AVRASM ver. 2.2.7 main.asm Fri Jun 30 16:51:54 2023 [builtin](2): Including file '/home/sergeyyarkov/.mchp_packs/Microchip/ATtiny_DFP/3.0.151/avrasm/inc\tn2313Adef.inc' main.asm(15): Including file 'definitions.asm' main.asm(16): Including file 'macros.asm' main.asm(329): Including file 'div16u.asm' div16u.asm(22): warning: Register r16 already defined by the .DEF directive main.asm(329): 'div16u.asm' included form here div16u.asm(23): warning: Register r17 already defined by the .DEF directive main.asm(329): 'div16u.asm' included form here div16u.asm(24): warning: Register r16 already defined by the .DEF directive main.asm(329): 'div16u.asm' included form here div16u.asm(25): warning: Register r17 already defined by the .DEF directive main.asm(329): 'div16u.asm' included form here div16u.asm(27): warning: Register r19 already defined by the .DEF directive main.asm(329): 'div16u.asm' included form here div16u.asm(28): warning: Register r20 already defined by the .DEF directive main.asm(329): 'div16u.asm' included form here main.asm(330): Including file 'div8u.asm' div8u.asm(18): warning: Register r15 already defined by the .DEF directive main.asm(330): 'div8u.asm' included form here div8u.asm(19): warning: Register r16 already defined by the .DEF directive main.asm(330): 'div8u.asm' included form here div8u.asm(20): warning: Register r16 already defined by the .DEF directive main.asm(330): 'div8u.asm' included form here div8u.asm(21): warning: Register r17 already defined by the .DEF directive main.asm(330): 'div8u.asm' included form here div8u.asm(22): warning: Register r18 already defined by the .DEF directive main.asm(330): 'div8u.asm' included form here main.asm(331): Including file 'mpy16u.asm' mpy16u.asm(19): warning: Register r16 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here mpy16u.asm(20): warning: Register r17 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here mpy16u.asm(21): warning: Register r18 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here mpy16u.asm(22): warning: Register r19 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here mpy16u.asm(23): warning: Register r18 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here mpy16u.asm(24): warning: Register r19 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here mpy16u.asm(25): warning: Register r20 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here mpy16u.asm(26): warning: Register r21 already defined by the .DEF directive main.asm(331): 'mpy16u.asm' included form here main.asm(498): warning: Register r16 already defined by the .DEF directive main.asm(499): warning: Register r17 already defined by the .DEF directive [builtin](2): Including file '/home/sergeyyarkov/.mchp_packs/Microchip/ATtiny_DFP/3.0.151/avrasm/inc\tn2313Adef.inc' main.asm(15): Including file 'definitions.asm' main.asm(16): Including file 'macros.asm' main.asm(329): Including file 'div16u.asm' main.asm(330): Including file 'div8u.asm' main.asm(331): Including file 'mpy16u.asm' ; ;***** Created: 2011-02-09 12:04 ******* Source: ATtiny2313A.xml ********* ;************************************************************************* ;* A P P L I C A T I O N N O T E F O R T H E A V R F A M I L Y ;* ;* Number : AVR000 ;* File Name : "tn2313Adef.inc" ;* Title : Register/Bit Definitions for the ATtiny2313A ;* Date : 2011-02-09 ;* Version : 2.35 ;* Support E-mail : avr@atmel.com ;* Target MCU : ATtiny2313A ;* ;* DESCRIPTION ;* When including this file in the assembly program file, all I/O register ;* names and I/O register bit names appearing in the data book can be used. ;* In addition, the six registers forming the three data pointers X, Y and ;* Z have been assigned names XL - ZH. Highest RAM address for Internal ;* SRAM is also defined ;* ;* The Register names are represented by their hexadecimal address. ;* ;* The Register Bit names are represented by their bit number (0-7). ;* ;* Please observe the difference in using the bit names with instructions ;* such as "sbr"/"cbr" (set/clear bit in register) and "sbrs"/"sbrc" ;* (skip if bit in register set/cleared). The following example illustrates ;* this: ;* ;* in r16,PORTB ;read PORTB latch ;* sbr r16,(1< ; **** СЕГМЕНТ ДАННЫХ ******************************************** .DSEG .ORG SRAM_START 000060 MCU_STATE: .BYTE 1 ; Текущее состояние МК 000061 SRAM_TEMP_1: .BYTE 2 ; Хранения временного 16-бит числа в ячейке 000063 DIGITS: .BYTE 4 ; Ячейки, где хранятся символы, для вывода на индикатор 000067 CURRENT_DIGIT: .BYTE 1 ; Номер разряда индикатора, который сейчас горит 000068 TEMP_L: .BYTE 1 ; Младший байт температуры 000069 TEMP_H: .BYTE 1 ; Старший байт температуры 00006a TEMP_F: .BYTE 1 ; Дробная часть 00006b SETTING_TEMP_H: .BYTE 1 ; Уставка температуры (старший байт) 00006c SETTING_TEMP_L: .BYTE 1 ; Уставка температуры (младший байт) 00006d SETTING_HYST: .BYTE 1 ; Гистерезис: отклонение от уставки 00006e SETTING_MODE: .BYTE 1 ; Режим работы: '1' - нагрев; '0' - 'охлаждение' 00006f DEVICE_FAMILY_CODE: .BYTE 1 ; Должно быть 0x10 для DS18B20 000070 PROGRAM_STEPS: .BYTE 1 ; Текущий "шаг" для настройки (0 - ничего; 1 - уставка T; 2 - гистерезис) 000071 SW_DATA: .BYTE 1 ;// // ; **** СЕГМЕНТ КОДА ********************************************** .CSEG // .ORG 0x00 000000 c06f rjmp RESET_vect .ORG 0x04 000004 9518 reti .ORG 0x000B 00000b c002 rjmp PCINT0_vect .ORG 0x000D 00000d c00d rjmp TIMER0_COMPA_vect // // PCINT0_vect: 00000e 930f push r16 00000f 931f push r17 000010 b70f in r16, SREG 000011 b316 in r17, SW_PIN ; если нажаты две кнопки то входим в режим программирования 000012 701c andi r17, (1< // ; **** ДИНАМИЧЕСКАЯ ИНДИКАЦИЯ ************************************ TIMER0_COMPA_vect: 00001b 930f push r16 00001c 931f push r17 00001d 932f push r18 00001e 933f push r19 00001f 934f push r20 000020 935f push r21 000021 b75f in r21, SREG 000022 9140 0067 lds r20, CURRENT_DIGIT 000024 3045 cpi r20, 5 000025 f40c brge _CLR_CURRENT_DIGIT ; сброс активного разряда если >= 5 000026 c003 rjmp _indicate_1 _CLR_CURRENT_DIGIT: ; сброс текущего активного разряда в ноль 000027 2744 clr r20 000028 9340 0067 sts CURRENT_DIGIT, r20 _indicate_1: 00002a 3040 cpi r20, 0 00002b f481 brne _indicate_2 00002c 9893 cbi PORTD, DIGIT_2_PIN 00002d 9894 cbi PORTD, DIGIT_3_PIN 00002e 9895 cbi PORTD, DIGIT_4_PIN 00002f f00e brts PC+2 000030 c002 rjmp PC+3 000031 e00b ldi TEMP_REG_A, 11 ; // - 000032 c002 rjmp PC+3 000033 9100 0065 lds TEMP_REG_A, DIGITS+2 000035 2300 tst TEMP_REG_A 000036 f011 breq PC+3 000037 9a92 sbi PORTD, DIGIT_1_PIN 000038 c001 rjmp PC+2 000039 9892 cbi PORTD, DIGIT_1_PIN 00003a d350 rcall DISPLAY_DECODER 00003b d205 rcall USI_TRANSMIT _indicate_2: 00003c 3041 cpi r20, 1 00003d f481 brne _indicate_3 00003e 9892 cbi PORTD, DIGIT_1_PIN 00003f 9894 cbi PORTD, DIGIT_3_PIN 000040 9895 cbi PORTD, DIGIT_4_PIN 000041 9100 0064 lds TEMP_REG_A, DIGITS+1 000043 9130 0065 lds r19, DIGITS+2 000045 2b03 or TEMP_REG_A, r19 000046 f011 breq PC+3 000047 9a93 sbi PORTD, DIGIT_2_PIN 000048 c001 rjmp PC+2 000049 9893 cbi PORTD, DIGIT_2_PIN 00004a 9100 0064 lds TEMP_REG_A, DIGITS+1 00004c d33e rcall DISPLAY_DECODER 00004d d1f3 rcall USI_TRANSMIT _indicate_3: 00004e 3042 cpi r20, 2 00004f f459 brne _indicate_4 000050 9892 cbi PORTD, DIGIT_1_PIN 000051 9893 cbi PORTD, DIGIT_2_PIN 000052 9895 cbi PORTD, DIGIT_4_PIN 000053 9a94 sbi PORTD, DIGIT_3_PIN 000054 9100 0063 lds TEMP_REG_A, DIGITS 000056 d334 rcall DISPLAY_DECODER 000057 2d00 mov r16, r0 000058 770f cbr r16, (1<<7) 000059 2e00 mov r0, r16 00005a d1e6 rcall USI_TRANSMIT _indicate_4: 00005b 3043 cpi r20, 3 00005c f441 brne _indicate_exit 00005d 9892 cbi PORTD, DIGIT_1_PIN 00005e 9893 cbi PORTD, DIGIT_2_PIN 00005f 9894 cbi PORTD, DIGIT_3_PIN 000060 9a95 sbi PORTD, DIGIT_4_PIN 000061 9100 0066 lds TEMP_REG_A, DIGITS+3 000063 d327 rcall DISPLAY_DECODER 000064 d1dc rcall USI_TRANSMIT _indicate_exit: 000065 9543 inc r20 000066 9340 0067 sts CURRENT_DIGIT, r20 000068 bf5f out SREG, r21 000069 915f pop r21 00006a 914f pop r20 00006b 913f pop r19 00006c 912f pop r18 00006d 911f pop r17 00006e 910f pop r16 00006f 9518 reti ;// ; **** СТАРТ ПРОГРАММЫ ******************************************* RESET_vect: 000070 ed0f ldi TEMP_REG_A, LOW(RAMEND) 000071 bf0d out SPL, TEMP_REG_A // ; **** ПРОЦЕСС ИНИЦИАЛИЗАЦИИ МК ********************************** MCU_INIT: ; **** ИНИЦИАЛИЗАЦИЯ ПИНОВ ************************************* 000072 e70f 000073 bb01 outi r16, DDRD, (1< // ; **** ГЛАВНЫЙ ЦИКЛ ********************************************** LOOP: 0000c6 9100 0060 lds r16, MCU_STATE ; получаем текущее состояние МК ; rcall DISPLAY_UPD_DIGITS _STATE_DEFAULT: 0000c8 3000 cpi r16, MCU_STATE_DEFAULT 0000c9 f451 brne _STATE_PROGRAM 0000ca 9120 006a lds r18, TEMP_F 0000cc 9320 0066 sts DIGITS+3, r18 0000ce d103 rcall TEMP_UPD ; обновление данных о температуре 0000cf d2a1 rcall DISPLAY_UPD_DIGITS 0000d0 d0b4 rcall TEMP_COMPARSION ; логика термостата 0000d1 e011 0000d2 bf19 outi r17, TIMSK, (1< ; **** ПОДПРОГРАММЫ ********************************************** .INCLUDE "div16u.asm" ;* ;* "div16u" - 16/16 Bit Unsigned Division ;* ;* This subroutine divides the two 16-bit numbers ;* "dd8uH:dd8uL" (dividend) and "dv16uH:dv16uL" (divisor). ;* The result is placed in "dres16uH:dres16uL" and the remainder in ;* "drem16uH:drem16uL". ;* ;* Number of words :19 ;* Number of cycles :235/251 (Min/Max) ;* Low registers used :2 (drem16uL,drem16uH) ;* High registers used :5 (dres16uL/dd16uL,dres16uH/dd16uH,dv16uL,dv16uH, ;* dcnt16u) ;* ;*************************************************************************** ;***** Subroutine Register Variables .def drem16uL=r14 .def drem16uH=r15 .def dres16uL=r16 .def dres16uH=r17 .def dd16uL =r16 .def dd16uH =r17 .def dv16uL =r18 .def dv16uH =r19 .def dcnt16u =r20 ;***** Code div16u: 0000e5 24ee clr drem16uL ; clear remainder Low byte 0000e6 18ff sub drem16uH,drem16uH ; clear remainder High byte and carry 0000e7 e141 ldi dcnt16u,17 ; init loop counter d16u_1: 0000e8 1f00 rol dd16uL ; shift left dividend 0000e9 1f11 rol dd16uH 0000ea 954a dec dcnt16u ; decrement counter 0000eb f409 brne d16u_2 ; if done 0000ec 9508 ret ; return d16u_2: 0000ed 1cee rol drem16uL ; shift dividend into remainder 0000ee 1cff rol drem16uH 0000ef 1ae2 sub drem16uL,dv16uL ; remainder = remainder - divisor 0000f0 0af3 sbc drem16uH,dv16uH 0000f1 f420 brcc d16u_3 ; if result negative 0000f2 0ee2 add drem16uL,dv16uL ; restore remainder 0000f3 1ef3 adc drem16uH,dv16uH 0000f4 9488 clc ; clear carry to be shifted into result 0000f5 cff2 rjmp d16u_1 ; else d16u_3: 0000f6 9408 sec ; set carry to be shifted into result .INCLUDE "div8u.asm" 0000f7 cff0 ;* ;* "div8u" - 8/8 Bit Unsigned Division ;* ;* This subroutine divides the two register variables "dd8u" (dividend) and ;* "dv8u" (divisor). The result is placed in "dres8u" and the remainder in ;* "drem8u". ;* ;* Number of words :14 ;* Number of cycles :97 ;* Low registers used :1 (drem8u) ;* High registers used :3 (dres8u/dd8u,dv8u,dcnt8u) ;* ;*************************************************************************** ;***** Subroutine Register Variables .def drem8u =r15 ;remainder .def dres8u =r16 ;result .def dd8u =r16 ;dividend .def dv8u =r17 ;divisor .def dcnt8u =r18 ;loop counter ;***** Code 0000f8 18ff div8u: sub drem8u,drem8u ;clear remainder and carry 0000f9 e029 ldi dcnt8u,9 ;init loop counter 0000fa 1f00 d8u_1: rol dd8u ;shift left dividend 0000fb 952a dec dcnt8u ;decrement counter 0000fc f409 brne d8u_2 ;if done 0000fd 9508 ret ; return 0000fe 1cff d8u_2: rol drem8u ;shift dividend into remainder 0000ff 1af1 sub drem8u,dv8u ;remainder = remainder - divisor 000100 f418 brcc d8u_3 ;if result negative 000101 0ef1 add drem8u,dv8u ; restore remainder 000102 9488 clc ; clear carry to be shifted into result 000103 cff6 rjmp d8u_1 ;else 000104 9408 d8u_3: sec ; set carry to be shifted into result .INCLUDE "mpy16u.asm" 000105 cff4 ;* ;* "mpy16u" - 16x16 Bit Unsigned Multiplication ;* ;* This subroutine multiplies the two 16-bit register variables ;* mp16uH:mp16uL and mc16uH:mc16uL. ;* The result is placed in m16u3:m16u2:m16u1:m16u0. ;* ;* Number of words :14 + return ;* Number of cycles :153 + return ;* Low registers used :None ;* High registers used :7 (mp16uL,mp16uH,mc16uL/m16u0,mc16uH/m16u1,m16u2, ;* m16u3,mcnt16u) ;* ;*************************************************************************** ;***** Subroutine Register Variables .def mc16uL =r16 ;multiplicand low byte .def mc16uH =r17 ;multiplicand high byte .def mp16uL =r18 ;multiplier low byte .def mp16uH =r19 ;multiplier high byte .def m16u0 =r18 ;result byte 0 (LSB) .def m16u1 =r19 ;result byte 1 .def m16u2 =r20 ;result byte 2 .def m16u3 =r21 ;result byte 3 (MSB) .def mcnt16u =r22 ;loop counter ;***** Code 000106 2755 mpy16u: clr m16u3 ;clear 2 highest bytes of result 000107 2744 clr m16u2 000108 e160 ldi mcnt16u,16 ;init loop counter 000109 9536 lsr mp16uH 00010a 9527 ror mp16uL 00010b f410 m16u_1: brcc noad8 ;if bit 0 of multiplier set 00010c 0f40 add m16u2,mc16uL ;add multiplicand Low to byte 2 of res 00010d 1f51 adc m16u3,mc16uH ;add multiplicand high to byte 3 of res 00010e 9557 noad8: ror m16u3 ;shift right result byte 3 00010f 9547 ror m16u2 ;rotate right result byte 2 000110 9537 ror m16u1 ;rotate result byte 1 and multiplier High 000111 9527 ror m16u0 ;rotate result byte 0 and multiplier Low 000112 956a dec mcnt16u ;decrement loop counter 000113 f7b9 brne m16u_1 ;if not done, loop more 000114 9508 // TEMP_SEND_UART: 000115 930f push r16 000116 931f push r17 ; целая часть 000117 9100 0068 lds r16, TEMP_L 000119 2e50 mov r5, r16 00011a d014 rcall UART_WR_BYTE ; дробная часть 00011b 9100 006a lds r16, TEMP_F 00011d 2e50 mov r5, r16 00011e d010 rcall UART_WR_BYTE ; состояние реле 00011f b300 in r16, PIND 000120 7001 andi r16, (1< // UART_WR_BYTE: 00012f 9b5d sbis UCSRA, UDRE 000130 cffe rjmp UART_WR_BYTE 000131 b85c out UDR, r5 000132 9508 ret // // INIT_DEFAULT_PARAMS: 000133 e001 ldi r16, DEFAULT_SETTING_TEMP_H 000134 9300 006b sts SETTING_TEMP_H, r16 ; уставка HIGH 000136 2e40 mov EEP_D_r, r16 000137 e000 ldi r16, EEP_SETTING_TEMP_H 000138 2e30 mov EEP_A_r, r16 000139 d036 rcall EEP_WR_BYTE 00013a e20c ldi r16, DEFAULT_SETTING_TEMP_L 00013b 9300 006c sts SETTING_TEMP_L, r16 ; уставка LOW 00013d 2e40 mov EEP_D_r, r16 00013e e001 ldi r16, EEP_SETTING_TEMP_L 00013f 2e30 mov EEP_A_r, r16 000140 d02f rcall EEP_WR_BYTE 000141 e005 ldi r16, DEFAULT_SETTING_HYST 000142 9300 006d sts SETTING_HYST, r16 ; гистерезис 000144 2e40 mov EEP_D_r, r16 000145 e002 ldi r16, EEP_SETTING_HYST 000146 2e30 mov EEP_A_r, r16 000147 d028 rcall EEP_WR_BYTE 000148 e001 ldi r16, DEFAULT_SETTING_MODE 000149 9300 006e sts SETTING_MODE, r16 ; режим 00014b 2e40 mov EEP_D_r, r16 00014c e003 ldi r16, EEP_SETTING_MODE 00014d 2e30 mov EEP_A_r, r16 00014e d021 rcall EEP_WR_BYTE 00014f e100 ldi r16, 0x10 000150 2e40 mov EEP_D_r, r16 000151 e004 ldi r16, EEP_FIRST_TIME_RUN 000152 2e30 mov EEP_A_r, r16 000153 d01c rcall EEP_WR_BYTE 000154 9508 ret // // WRITE_PARAMS_TO_EEP: 000155 930f push r16 000156 9100 006b lds r16, SETTING_TEMP_H ; уставка HIGH 000158 2e40 mov EEP_D_r, r16 000159 e000 ldi r16, EEP_SETTING_TEMP_H 00015a 2e30 mov EEP_A_r, r16 00015b d014 rcall EEP_WR_BYTE 00015c 9100 006c lds r16, SETTING_TEMP_L ; уставка LOW 00015e 2e40 mov EEP_D_r, r16 00015f e001 ldi r16, EEP_SETTING_TEMP_L 000160 2e30 mov EEP_A_r, r16 000161 d00e rcall EEP_WR_BYTE 000162 9100 006d lds r16, SETTING_HYST ; гистерезис 000164 2e40 mov EEP_D_r, r16 000165 e002 ldi r16, EEP_SETTING_HYST 000166 2e30 mov EEP_A_r, r16 000167 d008 rcall EEP_WR_BYTE 000168 9100 006e lds r16, SETTING_MODE ; режим 00016a 2e40 mov EEP_D_r, r16 00016b e003 ldi r16, EEP_SETTING_MODE 00016c 2e30 mov EEP_A_r, r16 00016d d002 rcall EEP_WR_BYTE 00016e 910f pop r16 00016f 9508 ret// // EEP_WR_BYTE: 000170 94f8 cli 000171 930f push r16 _EEP_WR_BYTE_LP: ; ждем завершения предыдущей записи 000172 99e1 sbic EECR, EEPE 000173 cffe rjmp _EEP_WR_BYTE_LP ; режим программирования - атомарный 000174 e000 ldi r16, (0< // TEMP_COMPARSION: 000185 930f push r16 000186 931f push r17 000187 932f push r18 000188 933f push r19 000189 934f push r20 00018a 935f push r21 00018b 937f push r23 .DEF temp_r_l = r16 .DEF temp_r_h = r17 .DEF min_r_trhd_l = r11 .DEF min_r_trhd_h = r10 .DEF max_r_trhd_l = r13 .DEF max_r_trhd_h = r12 ; умножаем температуру на 10 00018c 9100 0068 lds mc16uL, TEMP_L // r16 00018e 9110 0069 lds mc16uH, TEMP_H // r17 000190 e02a ldi mp16uL, LOW(10) 000191 e030 ldi mp16uH, HIGH(10) 000192 df73 rcall mpy16u 000193 2f02 mov temp_r_l, m16u0 ; L 000194 2f13 mov temp_r_h, m16u1 ; H ; добавляем дробную часть 000195 9120 006a lds r18, TEMP_F 000197 2733 clr r19 000198 0f02 add temp_r_l, r18 000199 1f13 adc temp_r_h, r19 ; определяем нижний и верхний пороги 00019a 9140 006c lds r20, SETTING_TEMP_L 00019c 9150 006b lds r21, SETTING_TEMP_H 00019e 9160 006d lds r22, SETTING_HYST 0001a0 934f push r20 0001a1 935f push r21 0001a2 2777 clr r23 0001a3 1b46 sub r20, r22 0001a4 0b57 sbc r21, r23 0001a5 2eb4 mov min_r_trhd_l, r20 0001a6 2ea5 mov min_r_trhd_h, r21 0001a7 915f pop r21 0001a8 914f pop r20 0001a9 2777 clr r23 0001aa 0f46 add r20, r22 0001ab 1f57 adc r21, r23 0001ac 2ed4 mov max_r_trhd_l, r20 0001ad 2ec5 mov max_r_trhd_h, r21 ; определяем знак температуры 0001ae f00e brts _NEGATE_TEMP 0001af c004 rjmp _COMPARE _NEGATE_TEMP: 0001b0 9500 com temp_r_l 0001b1 9510 com temp_r_h 0001b2 5f0f subi temp_r_l, low(-1) 0001b3 4f1f sbci temp_r_h, high(-1) _COMPARE: ; проверяем нижний порог 0001b4 16b0 cp min_r_trhd_l, temp_r_l 0001b5 06a1 cpc min_r_trhd_h, temp_r_h 0001b6 f424 brge _MIN_THRESHOLD ; TEMP <= MIN ; проверяем верхний порог 0001b7 150d cp temp_r_l, max_r_trhd_l 0001b8 051c cpc temp_r_h, max_r_trhd_h 0001b9 f44c brge _MAX_THRESHOLD ; TEMP >= TOP 0001ba c00f rjmp _COMPARSION_EXIT _MIN_THRESHOLD: ; определяем режим работы 0001bb 9140 006e lds r20, SETTING_MODE 0001bd 2344 tst r20 0001be f411 brne PC+3 0001bf 9890 relay_off 0001c0 c001 rjmp PC+2 0001c1 9a90 relay_on 0001c2 c007 rjmp _COMPARSION_EXIT _MAX_THRESHOLD: 0001c3 9140 006e lds r20, SETTING_MODE 0001c5 2344 tst r20 0001c6 f411 brne PC+3 0001c7 9a90 relay_on 0001c8 c001 rjmp PC+2 0001c9 9890 relay_off _COMPARSION_EXIT: 0001ca 917f pop r23 0001cb 915f pop r21 0001cc 914f pop r20 0001cd 913f pop r19 0001ce 912f pop r18 0001cf 911f pop r17 0001d0 910f pop r16 0001d1 9508 ret // // TEMP_UPD: 0001d2 931f push r17 0001d3 d061 rcall TEMP_CONV 0001d4 e152 0001d5 e535 0001d6 eb4d 0001d7 d1e0 DELAY24 751000 0001d8 d012 rcall TEMP_RD ; обновляем данные в ячейках 0001d9 9110 0068 lds r17, TEMP_L 0001db 2f81 mov DISP_NUM_L, r17 0001dc 9110 0069 lds r17, TEMP_H 0001de 2f91 mov DISP_NUM_H, r17 0001df 911f pop r17 0001e0 9508 ret // // RD_F_CODE: 0001e1 930f push r16 0001e2 d140 rcall OW_PRESENCE 0001e3 e303 ldi r16, DS18B20_CMD_READROM 0001e4 2e80 mov OW_CMD_r, r16 0001e5 d152 rcall OW_SEND_BYTE 0001e6 e6af ldi XL, LOW(DEVICE_FAMILY_CODE) 0001e7 e0b0 ldi XH, HIGH(DEVICE_FAMILY_CODE) 0001e8 d16e rcall OW_RD_BYTE 0001e9 910f pop r16 0001ea 9508 ret// // TEMP_RD: 0001eb 930f push r16 0001ec 931f push r17 0001ed 932f push r18 0001ee 933f push r19 0001ef 934f push r20 0001f0 d132 rcall OW_PRESENCE 0001f1 ff70 sbrs OWFR, OWPRF 0001f2 c03c rjmp _TEMP_RD_EXIT 0001f3 ec0c ldi r16, DS18B20_CMD_SKIPROM 0001f4 2e80 mov OW_CMD_r, r16 0001f5 d142 rcall OW_SEND_BYTE 0001f6 eb0e ldi r16, DS18B20_CMD_RSCRATCHPAD 0001f7 2e80 mov OW_CMD_r, r16 0001f8 d13f rcall OW_SEND_BYTE 0001f9 e6a8 ldi XL, LOW(TEMP_L) 0001fa e0b0 ldi XH, HIGH(TEMP_L) 0001fb d15b rcall OW_RD_BYTE 0001fc e6a9 ldi XL, LOW(TEMP_H) 0001fd e0b0 ldi XH, HIGH(TEMP_H) 0001fe d158 rcall OW_RD_BYTE 0001ff 9110 0068 lds r17, TEMP_L 000201 9120 0069 lds r18, TEMP_H 000203 932f push r18 000204 7f28 cbr r18, (1<<0) | (1<<1) | (1<<2) ; убираем ненужные биты на время (интересуют последних битов в TEMP_H) 000205 3f28 cpi r18, 0xf8 ; проверяется является ли число минусовой 000206 f011 breq _TEMP_RD_TO_UNSIGNED ; если да то конвертируем в беззнаковое число 000207 94e8 clt 000208 c007 rjmp _TEMP_RD_CONTINUE ; если нет то преобразуем значение АЦП в температуру (делим на 16) _TEMP_RD_TO_UNSIGNED: 000209 912f pop r18 00020a 9468 set 00020b 9510 com r17 00020c 9520 com r18 00020d 5f1f subi r17, low(-1) 00020e 4f2f sbci r18, high(-1) ; ldi r19, 1 ; add r17, r19 ; ldi r19, 0 ; adc r18, r19 00020f c001 rjmp PC+2 _TEMP_RD_CONTINUE: ; Температура = Число с АЦП / 16 (сдвиг вправо 4) 000210 912f pop r18 000211 9526 lsr r18 000212 9517 ror r17 000213 9526 lsr r18 000214 9517 ror r17 000215 9526 lsr r18 000216 9517 ror r17 000217 9526 lsr r18 000218 9517 ror r17 _TEMP_RD_END: 000219 9130 0068 lds r19, TEMP_L 00021b f40e brtc PC+2 00021c 9531 neg r19 ; переводим в беззнаковое число если минус ; далее происходит такое для получения дробной части: ; ((n<<3) + (n<<1))>>4 или (n*10)/16 00021d 2f43 mov r20, r19 00021e 703f andi r19, 0x0f 00021f 2f43 mov r20, r19 000220 0f33 lsl r19 000221 0f33 lsl r19 000222 0f33 lsl r19 000223 0f44 lsl r20 000224 0f34 add r19, r20 000225 9536 lsr r19 000226 9536 lsr r19 000227 9536 lsr r19 000228 9536 lsr r19 ; записываем данные 000229 9310 0068 sts TEMP_L, r17 00022b 9320 0069 sts TEMP_H, r18 00022d 9330 006a sts TEMP_F, r19 _TEMP_RD_EXIT: 00022f 914f pop r20 000230 913f pop r19 000231 912f pop r18 000232 911f pop r17 000233 910f pop r16 000234 9508 ret ; TEMP_CONV: 000235 930f push r16 000236 d0ec rcall OW_PRESENCE 000237 ff70 sbrs OWFR, OWPRF 000238 c006 rjmp _TEMP_CONV_EXIT 000239 ec0c ldi r16, DS18B20_CMD_SKIPROM 00023a 2e80 mov OW_CMD_r, r16 00023b d0fc rcall OW_SEND_BYTE 00023c e404 ldi r16, DS18B20_CMD_CONVERTTEMP 00023d 2e80 mov OW_CMD_r, r16 00023e d0f9 rcall OW_SEND_BYTE _TEMP_CONV_EXIT: 00023f 910f pop r16 000240 9508 ret // // ; **** ОТПРАВКА БАЙТА В СДВИГОВЫЙ РЕГИСТР ************************* USI_TRANSMIT: 000241 930f push r16 000242 920f push r0 000243 b80f out USIDR, r0 ; Байт для отправки всегда находится в регистре r0. Помещаем данные в регистр USIDR. ; Enable USI Overflow Interrupt Flag (will be 0 if transfer is not compeleted) 000244 e400 ldi TEMP_REG_A, (1< USI Wire Mode ; USICS1 <--------------> USI Clock Source Select ; USICLK <--------------> USI Clock Strobe ; USITC <--------------> USI Toggle Clock (Enable clock generation) 000246 e10b ldi TEMP_REG_A, (1< BUTTON_PROCESS: 00024f 930f push r16 _SW_CHECK_ON_0: 000250 9bb4 sbis SW_PIN, SW_SET_PIN 000251 c001 rjmp _SW_SET_0 000252 c01c rjmp _SW_CHECK_ON_1 _SW_SET_0: 000253 9100 0071 lds r16, SW_DATA 000255 2300 tst r16 000256 f409 brne _SW_SET_FROM_0_TO_1 000257 c017 rjmp _SW_CHECK_ON_1 _SW_SET_FROM_0_TO_1: 000258 2700 clr r16 000259 9300 0071 sts SW_DATA, r16 00025b d148 rcall DEBOUNCE_SW 00025c 9463 inc REPROGRAM_STEP_r 00025d 2d16 mov r17, REPROGRAM_STEP_r 00025e 3014 cpi r17, 4 00025f f414 brge _SAVE_SETTINGS 000260 d135 rcall BEEP_SHORT 000261 c00d rjmp _SW_CHECK_ON_1 _SAVE_SETTINGS: 000262 e010 000263 bf19 outi r17, TIMSK, (0< REPROGRAM_SETTINGS: 00027d 930f push r16 00027e 931f push r17 00027f 932f push r18 000280 933f push r19 000281 934f push r20 000282 2d06 mov r16, REPROGRAM_STEP_r 000283 2300 tst r16 000284 f009 breq _INTO 000285 c004 rjmp _REPROGRAM_SETTINGS_LOOP _INTO: 000286 9890 relay_off 000287 9a96 sbi PORTD, LED_PGM_PIN 000288 d10d rcall BEEP_SHORT 000289 9463 inc REPROGRAM_STEP_r _REPROGRAM_SETTINGS_LOOP: 00028a dfc4 rcall BUTTON_PROCESS _CHECK_STEP: 00028b 3001 cpi r16, 1 00028c f029 breq _STEP_1 00028d 3002 cpi r16, 2 00028e f149 breq _STEP_2 00028f 3003 cpi r16, 3 000290 f131 breq _S3_JMP 000291 c08b rjmp _REPROGRAM_SETTINGS_END // _STEP_1: ; установка и отображение гистерезиса 000292 d0de rcall DISPLAY_UPD_DIGITS _S1_CHECK_PLUS: 000293 9bb2 sbis SW_PIN, SW_PLUS_PIN 000294 c004 rjmp _INCREASE_HYST 000295 c000 rjmp _S1_CHECK_MINUS _S1_CHECK_MINUS: 000296 9bb3 sbis SW_PIN, SW_MINUS_PIN 000297 c00a rjmp _DECREASE_HYST 000298 c011 rjmp _SHOW_HYST _INCREASE_HYST: 000299 d10a rcall DEBOUNCE_SW 00029a 9110 006d lds r17, SETTING_HYST 00029c 3c18 cpi r17, MAX_HYST 00029d f009 breq PC+2 00029e 9513 inc r17 00029f 9310 006d sts SETTING_HYST, r17 0002a1 c008 rjmp _SHOW_HYST _DECREASE_HYST: 0002a2 d101 rcall DEBOUNCE_SW 0002a3 9110 006d lds r17, SETTING_HYST 0002a5 3011 cpi r17, MIN_HYST 0002a6 f009 breq PC+2 0002a7 951a dec r17 0002a8 9310 006d sts SETTING_HYST, r17 _SHOW_HYST: 0002aa 930f push dd8u 0002ab 931f push dv8u 0002ac 9100 006d lds dd8u, SETTING_HYST 0002ae e01a ldi dv8u, 10 0002af de48 rcall div8u 0002b0 2f80 mov DISP_NUM_L, dres8u 0002b1 2799 clr DISP_NUM_H ; гистерезис 8 битный так что ноль пишем в старший байт 0002b2 92f0 0066 sts DIGITS+3, drem8u 0002b4 911f pop dv8u 0002b5 910f pop dd8u 0002b6 c066 rjmp _REPROGRAM_SETTINGS_END // _S3_JMP: ; просто прыжок на _STEP_3 0002b7 c03f rjmp _STEP_3 // _STEP_2: 0002b8 d0b8 rcall DISPLAY_UPD_DIGITS _S2_CHECK_PLUS: 0002b9 9bb2 sbis SW_PIN, SW_PLUS_PIN 0002ba c004 rjmp _INCREASE_TEMP 0002bb c000 rjmp _S2_CHECK_MINUS _S2_CHECK_MINUS: 0002bc 9bb3 sbis SW_PIN, SW_MINUS_PIN 0002bd c00f rjmp _DECREASE_TEMP 0002be c019 rjmp _SHOW_TEMP _INCREASE_TEMP: 0002bf d0e4 rcall DEBOUNCE_SW 0002c0 9110 006c lds r17, SETTING_TEMP_L 0002c2 9120 006b lds r18, SETTING_TEMP_H 0002c4 e03a ldi r19, 10 0002c5 0f13 add r17, r19 0002c6 2733 clr r19 0002c7 1f23 adc r18, r19 0002c8 9310 006c sts SETTING_TEMP_L, r17 0002ca 9320 006b sts SETTING_TEMP_H, r18 0002cc c00b rjmp _SHOW_TEMP _DECREASE_TEMP: 0002cd d0d6 rcall DEBOUNCE_SW 0002ce 9110 006c lds r17, SETTING_TEMP_L 0002d0 9120 006b lds r18, SETTING_TEMP_H 0002d2 501a subi r17, 10 0002d3 4020 sbci r18, 0 0002d4 9310 006c sts SETTING_TEMP_L, r17 0002d6 9320 006b sts SETTING_TEMP_H, r18 _SHOW_TEMP: 0002d8 930f push dd16uL 0002d9 931f push dd16uH 0002da 932f push dv16uL 0002db 933f push dv16uH 0002dc 9100 006c lds dd16uL, SETTING_TEMP_L 0002de 9110 006b lds dd16uH, SETTING_TEMP_H 0002e0 2f21 mov r18, dd16uH 0002e1 7820 andi r18, (1<<7) 0002e2 f411 brne _NEGATE_SET_TEMP 0002e3 94e8 clt 0002e4 c005 rjmp _DIVIDE_SET_TEMP _NEGATE_SET_TEMP: 0002e5 9468 set 0002e6 9500 0002e7 9510 0002e8 5f0f 0002e9 4f1f com16 dd16uL, dd16uH _DIVIDE_SET_TEMP: 0002ea e02a ldi dv16uL, LOW(10) 0002eb e030 ldi dv16uH, HIGH(10) 0002ec ddf8 rcall div16u 0002ed 2f80 mov DISP_NUM_L, dres16uL 0002ee 2f91 mov DISP_NUM_H, dres16uH 0002ef e00a ldi r16, 10 0002f0 9300 0066 sts DIGITS+3, r16 ; значок градуса 0002f2 913f pop dv16uH 0002f3 912f pop dv16uL 0002f4 911f pop dd16uH 0002f5 910f pop dd16uL 0002f6 c026 rjmp _REPROGRAM_SETTINGS_END // // _STEP_3: 0002f7 94e8 clt _S3_CHECK_PLUS: 0002f8 9bb2 sbis SW_PIN, SW_PLUS_PIN 0002f9 c004 rjmp _SET_HEAT_MODE 0002fa c000 rjmp _S3_CHECK_MINUS _S3_CHECK_MINUS: 0002fb 9bb3 sbis SW_PIN, SW_MINUS_PIN 0002fc c006 rjmp _SET_COOLING_MODE 0002fd c009 rjmp _SHOW_MODE _SET_HEAT_MODE: 0002fe d0a5 rcall DEBOUNCE_SW 0002ff e011 ldi r17, HEAT_MODE 000300 9310 006e sts SETTING_MODE, r17 000302 c004 rjmp _SHOW_MODE _SET_COOLING_MODE: 000303 d0a0 rcall DEBOUNCE_SW 000304 e010 ldi r17, COOLING_MODE 000305 9310 006e sts SETTING_MODE, r17 _SHOW_MODE: 000307 2711 clr r17 000308 2f81 mov DISP_NUM_L, r17 000309 2f91 mov DISP_NUM_H, r17 00030a 2711 clr r17 00030b 9310 0063 sts DIGITS, r17 00030d 9310 0064 sts DIGITS+1, r17 00030f 9310 0065 sts DIGITS+2, r17 000311 9120 006e lds r18, SETTING_MODE 000313 2322 tst r18 000314 f009 breq _SHOW_COOLING 000315 c004 rjmp _SHOW_HEATING _SHOW_COOLING: 000316 e01c ldi r17, 12 000317 9310 0066 sts DIGITS+3, r17 000319 c003 rjmp _REPROGRAM_SETTINGS_END _SHOW_HEATING: 00031a e01d ldi r17, 13 00031b 9310 0066 sts DIGITS+3, r17 // _REPROGRAM_SETTINGS_END: 00031d 914f pop r20 00031e 913f pop r19 00031f 912f pop r18 000320 911f pop r17 000321 910f pop r16 000322 9508 ret // // // ; **** ОПРОС ПРИСУТСТВИЯ УСТРОЙСТВА ****************************** OW_PRESENCE: 000323 94f8 cli 000324 9ab9 ow_pull 000325 e033 000326 eb4e 000327 d08c DELAY16 480 000328 98b9 ow_release 000329 e030 00032a e84a 00032b d088 DELAY16 70 00032c d005 rcall OW_CHECK_PRESENCE 00032d e033 00032e e342 00032f d084 DELAY16 410 000330 9478 sei 000331 9508 ret // // ; **** ПРОВЕРКА НАЛИЧИЯ УСТРОЙСТВА ******************************* ; Если подчиненное устройство притянет шину, то устанавливаем флаг OWPRF в единицу в регистре флагов ; OW_CHECK_PRESENCE: 000332 9bb1 sbis OW_PIN, OW_LINE 000333 6071 sbr OWFR, (1< // OW_SEND_BYTE: 000338 94f8 cli 000339 930f push r16 00033a 931f push r17 00033b 2d08 mov r16, OW_CMD_r 00033c e018 ldi r17, 8 _OW_SEND_BYTE_LOOP: 00033d 9506 lsr r16 00033e f408 brcc _OW_SEND_0 00033f f048 brcs _OW_SEND_1 _OW_SEND_0: 000340 9ab9 ow_pull 000341 e030 000342 e746 000343 d070 DELAY16 60 000344 98b9 ow_release 000345 e030 000346 e142 000347 d06c DELAY16 10 000348 c008 rjmp _OW_SEND_BYTE_END _OW_SEND_1: 000349 9ab9 ow_pull 00034a e030 00034b e04a 00034c d067 DELAY16 6 00034d 98b9 ow_release 00034e e030 00034f e74e 000350 d063 DELAY16 64 _OW_SEND_BYTE_END: 000351 951a dec r17 000352 f751 brne _OW_SEND_BYTE_LOOP 000353 911f pop r17 000354 910f pop r16 000355 9478 sei 000356 9508 ret // // OW_RD_BYTE: 000357 94f8 cli 000358 930f push r16 000359 931f push r17 00035a 2700 clr r16 00035b e018 ldi r17, 8 _OW_RD_BYTE_LP: 00035c 9506 lsr r16 00035d 9ab9 ow_pull 00035e e030 00035f e04a 000360 d053 DELAY16 6 000361 98b9 ow_release 000362 e030 000363 e140 000364 d04f DELAY16 9 000365 99b1 sbic OW_PIN, OW_LINE 000366 6800 sbr r16, (1<<7) 000367 e030 000368 e64c 000369 d04a DELAY16 55 00036a 951a dec r17 00036b f781 brne _OW_RD_BYTE_LP 00036c 930c st X, r16 00036d 911f pop r17 00036e 910f pop r16 00036f 9478 sei 000370 9508 ret // // // ; **** ПОЛУЧЕНИЕ ЦИФР ИЗ 16-ТИ БИТНОГО ЧИСЛА ********************* ; Описание: Перемещает цифры числа в соответствующие ячейки памяти в SRAM ; путем деления этого числа несколько раз DISPLAY_UPD_DIGITS: 000371 930f push r16 000372 935f push r21 000373 e053 ldi r21, 3 ; инициализация указателя (за каждый проход цикла будет инкрементироваться) 000374 e6a3 ldi XL, LOW(DIGITS) 000375 e0b0 ldi XH, HIGH(DIGITS) .equ dividend = SRAM_TEMP_1 ; число которе будем делить .equ divisor = 10 ; на что делим ; загружаем число которое хотим поделить в адрес SRAM делимого 000376 9380 0061 sts dividend, DISP_NUM_L 000378 9390 0062 sts dividend+1, DISP_NUM_H ; четыре раза производим деление для получения остатков DIV_LOOP: ; заполняем нужные регистры 00037a 9100 0061 lds dd16uL, dividend 00037c 9110 0062 lds dd16uH, dividend+1 00037e e02a ldi dv16uL, LOW(divisor) 00037f e030 ldi dv16uH, HIGH(divisor) 000380 dd64 rcall div16u ; делим 000381 92ed st X+, drem16uL ; сохраняем остаток в ячейку по указателю и увеличиваем его ; обновляем делимое 000382 9300 0061 sts dividend, dres16uL 000384 9310 0062 sts dividend+1, dres16uH 000386 955a dec r21 ; декрементируем счетчик цикла 000387 f791 brne DIV_LOOP ; делим еще раз если не 0 000388 915f pop r21 000389 910f pop r16 00038a 9508 ret // // ; **** ЗАГРУЖАЕТ НУЖНЫЙ АДРЕС СИМВОЛА В R0 *********************** DISPLAY_DECODER: 00038b 930f push r16 00038c 931f push r17 00038d e7ea ldi ZL, LOW(2*DISPLAY_SYMBOLS) 00038e e0f7 ldi ZH, HIGH(2*DISPLAY_SYMBOLS) 00038f 2711 clr TEMP_REG_B 000390 0fe0 add ZL, TEMP_REG_A 000391 1ff1 adc ZH, TEMP_REG_B 000392 9004 lpm r0, Z 000393 911f pop r17 000394 910f pop r16 000395 9508 ret // // BEEP_SHORT: 000396 9ac5 sbi BUZZER_PORT, BUZZER_PIN 000397 e053 000398 ea39 000399 e74d 00039a d01d DELAY24 150000 00039b 98c5 cbi BUZZER_PORT, BUZZER_PIN 00039c 9508 ret // // BEEP_LONG: 00039d 9ac5 sbi BUZZER_PORT, BUZZER_PIN 00039e e05c 00039f e334 0003a0 ef4d 0003a1 d016 DELAY24 500000 0003a2 98c5 cbi BUZZER_PORT, BUZZER_PIN 0003a3 9508 ret // // DEBOUNCE_SW: 0003a4 930f push r16 0003a5 931f push r17 0003a6 932f push r18 0003a7 e02a ldi r18, 10 _loop_2: 0003a8 ef1f ldi r17, 255 _loop_0: 0003a9 ef0f ldi r16, 255 _dec_0: 0003aa 950a dec r16 0003ab f7f1 brne _dec_0 _loop_1: 0003ac 951a dec r17 0003ad f7d9 brne _loop_0 _loop_3: 0003ae 952a dec r18 0003af f7c1 brne _loop_2 0003b0 912f pop r18 0003b1 911f pop r17 0003b2 910f pop r16 0003b3 9508 ret// // DELAY_LOOP_16: 0003b4 5041 subi DELAY_8_r, 1 0003b5 4030 sbci DELAY_16_r, 0 0003b6 f7e8 brcc DELAY_LOOP_16 0003b7 9508 ret // // DELAY_LOOP_24: 0003b8 5041 subi DELAY_8_r, 1 0003b9 4030 sbci DELAY_16_r, 0 0003ba 4050 sbci DELAY_24_r, 0 0003bb f7e0 brcc DELAY_LOOP_24 0003bc 9508 ret // // DISPLAY_SYMBOLS: ; HGFEDCBA HGFEDCBA 0003bd f9c0 .DB 0b11000000, 0b11111001 ; 0, 1 0003be b0a4 .DB 0b10100100, 0b10110000 ; 2, 3 0003bf 9299 .DB 0b10011001, 0b10010010 ; 4, 5 0003c0 f882 .DB 0b10000010, 0b11111000 ; 6, 7 0003c1 9080 .DB 0b10000000, 0b10010000 ; 8, 9 0003c2 bf9c .DB 0b10011100, 0b10111111 ; °, - 0003c3 89c6 .DB 0b11000110, 0b10001001 ; C, H // // // ; **** СЕГМЕНТ EEPROM ******************************************** .ESEG .ORG 0x30 000030 41 000031 56 000032 52 000033 20 000034 54 000035 68 000036 65 000037 72 000038 6d 000039 6f 00003a 73 00003b 74 00003c 61 00003d 74 00003e 2e 00003f 20 000040 57 000041 72 000042 69 000043 74 000044 74 000045 65 000046 6e 000047 20 000048 62 000049 79 00004a 20 00004b 53 00004c 65 00004d 72 00004e 67 00004f 65 000050 79 000051 20 000052 59 000053 61 000054 72 000055 6b 000056 6f 000057 76 INFO: .DB "AVR Thermostat. Written by Sergey Yarkov" ; RESOURCE USE INFORMATION ------------------------ Notice: The register and instruction counts are symbol table hit counts, and hence implicitly used resources are not counted, eg, the 'lpm' instruction without operands implicitly uses r0 and z, none of which are counted. x,y,z are separate entities in the symbol table and are counted separately from r26..r31 here. .dseg memory usage only counts static data declared with .byte "ATtiny2313A" register use summary: x : 2 y : 0 z : 1 r0 : 6 r1 : 2 r2 : 0 r3 : 16 r4 : 16 r5 : 6 r6 : 6 r7 : 0 r8 : 6 r9 : 0 r10: 2 r11: 2 r12: 2 r13: 2 r14: 5 r15: 11 r16: 213 r17: 117 r18: 51 r19: 55 r20: 53 r21: 24 r22: 5 r23: 10 r24: 6 r25: 6 r26: 4 r27: 4 r28: 0 r29: 0 r30: 2 r31: 2 Registers used: 29 out of 35 (82.9%) "ATtiny2313A" instruction use summary: .lds : 0 .sts : 0 adc : 6 add : 8 adiw : 0 and : 0 andi : 4 asr : 0 bclr : 0 bld : 0 brbc : 0 brbs : 0 brcc : 6 brcs : 1 break : 0 breq : 12 brge : 4 brhc : 0 brhs : 0 brid : 0 brie : 0 brlo : 0 brlt : 0 brmi : 0 brne : 23 brpl : 0 brsh : 0 brtc : 1 brts : 2 brvc : 0 brvs : 0 bset : 0 bst : 0 cbi : 29 cbr : 3 clc : 2 clh : 0 cli : 5 cln : 0 clr : 19 cls : 0 clt : 3 clv : 0 clz : 0 com : 6 cp : 2 cpc : 2 cpi : 17 cpse : 0 dec : 11 eor : 0 icall : 0 ijmp : 0 in : 5 inc : 4 ld : 0 ldd : 0 ldi : 115 lds : 43 lpm : 2 lsl : 4 lsr : 11 mov : 55 movw : 0 neg : 1 nop : 0 or : 1 ori : 0 out : 26 pop : 56 push : 55 rcall : 82 ret : 28 reti : 3 rjmp : 61 rol : 6 ror : 9 sbc : 2 sbci : 7 sbi : 17 sbic : 5 sbis : 10 sbiw : 0 sbr : 2 sbrc : 0 sbrs : 2 sec : 2 seh : 0 sei : 5 sen : 0 ser : 2 ses : 0 set : 2 sev : 0 sez : 0 sleep : 0 spm : 0 st : 2 std : 0 sts : 48 sub : 5 subi : 6 swap : 0 tst : 7 wdr : 0 Instructions used: 56 out of 105 (53.3%) "ATtiny2313A" memory use summary [bytes]: Segment Begin End Code Data Used Size Use% --------------------------------------------------------------- [.cseg] 0x000000 0x000788 1894 14 1908 2048 93.2% [.dseg] 0x000060 0x000072 0 18 18 128 14.1% [.eseg] 0x000030 0x000058 0 40 40 128 31.3% Assembly complete, 0 errors, 21 warnings