G86/G82/G8C /G87/G82/G86 /G87/G82/G8A /G88/G82/G84 /GAA/GA3/GA0 /G86 /G7C/GAA/G7D /G9D/GA3/GA0/G86 /G7C/GC1/G95/G7D /GAA /G97/G97 /G91 /G87/G82 /G84/GAA Chapter 2. GMS37XXX
/G58/G5E /G60 /G58/G5E /G5B /G58/G5D /G60 /G58/G5D /G5B /G58/G5C /G60 /G58/G5C /G5B /G58/G60 /G5B /G5B/G59 /G5B /G5B/G59 /G5F /G5B/G59 /G63 /G5C/G59 /G5D /G5C/G59 /G61 /G5D/G59 /G5B /G5D/G59 /G5F /G5D/G59 /G63 /G5E/G59 /G5D /G5E/G59 /G61 /G5F/G59 /G5B /G81/G7A /G73 /G5C /G86 /G81/G88 /G74 /G7A/G73 /G5C /G86/G98 /G6C/G88 /G81 /G6E/G6E/G68 /G5E /G59 /G61 /G81 /G81 /G6E/G6E/G68 /G5E /G59 /G5B /G81 /G81 /G6E/G6E/G68 /G5D /G59 /G5B /G81 /G7F/G8C /G68 /G5D /G60 /G8A Fig 2-7. IOH1 vs VOH1 Graph (REMOUT Port) Chapter 2. GMS37XXX
- PACKAGE DIMENSIONS The GMS36/37XXX series can be used the following package dimesions. Fig 3-1. 16PDIP (300MIL) UNIT : INCH Fig 3-2. 16SOP (150MIL) (* This type is not supported at OTP) UNIT : INCH Chapter 3. PACKAGE DIMENSIONS
UNIT : INCH Fig 3-3. 16SOP (300MIL) Fig 3-4. 20SSOP (150MIL) UNIT : INCH Chapter 3. PACKAGE DIMENSIONS
Fig 3-5. 20PDIP (300MIL) UNIT : INCH UNIT : INCH Fig 3-6. 20SOP (300MIL) Chapter 3. PACKAGE DIMENSIONS
Fig 3-7. 24Skinny-DIP (300MIL) UNIT : INCH Fig 3-8. 24SOP (300MIL) UNIT : INCH Chapter 3. PACKAGE DIMENSIONS
- FUNCTIONAL DESCRIPTION Program Memory (ROM) The GMS36/37XXX series can incorporate maximum 1,024 words (64 words/GD8 16 pages /GD8 8bits) for program memory. Program counter PC (A0~A5) and page address register (A6~A9) are used to address the whole area of program memory having an instruction (8bits) to be next executed. The program memory consists of 64 words on each page, and thus each page can hold up to 64 steps of instructions. The program memory is composed as shown below. Chapter 4. FUNCTIONAL DESCRIPTION Fig 4-1 Configuration of Program Memory Program counter (PC) Page address register (PA) Page buffer (PB) (Level "1") (Level "2") (Level "3")(PSR)(SR) Stack register A0~A5 01 2 1 5 A6~A9 Program capacity (pages) 0 1 2 3 4 5 68 Page 0 Page 15Page 1 Page 2
The following registers are used to address the ROM.
- Page address register (PA) : Holds ROM's page number (0 ~ Fh) to be addressed.
- Page buffer register (PB) : Value of PB is loaded by an LPBI command when newly addressing a page. Then it is shifted into the PA when rightly executing a branch instruction (BR) and a subroutine call (CAL).
- Program counter (PC) : Available for addressing word on each page.
- Stack register (SR) : Stores returned-word address in the subroutine call mode. (1) Page address register and page buffer register : Address one of pages #0 to #15 in the ROM by the 4-bit binary counter. Unlike the program counter, the page address register is usually unchanged so that the program will repeat on the same page unless a page changing command is issued. To change the page address, take two steps such as (1) writing in the page buffer what page to jump (execution of LPBI) and (2) execution of BR or CAL, because instruction code is of eight bits so that page and word can not be specified at the same time. In case a return instruction (RTN) is executed within the subroutine that has been called in the other page, the page address will be changed at the same time. (2) Program counter : This 6-bit binary counter increments for each fetch to address a word in the currently addressed page having an instruction to be next executed. For easier programming, at turning on the power, the program counter is reset to the zero location. The PA is also set to "0". Then the program counter specifies the next ROM address in random sequence. When BR, CAL or RTN instructions are decoded, the switches on each step are turned off not to update the address. Then, for BR or CAL, address data are taken in from the instruction operands (a 0 to a5), or for RTN, and address is fetched from stack register No. 1. (3) Stack register : This stack register provides two stages each for the program counter (6bits) and the page address register (4bits) so that subroutine nesting can be made on two levels. Chapter 4. FUNCTIONAL DESCRIPTION
Data Memory (RAM) Up to 32 nibbles (16 words /GD8 2pages /GD8 4bits) is incorporated for storing data. The whole data memory area is indirectly specified by a data pointer (X,Y). Page number is specified by zero bit of X register, and words in the page by 4 bits in Y-register. Data memory is composed in 16 nibbles/page. Figure 2-2 shows the configuration. X-register (X) X-register is consist of 2bit, X0 is a data pointer of page in the RAM, X1 is only used for selecting of D8 ~ D9 with value of Y-register X1=1X1=0 Y=0 Y=1 D1 Table 4-1 Mapping table between X and Y register Chapter 4. FUNCTIONAL DESCRIPTION 0 1 2 3 Output port Y-register (Y) X-register (X) D0 D9 R0 R3 REMOUT Page 0 Page 1 014 a0~a3 Data memory page (0~1) Fig 4-2 Composition of Data Memory
Y-register (Y) Y-register has 4 bits. It operates as a data pointer or a general-purpose register. Y-register specifies an address (a0~a3) in a page of data memory, as well as it is used to specify an output port. Further it is used to specify a mode of carrier signal outputted from the REMOUT port. It can also be treated as a general- purpose register on a program. Accumulator (ACC ) The 4-bit register for holding data and calculation results. Arithmetic and Logic Unit (ALU) In this unit, 4bits of adder/comparator are connected in parallel as it's main components and they are combined with status latch and status logic (flag.) (1) Operation circuit (ALU) : The adder/comparator serves fundamentally for full addition and data comparison. It executes subtraction by making a complement by processing an inversed output of ACC (ACC +1) (2) Status logic : This is to bring an ST, or flag to control the flow of a program. It occurs when a specified instruction is executed in three cases such as overflow or underflow in operation and two inputs unequal. Chapter 4. FUNCTIONAL DESCRIPTION
State Counter (SC) A fundamental machine cycle timing chart is shown below. Every instruction is one byte length. Its execution time is the same. Execution of one instruction takes 6 clocks for fetch cycle and 6 clocks for execute cycle (12 clocks in total). Virtually these two cycles proceed simultaneously, and thus it is apparently completed in 6 clocks (one machine cycle). Exceptionally BR, CAL and RTN instructions is normal execution time since they change an addressing sequentially. Therefore, the next instruction is prefetched so that its execution is completed within the fetch cycle. Fig. 4-3 Fundamental timing chart T1 T2 T3 T4 T5 T6 T1 T2 T3 T4 T5 T6 Fetch cycle N Execute cycle N-1 Execute cycle N Fetch cycle N-1 Phase/GE9 Phase/GEA Phase/GEB Machine Cycle Machine Cycle Chapter 4. FUNCTIONAL DESCRIPTION
The GMS36/37XXX series has an internal clock oscillator. The oscillator circuit is designed to operate with an external ceramic resonator. Internal capacitors are available at kHz version. Oscillator circuit is able to organize by connecting ceramic resonator to outside. * It is necessary to connect capacitor to outside in order to change ceramic resonator, you must refer to a manufacturer\`s resonator matching guide. Chapter 4. FUNCTIONAL DESCRIPTION OSC1 OSC2 C1 C2 * MURATA & CQ MHz type is under matching. /G72 /G78 /G7E /G5E /G61 /G5A /G5E /G62 /G5C /G5C /G5D /G76 /G78 /G80 /G7D /G6C/G7F /G6C /G6E /G7C /G77 /G9A/G8C /G8F /G8E /G8C/G9B/G59 /G5F /G5D/G64 /G76 /G6E /G7E /G6D /G5F/G5D /G64 /G7B /G58 /G6E /G5C /G68/G6E/G5D/G68 /G7A /G9B /G90 /G99 /G5F /G5E/G5D /G76 /G58 /G85 /G7F /G6D/G5F /G5E/G5D /G6E /G5C /G68/G6E/G5D/G68 /G7A /G9B /G90 /G99 /G5F /G60/G60 /G76 /G6E /G7E /G6D /G5F/G60 /G60 /G70 /G85 /G7F /G6D/G5F /G60/G60 /G6E /G5C /G68/G6E/G5D/G68 /G7A /G9B /G90 /G99 /G5F /G63/G5B /G76 /G6E /G7E /G6D /G5F/G63 /G5B /G70 /G85 /G7F /G6D/G5F /G63/G5B /G6E /G5C /G68/G6E/G5D/G68 /G7A /G9B /G90 /G99 /G60 /G5B/G5B /G76 /G6E /G7E /G6D /G60/G5B /G5B /G70 /G85 /G7F /G6D/G60 /G5B/G5B /G6E /G5C /G68/G6E/G5D/G68 /G7A /G9B /G90 /G99 /G61 /G5F/G5B /G76 /G6E /G7E /G6D /G61/G5F /G5B /G7B /G85 /G7F /G6D/G61 /G5F/G5B /G6E /G5C /G68/G6E/G5D/G68 /G7A /G9B /G90 /G99 /G72 /G78 /G7E /G5E /G61/G5A /G5E/G62 /G5C/G5C /G5D /G78 /G7F /G6F/G76 /G76/G84 /G7A /G6E /G70 /G7D /G6C /G77/G9A /G8C /G8F /G8E /G8C /G9B /G59 /G5E/G59 /G61/G5F /G78 /G71 /G6E /G7D /G5E /G59 /G61/G5F /G78 /G7E /G6E /G60 /G53 /G5C/G60/G9B /G71 /G54 /G76 /G6D /G7D /G58 /G5E /G59 /G61/G5F /G78 /G76/G70 /G53 /G5E/G5E /G9B /G71 /G54 /G8D /GA0 /G94 /G97 /G9F /G94 /G99 /G8E /G8C /G9B /G58 /G76/G6D /G7D /G58 /G5E/G59 /G61 /G5F/G78 /G7E /G70 /G53/G5E /G5E/G9B /G71 /G54 /G6E /G5C /G68/G6E/G5D/G68 /G5E /G5E/G9B /G71 /G5E/G59 /G63/G5F /G78 /G71 /G6E /G7D /G5E /G59 /G61/G5F /G78 /G7E /G6E /G60 /G53 /G5C/G60/G9B /G71 /G54 /G76 /G6D /G7D /G58 /G5E /G59 /G63/G5F /G78 /G76/G70 /G53 /G5E/G5E /G9B /G71 /G54 /G8D /GA0 /G94 /G97 /G9F /G94 /G99 /G8E /G8C /G9B /G58 /G76/G6D /G7D /G58 /G5E/G59 /G63 /G5F/G78 /G7E /G70 /G53/G5E /G5E/G9B /G71 /G54 /G6E /G5C /G68/G6E/G5D/G68 /G5E /G5E/G9B /G71 /G5F /G59 /G5B /G5B/G78 /G71 /G6E/G7D /G5F/G59 /G5B /G78 /G7E /G6E /G60 /G53/G5C/G60 /G9B /G71 /G54 /G76/G6D /G7D /G58 /G5F/G59 /G5B /G5B/G78 /G76 /G70 /G53/G5E /G5E/G9B /G71 /G54 /G8D /GA0 /G94 /G97 /G9F /G94 /G99 /G8E /G8C /G9B /G58 /G76/G6D /G7D /G58 /G5F/G59 /G5B /G5B/G78 /G7E /G70 /G53/G5E /G5E/G9B /G71 /G54 /G6E /G5C /G68/G6E/G5D/G68 /G5E /G5E/G9B /G71
The following frequency and duty ratio are selected for carrier signal outputted from the REMOUT port depending on a PMR (Pulse Mode Register) value set in a program. T * Default value is "0" * [ ] means the value of "T", when Instruction cycle is fOSC /48 in MHz version Table 4-2 PMR selection table REMOUT signal T=1/fPUL = 12/fOSC [96/fOSC ], T1/T = 1/20 PMR T=1/f PUL = 12/fOSC [96/fOSC ], T1/T = 1/3 T=1/fPUL = 8/fOSC [64/fOSC ], T1/T = 1/2 T=1/fPUL = 8/fOSC [64/fOSC ], T1/T = 1/4 T=1/fPUL = 11/fOSC [88/fOSC ], T1/T = 4/11 No Pulse (same to D0 ~ D9) 6T = 1 / f PUL = 12/fOSC [96/fOSC ], T1/T = 1/4
7 No pulse (same to D0 ~ D9)
Chapter 4. FUNCTIONAL DESCRIPTION
GMS36/37XXX has three reset sources. One is a built-in Power-on reset circuit, another is a built-in Low VDD Detection circuit, the other is the overflow of Watch Dog Timer. (WDT) All reset operations are internal in the GMS36/37XXX. Built-in Power On Reset Circuit GMS36/37XXX has a built-in Power-on reset circuit consisting of an about 1/GD0 Resistor and a 3pF Capacitor. When the Power-on reset pulse occurs, system reset signal is latched and WDT is cleared. After the overflow time of WDT (213 x System clock time) system reset signal is released. treset VCC System RESETB About 108msec at fosc = 455kHz /G39/G27/G27 /G2A/G31/G27 /G26/G52/G58 /G51/G57/G48/G55 /G0B/G3A /G27/G37 /G0C /G36/G5C/G56 /G57 /G48/G50 /G35/G28/G36/G28 /G37 /G25 /G14 /GD0 /G16/G53 /G29 <GMS36/37XXX> Fig. 4-4 Power-On Reset Circuit and Timing Chart Chapter 4. FUNCTIONAL DESCRIPTION
Built-in Low VDD Detection Circuit GMS36/37XXX has a Low VDD detection circuit. If VDD become Reset Voltage of Low VDD Detection circuit at active status, system reset occur and WDT is cleared. After VDD is increased upper Reset Voltage again, WDT is re-counted and if WDT is overflowed, system reset is released. /G5B/G59 /G5B /G5B/G59 /G5D /G5B/G59 /G5F /G5B/G59 /G61 /G5B/G59 /G63 /G5C/G59 /G5B /G5C/G59 /G5D /G5C/G59 /G5F /G5C/G59 /G61 /G5C/G59 /G63 /G5D/G59 /G5B /G5D/G59 /G5D /G5D/G59 /G5F /G5D/G59 /G61 /G5D/G59 /G63 /G5E/G59 /G5B /G58/G5D /G5B /G8A /G58/G5C /G5B /G8A /G5B /G8A /G5C/G5B /G8A /G5D/G5B /G8A /G5E/G5B /G8A /G5F/G5B /G8A /G60/G5B /G8A /G61/G5B /G8A /G62/G5B /G8A /G7F /G90 /G98 /G9B /G90/G9D /G8C/G9F /GA0/G9D /G90 /G53 /G8A /G54 /G81/G9A /G97/G9F /G8C /G92 /G90 /G53/G81/G54 /G77 /G9A /GA2 /G81 /G9A /G97/G9F/G8C /G92 /G90 /G6F /G90 /G9F/G90 /G8E /G9F/G94/G9A /G99 /G81 /G9A /G97/G9F/G8C /G92 /G90 /G78 /G94/G99 /G59 /G7A /G9B /G90 /G9D/G8C/G9F/G94/G99 /G92 /G81 /G9A /G97 /G9F/G8C/G92 /G90 /G9A /G91 /G6E /G7B /G80 /G57 /G7D/G7A /G78 Fig. 4-5 Low Voltage Detection diagram Fig. 4-6 Low Voltage vs Temperature VDD Reset Voltage Internal RESETB About 108msec at fosc =455kHz Chapter 4. FUNCTIONAL DESCRIPTION
Watch Dog Timer (WDT) Watch dog timer is organized binary of 14 steps. The signal of fOSC /6 cycle comes in the first step of WDT after WDT reset. If this counter was overflowed, reset signal automatically come out so that internal circuit is initialized. The overflow time is 6/GD8 2 13/fOSC (108.026ms at fOSC =455KHz.) 8/GD8 6/GD8 213/fOSC (108.026ms at fOSC = 3.64MHz) Normally, the binary counter must be reset before the overflow by using reset instruction (WDTR), Power-on reset pulse or Low VDD detection pulse. * It is constantly reset in STOP mode. When STOP is released, counting is restarted. fOSC /6 or fOSC /48 CPU reset Reset by instruction Power-On Reset Low VDD Detection Binary counter(14 steps) RESET (edge-trigger) Fig. 4-7 Block Diagram of Watch-dog Timer Chapter 4. FUNCTIONAL DESCRIPTION
Stop mode can be achieved by STOP instructions. In stop mode : 1. Oscillator is stopped, the operating current is low. 2. Watch dog timer is reset, REMOUT output is disable (High-Z at GMS36XXX(T) , “L” at GMS37XXX(T)) 3. Part other than WDT and REMOUT output have a value before come into stop mode. * But the state of D0 ~ D9 output in stop mode is able to choose as masked option. "L" output or same level before come into stop mode. The Function to release stop mode is able to choose each bit of K or R input as masked option. Stop mode is released when one of K or R input is going to "L". 1. State of D0 ~ D9 output and REMOUT output is return to state of before stop mode is achieved. 2. After 210/GD8 {System clock time} for stable oscillating, first instruction start to operate. 3. In return to normal operation, WDT is counted from zero again. But, at executing stop instruction, if one of K or R input is chosen to "L", stop instruction is same to NOP instruction. Chapter 4. FUNCTIONAL DESCRIPTION
CHAPTER 5. INSTRUCTION INSTRUCTION FORMAT All of the 43 instruction in GMS36/37XXX(T) series is format in two fields of OP code and operand which consist of eight bits. The following formats are available with different types of operands. *Format/GE9 All eight bits are for OP code without operand. *Format/GEA Two bits are for operand and six bits for OP code. Two bits of operand are used for specifying bits of RAM and X-register (bit 1 and bit 7 are fixed at /GCC 0/GCC ) *Format/GEB Four bits are for operand and the others are OP code. Four bits of operand are used for specifying a constant loaded in RAM or Y- register, a comparison value of compare command, or page addressing in ROM. *Format /GEC Six bits are for operand and the others are OP code. Six bits of operand are used for word addressing in the ROM. Chapter 5. INSTRUCTION
The GMS36/37XXX(T) series provides the following 43 basic instructions. Category Register to Register LAY LYA LAZ Mnemonic A /GE0 Y Function Y /GE0 A A /GE0 0 S S S ST *1
6 RAM to
M(X,Y) /GE0 A M(X,Y) /GE0 A, Y /GE0 Y+1 Y /GE0 M(X,Y) S S S LAM XMA A /GE0 M(X,Y) A /GE4 M(X,Y) S S Immediate LYI i LMIIY i LXI n Y /GE0 i M(X,Y) /GE0 i, Y /GE0 Y+1 X /GE0 n S S S RAM Bit Manipulation SEM n REM n TM n M(n) /GE0 1 M(n) /GE0 0 TEST M(n) = 1 S S E ROM Address BR a CAL a RTN if ST = 1 then Branch if ST = 1 then Subroutine call Return from Subroutine S S S
18 LPBI i PB /GE0 iS
A /GE0 A + M(X,Y) A /GE0 M(X,Y) - A A /GE0 M(X,Y) + 1 C B C DM IA A /GE0 M(X,Y) - 1 A /GE0 A + 1 B S IY DA Y /GE0 Y + 1 A /GE0 A - 1 C B Chapter 5. INSTRUCTION
A /GE0 A + M (X,Y) A /GE0 A + 1 B S Z ST *1 Comparison ALEM ALEI i TEST A /GF5 M(X,Y) TEST A /GF5 i E E MNEZ YNEA TEST M(X,Y) /GF3 0 TEST Y /GF3 A N N YNEI i KNEZ TEST Y /GF3 i TEST K /GF3 0 N N
35 RNEZ TEST R /GF3 0N
37 Input /
S S SO RO Output/GE0 0 at GMS36XXX, 1 at GMS37XXX Output/GE0 1 at GMS36XXX, 0 at GMS37XXX S S Control WDTR STOP Watch Dog Timer Reset Stop operation S S LPY NOP PMR /GE0 Y No operation S S Note) i = 0~f, n = 0~3, a = 6bit PC Address *1 Column ST indicates conditions for changing status. Symbols have the following meanings S : On executing an instruction, status is unconditionally set. C : Status is only set when carry or borrow has occurred in operation. B : Status is only set when borrow has not occurred in operation. E : Status is only set when equality is found in comparison. N : Status is only set when equality is not found in comparison. Z : Status is only set when the result is zero. Chapter 5. INSTRUCTION
DETAILS OF INSTRUCTION SYSTEM All 43 basic instructions of the GMS36/37XXX(T) Series are one by one described in detail below. Description Form Each instruction is headlined with its mnemonic symbol according to the instructions table given earlier. Then, for quick reference, it is described with basic items as shown below. After that, detailed comment follows.
- Items : - Naming : Full spelling of mnemonic symbol - Status : Check of status function - Format : Categorized into /GE9 to /GEC - Operand : Omitted for Format /GE9 - Function Chapter 5. INSTRUCTION
(1) LAY Naming : Load Accumulator from Y-Register Status : Set Format : I Function : A /GE0 Y <Comment> Data of four bits in the Y-register is unconditionally transferred to the accumulator. Data in the Y-register is left unchanged. (2) LYA Naming : Load Y-register from Accumulator Status : Set Format : I Function : Y /GE0 A <Comment> Load Y-register from Accumulator (3) LAZ Naming : Clear Accumulator Status : Set Format : I Function : A /GE0 0 <Comment> Data in the accumulator is unconditionally reset to zero. (4) LMA Naming : Load Memory from Accumulator Status : Set Format : I Function : M(X,Y) /GE0 A <Comment> Data of four bits from the accumulator is stored in the RAM location addressed by the X-register and Y-register. Such data is left unchanged. (5) LMAIY Naming : Load Memory from Accumulator and Increment Y-Register Status : Set Format : I Function : M(X,Y) /GE0 A, Y /GE0 Y+1 <Comment> Data of four bits from the accumulator is stored in the RAM location addressed by the X-register and Y-register. Such data is left unchanged. Chapter 5. INSTRUCTION
(6) LYM Naming : Load Y-Register form Memory Status : Set Format : I Function : Y /GE0 M(X,Y) <Comment> Data from the RAM location addressed by the X-register and Y-register is loaded into the Y-register. Data in the memory is left unchanged. (7) LAM Naming : Load Accumulator from Memory Status : Set Format : I Function : A /GE0 M(X,Y) <Comment> Data from the RAM location addressed by the X-register and Y-register is loaded into the Y-register. Data in the memory is left unchanged. (8) XMA Naming : Exchanged Memory and Accumulator Status : Set Format : I Function : M(X,Y) /GE4 A <Comment> Data from the memory addressed by X-register and Y-register is exchanged with data from the accumulator. For example, this instruction is useful to fetch a memory word into the accumulator for operation and store current data from the accumulator into the RAM. The accumulator can be restored by another XMA instruction. (9) LYI i Naming : Load Y-Register from Immediate Status : Set Format : /GEB Operand : Constant 0 /GF5 i /GF5 15 Function : Y /GE0 i <Purpose> To load a constant in Y-register. It is typically used to specify Y-register in a particular RAM word address, to specify the address of a selected output line, to set Y-register for specifying a carrier signal outputted from OUT port, and to initialize Y-register for loop control. The accumulator can be restored by another XMA instruction. <Comment> Data of four bits from operand of instruction is transferred to the Y-register. Chapter 5. INSTRUCTION
(10) LMIIY i Naming : Load Memory from Immediate and Increment Y-Register Status : Set Format : /GEB Operand : Constant 0 /GF5 i /GF5 15 Function : M(X,Y) /GE0 i, Y /GE0 Y + 1 <Comment> Data of four bits from operand of instruction is stored into the RAM location addressed by the X-register and Y-register. Then data in the Y-register is incremented by one. (11) LXI n Naming : Load X-Register from Immediate Status : Set Format : /GEA Operand : X file address 0 /GF5 n /GF5 3 Function : X /GE0 n <Comment> A constant is loaded in X-register. It is used to set X-register in an index of desired RAM page. Operand of 1 bit of command is loaded in X-register. (12) SEM n Naming : Set Memory Bit Status : Set Format : /GEA Operand : Bit address 0 /GF5 n /GF5 3 Function : M(X,Y,n) /GE0 1 <Comment> Depending on the selection in operand of operand, one of four bits is set as logic 1 in the RAM memory addressed in accordance with the data of the X-register and Y-register. (13) REM n Naming : Reset Memory Bit Status : Set Format : /GEA Operand : Bit address 0 /GF5 n /GF5 3 Function : M(X,Y,n) /GE0 0 <Comment> Depending on the selection in operand of operand, one of four bits is set as logic 0 in the RAM memory addressed in accordance with the data of the X-register and Y-register. Chapter 5. INSTRUCTION
(14) TM n Naming : Test Memory Bit Status : Comparison results to status Format : /GEA Operand : Bit address 0 /GF5 n /GF5 3 Function : M(X,Y,n) /GE0 1? ST /GE0 1 when M(X,Y,n)=1, ST /GE0 0 when M(X,Y,n)=0 <Purpose> A test is made to find if the selected memory bit is logic. 1 Status is set depending on the result. (15) BR a Naming : Branch on status 1 Status : Conditional depending on the status Format : /GEC Operand : Branch address a (Addr) Function : When ST =1 , PA /GE0 PB, PC /GE0 a(Addr) When ST = 0, PC /GE0 PC + 1, ST /GE0 1 Note : PC indicates the next address in a fixed sequence that is actually pseudo-random count. <Purpose> For some programs, normal sequential program execution can be change. A branch is conditionally implemented depending on the status of results obtained by executing the previous instruction. <Comment> • Branch instruction is always conditional depending on the status. a. If the status is reset (logic 0), a branch instruction is not rightly executed but the next instruction of the sequence is executed. b. If the status is set (logic 1), a branch instruction is executed as follows.
- Branch is available in two types - short and long. The former is for addressing in the current page and the latter for addressing in the other page. Which type of branch to exeute is decided according to the PB register. To execute a long branch, data of the PB register should in advance be modified to a desired page address through the LPBI instruction. Chapter 5. INSTRUCTION
(16) CAL a Naming : Subroutine Call on status 1 Status : Conditional depending on the status Format : /GEC Operand : Subroutine code address a(Addr) Function : When ST =1 , PC /GE0 a(Addr) PA /GE0 PB SR1 /GE0 PC + 1, PSR1 /GE0 PA SR2 /GE0 SR1 PSR2 /GE0 PSR1 SR3 /GE0 SR2 PSR3 /GE0 PSR2 When ST = 0 PC /GE0 PC + 1 PB /GE0 PS ST /GE0 1 Note : PC actually has pseudo-random count against the next instruction. <Comment> • In a program, control is allowed to be transferred to a mutual subroutine. Since a call instruction preserves the return address, it is possible to call the subroutine from different locations in a program, and the subroutine can return control accurately to the address that is preserved by the use of the call return instruction (RTN). Such calling is always conditional depending on the status. a. If the status is reset, call is not executed. b. If the status is set, call is rightly executed. The subroutine stack (SR) of three levels enables a subroutine to be manipulated on three levels. Besides, a long call (to call another page) can be executed on any level.
- For a long call, an LPBI instruction should be executed before the CAL. When LPBI is omitted (and when PA=PB), a short call (calling in the same page) is executed. Chapter 5. INSTRUCTION
(17) RTN Naming : Return from Subroutine Status : Set Format : /GE9 Function : PC /GE0 SR1 PA, PB /GE0 PSR1 SR1 /GE0 SR2 PSR1 /GE0 PSR2 SR2 /GE0 SR3 PSR2 /GE0 PSR3 SR3 /GE0 SR3 PSR3 /GE0 PSR2 ST /GE0 1 <Purpose> Control is returned from the called subroutine to the calling program. <Comment> Control is returned to its home routine by transferring to the PC the data of the return address that has been saved in the stack register (SR1). At the same time, data of the page stack register (PSR1) is transferred to the PA and PB. (18) LPBI i Naming : Load Page Buffer Register from Immediate Status : Set Format : /GEB Operand : ROM page address 0 /GF5 i /GF5 15 Function : PB /GE0 i <Purpose> A new ROM page address is loaded into the page buffer register (PB). This loading is necessary for a long branch or call instruction. <Comment> The PB register is loaded together with three bits from 4 bit operand. (19) AM Naming : Add Accumulator to Memory and Status 1 on Carry Status : Carry to status Format : /GE9 Function : A /GE0 M(X,Y)+A, ST /GE0 1(when total>15), ST /GE0 0 (when total /GF5 15) <Comment> Data in the memory location addressed by the X and Y-register is added to data of the accumulator. Results are stored in the accumulator. Carry data as results is transferred to status. When the total is more than 15, a carry is caused to put /GCC 1/GCC in the status. Data in the memory is not changed. Chapter 5. INSTRUCTION
(20) SM Naming : Subtract Accumulator to Memory and Status 1 Not Borrow Status : Carry to status Format : /GE9 Function : A /GE0 M(X,Y) - A ST /GE0 1(when A /GF5 M(X,Y)) ST /GE0 0(when A > M(X,Y)) <Comment> Data of the accumulator is, through a 2\`s complemental addition, subtracted from the memory word addressed by the Y-register. Results are stored in the accumulator. If data of the accumulator is less than or equal to the memory word, the status is set to indicate that a borrow is not caused. If more than the memory word, a borrow occurs to reset the status to /GCC 0/GCC . (21) IM Naming : Increment Memory and Status 1 on Carry Status : Carry to status Format : /GE9 Function : A /GE0 M(X,Y) + 1 ST /GE0 1(when M(X,Y) /GF6 15) ST /GE0 0(when M(X,Y) < 15) <Comment> Data of the memory addressed by the X and Y-register is fetched. Adding 1 to this word, results are stored in the accumulator. Carry data as results is transferred to the status. When the total is more than 15, the status is set. The memory is left unchanged. (22) DM Naming : Decrement Memory and Status 1 on Not Borrow Status : Carry to status Format : /GE9 Function : A /GE0 M(X,Y) - 1 ST /GE0 1(when M(X,Y) /GF6 1) ST /GE0 0 (when M(X,Y) = 0) <Comment> Data of the memory addressed by the X and Y-register is fetched, and one is subtracted from this word (addition of Fh)> Results are stored in the accumulator. Carry data as results is transferred to the status. If the data is more than or equal to one, the status is set to indicate that no borrow is caused. The memory is left unchanged. Chapter 5. INSTRUCTION
(23) IA Naming : Increment Accumulator Status : Set Format : /GE9 Function : A /GE0 A+1 <Comment> Data of the accumulator is incremented by one. Results are returned to the accumulator. A carry is not allowed to have effect upon the status. (24) IY Naming : Increment Y-Register and Status 1 on Carry Status : Carry to status Format : /GE9 Function : Y /GE0 Y + 1 ST /GE0 1 (when Y = 15) ST /GE0 0 (when Y < 15) <Comment> Data of the Y-register is incremented by one and results are returned to the Y-register. Carry data as results is transferred to the status. When the total is more than 15, the status is set. (25) DA Naming : Decrement Accumulator and Status 1 on Borrow Status : Carry to status Format : /GE9 Function : A /GE0 A - 1 ST /GE0 1(when A /GF6 1) ST /GE0 0 (when A = 0) <Comment> Data of the accumulator is decremented by one. As a result (by addition of Fh), if a borrow is caused, the status is reset to /GCC 0/GCC by logic. If the data is more than one, no borrow occurs and thus the status is set to /GCC 1/GCC . Chapter 5. INSTRUCTION
(26) DY Naming : Decrement Y-Register and Status 1 on Not Borrow Status : Carry to status Format : /GE9 Function : Y /GE0 Y -1 ST /GE0 1 (when Y /GF6 1) ST /GE0 0 (when Y = 0) <Purpose> Data of the Y-register is decremented by one. <Comment> Data of the Y-register is decremented by one by addition of minus 1 (Fh). Carry data as results is transferred to the status. When the results is equal to 15, the status is set to indicate that no borrow has not occurred. (27) EORM Naming : Exclusive or Memory and Accumulator Status : Set Format : /GE9 Function : A /GE0 M(X,Y) + A <Comment> Data of the accumulator is, through a Exclusive OR, subtracted from the memory word addressed by X and Y- register. Results are stored into the accumulator. (28) NEGA Naming : Negate Accumulator and Status 1 on Zero Status : Carry to status Format : /GE9 Function : A /GE0 A + 1 ST /GE0 1(when A = 0) ST /GE0 0 (when A != 0) <Purpose> The 2\s complement of a word in the accumulator is obtained. <Comment> The 2\s complement in the accumulator is calculated by adding one to the 1\`s complement in the accumulator. Results are stored into the accumulator. Carry data is transferred to the status. When data of the accumulator is zero, a carry is caused to set the status to /GCC 1/GCC . Chapter 5. INSTRUCTION
(29) ALEM Naming : Accumulator Less Equal Memory Status : Carry to status Format : /GE9 Function : A /GF5 M(X,Y) ST /GE0 1 (when A /GF5 M(X,Y)) ST /GE0 0 (when A > M(X,Y)) <Comment> Data of the accumulator is, through a complemental addition, subtracted from data in the memory location addressed by the X and Y-register. Carry data obtained is transferred to the status. When the status is /GCC 1/GCC , it indicates that the data of the accumulator is less than or equal to the data of the memory word. Neither of those data is not changed. (30) ALEI Naming : Accumulator Less Equal Immediate Status : Carry to status Format : /GEB Function : A /GF5 iS T /GE0 1 (when A /GF5 i) ST /GE0 0 (when A > i) <Purpose> Data of the accumulator and the constant are arithmetically compared. <Comment> Data of the accumulator is, through a complemental addition, subtracted from the constant that exists in 4bit operand. Carry data obtained is transferred to the status. The status is set when the accumulator value is less than or equal to the constant. Data of the accumulator is left unchanged. (31) MNEZ Naming : Memory Not Equal Zero Status : Comparison results to status Format : /GE9 Function : M(X,Y) /GF3 0 ST /GE0 1(when M(X,Y) /GF3 0) ST /GE0 0 (when M(X,Y) = 0) <Purpose> A memory word is compared with zero. <Comment> Data in the memory addressed by the X and Y-register is logically compared with zero. Comparison data is thransferred to the status. Unless it is zero, the status is set. Chapter 5. INSTRUCTION
(32) YNEA Naming : Y-Register Not Equal Accumulator Status : Comparison results to status Format : /GE9 Function : Y /GF3 A ST /GE0 1 (when Y /GF3 A) ST /GE0 0 (when Y = A) <Purpose> Data of Y-register and accumulator are compared to check if they are not equal. <Comment> Data of the Y-register and accumulator are logically compared. Results are transferred to the status. Unless they are equal, the status is set. (33) YNEI Naming : Y-Register Not Equal Immediate Status : Comparison results to status Format : /GEB Operand : Constant 0 /GF5 i /GF5 15 Function : Y /GF3 i ST /GE0 1 (when Y /GF3 i) ST /GE0 0 (when Y = i) <Comment> The constant of the Y-register is logically compared with 4bit operand. Results are transferred to the status. Unless the operand is equal to the constant, the status is set. (34) KNEZ Naming : K Not Equal Zero Status : The status is set only when not equal Format : /GE9 Function : When K /GF3 0, ST /GE0 1 <Purpose> A test is made to check if K is not zero. <Comment> Data on K are compared with zero. Results are transferred to the status. For input data not equal to zero, the status is set. (35) RNEZ Naming : R Not Equal Zero Status : The status is set only when not equal Format : /GE9 Function : When R /GF3 0, ST /GE0 1 <Purpose> A test is made to check if R is not zero. <Comment> Data on R are compared with zero. Results are transferred to the status. For input data not equal to zero, the status is set. Chapter 5. INSTRUCTION
(36) LAK Naming : Load Accumulator from K Status : Set Format : /GE9 Function : A /GE0 K <Comment> Data on K are transferred to the accumulator (37) LAR Naming : Load Accumulator from R Status : Set Format : /GE9 Function : A /GE0 R <Comment> Data on R are transferred to the accumulator (38) SO Naming : Set Output Register Latch Status : Set Format : /GE9 Function : D(Y) /GE0 10 /GF5 Y /GF5 7 REMOUT /GE0 0(PMR=5) Y = 8 at GMS36XXX(T) REMOUT /GE0 1(PMR=5) Y = 8 at GMS37XXX(T) D0~D9 /GE0 1 (High-Z) Y = 9 R(Y) /GE0 1A h /GF5 Y /GF5 Dh R /GE0 1Y = E h D0~D9, R /GE0 1 Y = Fh <Purpose> A single D output line is set to logic 1, if data of Y-register is between 0 to 7. Carrier frequency come out from REMOUT port, if data of Y-register is 8. All D output line is set to logic 1, if data of Y-register is 9. It is no operation, if data of Y-register between 10 to 15. When Y is between Ah and Dh, one of R output lines is set at logic 1. When Y is Eh, the output of R is set at logic 1. When Y is Fh, the output D0~D9 and R are set at logic 1. <Comment> Data of Y-register is between 0 to 7, selects appropriate D output. Data of Y-register is 8, selects REMOUT port. Data of Y-register is 9, selects all D port. Data in Y-register, when between Ah and Dh, selects an appropriate R output (R0~R3). Data in Y-register, when it is Eh, selects all of R0~R3. Data in Y-register, when it is Fh, selects all of D0~D9 and R0~R3. Chapter 5. INSTRUCTION
(39) RO Naming : Reset Output Register Latch Status : Set Format : /GE9 Function : D(Y) /GE0 00 /GF5 Y /GF5 7 REMOUT /GE0 1 Y = 8 at GMS36XXX(T) REMOUT /GE0 0 Y = 8 at GMS37XXX(T) D0~D9 /GE0 0Y = 9 R(Y) /GE0 0A h /GF5 Y /GF5 Dh R /GE0 0Y = E h D0~D9, R /GE0 0 Y = Fh <Purpose> A single D output line is set to logic 0, if data of Y-register is between 0 to 9. REMOUT port is set to logic 0, if data of Y-register is 9. All D output line is set to logic 0, if data of Y-register is 9. When Y is between Ah and Dh, one of R output lines is set at logic 0. When Y is Eh, the output of R is set at logic 0 When Y is Fh, the output D0~D9 and R are set at logic 1. <Comment> Data of Y-register is between 0 to 7, selects appropriate D output. Data of Y-register is 8, selects REMOUT port. Data of Y-register is 9, selects D port. Data in Y-register, when between Ah and Dh, selects an appropriate R output (R0~R3). Data in Y-register, when it is Eh, selects all of R0~R3. Data in Y-register, when it is Fh, selects all of D0~D9 and R0~R3. (40) WDTR Naming : Watch Dog Timer Reset Status : Set Format : /GE9 Function : Reset Watch Dog Timer (WDT) <Purpose> Normally, you should reset this counter before overflowed counter for dc watch dog timer. this instruction controls this reset signal. Chapter 5. INSTRUCTION
(41) STOP Naming : STOP Status : Set Format : /GE9 Function : Operate the stop function <Purpose> Stopped oscillator, and little current. (See 1-12 page, STOP function.) (42) LPY Naming : Pulse Mode Set Status : Set Format : /GE9 Function : PMR /GE0 Y <Comment> Selects a pulse signal outputted from REMOUT port. (43) NOP Naming : No Operation Status : Set Format : /GE9 Function : No operation Chapter 5. INSTRUCTION
- All rams need to be initialized to zero in reset address for proper design. 2. Make the output ports \
H\after reset. 3. Do not use WDTR instruction in subroutine. 4. Before reading the input port the waiting time should be more than 200uS. 5. To decrease current consumption, make the output port as high in normal routine except for key scan strobe and STOP mode. 6. We recommend you do not use all 64 bytes in a page. You had better write \BR $\in unused area. This will help you prevent unusual operation of MCU. 7. Be careful not to use long call or branch (CALL,BL) with arithmetic manipulation. If you want to use branch right after arithmetic manipulation, the long call or branch will be against your intention. ex) LAR ; The value of R ports -> Accumulator ALEI 14 ; A/GF5 14 : S = 1, A /G21 14 : S = 0 BL TRUE ; S is always 1 because BL is composed of LPBI and BR. LAR ; The value of R ports -> Accumulator ALEI 14 ; A/GF5 14 : S = 1, A /G21 14 : S = 0 BR TRUE ; When S is 1 Branch will occur. Otherwise Branch will not occur and LAK ; next instruction will be operated. Chapter 6. Application
/G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G35/G13 /G35/G14 /G35/G15 /G35/G16 /G27/G13 /G27/G14 /G27/G15 /G27/G16 /G27/G17 /G27/G18 /G17 /G18 /G19 /G1A /G1B /G1C /G14/G13 /G14/G14 /G14/G15 /G14/G16 /G14/G17 /G14/G18 /G14/G19 /G16 /G15 /G14/G1C /G14/G1B /G39/G47/G47 /G35/G28 /G30 /G32/G38 /G37 /G32/G36 /G26/G14 /G32/G36 /G26/G15 /G2A /G30/G36/G16/G19 /G14/G14/G15/G10/G35/G25 /G3B/G3B/G3B /G0E /G14/G1A /G2A /G30/G36/G16 /G19/G14/G14/G15 /G26/G4C /G55 /G46 /G58/G4C /G57 /G27/G4C/G44/G4A /G55 /G44/G50 /G18 /G19 /G1A /G1B /G14 /G15 /G16 /G17 /G14/G16 /G14/G17 /G14/G18 /G14/G19 /G1C /G14/G13 /G14/G14 /G14/G15 /G15/G14 /G15/G15 /G15/G16 /G15/G17 /G14/G1A /G14/G1B /G14/G1C /G15/G13 /G15/G1C /G16/G13 /G16/G14 /G16/G15 /G15/G18 /G15/G19 /G15/G1A /G15/G1B /G16/G1A /G16/G1B /G16/G1C /G17/G13 /G16/G16 /G16/G17 /G16/G18 /G16/G19 /G20 /G17/G18 /G17/G19 /G17/G1A /G17/G1B /G17/G14 /G17/G15 /G17/G16 /G17/G17 /G2A/G31/G27 /G14 /G33 /G2A/G31/G27 /G15/G13 We recommend alkaline battery Chapter 6. Application
/G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G35/G13 /G35/G14 /G35/G15 /G35/G16 /G27/G13 /G27/G14 /G27/G15 /G27/G16 /G27/G17 /G27/G18 /G27/G19 /G17 /G18 /G19 /G1A /G1B /G1C /G14/G13 /G14/G14 /G14/G15 /G14/G16 /G14/G17 /G14/G18 /G14/G19 /G16 /G15 /G14/G1C /G39/G47/G47 /G35/G28 /G30 /G32/G38 /G37 /G32/G36 /G26/G14 /G32/G36 /G26/G15 /G2A /G30/G36/G16/G1A /G14/G14/G15/G10/G35/G26/G3B /G3B/G3B /G0E /G14/G1A /G2A /G30/G36/G16 /G1A/G14/G14/G15 /G26/G4C /G55 /G46 /G58/G4C /G57 /G27/G4C/G44/G4A /G55 /G44/G50 /G18 /G19 /G1A /G1B /G14 /G15 /G16 /G17 /G14/G16 /G14/G17 /G14/G18 /G14/G19 /G1C /G14/G13 /G14/G14 /G14/G15 /G15/G14 /G15/G15 /G15/G16 /G15/G17 /G14/G1A /G14/G1B /G14/G1C /G15/G13 /G15/G1C /G16/G13 /G16/G14 /G16/G15 /G15/G18 /G15/G19 /G15/G1A /G15/G1B /G16/G1A /G16/G1B /G16/G1C /G17/G13 /G16/G16 /G16/G17 /G16/G18 /G16/G19 /G20 /G17/G18 /G17/G19 /G17/G1A /G17/G1B /G17/G14 /G17/G15 /G17/G16 /G17/G17 /G2A/G31/G27 /G14 /G15/G13/G18/G16 /G18/G17 /G18/G18 /G18/G19 /G17/G1C /G18/G13 /G18/G14 /G18/G15 /G14/G1B We recommend alkaline battery Chapter 6. Application
/G37/G55 /G58/G57 /G4B /G37 /G44/G45 /G4F /G48 /G49 /G52 /G55 /G48/G5B/G44/G50 /G53/G4F/G48 /G53/G55 /G52/G4A/G55 /G44/G50 /G76/G70 /G84 /G79 /G7A /G59 /G6F /G6C/G7F /G6C/G53 /G73/G54 /G76/G70 /G84 /G79 /G7A /G59 /G6F /G6C/G7F /G6C/G53 /G73/G54 /G76 /G5B/G5C /G5B/G5B /G76 /G5D/G64 /G5C/G6E /G76 /G5B/G5D /G5B/G5C /G76 /G5E/G5B /G5C/G6F /G76 /G5B/G5E /G5B/G5D /G76 /G5E/G5C /G5C/G70 /G76 /G5B/G5F /G5B/G5E /G76 /G5E/G5D /G5C/G71 /G76 /G5B/G60 /G5B/G5F /G76 /G5E/G5E /G5D/G5B /G76 /G5B/G61 /G5B/G60 /G76 /G5E/G5F /G5D/G5C /G76 /G5B/G62 /G5B/G61 /G76 /G5E/G60 /G5D/G5D /G76 /G5B/G63 /G5B/G62 /G76 /G5E/G61 /G5D/G5E /G76 /G5B/G64 /G5B/G63 /G76 /G5E/G62 /G5D/G5F /G76 /G5C/G5B /G5B/G64 /G76 /G5E/G63 /G5D/G60 /G76 /G5C/G5C /G5B/G6C /G76 /G5E/G64 /G5D/G61 /G76 /G5C/G5D /G5B/G6D /G76 /G5F/G5B /G5D/G62 /G76 /G5C /G5E/G5B /G6E/G76 /G5F /G5C /G5D /G63 /G76 /G5C /G5F/G5B /G6F/G76 /G5F /G5D /G5D /G64 /G76 /G5C/G60 /G5B/G70 /G76 /G5F/G5E /G5D/G6C /G76 /G5C /G61/G5B /G71/G76 /G5F /G5F /G5D /G6D /G76 /G5C/G62 /G5C/G5B /G76 /G5F/G60 /G5D/G6E /G76 /G5C/G63 /G5C/G5C /G76 /G5F/G61 /G5D/G6F /G76 /G5C/G64 /G5C/G5D /G76 /G5F/G62 /G5D/G70 /G76 /G5D/G5B /G5C/G5E /G76 /G5F/G63 /G5D/G71 /G76 /G5D/G5C /G5C/G5F /G76 /G5F/G64 /G5E/G5B /G76 /G5D/G5D /G5C/G60 /G76 /G60/G5B /G5E/G5C /G76 /G5D/G5E /G5C/G61 /G76 /G60/G5C /G5E/G5D /G76 /G5D/G5F /G5C/G62 /G76 /G60/G5D /G5E/G5E /G76 /G5D/G60 /G5C/G63 /G76 /G60/G5E /G5E/G5F /G76 /G5D/G61 /G5C/G64 /G76 /G60/G5F /G5E/G60 /G76 /G5D/G62 /G5C/G6C /G76 /G60/G60 /G5E/G61 /G76 /G5D/G63 /G5C/G6D /G76 /G60/G61 /G5E/G62 CUSTOM:04H Chapter 6. Application
/G37/G46 /G37/G14 /G26 /G44 /G55 /G55 /G4C/G48/G55 /G49 /G55 /G48/G54/G58 /G48/G51/G46/G5C /G49 /G26/G24 /G35 /G20/G14/G12/G37 /G46 /G20/G49 /G32/G36 /G26 /G12/G14/G15 /G27/G58/G57/G5C /G55 /G44 /G57/G4C/G52 /G20/G37 /G14/G12/G37 /G46 /G20/G14/G12/G16 /G32 /G58 /G57/G53/G58/G57 /G5A /G44 /G59/G48/G49/G52/G55 /G50 /G52 /G49 /G58/G33/G27/G19/G14/G15 /G14/G2A /G24 /G56/G4C /G51 /G4A/G4F /G48 /G53/G58/G4F/G56/G48/G0F /G50/G52/G47/G58/G4F/G44 /G57/G48/G47 /G5A /G4C /G57/G4B /G16/G1A/G11 /G1C/G14/G1A/G2E/G2B /G5D /G56/G4C/G4A/G51 /G44 /G4F /G44/G57 /G17/G18 /G18/G2E/G2B /G5D - Configuration of Flame 1st flame C0 C1 C2 C3 C4 C5 C6 C7 C0 C1 C2 C3 C4 C5 C6 C7 D0 D1 D2 D3 D4 D5 D6 D7 D0 D1 D2 D3 D4 D5 D5 D7 Lead code Custom code Custom code Data code Data code 9ms 4.5ms - Bit Description - Flame Interval : Tf The transmitted waveform as long as a key is depressed 0.56ms 1.125ms 0.56ms 2.25ms Bit /GCC 0/GCC Bit /GCC 1/GCC Tf=108mS Tf=108mS - Repeat code 9ms 2.25ms 0.56ms Chapter 6. Application
/G9D/GA2/G97/GA0 /GA9/G98/G99 /G9B/GA1 /GA7/G87/G84/G9F/G82/GA0 /G9D/G96 /G8F/G81/G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81 /G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81 /G8F /G8D/G8D/G82/G8D /G82/G8C /G8F /GA8/GBC/GBD/GC7 /GC4/GC6/GC3/GBB/GC6 /GB5/GC1 /GBD/GC7 /GB9/GCC/GB5/GC1/GC4/GC0 /GB9 /GC4/GC6/GC3/GBB /GC6/GB5/GC1 /GBA/GC3 /GC6 /G9B/GA1/GA7/G87 /G8B/G85/G85/G86 /G96/GAD /G9C/GB9/GB9 /G9E/GBD/GC2 /GA6 /GAD/GA9 /G8F /GA8/GBC/GB9 /GBA/GC3 /GC6/GC1/GB5/GC8 /GBD /GC7 /GA2/G99/G97 /GBA/GC3/GC6/GC1/GB5/GC8 /G8F/G81/G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81 /G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81 /G8F/G81/G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81/G81/G81/G81/G81/G81 /G81 /G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81/G81 /G8F /GA6/G95/GA1 /G98/G99/G9A/G9D/GA2/G99 /G8F /GAC/G91/G84 /G97/GA3/GA9/GA2/GA8 /G99/GA5/GA9 /G84/G84 /GA2/GA3/GA2/G99 /G99/GA5/GA9 /G84/G84 /G8F/G96/G9D/GA8 /G98/G99/G9A /G9D/GA2/G99 /G9A/G9D/GA6/GA7/GA8 /G99/GA5/GA9 /G84/G85 /GA6/G99/GA4/G99/G95/GA8 /G99/GA5/GA9 /G84/G86 /G9D/GA2/G98/G95/GA8 /G99/GA5/GA9 /G84/G85 /GA8/GA3/GA8/GA0/G9F/GAD /G99/GA5/GA9 /G84/G86 /GA4/GA3/G9D/GA2/GA8 /G99/GA5/GA9 /G84/G87 /GA7/GA8/GA6/GA3/G96/G99 /G99/GA5/GA9 /G84/G88 /G97/G97/G8A/GA0 /G99/GA5/GA9 /G84/G8A /G97/G97/G8A/G9C /G99/GA5/GA9 /G84/G8B 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Application
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Application
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Application
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Application
/GA8/G9D/GA1/G89/G8B/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G89/G8A/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G89/G89/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G89/G88/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G89/G87/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G89/G86/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G89/G85/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G89/G84/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G8D/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G8C/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G8B/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G8A/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G89/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G88/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G87/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G86/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G85/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G88/G84/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G8D/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G8C/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G8B/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G8A/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G89/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G88/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G87/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G86/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G85/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G87/G84/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G8D/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G8C/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G8B/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G8A/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G89/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G88/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G87/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G86/G74/G74/G74 /G74/G74/GA2/GA3/GA4 /GA8/G9D/GA1/G86/G85 /GA2/GA3/GA4 /GA8/G9D/GA1/G86/G84 /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G8D /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G8C /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G8B /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G8A /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G89 /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G88 /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G87 /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G86 /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G85 /GA2/GA3/GA4 /GA8/G9D/GA1/G85/G84 /GA2/GA3/GA4 /GA8/G9D/GA1/G84/G8D /GA2/GA3/GA4 /GA8/G9D/GA1/G84/G8C /GA2/GA3/GA4 /GA8/G9D/GA1/G84/G8B /GA2/GA3/GA4 /GA8/G9D/GA1/G84/G8A /GA2/GA3/GA4 /GA8/G9D/GA1/G84/G89 /GA2/GA3/GA4 /GA8/G9D/GA1/G84/G88 /GA2/GA3/GA4 /GA8/G9D/GA1/G84/G87 /GA6/GA8/GA2 Chapter 6. Application
/G35 /G48/G49 /G48 /G55 /G48 /G51 /G46 /G48 /G57 /G52 /G2A /G30/G36/G16 /G19/G3B/G3B /G3B/G37 /G25/G12/G27 /G14/G11 /G24/G57 /G57/G44/G46/G4B /G55 /G48/G56/G52 /G51 /G44/G57 /G52 /G55 /G57 /G52 /G3B /G14 /G15/G11 /G26 /G52 /G51 /G51 /G48 /G46/G57 /G45/G44/G56/G48 /G44/G51 /G47 /G46 /G52 /G4F /G4F/G48 /G46/G57/G52 /G55 /G44/G57 /G34/G14 /G16/G11 /G26 /G52 /G51 /G51 /G48 /G46/G57 /G33 /G2A /G31/G27 /G44/G51 /G47 /G37/G35/G2A /G31/G27 /G5A /G4C /G57/G4B /G4D/G58/G50 /G53/G48 /G55 /G44/G57 /G28 /G14 /G15 /G16 /G17 /G2E/G13 /G2E /G14 /G2E /G15 /G2E/G16 /G35/G13 /G35 /G14 /G35/G15 /G35 /G16 /G1C /G14/G13 /G14/G14 /G14/G15 /G18 /G19 /G1A /G1B /G14/G16 /G14/G17 /G14/G18 /G14/G19 /G14/G1A /G14/G1B /G14/G1C /G15/G13 /G15/G19 /G15/G1A /G15/G1B/G15/G18 /G15/G14 /G15/G15 /G15/G16 /G15/G17 /G16/G13 /G16/G14 /G16/G15/G15/G1C /G16/G16 /G16/G17 /G16/G18 /G16/G19 /G16/G1A /G16/G1B /G16/G1C /G17/G13 /G17/G14 /G17/G15 /G17/G16 /G17/G17 /G18/G13 /G18/G14 /G18/G15/G17/G1C /G17/G18 /G17/G19 /G17/G1A /G17/G1B /G18/G17 /G18/G18 /G18/G19/G18/G16 /G18/G1A /G18/G1B /G18/G1C /G19/G13 /G19/G14 /G19/G15 /G19/G16 /G19/G17 /G27/G13 /G27/G14 /G27/G15 /G27/G16 /G27/G17 /G27/G18 /G27/G19 /G33/G2A /G31/G27 /G37/G35/G2A /G31/G27 /G35/G28/G30/G32/G38/G37 /G37/G35/G32/G38/G37 /G32/G36 /G26 /G2A/G31 /G27 /G34/G14 /G35/G16 /G35 /G15 /G35/G14 /G3B /G14 /G27/G17 /G27/G18/G27 /G19/G27/G1B /G27/G18 /G27/G19 /G27/G1A/G27 /G1C /G27/G19 /G27/G1A/G27 /G1B/G27/G1C /G27/G19 /G27/G1A /G27/G1B/G27 /G1C /G27/G36 /G14 /G27/G36 /G15 /G36 /G3A/G18/G1A /G61 /G19 /G17 /G36 /G3A/G17/G1C /G61 /G18 /G19 /G2E/G13 /G2E/G14/G2E /G15/G2E/G16 /G35/G13/G35/G14/G35/G15/G35/G16 /G2E/G13 /G2E/G14/G2E /G15/G2E/G16 /G35/G13/G35/G14/G35/G15/G35/G16 /G24 /G25 /G26/G27 /G28/G26 /G25 /G28 /G0D /G27/G36/G14 /G4C /G56 /G46/G52 /G51 /G51 /G48 /G46/G57/G48 /G47 /G57 /G52 /G24/G11 /G2C/G49 /G27/G19 /G56/G5A /G4C /G57/G46 /G4B /G4C /G56 /G52 /G51 /G44/G50 /G52 /G51 /G4A /G27/G36/G14 /G0F /G24 /G45 /G48/G46 /G52 /G50 /G48 /G56 /G27 /G19 /G53/G52 /G55 /G57 /G11 /G0D /G27 /G36 /G15 /G4C /G56 /G46 /G52/G51 /G51 /G48/G46 /G57 /G48/G47 /G57 /G52 /G25 /G11 /G2C /G49 /G27 /G1A /G56 /G5A/G4C /G57 /G46/G4B /G4C /G56 /G52/G51 /G44 /G50 /G52/G51 /G4A /G27 /G36 /G15 /G0F /G25 /G45/G48/G46/G52/G50 /G48/G56 /G27 /G1A /G53 /G52 /G55 /G57 /G11 /G0D /G2C/G49 /G27/G19 /G56/G5A /G4C /G57/G46/G4B /G44 /G50/G52/G51 /G4A /G36/G3A/G17/G1C/G61 /G36/G3A /G18/G19 /G4C /G56 /G52 /G51 /G44/G57 /G27/G0F /G57 /G4B /G48 /G4E/G48 /G5C /G17/G1C/G61 /G18/G19 /G46 /G44/G51 /G45 /G48 /G58/G56/G48 /G47 /G44/G56 /G27/G19 /G53 /G52 /G55 /G57/G11 /G0D /G2C/G49 /G27/G1A /G56/G5A /G4C /G57/G46/G4B /G44 /G50/G52/G51 /G4A /G36/G3A/G18/G1A/G61 /G36/G3A /G19/G17 /G4C /G56 /G52 /G51 /G44/G57 /G27/G0F /G57 /G4B /G48 /G4E/G48 /G5C /G18/G1A/G61 /G19/G17 /G46 /G44/G51 /G45 /G48 /G58/G56/G48 /G47 /G44/G56 /G27/G1A /G53 /G52 /G55 /G57/G11 /G0D /G51 /G52 /G57 /G48 /G1D /G57/G4B /G48 /G53/G52 /G56/G4C /G57/G4C /G52 /G51 /G52 /G49 /G36/G3A /G17/G1C/G61 /G18/G19 /G44/G51 /G47 /G36/G3A/G18/G1A/G61 /G19/G17 /G4C /G51 /G25 /G12 /G27 /G4C /G56 /G46 /G4B/G44/G51/G4A /G48 /G47 /G11 /G37 /G4B/G48 /G55/G48 /G49 /G48/G55/G48/G51 /G46 /G48 /G53/G52 /G56/G4C /G57/G4C /G52 /G51 /G4C/G56 /G55 /G4C/G4A/G4B /G57/G11 /G0D /G2C/G49 /G5C /G52/G58 /G5A /G44/G51 /G57 /G57/G52 /G4C/G51 /G46 /G55 /G48 /G44/G56/G48 /G57 /G4B /G48 /G55 /G48 /G50/G52/G57/G48 /G46 /G52 /G51 /G57/G55 /G52 /G4F /G4F/G48/G55 /G59 /G44 /G4F/G4C /G47 /G47 /G4C/G56/G57/G44 /G51 /G46 /G48 /G0F /G5C /G52 /G58 /G57/G55 /G5C /G57/G52 /G47/G4C /G56/G46 /G52 /G51 /G51 /G48 /G46 /G57 /G35/G15 /G55 /G48 /G56/G4C /G56/G57/G52 /G55 /G44/G51 /G47 /G4F/G48/G56/G56 /G48/G51 /G35/G14 /G55 /G48 /G56/G4C/G56/G57 /G52 /G55 /G11 Chapter 6. Application
/G14 /G15 /G16 /G17 /G2E/G13 /G2E /G14 /G2E /G15 /G2E/G16 /G35/G13 /G35 /G14 /G35/G15 /G35 /G16 /G1C /G14/G13 /G14/G14 /G14/G15 /G18 /G19 /G1A /G1B /G14/G16 /G14/G17 /G14/G18 /G14/G19 /G14/G1A /G14/G1B /G14/G1C /G15/G13 /G15/G19 /G15/G1A /G15/G1B/G15/G18 /G15/G14 /G15/G15 /G15/G16 /G15/G17 /G16/G13 /G16/G14 /G16/G15/G15/G1C /G16/G16 /G16/G17 /G16/G18 /G16/G19 /G16/G1A /G16/G1B /G16/G1C /G17/G13 /G17/G14 /G17/G15 /G17/G16 /G17/G17 /G18/G13 /G18/G14 /G18/G15/G17/G1C /G17/G18 /G17/G19 /G17/G1A /G17/G1B /G18/G17 /G18/G18 /G18/G19/G18/G16 /G18/G1A /G18/G1B /G18/G1C /G19/G13 /G19/G14 /G19/G15 /G19/G16 /G19/G17 /G27/G13 /G27/G14 /G27/G15 /G27/G16 /G27/G17 /G27/G18 /G27/G19 /G33/G2A /G31/G27 /G37/G35/G2A /G31/G27 /G35/G28/G30/G32/G38/G37 /G37/G35/G32/G38/G37 /G32/G36 /G26 /G2A/G31 /G27 /G34/G14 /G35/G16 /G35 /G15 /G35/G14 /G3B /G14 /G27/G17 /G27/G18/G27 /G19/G27/G1B /G27/G18 /G27/G19 /G27/G1A/G27 /G1C /G27/G19 /G27/G1A/G27 /G1B/G27/G1C /G27/G19 /G27/G1A /G27/G1B/G27 /G1C /G27/G36 /G14 /G27/G36 /G15 /G36 /G3A/G18/G1A /G61 /G19 /G17 /G36 /G3A/G17/G1C /G61 /G18 /G19 /G2E/G13 /G2E/G14/G2E /G15/G2E/G16 /G35/G13/G35/G14/G35/G15/G35/G16 /G2E/G13 /G2E/G14/G2E /G15/G2E/G16 /G35/G13/G35/G14/G35/G15/G35/G16 /G24 /G25 /G26/G27 /G28/G26 /G25 /G28 /G0D /G27/G36/G14 /G4C /G56 /G46/G52 /G51 /G51 /G48 /G46/G57/G48 /G47 /G57 /G52 /G24/G11 /G2C/G49 /G27/G19 /G56/G5A /G4C /G57/G46 /G4B /G4C /G56 /G52 /G51 /G44/G50 /G52 /G51 /G4A /G27/G36/G14 /G0F /G24 /G45 /G48/G46 /G52 /G50 /G48 /G56 /G27 /G19 /G53/G52 /G55 /G57 /G11 /G0D /G27 /G36 /G15 /G4C /G56 /G46 /G52/G51 /G51 /G48/G46 /G57 /G48/G47 /G57 /G52 /G25 /G11 /G2C /G49 /G27 /G1A /G56 /G5A/G4C /G57 /G46/G4B /G4C /G56 /G52/G51 /G44 /G50 /G52/G51 /G4A /G27 /G36 /G15 /G0F /G25 /G45/G48/G46/G52/G50 /G48/G56 /G27 /G1A /G53 /G52 /G55 /G57 /G11 /G0D /G2C/G49 /G27/G19 /G56/G5A /G4C /G57/G46/G4B /G44 /G50/G52/G51 /G4A /G36/G3A/G17/G1C/G61 /G36/G3A /G18/G19 /G4C /G56 /G52 /G51 /G44/G57 /G27/G0F /G57 /G4B /G48 /G4E/G48 /G5C /G17/G1C/G61 /G18/G19 /G46 /G44/G51 /G45 /G48 /G58/G56/G48 /G47 /G44/G56 /G27/G19 /G53 /G52 /G55 /G57/G11 /G0D /G2C/G49 /G27/G1A /G56/G5A /G4C /G57/G46/G4B /G44 /G50/G52/G51 /G4A /G36/G3A/G18/G1A/G61 /G36/G3A /G19/G17 /G4C /G56 /G52 /G51 /G44/G57 /G27/G0F /G57 /G4B /G48 /G4E/G48 /G5C /G18/G1A/G61 /G19/G17 /G46 /G44/G51 /G45 /G48 /G58/G56/G48 /G47 /G44/G56 /G27/G1A /G53 /G52 /G55 /G57/G11 /G0D /G51 /G52 /G57 /G48 /G1D /G57/G4B /G48 /G53/G52 /G56/G4C /G57/G4C /G52 /G51 /G52 /G49 /G36/G3A /G17/G1C/G61 /G18/G19 /G44/G51 /G47 /G36/G3A/G18/G1A/G61 /G19/G17 /G4C /G51 /G25 /G12 /G27 /G4C /G56 /G46 /G4B/G44/G51/G4A /G48 /G47 /G11 /G37 /G4B/G48 /G55/G48 /G49 /G48/G55/G48/G51 /G46 /G48 /G53/G52 /G56/G4C /G57/G4C /G52 /G51 /G4C/G56 /G55 /G4C/G4A/G4B /G57/G11 /G0D /G2C/G49 /G5C /G52/G58 /G5A /G44/G51 /G57 /G57/G52 /G4C/G51 /G46 /G55 /G48 /G44/G56/G48 /G57 /G4B /G48 /G55 /G48 /G50/G52/G57/G48 /G46 /G52 /G51 /G57/G55 /G52 /G4F /G4F/G48/G55 /G59 /G44 /G4F/G4C /G47 /G47 /G4C/G56/G57/G44 /G51 /G46 /G48 /G0F /G5C /G52 /G58 /G57/G55 /G5C /G57/G52 /G47/G4C /G56/G46 /G52 /G51 /G51 /G48 /G46 /G57 /G35/G15 /G55 /G48 /G56/G4C /G56/G57/G52 /G55 /G44/G51 /G47 /G4F/G48/G56/G56 /G48/G51 /G35/G14 /G55 /G48 /G56/G4C/G56/G57 /G52 /G55 /G11 /G35 /G48/G49 /G48 /G55 /G48 /G51 /G46 /G48 /G57 /G52 /G2A /G30/G36/G16 /G1A/G3B/G3B /G3B/G37 /G25/G12/G27 /G14/G11 /G24/G57 /G57/G44/G46/G4B /G55 /G48/G56/G52 /G51 /G44/G57 /G52 /G55 /G57 /G52 /G3B /G14 /G15/G11 /G24/G57 /G57/G44/G46/G4B /G15 /G15/G15/G15/G24 /G57/G55 /G44/G51 /G56/G4C /G56/G57/G52 /G55 /G57 /G52 /G34/G14 /G16/G11 /G26 /G52 /G51 /G51 /G48 /G46/G57 /G33 /G2A /G31/G27 /G44/G51 /G47 /G27 /G19 /G5A /G4C /G57/G4B /G4D /G58 /G50/G53/G48/G55 /G44/G57 /G28 /G0B /G55 /G48 /G50 /G44/G4C /G51 /G27/G19 /G52 /G53/G48 /G51 /G56/G57 /G44/G57/G48 /G4C /G51 /G46 /G44/G56/G48 /G52 /G49 /G2A/G30/G36/G16/G1A /G14/G17/G13/G37 /G0C /G17/G11 /G24/G57 /G57/G44/G46/G4B /G44 /G45 /G52 /G58/G57 /G14 /G18/G13 /G2E /G57 /G52 /G35/G16/G11 Chapter 6. Application
CHAPTER 7. GMS36XXXT The GMS36XXXT series are remote control transmitter which uses CMOS technology and the EPROM version. This enables transmission code outputs of different configurations, multiple custom code output and double push key output for easy fabrication. The GMS36XXXT series are suitable for remote control of TV, VCR, FANS, Air-conditioners, Audio Equipment, Toys, Games etc.
- Program memory : 1,024 bytes for GMS36/004T/112T/140T
- Data memory : 32 /GD8 4 bits
- 43 types of instruction set
- 3 levels of subroutine nesting
- Operating frequency : 300kHz ~ 1MHz at kHz version 2.4MHz ~ 4MHz at MHz version
- Instruction cycle : fOSC /6 at kHz version fOSC /48 at MHz version
- CMOS process (Single 3.0V power supply)
- Stop mode (Through internal instruction)
- Released stop mode by key input
- Built in Power-on Reset circuit
- Built in Low Voltage Detection circuit
- Built in capacitor for ceramic oscillation circuit at kHz version
- Built in a watch dog timer (WDT)
- Built in transistor for I.R LED Drive : IOL =190mA at VDD =3V and VO =0.3V
- Low operating voltage: 2.2 ~ 3.6V (at 300kHz ~ 4MHz) Chapter 7.GMS36XXXT Table 7-1 GMS36XXXT series members Series GMS36004T GMS36112T GMS36140T Program memory 1,024 1,024 1,024 Data memory 32 /GD8 4 I/O ports - 4 4 Input ports 4 4 4 Output ports 6 (D0~D5) 6 (D0~D5) 10 (D0~D9) Package 16DIP/SOP 20DIP/SOP/SSOP 24Skinny DIP/SOP 32 /GD8 4 32 /GD8 4
Connected to 2.2~ 3.6V power supply Connected to 0V power supply. 4-bit input port with built in pull-up resistor. STOP mode is released by "L" input of each pin. Especially, K3 is the input pin for VPP. For programming K3 pin receives 12.5V(programming voltage). K0 ~ K3 Input GND - VDD - Each can be set and reset independently. The output is the structure of N-channel-open-drain. 4-bit I/O port. (Input mode is set only when each of them output "H".) In outputting, each can be set and reset independently(or at once.) The output is in the form of C-MOS. STOP mode is released by "L" input of each pin. High current output port driving I.R. LED. The output is in the form of N-channel-open-drain. D0 ~ D9 Output R0 ~ R3 I/O REMOUT Output Oscillator input. Input to the oscillator circuit and connection point for ceramic resonator. Internal capacitors available at kHz version. A feedback resistor is internally connected between this pin and OSC2. Connect a resonator between this pin and OSC1. OSC1 Input OSC2 Output High current Tr. ground pin. (connected to GND) High current output Tr. is connected between this pin and REMOUT. PGND - Chapter 7. GMS36XXXT
Stop mode can be achieved by STOP instructions. In stop mode : 1. Oscillator is stopped, the operating current is low. 2. Watch dog timer is reset, D0~D3 output is "L"and REMOUT output is "H" (Output Tr. is off.) 3. Part other than WDT, D0~D3 output and REMOUT output have a value before come into stop mode. Stop mode is released when one of K or R input is going to "L". 1. State of D0~D3 output and REMOUT output is return to state of before stop mode is achieved. 2. After 2 10/GD8 System clock time for stable oscillating, first instruction start to operate. 3. In return to normal operation, WDT is counted from zero again. But, at executing stop instruction, if one of K or R input is chosen to "L", stop instruction is same to NOP instruction. Chapter 7. GMS36XXXT
V V mW /GCE V V Absolute maximum ratings (Ta = 25/GCE ) Symbol VDD VPP PD Tstg VIN VOUT Max. rating -0.3 ~ 5.0 -0.3 ~ 13.5 700 * -55 ~ 125 -0.3 ~ VDD +0.3 -0.3 ~ VDD +0.3 * Thermal derating above 25/GCE : 6mW per degree /GCE rise in temperature. Recommended operating condition Parameter Supply Voltage Unit V Rating 2.2 ~ 3.6 Condition 300kHz ~ 4MHz Symbol VDD /GCEToprOperating temperature - -20 ~ +70 Chapter 7. GMS36XXXT
Electrical characteristics (Ta=25/GCE , VDD = 3V) *1 Refer to /GB9 Fig.7-1 IOL2 vs. VOL2 Graph /GBA *2 Refer to /GB9 Fig.7-2 IOL1 vs. VOL1 Graph /GBA *3 IDD1 , IDD2 , is measured at RESET mode. Parameter Symbol Limits Unit Condition Min. Typ. Max. Input H current R Pull-up Resistance VIH1 R PU1 IIH 2.1 140 300 V /GCF uA VI=GND VI=VDD K Pull-up Resistance R PU2 70 140 300 /GCF VI=GND, Output off Current on STOP mode Operating supply current 1 Operating supply current 2 IDD2 IDD1 *3 ISTP 1.0 0.8 3.0 1.5 mA mA uA f OSC =4MHz fOSC =455KHz At STOP mode REMOUT leakage current IOLK1 -- 1u A VOUT =V DD , Output off OSC2 output L voltage OSC2 output H voltage V OH3 VOL3 2.1 2.5 0.4 0.9 V V IOH3 = -40uA (455kHz) = -150uA (4MHz) IOL3 =40uA (455kHz) = 150uA (4MHz) D. R output L voltage VOL2 *1 - 0.15 0.4 V IOL2 =3mA K, R input H voltage K, R input L voltage VIL1 -- 0.9 V - fOSC /6 fOSC /48 f OSC System clock frequency f OSC 2.4 300 1000 MHz kHz kHz version MHz version REMOUT output L current IOL1 150 190 230 mA V OL1 =0.3V D, R output leakage current IOLK2 -- 1u A VOUT =V DD , Output off Feedback Resistance R FD 0.3 1.0 3.0 /GD0 VOSC1 =GND, V OSC2 =VDD VOL1 =0.4V200 250 300 mA Chapter 7. GMS36XXXT
Fig 7-2. IOL1 vs. VOL1 Graph. ( REMOUT port) Fig 7-1. IOL2 vs. VOL2 Graph. ( D, R Port ) /GB4 /GA8 /GB5/G91/G86 /G89 /GCE /G84 /G88 /G8C /G85/G86 /G85/G8A /G86/G84 /G86/G88 /G84/G82 /G84 /G84/G82 /G88 /G84/G82 /G8C /G85/G82 /G86 /G85/G82 /G8A /G86/G82 /G84 /G86/G82 /G88 /G86/G82 /G8C /G87/G82 /G86 /G87/G82 /G8A /G88/G82 /G84 /GAA/GA3 /GA0/G86 /GAF /GAA/GB1 /G9D/GA3/GA0/G86 /GAF/GC1/G95/GB1 /GAA/G97 /G97 /G91 /G87/G82/G84/GAA /GA8/GB5 /G91 /G86/G89 /GCE /G84 /G85/G84/G84 /G86/G84/G84 /G87/G84/G84 /G88/G84/G84 /G89/G84/G84 /G8A/G84/G84 /G8B/G84/G84 /G8C/G84/G84 /G8D/G84/G84 /G84/G82/G84 /G84/G82/G88 /G84/G82/G8C /G85/G82/G86 /G85/G82/G8A /G86/G82/G84 /G86/G82/G88 /G86/G82/G8C /G87/G82/G86 /G87/G82/G8A /G88/G82/G84 /GAA/GA3/GA0/G85 /GAF/GAA/GB1 /G9D/GA3/GA0/G85 /GAF/GC1/G95/GB1 /GAA/G97/G97 /G91 /G87/G82 /G8A/GAA /GAA/G97/G97 /G91 /G86/G82 /G86/GAA /GAA/G97/G97 /G91 /G87/G82 /G84/GAA Chapter 7. GMS36XXXT
/G13/G11 /G13 /G13/G11 /G15 /G13/G11 /G17 /G13/G11 /G19 /G13/G11 /G1B /G14/G11 /G13 /G14/G11 /G15 /G14/G11 /G17 /G14/G11 /G19 /G14/G11 /G1B /G15/G11 /G13 /G15/G11 /G15 /G15/G11 /G17 /G15/G11 /G19 /G15/G11 /G1B /G16/G11 /G13 /G10/G15 /G13 /G8A /G10/G14 /G13 /G8A /G13 /G8A /G14/G13 /G8A /G15/G13 /G8A /G16/G13 /G8A /G17/G13 /G8A /G18/G13 /G8A /G19/G13 /G8A /G1A/G13 /G8A /G37 /G48 /G50/G53 /G48 /G55 /G44/G57 /G58 /G55 /G48 /G0B /G8A /G0C /G2F /G52/G5A /G39 /G52/G4F /G57/G44/G4A /G48 /G0B /G39/G0C Fig 7-3. Low Voltage vs Temperature Chapter 7. GMS36XXXT
CHAPTER 8. GMS37XXXT The GMS37XXXT series are remote control transmitter which uses CMOS technology and the EPROM version. This enables transmission code outputs of different configurations, multiple custom code output, and double push key output for easy fabrication. The GMS37XXXT series are suitable for remote control of TV, VCR, FANS, Air- conditioners, Audio Equipment, Toys, Games etc. It is possible to structure the 8 x 7 key matrix for GMS37112T, and the 4 x 7 key matrix for GMS37004T.
- Program memory : 1,024 bytes for GMS37004T/112T/140T
- Data memory : 32 /GD8 4 bits
- 43 types of instruction set
- 3 levels of subroutine nesting
- Operating frequency : 300kHz ~ 1MHz at kHz version 2.4MHz ~ 4MHz at MHz version
- Instruction cycle : fOSC /6 at kHz version fOSC /48 at MHz version
- CMOS process (Single 3.0V power supply)
- Stop mode (Through internal instruction)
- Released stop mode by key input
- Built in Power-on Reset circuit
- Built in Low Voltage Detection circuit
- Built in capacitor for ceramic oscillation circuit at kHz version
- Built in a watch dog timer (WDT)
- Low operating voltage : 2.2 ~ 3.6V (at 300kHz ~ 4MHz) Chapter 8. GMS37XXXT Table 8-1 GMS37XXXT series members Series GMS37004T GMS37112T GMS37140T Program memory 1,024 1,024 1,024 Data memory 32 /GD8 4 I/O ports - 4 4 Input ports 4 4 4 Output ports 7 (D0~D6) 7 (D0~D6) 10 (D0~D9) Package 16DIP/SOP 20DIP/SOP/SSOP 24Skinny DIP/SOP 32 /GD8 4 32 /GD8 4
Connected to 2.2~ 3.6V power supply Connected to 0V power supply. 4-bit input port with built in pull-up resistor. STOP mode is released by "L" input of each pin. Especially, K3 is the input pin for VPP. For programming K3 pin receives 12.5V(programming voltage). K0 ~ K3 Input GND - VDD - Each can be set and reset independently. The output is the structure of N-channel-open-drain. 4-bit I/O port. (Input mode is set only when each of them output "H".) In outputting, each can be set and reset independently(or at once.) The output is in the form of C-MOS. STOP mode is released by "L" input of each pin. High current output port The output is in the form of C-MOS. The state of large current on is “ H “ D0 ~ D9 Output R0 ~ R3 I/O REMOUT Output Oscillator input. Input to the oscillator circuit and connection point for ceramic resonator. Internal capacitors available at kHz version. A feedback resistor is internally connected between this pin and OSC2. Connect a resonator between this pin and OSC1. OSC1 Input OSC2 Output Chapter 8. GMS37XXXT
Stop mode can be achieved by STOP instructions. In stop mode : 1. Oscillator is stopped, the operating current is low. 2. Watch dog timer is reset, D0~D3 output is "L"and REMOUT output is ”L" 3. Part other than WDT, D0~D3 output and REMOUT output have a value before come into stop mode. Stop mode is released when one of K or R input is going to "L". 1. State of D0~D3 output and REMOUT output is return to state of before stop mode is achieved. 2. After 2 10/GD8 System clock time for stable oscillating, first instruction start to operate. 3. In return to normal operation, WDT is counted from zero again. But, at executing stop instruction, if one of K or R input is chosen to "L", stop instruction is same to NOP instruction. Chapter 8. GMS37XXXT
V V mW /GCE V V Absolute maximum ratings (Ta = 25/GCE ) Symbol VDD VPP PD Tstg VIN VOUT Max. rating -0.3 ~ 5.0 -0.3 ~ 13.5 700 * -55 ~ 125 -0.3 ~ VDD +0.3 -0.3 ~ VDD +0.3 * Thermal derating above 25/GCE : 6mW per degree /GCE rise in temperature. Recommended operating condition Parameter Supply Voltage Unit V Rating 2.2 ~ 3.6 Condition 300kHz ~ 4MHz Symbol VDD /GCEToprOperating temperature - -20 ~ +70 Chapter 8. GMS37XXXT
Electrical characteristics (Ta=25/GCE , VDD = 3V) Parameter Symbol Limits Unit Condition Min. Typ. Max. Input H current R Pull-up Resistance VIH1 R PU1 IIH 2.1 140 300 V /GCF uA VI=GND VI=VDD K Pull-up Resistance R PU2 70 140 300 /GCF VI=GND, Output off REMOUT output H current IOH1 *3 -5 -15 -30 mA VOH1 =2V OSC2 output L voltage OSC2 output H voltage VOH3 VOL3 2.1 2.5 0.4 0.9 V V IOH3 = -40uA (455kHz) = -150uA (4Mhz) IOL3 =40uA (455kHz) =150uA (4MHz) D. R output L voltage VOL2 *1 -0 . 1 5 0.4 V IOL2 =3mA K, R input H voltage K, R input L voltage VIL1 -- 0.9 V - REMOUT output L current IOL1 *2 12 . 2 4m A V OL1 =0.4V D, R output leakage current IOLK2 -- 1u A VOUT =V DD , Output off Feedback Resistance R FD 0.3 1.0 3.0 /GD0 VOSC1 =GND, V OSC2 =VDD Current on STOP mode Operating supply current 1 Operating supply current 2 IDD2 *4 IDD1 *4 ISTP 1.0 0.8 3.0 1.5 mA mA uA f OSC =4MHz fOSC =455KHz At STOP mode fOSC /6 fOSC /48 f OSC System clock frequency f OSC 2.4 300 1000 MHz kHz kHz version MHz version *1 Refer to Fig.8-1 < IOL2 vs. VOL2 Graph> *2 Refer to Fig.8-2 < IOL1 vs. VOL1 Graph> *3 Refer to Fig.8-3 < IOH1 vs. VOH1 Graph> *4 IDD1 , IDD2 , is measured at RESET mode. Chapter 8. GMS37XXXT
Fig 8-1. IOL2 vs. VOL2 Graph. ( D, R, OD6 Port ) Fig 8-2. IOL1 vs VOL1 Graph (REMOUT Port) /GB4 /GA8/GB5 /G91 /G86/G89 /GCE /G84 /G88 /G8C /G85/G86 /G85/G8A /G86/G84 /G86/G88 /G84/G82 /G84 /G84/G82 /G88 /G84/G82 /G8C /G85/G82 /G86 /G85/G82 /G8A /G86/G82 /G84 /G86/G82 /G88 /G86/G82 /G8C /G87/G82 /G86 /G87/G82 /G8A /G88/G82 /G84 /GAA/GA3 /GA0/G86 /G7C/GAA /G7D /G9D/GA3/GA0/G86 /G7C/GC1/G95/G7D /GAA/G97 /G97 /G91 /G87/G82/G84 /GAA /GA8/GB5 /G91 /G86/G89 /GCE /G84 /G85 /G86 /G87 /G88 /G89 /G8A /G8B /G8C /G84/G82/G84 /G84/G82/G88 /G84/G82/G8C /G85/G82/G86 /G85/G82/G8A /G86/G82/G84 /G86/G82/G88 /G86/G82/G8C /G87/G82/G86 /G87/G82/G8A /G88/G82/G84 /GAA/GA3/GA0 /G85 /G7C/GAA/G7D /G9D/GA3/GA0/G85 /G7C/GC1/G95/G7D /GAA/G97/G97 /G91 /G87/G82/G84 /GAA /GAA/G97/G97 /G91 /G87/G82/G8A /GAA /GAA/G97/G97 /G91 /G86/G82/G86 /GAA Chapter 8. GMS37XXXT
Fig 8-3. IOH1 vs VOH1 Graph (REMOUT Port) /GA8/GB5 /G91 /G86/G89 /GCE /G81/G87/G89 /G81/G87/G84 /G81/G86/G89 /G81/G86/G84 /G81/G85/G89 /G81/G85/G84 /G81/G89 /G84 /G84/G82/G84 /G84/G82/G88 /G84/G82/G8C /G85/G82/G86 /G85/G82/G8A /G86/G82/G84 /G86/G82/G88 /G86/G82/G8C /G87/G82/G86 /G87/G82/G8A /G88/G82/G84 /GAA/GA3/G9C/G85 /G7C/GAA/G7D /G9D/GA3/G9C/G85 /G7C/GC1/G95/G7D /GAA /G97/G97 /G91 /G87/G82 /G84/GAA /GAA /G97/G97 /G91 /G87/G82 /G8A/GAA /GAA /G97/G97 /G91 /G86/G82 /G86/GAA Chapter 8. GMS37XXXT /G13/G11 /G13 /G13/G11 /G15 /G13/G11 /G17 /G13/G11 /G19 /G13/G11 /G1B /G14/G11 /G13 /G14/G11 /G15 /G14/G11 /G17 /G14/G11 /G19 /G14/G11 /G1B /G15/G11 /G13 /G15/G11 /G15 /G15/G11 /G17 /G15/G11 /G19 /G15/G11 /G1B /G16/G11 /G13 /G10/G15 /G13 /G8A /G10/G14 /G13 /G8A /G13 /G8A /G14/G13 /G8A /G15/G13 /G8A /G16/G13 /G8A /G17/G13 /G8A /G18/G13 /G8A /G19/G13 /G8A /G1A/G13 /G8A /G37 /G48/G50/G53 /G48/G55 /G44/G57/G58 /G55 /G48/G0B /G8A /G0C /G2F/G52/G5A /G39 /G52/G4F/G57/G44/G4A /G48 /G0B /G39/G0C Fig 8-4. Low Voltage vs Temperature
CHAPTER 9. EPROM MODE Define Device operation Exact User pgm Item User mode 1Byte PGM Write & Verify Lock bit Write mode Lock bit Read mode Address in, Data in Data out Lock bit write Lock bit out (to D5 port) Mode setting K3~ K0 = 0 ~ 3V Vcc=3V Vcc=5.5V K1~0=01/00 K1~0=01/01 Address in, Data outEPROM read mode Vcc=5.5VK1~0=01/10 K3 =12.5V Vcc=5.5V, (Default : unlock) K1~0=01/10 K2 = 0VReset mode System reset before all test - K2 = Vcc * Mode setting (K1~0=01/10) means the serial input by 2bits. Chapter 9. EPROM /G39/G27/G27 /G35/G28 /G30/G32/G38/G37 /G33 /G2A/G31/G27 /G27/G1A /G27/G19 /G27/G18 /G27/G17 /G27/G16 /G27/G15 /G27/G14 /G27/G13 /G35/G16 /G2A/G31/G27 /G32 /G36/G26/G14 /G32 /G36/G26/G15 /G27/G1C /G27/G1B /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G35/G13 /G35/G14 /G35/G15 /G15/G17/G33/G2C /G31 /G0B/G2A /G30 /G36/G16/G19/G14/G17/G13/G37 /G0C /G14 /G15 /G16 /G17 /G18 /G1A /G1B /G1C /G14/G13 /G14/G14 /G14/G15 /G19 /G15/G17 /G15/G16 /G15/G15 /G15/G14 /G15/G13 /G14/G1B /G14/G1A /G14/G19 /G14/G18 /G14/G17 /G14/G16 /G14/G1C /G1F /G39/G27 /G27 /G10 /G10 /G10 /G10 /G1F /G2F/G52/G46/G4E /G47/G44/G57 /G44 /G52 /G58/G57 /G1F /G24 /G47 /G17/G12/G24/G47/G1C /G1F /G24 /G47 /G16/G12/G24/G47/G1B /G12/G12 /G27/G44 /G16/G12/G27/G44/G1A /G1F /G24 /G47 /G15/G12/G24/G47/G1A /G12/G12 /G27/G44 /G15/G12/G27/G44/G19 /G1F /G24 /G47 /G14/G12/G24/G47/G19 /G12/G12 /G27/G44 /G14/G12/G27/G44/G18 /G1F /G24 /G47 /G13/G12/G24/G47/G18 /G12/G12 /G27/G44 /G13/G12/G27/G44/G17 /G10 /G2A/G31/G27 /G1F /G26/G4F /G52/G46 /G4E /G1F /G10 /G10 /G10 /G30 /G15/G12/G30 /G13 /G1F /G30 /G16/G12/G30 /G14 /G1F /G35/G48 /G56/G48 /G57 /G1F /G39/G33/G33 /G1F /G10 /G10 /G10 /G2A/G31/G27 /G32 /G36/G26/G14 /G32 /G36/G26/G15 /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G35/G13 /G35/G14 /G35/G15 /G39/G27/G27 /G35/G28 /G30/G32/G38/G37 /G33 /G2A/G31/G27 /G27/G18 /G27/G17 /G27/G16 /G27/G15 /G27/G14 /G27/G13 /G35/G16 /G15/G13/G33/G2C /G31 /G0B/G2A /G30 /G36/G16/G19/G14/G14/G15/G37 /G0C /G14 /G15 /G16 /G17 /G18 /G1A /G1B /G1C /G14/G13 /G19 /G15/G13 /G14/G1C /G14/G1B /G14/G1A /G14/G19 /G14/G17 /G14/G16 /G14/G15 /G14/G14 /G14/G18 /G2A/G31/G27 /G1F /G26/G4F /G52/G46 /G4E /G1F /G10 /G30 /G15/G12/G30 /G13 /G1F /G30 /G16/G12/G30 /G14 /G1F /G35/G48 /G56/G48 /G57 /G1F /G39/G33/G33 /G1F /G10 /G10 /G10 /G1F /G39/G27 /G27 /G10 /G10 /G1F /G2F/G52/G46/G4E /G47/G44/G57 /G44 /G52 /G58/G57 /G1F /G24 /G47 /G17/G12/G24/G47/G1C /G1F /G24 /G47 /G16/G12/G24/G47/G1B /G12/G12 /G27/G44 /G16/G12/G27/G44/G1A /G1F /G24 /G47 /G15/G12/G24/G47/G1A /G12/G12 /G27/G44 /G15/G12/G27/G44/G19 /G1F /G24 /G47 /G14/G12/G24/G47/G19 /G12/G12 /G27/G44 /G14/G12/G27/G44/G18 /G1F /G24 /G47 /G13/G12/G24/G47/G18 /G12/G12 /G27/G44 /G13/G12/G27/G44/G17 /G10 /G1F /G39/G27 /G27 /G10 /G10 /G1F /G2F/G52/G46/G4E /G47/G44/G57 /G44 /G52 /G58/G57 /G1F /G24 /G47 /G17/G12/G24/G47/G1C /G1F /G24 /G47 /G16/G12/G24/G47/G1B /G12/G12 /G27/G44 /G16/G12/G27/G44/G1A /G1F /G24 /G47 /G15/G12/G24/G47/G1A /G12/G12 /G27/G44 /G15/G12/G27/G44/G19 /G1F /G24 /G47 /G14/G12/G24/G47/G19 /G12/G12 /G27/G44 /G14/G12/G27/G44/G18 /G2A/G31/G27 /G32 /G36/G26/G14 /G32 /G36/G26/G15 /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G27/G13 /G39/G27/G27 /G35/G28 /G30/G32/G38/G37 /G33 /G2A/G31/G27 /G27/G18 /G27/G17 /G27/G16 /G27/G15 /G27/G14 /G14/G19/G33/G2C /G31 /G0B/G2A /G30 /G36/G16/G19/G13/G13/G17/G37 /G0C /G14 /G15 /G16 /G17 /G18 /G1A /G1B /G19 /G14/G19 /G14/G18 /G14/G17 /G14/G16 /G14/G15 /G14/G13 /G1C /G14/G14 /G2A/G31/G27 /G1F /G26/G4F /G52/G46 /G4E /G1F /G10 /G30 /G15/G12/G30 /G13 /G1F /G30 /G16/G12/G30 /G14 /G1F /G35/G48 /G56/G48 /G57 /G1F /G39/G33/G33 /G1F /G27/G44/G13 /G12 /G27/G44 /G17 /G12/G12 /G24/G47/G13 /G12 /G24/G47 /G18 /G1F /G33/G52/G55/G57 /G31/G44/G50 /G48 /G39/G27/G27/G0F/G2A/G31/G27 /G33/G2A/G31/G27 /G32/G36/G26/G14/G0F/G15 /G35/G48/G50 /G52 /G58/G57 /G38 /G56 /G48/G55 /G30/G52 /G47/G48 /G33/G52/G5A/G48/G55 /G33/G4A/G51 /G47/G0B/G20/G13/G39/G0C /G26/G4F /G52/G46/G4E /G35/G48/G50 /G52 /G58/G57 /G27/G19 /G27/G19/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G1A /G27/G1A/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G1B /G27/G1B/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G1C /G27/G1C/G0B/G32/G58/G57/G53/G58 /G57/G0C /G35/G13 /G35/G13/G0B/G2C /G12 /G32 /G0C /G35/G14 /G35/G14/G0B/G2C /G12 /G32 /G0C /G35/G15 /G35/G15/G0B/G2C /G12 /G32 /G0C /G35/G16 /G35/G16/G0B/G2C /G12 /G32 /G0C /G28/G33/G35/G32/G30 /G30/G52/G47/G48 /G33/G52/G5A/G48/G55 /G10 /G26/G4F /G52/G46/G4E /G10 /G10 /G10 /G10 /G10 /G10 /G10 /G10 /G10 /G27/G13 /G27/G14 /G27/G15 /G27/G16 /G27/G17 /G27/G18 /G27/G13/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G14/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G15/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G16/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G17/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G18/G0B/G32/G58/G57/G53/G58 /G57/G0C /G2F/G52/G46/G4E /G47/G44/G57/G44 /G52/G58/G57 /G53/G58/G57 /G24/G47/G14 /G24/G47/G19 /G27/G44/G14 /G24/G47/G15 /G24/G47/G1A /G27/G44/G15 /G24/G47/G16 /G24/G47/G1B /G27/G44/G16 /G24/G47/G17 /G24/G47/G1C /G27/G44/G18 /G27/G44/G19 /G27/G44/G1A /G24/G47/G13 /G24/G47/G18 /G27/G44/G13 /G27/G44/G17 /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G2E/G13/G0B/G2C /G51/G53/G58/G57/G0C /G2E/G14/G0B/G2C /G51/G53/G58/G57/G0C /G2E/G15/G0B/G2C /G51/G53/G58/G57/G0C /G2E/G16/G0B/G2C /G51/G53/G58/G57/G0C /G30/G52/G47/G48 /G56/G48 /G57/G57/G4C /G51 /G4A /G35/G48/G44 /G47 /G12 /G3A /G55/G4C/G57/G48 /G26/G52 /G51 /G57/G55 /G52/G4F /G24 /G47 /G47/G55/G48 /G56/G56 /G12 /G27/G44/G57/G44 /G26/G52 /G51 /G57 /G55/G52/G4F /G35/G48/G56/G48/G57 /G39/G33 /G33 /G0B/G14/G15/G11 /G18/G39/G0C Port Define for GMS36XXXT /G28/G53/G55/G52/G50 /G30 /G52 /G47/G48 /G1F /G38/G56 /G48/G55 /G30/G52/G47 /G48 /G38/G56 /G48/G55 /G30/G52/G47 /G48 /G1F /G28/G53/G55/G52/G50 /G30 /G52/G47 /G48
Chapter 9. EPROM /G39/G27/G27 /G35/G28 /G30/G32/G38/G37 /G31/G26 /G27/G1A /G27/G19 /G27/G18 /G27/G17 /G27/G16 /G27/G15 /G27/G14 /G27/G13 /G35/G16 /G2A/G31/G27 /G32 /G36/G26/G14 /G32 /G36/G26/G15 /G27/G1C /G27/G1B /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G35/G13 /G35/G14 /G35/G15 /G15/G17/G33/G2C /G31 /G0B/G2A /G30 /G36/G16/G1A/G14/G17/G13/G37 /G0C /G14 /G15 /G16 /G17 /G18 /G1A /G1B /G1C /G14/G13 /G14/G14 /G14/G15 /G19 /G15/G17 /G15/G16 /G15/G15 /G15/G14 /G15/G13 /G14/G1B /G14/G1A /G14/G19 /G14/G18 /G14/G17 /G14/G16 /G14/G1C /G1F /G39/G27 /G27 /G10 /G10 /G10 /G10 /G1F /G2F/G52/G46/G4E /G47/G44/G57 /G44 /G52 /G58/G57 /G1F /G24 /G47 /G17/G12/G24/G47/G1C /G1F /G24 /G47 /G16/G12/G24/G47/G1B /G12/G12 /G27/G44 /G16/G12/G27/G44/G1A /G1F /G24 /G47 /G15/G12/G24/G47/G1A /G12/G12 /G27/G44 /G15/G12/G27/G44/G19 /G1F /G24 /G47 /G14/G12/G24/G47/G19 /G12/G12 /G27/G44 /G14/G12/G27/G44/G18 /G1F /G24 /G47 /G13/G12/G24/G47/G18 /G12/G12 /G27/G44 /G13/G12/G27/G44/G17 /G10 /G2A/G31/G27 /G1F /G26/G4F /G52/G46 /G4E /G1F /G10 /G10 /G10 /G30 /G15/G12/G30 /G13 /G1F /G30 /G16/G12/G30 /G14 /G1F /G35/G48 /G56/G48 /G57 /G1F /G39/G33/G33 /G1F /G10 /G10 /G10 /G2A/G31/G27 /G32 /G36/G26/G14 /G32 /G36/G26/G15 /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G35/G13 /G35/G14 /G35/G15 /G39/G27/G27 /G35/G28 /G30/G32/G38/G37 /G27/G19 /G27/G18 /G27/G17 /G27/G16 /G27/G15 /G27/G14 /G27/G13 /G35/G16 /G15/G13/G33/G2C /G31 /G0B/G2A /G30 /G36/G16/G1A/G14/G14/G15/G37 /G0C /G14 /G15 /G16 /G17 /G18 /G1A /G1B /G1C /G14/G13 /G19 /G15/G13 /G14/G1C /G14/G1B /G14/G1A /G14/G19 /G14/G17 /G14/G16 /G14/G15 /G14/G14 /G14/G18 /G2A/G31/G27 /G1F /G26/G4F /G52/G46 /G4E /G1F /G10 /G30 /G15/G12/G30 /G13 /G1F /G30 /G16/G12/G30 /G14 /G1F /G35/G48 /G56/G48 /G57 /G1F /G39/G33/G33 /G1F /G10 /G10 /G10 /G1F /G39/G27 /G27 /G10 /G10 /G1F /G2F/G52/G46/G4E /G47/G44/G57 /G44 /G52 /G58/G57 /G1F /G24 /G47 /G17/G12/G24/G47/G1C /G1F /G24 /G47 /G16/G12/G24/G47/G1B /G12/G12 /G27/G44 /G16/G12/G27/G44/G1A /G1F /G24 /G47 /G15/G12/G24/G47/G1A /G12/G12 /G27/G44 /G15/G12/G27/G44/G19 /G1F /G24 /G47 /G14/G12/G24/G47/G19 /G12/G12 /G27/G44 /G14/G12/G27/G44/G18 /G1F /G24 /G47 /G13/G12/G24/G47/G18 /G12/G12 /G27/G44 /G13/G12/G27/G44/G17 /G10 /G1F /G39/G27 /G27 /G10 /G10 /G1F /G2F/G52/G46/G4E /G47/G44/G57 /G44 /G52 /G58/G57 /G1F /G24 /G47 /G17/G12/G24/G47/G1C /G1F /G24 /G47 /G16/G12/G24/G47/G1B /G12/G12 /G27/G44 /G16/G12/G27/G44/G1A /G1F /G24 /G47 /G15/G12/G24/G47/G1A /G12/G12 /G27/G44 /G15/G12/G27/G44/G19 /G1F /G24 /G47 /G14/G12/G24/G47/G19 /G12/G12 /G27/G44 /G14/G12/G27/G44/G18 /G2A/G31/G27 /G32 /G36/G26/G14 /G32 /G36/G26/G15 /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G27/G13 /G39/G27/G27 /G35/G28 /G30/G32/G38/G37 /G27/G19 /G27/G18 /G27/G17 /G27/G16 /G27/G15 /G27/G14 /G14/G19/G33/G2C /G31 /G0B/G2A /G30 /G36/G16/G1A/G13/G13/G17/G37 /G0C /G14 /G15 /G16 /G17 /G18 /G1A /G1B /G19 /G14/G19 /G14/G18 /G14/G17 /G14/G16 /G14/G15 /G14/G13 /G1C /G14/G14 /G2A/G31/G27 /G1F /G26/G4F /G52/G46 /G4E /G1F /G10 /G30 /G15/G12/G30 /G13 /G1F /G30 /G16/G12/G30 /G14 /G1F /G35/G48 /G56/G48 /G57 /G1F /G39/G33/G33 /G1F /G27/G44/G13 /G12 /G27/G44 /G17 /G12/G12 /G24/G47/G13 /G12 /G24/G47 /G18 /G1F /G33/G52/G55/G57 /G31/G44/G50 /G48 /G39/G27/G27/G0F/G2A/G31/G27 /G38 /G56 /G48/G55 /G30/G52 /G47/G48 /G33/G52/G5A/G48/G55 /G28/G33/G35/G32/G30 /G30/G52/G47/G48 /G33/G52/G5A/G48/G55 /G35/G13 /G35/G13/G0B/G2C /G12 /G32 /G0C /G35/G14 /G35/G14/G0B/G2C /G12 /G32 /G0C /G35/G15 /G35/G15/G0B/G2C /G12 /G32 /G0C /G35/G16 /G35/G16/G0B/G2C /G12 /G32 /G0C /G10 /G10 /G10 /G10 /G32/G36/G26/G14/G0F/G15 /G26/G4F /G52/G46/G4E /G26/G4F /G52/G46/G4E /G35/G48/G50 /G52 /G58/G57 /G35/G48/G50 /G52 /G58/G57 /G10 /G31/G26 /G10 /G10 /G27/G19 /G27/G19/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G1A /G27/G1A/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G1B /G27/G1B/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G1C /G27/G1C/G0B/G32/G58/G57/G53/G58 /G57/G0C /G10 /G10 /G10 /G10 /G27/G13 /G27/G14 /G27/G15 /G27/G16 /G27/G17 /G27/G18 /G27/G13/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G14/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G15/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G16/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G17/G0B/G32/G58/G57/G53/G58 /G57/G0C /G27/G18/G0B/G32/G58/G57/G53/G58 /G57/G0C /G2F/G52/G46/G4E /G47/G44/G57/G44 /G52/G58/G57 /G53/G58/G57 /G24/G47/G14 /G24/G47/G19 /G27/G44/G14 /G24/G47/G15 /G24/G47/G1A /G27/G44/G15 /G24/G47/G16 /G24/G47/G1B /G27/G44/G16 /G24/G47/G17 /G24/G47/G1C /G27/G44/G18 /G27/G44/G19 /G27/G44/G1A /G24/G47/G13 /G24/G47/G18 /G27/G44/G13 /G27/G44/G17 /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G2E/G13/G0B/G2C /G51/G53/G58/G57/G0C /G2E/G14/G0B/G2C /G51/G53/G58/G57/G0C /G2E/G15/G0B/G2C /G51/G53/G58/G57/G0C /G2E/G16/G0B/G2C /G51/G53/G58/G57/G0C /G30/G52/G47/G48 /G56/G48 /G57/G57/G4C /G51 /G4A /G35/G48/G44 /G47 /G12 /G3A /G55/G4C/G57/G48 /G26/G52 /G51 /G57/G55 /G52/G4F /G24 /G47 /G47/G55/G48 /G56/G56 /G12 /G27/G44/G57/G44 /G26/G52 /G51 /G57 /G55/G52/G4F /G35/G48/G56/G48/G57 /G39/G33 /G33 /G0B/G14/G15/G11 /G18/G39/G0C Port Define for GMS37XXXT /G28/G53/G55/G52/G50 /G30 /G52 /G47/G48 /G1F /G38/G56 /G48/G55 /G30/G52/G47 /G48 /G38/G56 /G48/G55 /G30/G52/G47 /G48 /G1F /G28/G53/G55/G52/G50 /G30 /G52/G47 /G48
AC / DC Timing Requirements for Program / Read Mode (Ta = 25/GCE ) /G33 /G55 /G52 /G4A/G55 /G44 /G50 /G50/G4C /G51/G4A /G36 /G58/G53/G53/G4F /G5C /G26 /G58/G55 /G55 /G48 /G51/G57 /G36 /G58/G53/G53/G4F /G5C /G26 /G58/G55 /G55 /G48/G51/G57 /G4C /G51 /G28 /G33/G35/G32/G30 /G30/G52/G47/G48 /G39/G33 /G33 /G2F/G48 /G59 /G48 /G4F /G47 /G58 /G55/G4C/G51 /G4A /G33/G55/G52 /G4A /G55 /G44 /G50 /G50/G4C /G51/G4A /G39 /G27 /G27 /G2F /G48/G59/G48/G4F /G4C /G51 /G33 /G55 /G52/G4A /G55 /G44/G50 /G30 /G52/G47 /G48 /G39 /G27 /G27 /G2F /G48/G59/G48/G4F /G4C /G51 /G35 /G48 /G44/G47 /G30 /G52/G47 /G48 /G2E/G15 /G61 /G2E /G13 /G2B/G4C/G4A /G4B /G2F /G48 /G59 /G48 /G4F /G4C /G51 /G28/G33 /G35/G32/G30 /G30/G52 /G47 /G48 /G2E/G15 /G61 /G2E /G13 /G2F/G52 /G5A /G2F/G48 /G59 /G48 /G4F /G4C/G51 /G28 /G33/G35/G32/G30 /G30 /G52 /G47/G48 /G27/G17 /G61/G27/G13 /G2B/G4C/G4A /G4B /G2F /G48 /G59 /G48 /G4F /G4C/G51 /G28 /G33/G35/G32/G30 /G30/G52/G47/G48 /G27/G17 /G61/G27/G13 /G2B/G4C/G4A /G4B /G2F /G48 /G59 /G48 /G4F /G4C/G51 /G28 /G33/G35/G32/G30 /G30/G52/G47/G48 /G39/G27/G27 /G36/G57/G58 /G55/G44 /G57/G4C /G52 /G51 /G37/G4C/G50 /G48 /G39/G33 /G33 /G36/G48 /G57/G58 /G53 /G37 /G4C /G50/G48 /G39/G33 /G33 /G36/G44 /G57/G58 /G55/G44 /G57/G4C/G52 /G51 /G37 /G4C /G50/G48 /G32/G36/G26/G14 /G26 /G4F /G52 /G46 /G4E /G33 /G48 /G55/G4C /G52 /G47 /G31/G44 /G50/G48 /G2E /G14/G61 /G2E/G13 /G30/G52/G47/G48 /G4C /G51/G53/G58/G57 /G36/G48 /G57 /G58/G53 /G57 /G4C /G50/G48 /G27/G17 /G61/G27/G13 /G27/G44 /G57/G44 /G4C /G51/G53 /G58 /G57 /G2B/G52 /G4F /G47 /G37 /G4C/G50 /G48 /G2E /G14/G61 /G2E/G13 /G27 /G44 /G57 /G44 /G4C /G51/G53/G58/G57 /G36/G48 /G57 /G58/G53 /G37 /G4C /G50/G48 /G27/G17 /G61/G27/G13 /G32/G58 /G57/G53 /G58 /G57 /G36 /G57/G55/G52 /G45 /G4C/G51 /G4A /G37 /G4C/G50 /G48 /G27 /G18 /G32 /G58/G57 /G53/G58/G57 /G36/G57 /G55 /G52 /G45/G4C /G51/G4A /G37 /G4C /G50/G48 /G27/G17 /G61/G27/G13 /G27/G44 /G57/G44 /G4C /G51/G53 /G58 /G57 /G36/G48 /G57/G58 /G53 /G37 /G4C /G50/G48 /G2E/G15 /G2C/G51 /G53/G58 /G57 /G27/G48 /G4F/G44 /G5C /G57/G4C/G50 /G48 /G2E/G15 /G2C/G51 /G53/G58 /G57 /G36/G48 /G57/G58 /G53 /G57 /G4C/G50 /G48 /G2C /G39/G33 /G33 /G2C /G39/G27/G27 /G33 /G39 /G2C/G2B /G33 /G39 /G27/G27 /G14 /G2B /G39 /G27/G27 /G15 /G2B /G39 /G2C/G2B /G2E /G39 /G2C/G2F/G2E /G39 /G2C/G2B /G27 /G39 /G2C/G2F/G27 /G37 /G39/G27 /G27/G36 /G37 /G39 /G33/G33/G35 /G37 /G39 /G33/G33/G36 /G37/G53 /G36/G5C /G50 /G45/G52 /G4F /G37 /G30/G32 /G27/G28 /G37 /G2B/G2F /G27 /G37 /G27/G2F/G3C/G14 /G37 /G36/G37 /G25/G14 /G37 /G36/G37 /G25/G15 /G37 /G27/G2F/G3C/G15 /G37 /G2E/G15/G27 /G37 /G2E/G15/G36 /G36/G5C /G56/G57/G48 /G50 /G55/G48 /G56 /G48 /G57 /G05 /G76 /G44 /G57 /G2E/G2B /G3D /G39 /G48 /G55 /G56 /G4C/G52/G51 /G31 /GCD /G44/G57 /G30 /G2B /G3D /G39 /G48/G55 /G56 /G4C /G52/G51 /G24/G57 /G2F /G52 /G46 /G4E /G35/G48 /G44 /G47 /G32/G51 /G4F/G5C /G50/G24 /G50/G24 /G39 /G39 /G39 /G39 /G39 /G39 /G39 /G50/G56 /G50/G56 /G50/G56 /G58/G56 /G38/G51 /G4C/G57/G56 /G10 /G14/G15 /G11/G18 /G18/G11 /G13 /G10 /G39/G27/G27 /G5B /G13/G11 /G1B /G10 /G39/G27/G27 /G5B /G13/G11 /G1C /G10 /G14 /G10 /G14 /G10 /G14/G11 /G1B /G30/G4C /G51/G11 /G10 /G14/G15 /G11/G1A/G18 /G18/G11 /G18 /G16/G0F /G18/G11 /G18 /G10 /G10 /G10 /G10 /G10 /G10 /G10 /G10 /G15 /G37/G5C /G53 /G11 /G51/G56 /G15/G13 /G13 /G15/G18 /G13 /G58/G56 /G58/G56 /G37 /G53 /G5B/G13 /G11 /G18 /G10 /G37 /G53 /G5B/G13 /G11 /G1B /G37 /G53 /G51/G56 /G37 /G53 /G5B/G13 /G11 /G13 /G18 /G37 /G53 /G5B/G13 /G11 /G13 /G1B /G51/G56 /G37 /G53 /G5B/G13 /G11 /G15 /G37 /G53 /G5B/G13 /G11 /G16 /G58/G56 /G37 /G53 /G5B/G16 /G11 /G13 /G37 /G53 /G5B/G19 /G11 /G13 /G51/G56 /G37 /G53 /G5B/G13 /G11 /G13 /G18 /G37 /G53 /G5B/G13 /G11 /G14 /G51/G56 /G37 /G53 /G12/G1B /G37 /G53 /G12/G17 /G51/G56 /G37 /G53 /G12/G1B /G37 /G53 /G12/G17 /G18/G13 /G14/G16 /G19/G11 /G13 /G10 /G10 /G39/G27/G27 /G5B /G13/G11 /G15 /G10 /G39/G27/G27 /G5B /G13/G11 /G14 /G10 /G14 /G10 /G15/G13 /G16 /G30/G44/G5B /G11 /G17/G13 /G13 /G37 /G53 /G5B/G14 /G11 /G13 /G10 /G37 /G53 /G5B/G13 /G11 /G14 /G37 /G53 /G5B/G13 /G11 /G17 /G37 /G53 /G5B/G13 /G11 /G14 /G18 /G37 /G53 /G12/G15 /G37 /G53 /G12/G15 /G37 /G53 /G5B /G14/G15/G11 /G13 Chapter 9. EPROM
Program / Verify Timing Diagrams In kHz Version. 1) EPROM Write & Verify Mode (1Byte) /G32/G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14/G2B /G37 /G39 /G33/G33/G35 /G39 /G2C/G2B /G33 /G37 /G39 /G33/G33/G36 /G39 /G27/G27/G14/G2B /G37 /G33/G14 /G2E/G14 /G61/G2E /G13 /G30 /G2B/G0B/G13/G14/G0C /G30 /G2F /G0B/G14/G13/G0C /G2E/G15 /G2E/G16 /G12 /G39/G33/G33 /G27/G17 /G61/G27/G13 /G13/G13/G13/G13 /G13 /G24/G2F /G27/G2B /G27/G2F/G24/G2B /G32/G2B /G32/G2F /G24/G2F /G27/G2B /G27/G2F/G24/G2B /G13/G14 /G14/G14 /G14/G13 /G13/G13 /G13/G14/G13/G13 /G28/G53 /G55 /G52/G50 /G3A /G55/G4C/G57/G48 /G30/G52 /G47 /G48 /G56 /G48/G57 /G57/G4C/G51/G4A/G35 /G48 /G56/G48/G57 /G14/G13 /G57/G4C /G50 /G48 /G56 /G55 /G48/G53 /G48/G44/G57 /G14/G15 /G58 /G56 /G5B /G14/G13 /G20/G14/G15 /G13/G58 /G56 /G24/G2B /G1D /G2B/G4C /G4A/G4B /G45/G4C /G57 /G24/G47/G47/G55/G48/G56/G56 /G2C /G51/G53 /G58/G57 /G2F /G44/G57/G46/G4B /G24/G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G24/G47/G47/G55/G48/G56/G56 /G2C /G51/G53/G58/G57 /G2F/G44/G57 /G46 /G4B /G27/G2B /G1D /G2B /G4C/G4A/G4B /G45 /G4C /G57 /G27/G44/G57 /G44 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G27/G2F /G1D /G2F/G52 /G5A /G45/G4C /G57 /G27/G44/G57/G44 /G2C /G51/G53/G58/G57 /G2F/G44/G57 /G46 /G4B /G32/G2B /G1D /G2B/G4C /G4A/G4B /G45 /G4C /G57 /G27 /G44/G57 /G44 /G32/G58/G57 /G53/G58/G57 /G32/G2F /G1D /G2F /G52/G5A /G45/G4C /G57 /G27/G44/G57/G44 /G32/G58/G57/G53/G58/G57 /G14 /G1B /G14/G1C /G24 /G47 /G47/G55/G11 /G13 /G24 /G47 /G47/G55/G11 /G14 /G37 /G30/G32/G27/G28 /G30 /G2B /G1D /G2B/G4C /G4A /G4B /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G30 /G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G37 /G27/G2F /G3C/G14 /G37 /G27/G2F /G3C/G15 /G37 /G2B/G2F /G27 /G37 /G36/G37/G25/G14 /G37 /G2B/G2F /G27 /G37 /G2E/G15 /G27 /G37 /G2E/G15 /G36 #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. The reset release (K2=\High\) must be set within OSC1 = \Low\ state. (From this time, OSC1 clock is counted.) 3. The Data will be inputted from the 19th rising edge of OSC1. 4. If not written during 10 times repeats (120us), repeat the 5 times until all is written. 5. For device verify. If you set Lock bit, output data is always \0F\h. Chapter 9. EPROM
2) EPROM Read Mode (1Byte) /G32/G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G15/G2B /G37 /G39 /G33/G33/G35 /G39 /G2C/G2B /G33 /G37 /G39 /G33/G33/G36 /G39 /G27/G27/G15/G2B /G37 /G33/G14 /G2E/G14 /G61/G2E /G13 /G30 /G2B/G0B/G13/G14/G0C /G30 /G2F /G0B/G14/G13/G0C /G2E/G15 /G2E/G16 /G12 /G39/G33/G33 /G27/G17 /G61/G27/G13 /G13/G13/G13/G13 /G13 /G24/G2B /G1D /G2B/G4C /G4A/G4B /G45/G4C /G57 /G24/G47/G47/G55/G48/G56/G56 /G2C /G51/G53 /G58/G57 /G2F /G44/G57/G46/G4B /G24/G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G24/G47/G47/G55/G48/G56/G56 /G2C /G51/G53/G58/G57 /G2F/G44/G57 /G46 /G4B /G27/G2B /G1D /G2B /G4C/G4A/G4B /G45 /G4C /G57 /G27/G44/G57 /G44 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G27/G2F /G1D /G2F/G52 /G5A /G45/G4C /G57 /G27/G44/G57/G44 /G2C /G51/G53/G58/G57 /G2F/G44/G57 /G46 /G4B /G32/G2B /G1D /G2B/G4C /G4A/G4B /G45 /G4C /G57 /G27 /G44/G57 /G44 /G32/G58/G57 /G53/G58/G57 /G32/G2F /G1D /G2F /G52/G5A /G45/G4C /G57 /G27/G44/G57/G44 /G32/G58/G57/G53/G58/G57 /G14 /G1B /G14/G1C /G37 /G30/G32/G27/G28 /G30 /G2B /G1D /G2B/G4C /G4A /G4B /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G30 /G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G24/G2F/G24/G2B /G32/G2B /G32/G2F /G24/G2F/G24/G2B /G32/G2B /G32/G2F /G24/G2F/G24/G2B /G32/G2B /G32/G2F /G24/G2F/G24/G2B /G32/G2B /G24 /G47 /G47/G55/G11 /G13 /G24 /G47 /G47/G55/G11 /G14 /G24 /G47 /G47/G55/G11 /G15 /G24 /G47 /G47/G55/G11 /G16 /G35 /G48 /G56/G48/G57 /G28/G53 /G55 /G52/G50 /G35/G48 /G44/G47 /G30/G52 /G47 /G48 /G56 /G48/G57 /G57/G4C/G51/G4A /G37 /G27/G2F /G3C/G14 /G13/G13 /G14/G13 /G13/G13 /G14/G13 /G13/G13/G13/G13 /G14/G13 /G14/G13 /G37 /G27/G2F /G3C/G15 /G37 /G36/G37/G25/G14 /G37 /G36/G37/G25/G14 /G37 /G36/G37/G25/G14 /G37 /G36/G37/G25/G14 /G37 /G2B/G2F /G27 /G37 /G2B/G2F /G27 /G37 /G2B/G2F /G27 /G37 /G2B/G2F /G27 /G37 /G2E/G15 /G27 /G37 /G2E/G15 /G36 #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. The reset release (K2=\High\) must be set within OSC1 = \Low\ state. (From this time, OSC1 clock is counted.) 3. The Data will be inputted from the 19th rising edge of OSC1. 4. For device verify. If you set Lock bit, output data is always \0F\h. Chapter 9. EPROM
3) Lock Bit Write Mode /G32/G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14/G2B /G37 /G39 /G33/G33/G35 /G39 /G2C/G2B /G33 /G37 /G39 /G33/G33/G36 /G39 /G27/G27/G14/G2B /G37 /G33/G14 /G2E/G14 /G61/G2E /G13 /G30 /G2B/G0B/G13/G14/G0C /G30 /G2F /G0B/G13/G13/G0C /G2E/G15 /G2E/G16 /G12 /G39/G33/G33 /G27/G17 /G61/G27/G13 /G14 /G1B /G14/G1C /G14/G14 /G14/G13 /G57/G4C /G50 /G48 /G56 /G55 /G48/G53 /G48/G44/G57 /G14/G15 /G58 /G56 /G5B /G14/G13 /G20/G14/G15 /G13/G58 /G56 /G37 /G2E/G15 /G27 /G15/G18 /G37 /G27/G2F /G3C/G14 /G37 /G27/G2F /G3C/G14/G37 /G27/G2F /G3C/G14 /G30 /G2B /G1D /G2B/G4C /G4A /G4B /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G30 /G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G37 /G30/G32/G27/G28 /G37 /G2E/G15 /G36 /G3A/G44/G4C /G57 /G46 /G5C/G46 /G4F /G48 #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. The reset release (K2=\High\) must be set within OSC1 = \Low\ state. (From this time, OSC1 clock is counted.) 3. If not written during 10 times repeats (120us), repeat the 5 times until all is written. Chapter 9. EPROM /G35 /G48 /G56/G48/G57 /G2F /G52/G46 /G4E /G3A /G55/G4C/G57 /G48 /G30/G52 /G47 /G48 /G56 /G48/G57/G57 /G4C/G51/G4A
4) Lock Bit Read Mode /G32/G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G15/G2B /G37 /G39 /G33/G33/G35 /G39 /G2C/G2B /G33 /G37 /G39 /G33/G33/G36 /G39 /G27/G27/G15/G2B /G37 /G33/G14 /G2E/G14 /G61/G2E /G13 /G30 /G2B/G0B/G13/G14/G0C /G30 /G2F /G0B/G13/G14/G0C /G2E/G15 /G2E/G16 /G12 /G39/G33/G33 /G27/G17 /G61/G27/G13 /G14 /G1B /G14/G1C /G37 /G30/G32/G27/G28 /G37 /G36/G37/G25/G15 /G30 /G2B /G1D /G2B/G4C /G4A /G4B /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G30 /G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G30 /G52/G47/G48 /G2C /G51/G53/G58/G57 /G2F/G44/G57/G46/G4B /G27/G18 /G2F/G52/G46/G4E /G45/G4C /G57 /G52/G58/G57/G53 /G58/G57 /G37 /G2E/G15 /G27 /G37 /G2E/G15 /G36 #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. The reset release (K2=\High\) must be set within OSC1 = \Low\ state. (From this time, OSC1 clock is counted.) 3. Lock data is outputted from D5 port. If you set Lock bit, the output data of D5 is always \H\. Chapter 9. EPROM /G35 /G48 /G56/G48/G57 /G2F/G52 /G46/G4E /G35 /G48/G44/G47 /G30 /G52/G47 /G48 /G56/G48 /G57 /G57/G4C /G51 /G4A
1) EPROM Write & Verify Mode (1Byte) Program / Verify Timing Diagrams In MHz Version. /G26/G52/G51/G57/G4C /G51/G58/G48 /G57 /G52 /G31/G48 /G5B /G57 /G33/G44/G4A/G48 /G11 /G32/G2B /G1D /G2B /G4C /G4A/G4B /G45/G4C /G57 /G27/G44 /G57/G44 /G32/G58/G57/G53/G58/G57 /G32/G2F /G1D /G2F /G52/G5A /G45/G4C /G57 /G27/G44 /G57/G44 /G32 /G58 /G57 /G53/G58 /G57 /G24 /G2B /G1D /G2B /G4C /G4A /G4B /G45 /G4C/G57 /G24 /G47 /G47 /G55/G48/G56/G56 /G2C /G51/G53/G58/G57 /G2F/G44 /G57 /G46 /G4B /G24/G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G24/G47/G47/G55/G48 /G56 /G56 /G2C /G51/G53/G58/G57 /G2F/G44/G57 /G46/G4B /G27/G2B /G1D /G2B/G4C /G4A/G4B /G45/G4C /G57 /G27/G44 /G57/G44 /G2C /G51/G53/G58 /G57 /G2F/G44 /G57/G46/G4B /G27/G2F /G1D /G2F /G52/G5A /G45/G4C /G57 /G27/G44 /G57/G44 /G2C /G51/G53 /G58/G57 /G2F/G44 /G57/G46/G4B /G30/G2B /G1D /G2B/G4C /G4A/G4B /G45/G4C /G57 /G30/G52/G47/G48 /G2C /G51 /G53/G58/G57 /G2F/G44 /G57/G46/G4B /G30/G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G30 /G52/G47 /G48 /G2C /G51/G53/G58/G57 /G2F/G44 /G57/G46/G4B /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G37 /G39/G33 /G33/G35 /G39 /G2C/G2B /G33 /G37 /G39/G33 /G33/G36 /G39 /G27/G27/G14 /G2B /G37 /G33 /G2E/G14/G61 /G2E/G13 /G30/G2B/G0B /G13/G14 /G0C /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G13/G13/G13 /G13/G13 /G14/G1B/G5B /G37 /G33 /G37 /G2E/G15/G27 /G37 /G2E/G15/G36 /G35/G48/G56/G48/G57 /G28/G53/G55/G52/G50 /G3A /G55/G4C /G57/G48 /G30 /G52/G47/G48 /G56/G48/G57/G57 /G4C /G51/G4A /G15 /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G37 /G30/G32/G27/G28 /G30/G2F/G0B /G14 /G13/G0C /G16 /G14 /G25 /G4F /G52/G46/G4E /G13/G13 /G24/G2B /G37 /G2B/G2F/G27 /G24/G47/G47 /G55 /G11 /G13 /G37 /G27/G2F/G3C /G14 /G37 /G27/G2F/G3C /G15 #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. OSC1 is made of a block of 8 x Tp clock. 3. From this time when the reset is released (K2=\High\) , OSC1 clock is counted by 1-bolck. 4. If not written during 10 times repeats (120us), repeat the 5 times until all is written. 5. For device verify. If you set Lock bit, output data is always \0F\h. Chapter 9. EPROM
- Continue - /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G39 /G2C/G2B /G33 /G39 /G27/G27/G14 /G2B /G2E/G14/G61 /G2E/G13 /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G24/G2B /G24/G2F /G13/G13 /G18 /G37 /G27/G2F/G3C /G14 /G37 /G2B/G2F/G27 /G17 /G19 /G37 /G27/G2F/G3C /G15 /G27/G2B /G13/G14 /G37 /G2B/G2F/G27 /G1A /G27/G2F /G37 /G2B/G2F/G27 /G24/G47/G47 /G55 /G11 /G13 /G1B /G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E /G37 /G27/G2F/G3C /G15 /G37 /G27/G2F/G3C /G15 /G37 /G2B/G2F/G27 /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G39 /G2C/G2B /G33 /G39 /G27/G27/G14 /G2B /G2E/G14/G61 /G2E/G13 /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G14/G13 /G57/G4C /G50/G48/G56 /G55/G48/G53/G48/G44/G57 /G14/G15/G58/G56 /G5B /G14/G13 /G20/G14 /G15/G13/G58/G56 /G24/G47/G47 /G55 /G11 /G14 /G1C /G37 /G27/G2F/G3C /G14 /G14/G14 /G14/G1A /G15/G14 /G37 /G27/G2F/G3C /G14 /G15/G15 /G15/G16 /G32/G2B /G32/G2F /G14/G13 /G37 /G27/G2F/G3C /G14 /G13/G13 /G24/G2B /G24/G47/G47 /G55 /G11 /G13 /G37 /G36/G37 /G25 /G14 /G37 /G27/G2F/G3C /G15 /G37 /G36/G37 /G25 /G14 /G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E /G13/G14 Chapter 9. EPROM
2) EPROM Read Mode /G26/G52/G51/G57/G4C /G51/G58/G48 /G57 /G52 /G31/G48 /G5B /G57 /G33/G44/G4A/G48 /G11 /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G37 /G39/G33 /G33/G35 /G39 /G2C/G2B /G33 /G37 /G39/G33 /G33/G36 /G39 /G27/G27/G14 /G2B /G37 /G33 /G2E/G14/G61 /G2E/G13 /G30/G2B/G0B /G13/G14 /G0C /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G13/G13/G13 /G13/G13 /G14/G1B/G5B /G37 /G33 /G37 /G2E/G15/G27 /G37 /G2E/G15/G36 /G35/G48/G56/G48/G57 /G28/G53/G55/G52/G50 /G39 /G48/G55/G4C /G49/G5C /G30 /G52/G47/G48 /G56 /G48/G57 /G57/G4C /G51/G4A /G15 /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G37 /G30/G32/G27/G28 /G30/G2F/G0B /G14 /G13/G0C /G16 /G14 /G25 /G4F /G52/G46/G4E /G13/G13 /G24/G2B /G37 /G2B/G2F/G27 /G24/G47/G47 /G55 /G11 /G13 /G37 /G27/G2F/G3C /G14 /G37 /G27/G2F/G3C /G15 #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. OSC1 is made of a block of 8 x Tp clock. 3. From this time when the reset is released (K2=\High\) , OSC1 clock is counted by 1-bolck. 4. For device verify. If you set Lock bit, output data is always \0F\h. /G24/G2B /G1D /G2B/G4C /G4A/G4B /G45/G4C /G57 /G24 /G47 /G47/G55/G48 /G56/G56 /G2C/G51 /G53 /G58/G57 /G2F /G44 /G57/G46/G4B /G24 /G2F /G1D /G2F /G52 /G5A /G45/G4C /G57 /G24 /G47/G47/G55 /G48 /G56 /G56 /G2C /G51/G53/G58/G57 /G2F/G44 /G57 /G46 /G4B /G27/G2B /G1D /G2B/G4C/G4A /G4B /G45 /G4C/G57 /G27/G44 /G57/G44 /G2C /G51/G53 /G58 /G57 /G2F/G44 /G57/G46/G4B /G27 /G2F /G1D /G2F/G52 /G5A /G45/G4C /G57 /G27 /G44 /G57 /G44 /G2C /G51/G53/G58/G57 /G2F/G44 /G57 /G46 /G4B /G32/G2B /G1D /G2B/G4C/G4A /G4B /G45 /G4C/G57 /G27/G44 /G57/G44 /G32/G58 /G57/G53 /G58 /G57 /G32 /G2F /G1D /G2F/G52 /G5A /G45/G4C /G57 /G27 /G44 /G57 /G44 /G32 /G58/G57 /G53/G58/G57 /G30/G2B /G1D /G2B /G4C /G4A/G4B /G45/G4C /G57 /G30 /G52 /G47/G48 /G2C /G51/G53/G58 /G57 /G2F/G44 /G57 /G46 /G4B /G30/G2F /G1D /G2F/G52 /G5A /G45/G4C /G57 /G30/G52/G47/G48 /G2C/G51 /G53/G58/G57 /G2F /G44 /G57/G46 /G4B Chapter 9. EPROM
- Continue - /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G39 /G2C/G2B /G33 /G39 /G27/G27/G14 /G2B /G2E/G14/G61 /G2E/G13 /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G24/G2B /G24/G2F /G13/G13 /G18 /G37 /G27/G2F/G3C /G14 /G37 /G2B/G2F/G27 /G17 /G19 /G37 /G27/G2F/G3C /G15 /G14/G13 /G1A /G24/G47/G47 /G55 /G11 /G13 /G1B /G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E /G37 /G2B/G2F/G27 /G32/G2B /G37 /G36/G37 /G25 /G14 /G32/G2F /G37 /G36/G37 /G25 /G14 /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G39 /G2C/G2B /G33 /G39 /G27/G27/G14 /G2B /G2E/G14/G61 /G2E/G13 /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G1C /G13/G13 /G14/G13 /G14/G13 /G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E /G14/G14 /G14/G15 /G14/G16 /G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E /G37 /G27/G2F/G3C /G14 /G14/G13 /G37 /G27/G2F/G3C /G14 /G37 /G27/G2F/G3C /G15 /G32/G2F /G24/G2B /G24/G2F /G37 /G2B/G2F/G27/G37 /G2B/G2F/G27 /G37 /G27/G2F/G3C /G15 /G24/G47/G47 /G55 /G11 /G14 /G32/G2B /G37 /G36/G37 /G25 /G14 Chapter 9. EPROM
3) Lock Bit Write Mode /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G37 /G39/G33 /G33/G35 /G39 /G2C/G2B /G33 /G37 /G39/G33 /G33/G36 /G39 /G27/G27/G14 /G2B /G37 /G33 /G2E/G14/G61 /G2E/G13 /G30/G2B/G0B /G13/G14 /G0C /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G14/G1B/G5B /G37 /G33 /G37 /G2E/G15/G27 /G37 /G2E/G15/G36 /G35/G48/G56/G48/G57 /G2F/G52/G46/G4E /G3A /G55/G4C/G57/G48 /G30 /G52/G47/G48 /G56/G48/G57/G57/G4C/G51/G4A /G15 /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G37 /G30/G32/G27/G28 /G30/G2F/G0B /G13 /G13/G0C /G16 /G14 /G25 /G4F /G52/G46/G4E /G3A /G44 /G4C/G57 /G46/G5C /G46/G4F /G48 /G30/G2B /G1D /G2B/G4C /G4A/G4B /G45/G4C /G57 /G30/G52/G47/G48 /G2C /G51 /G53/G58/G57 /G2F/G44 /G57/G46/G4B /G30/G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G30 /G52/G47 /G48 /G2C /G51/G53/G58/G57 /G2F/G44 /G57/G46/G4B #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. OSC1 is made of a block of 8 x Tp clock. 3. From this time when the reset is released (K2=\High\) , OSC1 clock is counted by 1-bolck. 4. If not written during 10 times repeats(120us), repeat the 5 times until all is written. /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G39 /G2C/G2B /G33 /G39 /G27/G27/G14 /G2B /G2E/G14/G61 /G2E/G13 /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G14/G13 /G57/G4C /G50/G48/G56 /G55/G48/G53/G48/G44/G57 /G14/G15/G58/G56 /G5B /G14/G13 /G20/G14 /G15/G13/G58/G56 /G17 /G13/G13 /G1B /G14/G17 /G37 /G27/G2F/G3C /G14 /G14/G18 /G14/G14 /G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E/G14 /G25 /G4F /G52/G46/G4E /G37 /G27/G2F/G3C /G14 /G3A /G44 /G4C/G57 /G46/G5C /G46/G4F /G48 Chapter 9. EPROM
4) Lock Bit Read Mode /G32 /G36/G26/G14 /G39/G27/G27 /G39 /G27/G27/G14 /G2B /G37 /G39/G33 /G33/G35 /G39 /G2C/G2B /G33 /G37 /G39/G33 /G33/G36 /G39 /G27/G27/G14 /G2B /G37 /G33 /G2E/G14/G61 /G2E/G13 /G30/G2B/G0B /G13/G14 /G0C /G2E/G15 /G2E/G16/G12 /G39/G33 /G33 /G27/G17/G61/G27/G13 /G14/G1B/G5B /G37 /G33 /G37 /G2E/G15/G27 /G37 /G2E/G15/G36 /G35/G48/G56/G48/G57 /G2F/G52/G46/G4E /G35/G48/G44/G47 /G30 /G52/G47/G48 /G56/G48/G57/G57/G4C/G51/G4A /G15 /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G14 /G25 /G4F /G52/G46/G4E /G37 /G30/G32/G27/G28 /G30/G2F/G0B /G13 /G14/G0C /G16 /G14 /G25 /G4F /G52/G46/G4E /G27/G18 /G2F/G52/G46 /G4E /G45 /G4C /G57 /G32/G58/G57/G53/G58/G57 /G37 /G36/G37 /G25 /G15 /G30/G2B /G1D /G2B/G4C /G4A/G4B /G45/G4C /G57 /G30/G52/G47/G48 /G2C /G51 /G53/G58/G57 /G2F/G44 /G57/G46/G4B /G30/G2F /G1D /G2F/G52/G5A /G45/G4C /G57 /G30 /G52/G47 /G48 /G2C /G51/G53/G58/G57 /G2F/G44 /G57/G46/G4B #. Note : 1. Internal system is reset at VPP = 12.5V and K2=\Low\ 2. OSC1 is made of a block of 8 x Tp clock. 3. From this time when the reset is released (K2=\High\) , OSC1 clock is counted by 1-bolck. 4. Lock data is outputted from D5 port. If you set Lock bit, the output data of D5 is always \H\. Chapter 9. EPROM
/G3A /G55 /G4C/G57/G48 /G58/G56 /G4C/G51/G4A /G57/G4B /G48 /G28/G33 /G35 /G32/G30 /G3A /G55/G4C /G57/G48/G55 /G36/G46/G55/G48/G48/G51/G4C /G51 /G4A /G0B/G14/G18/G13 /GCE /G0F /G17/G13 /G4B/G52/G58/G55/G56/G0C /G39/G48/G55/G4C/G49/G5C /G37 /G48/G56 /G57 /G58/G56/G4C /G51/G4A /G28/G33 /G35 /G32/G30 /G3A /G55/G4C /G57/G48/G55 /G29/G58/G51/G46/G57/G4C /G52/G51 /G37 /G48 /G56 /G57 /G58/G56/G4C /G51/G4A /G30 /G44/G51/G58 /G44/G4F /G37 /G48/G56/G57 Caution when programming Chapter 9. EPROM Writing should be done at the defined voltage and timing. In case of EPROM mode, programming voltage is 12.5V. More than defined voltage can give device so great damage to destroy it. Before writing you had better ascertain the characteristics of socket and socket adapter of EPROM writer. It can happen to write error when you touch socket adapter or device. We recommend below flow to improve reliability after writing. /GDD Timing Flowchart for Eprom Program / Verify. /G49/G44 /G4C/G4F /G35 /G48 /G56/G48/G57 /G0B/G36/G48 /G57 /G28/G33/G35/G32/G30 /G5A/G55/G4C/G57 /G48 /G50 /G52 /G47 /G48 /G0C /G36 /G37/G24/G35 /G37 /G29 /G4C/G55/G56 /G57 /G24 /G47/G47 /G55 /G48/G56 /G56 /G51/G20/G13 /G51/G0E/G14 /GE2 /G51 /G28/G53 /G55 /G52/G50 /G3A /G55/G4C/G57/G48 /G35/G48/G53/G48 /G44/G57 /G58 /G51/G57/G4C/G4F /G51 /G48 /G44/G55 /G14 /G13/G13 /G58 /G56 /G0B /G14 /G15 /G58 /G56 /G0D /G14 /G13 /G20/G14 /G15 /G13 /G58/G56 /G23 /G18 /G13 /G13 /G4E/G2B/G5D/G0C /G39 /G48/G55 /G4C/G49/G5C /G44 /G47 /G47/G55/G48/G56 /G56 /G0E /G14 /GE2 /G44 /G47 /G47/G55/G48 /G56/G56 /G53/G44 /G56/G56 /G49/G44 /G4C/G4F /G5C/G48 /G56 /G51/G52 /G51/G52 /G5C/G48 /G56 /G28/G53 /G55 /G52/G50 /G3A /G55/G4C/G57/G48 /G0B/G3A /G55 /G4C/G57/G48 /G52 /G51 /G48 /G50 /G52/G55 /G48 /G57 /G4C/G50 /G48/G0C /G35 /G48 /G56/G48/G57 /G0B/G36/G48 /G57 /G28/G53/G55/G52 /G50 /G35 /G48 /G44 /G47 /G50 /G52 /G47 /G48 /G0C /G55/G48 /G44/G47 /G44 /G4F /G4F /G44/G47/G47 /G55/G48 /G56 /G56 /G28/G31 /G27 /G49/G44 /G4C/G4F /G53/G44 /G56/G56 /G26/G4B /G44 /G51/G4A /G48 /G57/G4B/G48 /G50 /G52 /G47 /G48 /G0B/G39 /G33/G33 /G20/G13/G39 /G0F /G39 /G27/G27 /G20 /G13 /G39 /G0C /G55/G48 /G44/G47 /G44 /G4F /G4F /G44/G47/G47 /G55/G48 /G56 /G56 /G0B/G25/G4F /G44 /G51/G4E /G39 /G48 /G55/G4C/G49 /G5C/G0C /G53/G44 /G56/G56 /G35 /G48 /G56/G48/G57 /G0B/G36/G48 /G57 /G28/G53/G55/G52 /G50 /G35 /G48 /G44 /G47 /G50 /G52 /G47 /G48 /G0C /G1E /G39 /G27/G27 /G20/G18/G11 /G18/G39 /G1E /G39 /G33/G33 /G20/G14/G15 /G11/G18 /G39 /G26/G4B /G44 /G51/G4A /G48 /G57/G4B/G48 /G50 /G52 /G47 /G48 /G0B/G39 /G33/G33/G20/G13 /G39 /G0F /G39 /G27/G27/G20/G13/G39 /G0C /G1E /G39 /G27/G27 /G20/G18/G11 /G18/G39 /G1E /G39 /G33/G33 /G20/G14/G15 /G11/G18 /G39 /G1E /G39 /G27/G27 /G20/G16/G11 /G13/G39 /G1E /G39 /G33/G33 /G20/G14/G15 /G11/G18 /G39 /G35/G48/G53/G52 /G55/G57 /G25/G4F /G44 /G51 /G4E /G39 /G48 /G55/G4C/G49/G5C /G29 /G44/G4C/G4F/G58 /G55/G48 /G4F /G44 /G56/G57 /G44 /G47 /G47/G55/G48/G56 /G56 /G22 /G51/G1F/G14 /G13/G22 /G36/G48/G57 /G39 /G33/G33/G20/G13/G39 /G36/G48/G57 /G39 /G27/G27/G20/G13/G39 /G35/G48/G53/G52 /G55/G57 /G33/G55/G52 /G4A /G55/G44 /G50 /G50 /G4C/G51/G4A /G29 /G44/G4C/G4F/G58 /G55/G48 /G35/G48/G53/G52 /G55/G57 /G33/G55/G52 /G4A /G55/G44 /G50 /G50 /G4C/G51/G4A /G32/G2E/G04 /G35/G48/G53/G52 /G55/G57 /G39 /G48/G55 /G4C/G49/G5C /G29 /G44/G4C/G4F/G58 /G55/G48
Chapter 9. EPROM /GDD Timing Flowchart for Lock Bit Program / Verify. /G3C/G48/G56 /G31/G52 /G49/G44 /G4C/G4F /G53/G44 /G56/G56 /G1E /G39 /G27/G27 /G20/G18/G11 /G18/G39 /G1E /G39 /G33/G33 /G20/G14/G15 /G11/G18 /G39 /G1E /G39 /G27/G27 /G20/G18/G11 /G18/G39 /G1E /G39 /G33/G33 /G20/G14/G15 /G11/G18 /G39 /G35/G48/G53/G52 /G55/G57 /G2F/G52 /G46/G4E /G25 /G4C/G57 /G35 /G48/G44 /G47 /G29 /G44/G4C/G4F/G58 /G55/G48 /G35 /G48 /G56/G48/G57 /G0B/G36/G48 /G57 /G2F /G52/G46 /G4E /G25/G4C/G57 /G35 /G48 /G44 /G47 /G50 /G52 /G47 /G48 /G0C /G55/G48 /G44/G47 /G2F /G52/G46 /G4E /G25/G4C/G57/G0B/G27/G18 /G0C /G26/G4B /G44 /G51/G4A /G48 /G57/G4B/G48 /G50 /G52 /G47 /G48 /G0B/G39 /G33/G33 /G20/G13/G39 /G0F /G39 /G27/G27 /G20 /G13 /G39 /G0C /G49/G44 /G4C/G4F /G53/G44 /G56/G56 /G35 /G48 /G56/G48/G57 /G0B/G36/G48 /G57 /G2F /G52/G46 /G4E /G25/G4C/G57 /G35 /G48 /G44 /G47 /G50 /G52 /G47 /G48 /G0C /G55/G48 /G44/G47 /G2F /G52/G46 /G4E /G25/G4C/G57/G0B/G27/G18 /G0C /G26/G4B /G44 /G51/G4A /G48 /G57/G4B/G48 /G50 /G52 /G47 /G48 /G0B/G39 /G33/G33 /G20/G13/G39 /G0F /G39 /G27/G27 /G20 /G13 /G39 /G0C /G1E /G39 /G27/G27 /G20/G16/G11 /G13/G39 /G1E /G39 /G33/G33 /G20/G14/G15 /G11/G18 /G39 /G28/G31 /G27 /G36/G48/G57 /G39 /G33/G33/G20/G13/G39 /G36/G48/G57 /G39 /G27/G27/G20/G13/G39 /G35/G48/G53/G52 /G55/G57 /G2F /G52/G46 /G4E /G25 /G4C /G57 /G33/G55/G52 /G4A/G55/G44/G50 /G50 /G4C/G51/G4A /G32/G2E/G04 /G35 /G48 /G56/G48/G57 /G0B/G36/G48 /G57 /G2F /G52/G46 /G4E /G25/G4C/G57 /G5A /G55 /G4C/G57/G48 /G50 /G52/G47/G48 /G0C /G36 /G37/G24/G35 /G37 /G3A/G44/G4C /G57 /G46 /G5C/G46 /G4F /G48 /G51/G20/G13 /G51/G0E/G14 /GE2 /G51 /G2F /G52/G46 /G4E /G25 /G4C /G57 /G3A /G55/G4C/G57/G48 /G35/G48/G53/G48 /G44/G57 /G58 /G51/G57/G4C/G4F /G51 /G48 /G44/G55 /G14 /G13/G13 /G58 /G56 /G0B /G14 /G15 /G58 /G56 /G0D /G14 /G13 /G20/G14 /G15 /G13 /G58/G56 /G23 /G18 /G13 /G13 /G4E/G2B/G5D/G0C /G51/G1F/G14 /G13/G22
/G30 /G24 /G36/G2E /G32/G35/G27/G28/G35 /G09 /G39/G28/G35/G2C/G29/G2C/G26/G24 /G37/G2C/G32/G31 /G36/G2B/G28/G28/G37 /G2A/G30 /G36/G16 /G10/G35 /G15/G11 /G27/G48 /G59/G4C /G46/G48 /G2C/G51/G49/G52 /G55/G50 /G44 /G57/G4C /G52/G51 /G33/G44/G46 /G4E/G44/G4A/G48 /G17/G11 /G30/G44/G55/G4E/G4C /G51 /G4A /G36/G53/G48 /G46/G4C /G49/G4C /G46/G44/G57/G4C /G52/G51 /G19/G11 /G35/G32/G30 /G26/G32/G27/G28 /G39/G48/G55 /G4C /G49/G4C /G46/G44/G57/G4C /G52/G51 /G15 /G13 /G36/G36 /G32/G33 /G14 /G19 /G36/G32/G33 /G0B/G14 /G18 /G13/G50 /G4C/G4F/G0C /G14 /G19 /G36/G32/G33 /G0B/G16 /G13 /G13/G50 /G4C/G4F/G0C /G14 /G19 /G27/G2C/G33 /G15 /G13 /G36/G32/G33 /G15 /G13 /G27/G2C/G33 /G15 /G17 /G36/G32/G33 /G16/G11 /G30/G44/G56/G4E /G32/G53/G57/G4C /G52 /G51 /G2C/G51 /G46/G4F/G58 /G56 /G4C /G52 /G51 /G52 /G49 /G33/G58 /G4F/G4F /G10/G58/G53 /G35/G48 /G4A/G4C /G56 /G57 /G48 /G55 /G33/G52/G55/G57 /G3C/G12 /G31 /G35/G13/G0D /G35/G14/G0D /G35/G15/G0D /G35/G16/G0D /G2C/G51 /G46/G4F/G58 /G56 /G4C /G52 /G51 /G52 /G49 /G46 /G52/G51/G47/G48 /G51 /G56 /G52 /G55 /G49 /G52 /G55 /G32/G56/G46/G11 /G3C/G12 /G31/G36/G5C /G56/G57/G48 /G50 /G26/G4F/G52 /G46/G4E /G36/G48 /G4F/G48 /G46/G57/G4C /G52 /G51 /G49 /G52/G46/G56 /G12 /G19 /G49 /G52 /G56 /G46/G12/G17 /G1B /G35/G48 /G4F/G48 /G44 /G56/G48 /G52 /G49 /G36/G57 /G52 /G53 /G50/G52 /G47 /G48 /G33/G52/G55/G57 /G3C/G12 /G31 /G2E/G13 /G2E/G14 /G2E/G15 /G2E/G16 /G35/G13/G0D /G35/G14/G0D /G35/G15/G0D /G35/G16/G0D /G36 /G57/G44 /G57 /G58/G56 /G52/G49 /G27 /G53/G52 /G55 /G57 /G5A /G4B/G4C/G4F /G48 /G36/G57 /G52 /G53 /G50/G52 /G47 /G48 /G33/G52/G55/G57 /G44/G12 /G45 /G27/G13 /G27/G14 /G27/G15 /G27/G16 /G27/G17 /G27/G18 /G27/G19 /G27/G1A/G0D/G0D /G18/G11 /G27/G48 /G4F /G4C /G59/G48/G55 /G5C /G36 /G46/G4B /G48/G47/G58 /G4F /G48 /G30/G44/G56 /G4E /G36/G44 /G50 /G53/G4F/G48 /G35/G4C/G56/G4E /G32 /G55/G47/G48/G55 /G27/G44/G57/G48 /G11/G11 /G34 /G58/G44/G51/G57 /G4C/G57 /G5C /G53/G46 /G56 /G53/G46 /G56 /G26 /G52 /G51/G49/G4C/G55 /G50/G44 /G57 /G4C/G52 /G51 /G11/G11 /G27/G44/G57/G48 /G1D /G15/G13/G13/G13/G11 /G11 /G11 /G2B/G5C/G58/G51/G47/G44/G4C /G30 /G4C /G46/G55/G52 /G28/G4F/G48/G46/G57 /G55/G52/G51/G4C /G46 /G56 /G5A /G55/G4C /G57 /G48 /G4C/G51 /G45/G48/G4F /G52 /G5A /G26/G58/G56/G57 /G52/G50/G48/G55 /G5A /G55/G4C/G57/G48 /G4C /G51 /G45/G48/G4F/G52/G5A /G31/G44/G50 /G48 /G09 /G36/G4C /G4A/G51/G44/G57 /G58/G55/G48 /G39/G48/G55/G4C /G49 /G4C/G46/G44/G57 /G4C /G52/G51 /G27/G44/G57 /G48 /G1D /G33/G4F/G48/G44/G56/G48 /G46/G52/G51/G49/G4C /G55/G50 /G52/G58/G55 /G59/G48/G55/G4C /G49/G4C/G46/G44/G57 /G4C/G52/G51 /G47/G44/G57 /G44 /G11 /G26/G4B/G48/G46/G4E /G36/G58/G50 /G1D /G37/G28 /G2F /G1D /G1B/G15/G10/G17/G16/G14/G10/G15/G1A/G13/G10/G17/G13/G1A/G1B /G29/G24 /G3B /G1D /G1B/G15/G10/G17/G16/G14/G10/G15/G1A/G13/G10/G17/G13/G1A/G18 /G24/G53/G53 /G55/G52/G59 /G44/G4F /G27/G44/G57/G48 /G1D /G11 /G11 /G2C /G44/G4A/G55/G48/G48 /G5A/G4C /G57/G4B /G5C /G52/G58/G55 /G59/G48/G55 /G4C/G49/G4C /G46/G44/G57/G4C/G52/G51 /G47/G44 /G57 /G44 /G44/G51/G47 /G46/G52/G51/G49/G4C /G55/G50 /G5C/G52/G58 /G57 /G52 /G50 /G44/G4E/G48 /G50 /G44/G56/G4E /G56/G48/G57 /G11 /G37/G28 /G2F /G1D /G29 /G24/G3B /G1D /G26/G52/G50 /G53/G44/G51/G5C /G31/G44/G50 /G48 /G1D /G36/G48/G46 /G57/G4C /G52/G51 /G31 /G44/G50 /G48 /G1D /G36/G4C /G4A/G51/G44/G57 /G58/G55/G48 /G1D /G23 /G15/G1A/G46/G15/G18/G19 /G17/G11 /G2C/G49 /G5C/G52/G58 /G58 /G56/G48 /G49/G52 /G56/G46/G12/G19/G0F /G5A /G48 /G55/G48/G46 /G52/G50 /G50/G48/G51/G47 /G4C/G51 /G46 /G4F /G58/G56/G4C /G52 /G51 /G52/G49 /G46/G52/G51/G47 /G48/G51 /G56/G52 /G55 /G44 /G51 /G47 /G49/G52/G56/G46/G12/G17/G1B /G0F /G51 /G52 /G4C/G51 /G46 /G4F /G58/G56 /G4C/G52/G51 /G52 /G49 /G46 /G52/G51 /G47/G48/G51 /G56/G52 /G55 /G0D /G1D /G30/G44/G55/G4E /G48 /G47 /G53 /G52/G55 /G57 /G4C /G56 /G51 /G52/G57 /G44 /G59 /G44 /G4C/G4F /G44/G45 /G4F/G48 /G49/G52/G55 /G2A /G30 /G36 /G16/G19 /G12 /G16 /G1A/G13/G13 /G17 /G0D/G0D /G1D /G30 /G44 /G55 /G4E /G48/G47 /G53 /G52 /G55/G57 /G4C/G56 /G51 /G52 /G57 /G44/G59/G44 /G4C/G4F/G44 /G45 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