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PDF
AT90CAN128.pdf
input • One 16-bit output operand and one 16-bit result input Figure 3-2 shows the structure of the 32 general purpose working registers in the CPU. Figure 3-2. AVR CPU General Purpose Working Registers 7 0 Addr. R0 0x00 R1 0x01 R2 0x02 … R13 0x0D General R14 0x0E Purpose R15 0x0F Working R16 0x10 Registers
in „uC + 3 Schieberegister + 7-Segmentanzeige“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMega164_324_644_1284pa.pdf
Power-down and from Reset Power Conditions Power-save (VCC = 5.0V) CKSEL0 SUT1..0 (1) BOD enabled 1K CK 14CK 0 00 (1) Fast rising power 1K CK 14CK + 4.1ms 0 01 (1) Slowly rising power 1K CK 14CK + 65ms 0 10 Reserved 0 11 BOD enabled 32K CK 14CK 1 00 Fast rising power 32K CK 14CK + 4.1ms 1 01 Slowly rising
in „Hilfe bei AD-Wandler!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
objdump.txt
>=0x09 && c<=0x0D) || (c==0x20)); 80026c4: 687b ldr r3, [r7, #4] 80026c6: 2b08 cmp r3, #8 80026c8: dd02 ble.n 80026d0 <isspace2+0x14> 80026ca: 687b ldr r3, [r7, #4] 80026cc: 2b0d cmp r3, #13 80026ce: dd02 ble.n 80026d6 <isspace2+0x1a> 80026d0: 687b ldr r3, [r7, #4] 80026d2: 2b20 cmp r3, #32 80026d4:
in „STM32F4 HardFault Interrupt bei stdlib Funktionen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Mega32.pdf
on page 11. Figure 8. Program Memory Map $0000 Application Flash Section Boot Flash Section $3FFF 14 ATmega32(L) 2503G–AVR–11/04 ATmega32(L) SRAM Data Memory Figure 9 shows how the ATmega32 SRAM Memory is organized. The lower 2144 Data Memory locations address the Register File, the I/O Memory, and
in „AVR Timer/Counter Zeit berechnen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATmega32.pdf
20 PA6.Data 19 PA6.Control 18 PA6.Pullup_Enable 17 PA5.Data 16 PA5.Control 15 PA5.Pullup_Enable 14 PA4.Data 13 PA4.Control 12 PA4.Pullup_Enable 242 2503Q–AVR–02/11 ATmega32(L) Table 93. ATmega32 Boundary-scan Order (Continued) Bit Number Signal Name Module 11 PA3.Data Port A 10 PA3.Control 9 PA3.Pullup_Enable
in „STK500 als ISP“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATTINY_3216_DB.pdf
ATtiny3216/3217 tinyAVR 1-series Introduction ® ® The ATtiny3216/3217 are members of the tinyAVR 1-series of microcontrollers, using the AVR processor with hardware multiplier, running at up to 20 MHz, with 32 KB Flash, 2
in „Attiny 3216 QTouch Funktion“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny1614-16-17-DataSheet-DS40002204A_1_.pdf
WO[5:0] TCA0 T SLPCTRL W O R Clock Generation WO TCB[1:0] K CLKOUT WDT OSC20M WO[A,B,C,D] TCD0 OSC32K TOSC1 RXD RTC TXD XOSC32K XCK USART0 TOSC2 XDIR EXTCLK EXTCLK MISO MOSI SCK SPI0 EVSYS EVOUT[n:0] SS SDA SCL TWI0 Note: The block diagram represents the largest device of the tinyAVR 1-series, both
in „50% PWM für H-Brücke mit Attiny1614“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test.lst
test.out: file format elf32-avr Sections: Idx Name Size VMA LMA File off Algn 0 .text 0000007e 00000000 00000000 00000054 2**1 CONTENTS, ALLOC, LOAD, READONLY, CODE 1 .debug_aranges 00000040 00000000 00000000 000000d2 2**0 CONTENTS
in „SPI Master Code Optimierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mega644.pdf
Ceramic resonator, slowly 1K CK 14CK + 65 ms (2) 1 00 rising power 32 8011O–AVR–07/10 ATmega164P/324P/644P Table 6-4. Start-up Times for the Low Power Crystal Oscillator Clock Selection (Continued) Start-up Time from Additional Delay
in „AVR Controller braucht zu viel Strom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT90PWM2_2B_3_3B__2_.pdf
MISO/PSCOUT20) PB0 12 21 PC4 (ADC8/AMP1-) (MOSI/PSCOUT21) PB1 13 20 PB2 (ADC5/INT1) (OC0B/XTAL1) PE1 14 19 PD7 (ACMP0) (ADC0/XTAL2) PE2 15 18 PD6 (ADC3/ACMPM/INT0) (ADC1/RXD/DALI/ICP1A/SCK_A) PD4 16 17 PD5 (ADC2/ACMP2) 3 4317I–AVR–01/08 Figure 3-3. QFN32 (7*7 mm) Package. AT90PWM3/3B QFN 32 ) ) ) B _ K
in „Interrupt bem Flankenwechsel beim AVR“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at90pwm3.pdf
MISO/PSCOUT20) PB0 12 21 PC4 (ADC8/AMP1-) (MOSI/PSCOUT21) PB1 13 20 PB2 (ADC5/INT1) (OC0B/XTAL1) PE1 14 19 PD7 (ACMP0) (ADC0/XTAL2) PE2 15 18 PD6 (ADC3/ACMPM/INT0) (ADC1/RXD/DALI/ICP1A/SCK_A) PD4 16 17 PD5 (ADC2/ACMP2) 3 4317I–AVR–01/08 Figure 3-3. QFN32 (7*7 mm) Package. AT90PWM3/3B QFN 32 ) ) ) B _ K
in „Schrittmotorsteuerung mir 90atPWM3“ · Mikrocontroller und Digitale Elektronik ·
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Datei
optiboot_atmega128.lst
TWO_STOP_BITS<<USBS0)|(1<<UCSZ01)|(1<<UCSZ00) ;config UART U8N2 AOUT UART_SRC, r23 #else /* no ATmega8_16_32 */ #if !defined(__AVR_ATmega163__) && !defined(__AVR_ATtiny87__) && !defined(__AVR_ATtiny167__) ldi r23, (TWO_STOP_BITS<<USBS0)|(1<<UCSZ00)|(1<<UCSZ01) ;config UART U8N2 1fc4a: 7e e0 ldi r23, 0x0E ;
in „Tester für Spezialversion des AVR Bootloaders optiboot gesucht!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Alarmanlage.c
*********** Programmname: Alarmanlage Funktion: Funktion einer Alarmanlage sicherstellen Compiler: AVR Studio 4.14 Ersteller: Ranftl Version/Datum: 1.0 / 11/08 Hardware: ATMEGA32, AVR Dragon, Steckbrett Änderungen: ***********************************************/ #include <avr/io.h> // include 80517 header file #include <avr/interrupt.h> // include interrupt header #include <string.h> // include string header #include "LCD.h" // LCD-Header //Globale Variablen: char taste; char zeichen; char Code[5]={}; char richtigerCode
in „Problem mit Tastatur für Codeeingabe bei Alarmanlage“ · Mikrocontroller und Digitale Elektronik ·
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Datei
iom324pb.h
SUCH DAMAGE. ****************************************************************************/ #ifndef _AVR_ATMEGA324PB_H_INCLUDED #define _AVR_ATMEGA324PB_H_INCLUDED #ifndef _AVR_IO_H_ # error "Include <avr/io.h> instead of this file." #endif #ifndef _AVR_IOXXX_H_ # define _AVR_IOXXX_H_ "iom324pb.h" #else
in „ATMega324PB: Header?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATmegaXX4.pdf
Ceramic resonator, slowly 1K CK 14CK + 65 ms (2) 1 00 rising power 32 ATmega164P/324P/644P 8011G–AVR–08/07 ATmega164P/324P/644P Table 8-4. Start-up Times for the Low Power Crystal Oscillator Clock Selection (Continued) Start-up Time from
in „Atmega644PA Timer3“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Transistortester097k.pdf
8-bit AVR with 4/8/16/32KBytes In-System Programmable Flash - ATme- ga48 - ATmega328,. Manual, 8271D-AVR-05/11, 2011 [4] Atmel Corporation Atmel AVR126: ADC of megaAVR in Single Ended Mode,. Application Note, 8444A-AVR-10/11, 2011 [5] Atmel Corporation Atmel AVR121: Enhancing ADC resolution by oversampling,. Application Note, 8003A-AVR-09/05, 2005 [6] http://en.wikibooks.org/wiki/LaTeX LaTeX documentation,. Guide
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Datei
tft.c
, 0x41, 0x1D, // Set Power [00 43 18] 0xD1, 3, 0x00, 0x2B, 0x1F, // Set VCOM [00 00 00] x0.900, x1.32 0xD2, 2, 0x01, 0x11, // Set Power for Normal Mode [01 22] 0xC0, 5, 0x10, 0x3B, 0x00, 0x02, 0x11, //Set Panel Driving [10 3B 00 02 11] 0xC5, 1, 0x03, //Frame Rate [03] 0xC8, 12, 0x00, 0x14, 0x33, 0x10
in „4DLCD-32QA mit STM32 initialisieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd_io1.h
library (lcd_io.c) Author: Chris efstathiou hendrix@otenet.gr Date: 2/2/2003 6:35:06 ìì Software: AVR-GCC with AVR-AS Target: any AVR device Comments: This software is FREE. DESCRIPTION Basic routines for interfacing a HD44780U-based text lcd display Based on Volker Oth's lcd library (http://members.xoom.com
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Datei
lcd_io1.h
library (lcd_io.c) Author: Chris efstathiou hendrix@otenet.gr Date: 2/2/2003 6:35:06 ìì Software: AVR-GCC with AVR-AS Target: any AVR device Comments: This software is FREE. DESCRIPTION Basic routines for interfacing a HD44780U-based text lcd display Based on Volker Oth's lcd library (http://members.xoom.com
in „LCD I2C Bibliothek“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd-char.c
// 9 0x00, 0x00, 0x36, 0x36, 0x00, 0x00,// : 0x00, 0x00, 0x56, 0x36, 0x00, 0x00,// ; 0x00, 0x08, 0x14, 0x22, 0x41, 0x00,// < 0x00, 0x14, 0x14, 0x14, 0x14, 0x14,// = 0x00, 0x00, 0x41, 0x22, 0x14, 0x08,// > 0x00, 0x02, 0x01, 0x51, 0x09, 0x06,// ? 0x00, 0x32, 0x49, 0x59, 0x51, 0x3E,// @ 0x00, 0x7C, 0x12
in „LCD Nokia 5510 Initialisierungsproblem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR_ATmega_328PB.pdf
3] PCINT11 ADC3 Y3 27 PC[4] PCINT12 ADC4 Y4 SDA0 28 PC[5] PCINT13 ADC5 Y5 SCL0 29 PC[6]/RESET PCINT14 30 PD[0] PCINT16 X0 Y8 OC3A RXD0 31 PD[1] PCINT17 X1 Y9 OC4A TXD0 32 PD[2] INT0 PCINT18 X2 Y10 OC3B OC4B Atmel ATmega328PB [DATASHEET] 16 Atmel-42397C-8-bit AVR-ATmega328PB_Datasheet_Complete-10/2015
in „ATmega328PB: UART(MC) empfängt falsche Daten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
XMega_Uniboard_sch.pdf
8 JP5 + PB5 9 10 JP3 1 2 1 2 3 4 JP_JTAG 3 4 5 6 5 6 GND 7 8 JP_PDI k 9 9 10 1 R GND JP_ADC IC1 S AVR_XMEGA_A3_ GND R 57 /Reset_PDI_CLK ADC0_AC0_AREF_PA0 62 56 PDI_Data ADC1_AC1_PA1 63 ADC2_AC2_PA2 64 100nF ADC3_AC3_PA3 1 ADC4_AC4_PA4 2 C13 ADC5_AC5_PA5 3 B 14 GND ADC6_AC6_PA6 4 24 GND ADC7_AC7_AC0OUT_PA7
in „Kleines Xmega-Board - Verbesserungsvorschläge?“ · Platinen ·
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PDF
AtMega644P_Datasheet.pdf
Power-down and from Reset Power Conditions Power-save (VCC= 5.0V) CKSEL0 SUT1..0 (1) BOD enabled 1K CK 14CK 0 00 Fast rising power 1K CK 14CK + 4.1 ms(1) 0 01 Slowly rising power 1K CK 14CK + 65 ms (1) 0 10 Reserved 0 11 BOD enabled 32K CK 14CK 1 00 Fast rising power 32K CK 14CK + 4.1 ms 1 01 Slowly rising power 32K CK 14CK + 65 ms 1 10 Reserved 1 11 Note: 1. These options should only be used if frequency stability at start-up is not important for the application. 32 ATmega644 2593O–AVR–02/12 ATmega644 7.6 Calibrated
in „Alkoholmessgerät programmieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmega644.pdf
Power-down and from Reset Power Conditions Power-save (VCC= 5.0V) CKSEL0 SUT1..0 (1) BOD enabled 1K CK 14CK 0 00 Fast rising power 1K CK 14CK + 4.1 ms(1) 0 01 Slowly rising power 1K CK 14CK + 65 ms (1) 0 10 Reserved 0 11 BOD enabled 32K CK 14CK 1 00 Fast rising power 32K CK 14CK + 4.1 ms 1 01 Slowly rising power 32K CK 14CK + 65 ms 1 10 Reserved 1 11 Note: 1. These options should only be used if frequency stability at start-up is not important for the application. 32 ATmega644 2593O–AVR–02/12 ATmega644 7.6 Calibrated
in „SPI-Kommunikation Atmega644 - ADS1118“ · Mikrocontroller und Digitale Elektronik ·
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Datei
abused_bootloder_disassembly.txt
1b00: 4a e5 ldi r20, 0x5A ; 90 1b02: 02 c0 rjmp .+4 ; 0x1b08 <_binary_boot_raw_start+0x1b08> 1b04: 32 ed ldi r19, 0xD2 ; 210 1b06: 43 2f mov r20, r19 1b08: c4 e1 ldi r28, 0x14 ; 20 1b0a: d0 e0 ldi r29, 0x00 ; 0 1b0c: 32 e0 ldi r19, 0x02 ; 2 1b0e: 11 b3 in r17, 0x11 ; 17 1b10: 14 68 ori r17, 0x84 ; 132
in „ATmega-Bootloader vom Hauptprogramm aus flashen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
_ATmega32.pdf
on page 11. Figure 8. Program Memory Map $0000 Application Flash Section Boot Flash Section $3FFF 14 ATmega32(L) 2503C–AVR–10/02 ATmega32(L) SRAM Data Memory Figure 9 shows how the ATmega32 SRAM Memory is organized. The lower 2144 Data Memory locations address the Register file, the I/O Memory, and
in „Anschwingvorgang µC & Quarz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT90CAN128.pdf
input • One 16-bit output operand and one 16-bit result input Figure 3-2 shows the structure of the 32 general purpose working registers in the CPU. Figure 3-2. AVR CPU General Purpose Working Registers 7 0 Addr. R0 0x00 R1 0x01 R2 0x02 … R13 0x0D General R14 0x0E Purpose R15 0x0F Working R16 0x10 Registers
in „Umrechnen von analog to digital“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
CORE COMPARATOR ADC 8-BIT DATA BUS PORT A PORT B PA[7:0] PB[3:0] ATtiny441/841 [DATASHEET] 4 8495H–AVR–05/2014 The AVR core combines a rich instruction set with 32 general purpose working registers. All 32 registers are directly connected to the Arithmetic Logic Unit (ALU), allowing two independent registers
in „TOCPMSA1 und TOCPMCOE Verhalten beim Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny441_841.pdf
CORE COMPARATOR ADC 8-BIT DATA BUS PORT A PORT B PA[7:0] PB[3:0] ATtiny441/841 [DATASHEET] 4 8495H–AVR–05/2014 The AVR core combines a rich instruction set with 32 general purpose working registers. All 32 registers are directly connected to the Arithmetic Logic Unit (ALU), allowing two independent registers
in „Suche nach ATtiny mit ADC und Gain > 20x“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
CORE COMPARATOR ADC 8-BIT DATA BUS PORT A PORT B PA[7:0] PB[3:0] ATtiny441/841 [DATASHEET] 4 8495H–AVR–05/2014 The AVR core combines a rich instruction set with 32 general purpose working registers. All 32 registers are directly connected to the Arithmetic Logic Unit (ALU), allowing two independent registers
in „sleep und Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
CORE COMPARATOR ADC 8-BIT DATA BUS PORT A PORT B PA[7:0] PB[3:0] ATtiny441/841 [DATASHEET] 4 8495H–AVR–05/2014 The AVR core combines a rich instruction set with 32 general purpose working registers. All 32 registers are directly connected to the Arithmetic Logic Unit (ALU), allowing two independent registers
in „Takt-Vorskalierungsregister beim Attiny841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR-ASM-Tutorial_16_05_08_v3.pdf
• DCF77-Funkwecker mitAVR • Fahrradcomputer • Einfacher und billiger Webserver mitAtMega32 • AVR RFM12 0.6 Tutorials • AVR-Tutorial • AVR-GCC-Tutorial • http://www.avr-asm-tutorial.net - 10 - 0AVR 0.7 Tipps & Hinweise • AVR
in „AVR-ASM-Tutorial: PDF 16.5.08“ · www.mikrocontroller.net ·
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PDF
doc5131.pdf
Pin-out Diagram Figure 1-1. AT86RF230 Pin-Out Diagram S S S D D S 2 1 S S S D D S A A A A A A E A X X T 32 31 30 29 28 27 26 25 AVSS 1 24 IRQ Exposed Paddle AVSS 2 AVSS 23 SEL AVSS 3 22 MOSI RFP 4 21 DVSS AT86RF230 RFN 5 20 MISO AVSS 6 19 SCLK TST 7 18 DVSS RST 8 17 CLKM 9 10 11 12 13 14 15 16 S S R S D D
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Datei
8080int-jmp.asm
... .equ ZFL_S = 7 .equ ZFL_Z = 6 .equ ZFL_H = 4 .equ ZFL_P = 2 .equ ZFL_N = 1 .equ ZFL_C = 0 .equ AVR_T = SREG_T .equ AVR_H = SREG_H .equ AVR_S = SREG_S .equ AVR_V = SREG_V .equ AVR_N = SREG_N .equ AVR_Z = SREG_Z .equ AVR_C = SREG_C ; TODO: check Z80 flag settings ;----------------------------------
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny804-06-07-1604-06-07-DataSheet-DS40002312A.pdf
Microchip Technology Inc. Complete Datasheet DS40002312A-page 46 ATtiny804/806/807/1604/1606/1607 AVR CPU 8. AVR CPU® 8.1 Features • 8-Bit, High-Performance AVR RISC CPU: – 135 instructions – Hardware multiplier • 32 8-Bit Registers Directly Connected to the ALU • Stack in RAM • Stack Pointer Accessible
in „ATTINY804 RTC bekomme ich nicht hin“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.lst
OUT 0x18,R30 0000da efef LDI R30,LOW(255) 0000db bbe7 OUT 0x17,R30 0000dc e0e0 LDI R30,LOW(0) 0000dd bbe5 OUT 0x15,R30 0000de efef LDI R30,LOW(255) 0000df bbe4 OUT 0x14,R30 0000e0 e0e0 LDI R30,LOW(0) 0000e1 bbe2 OUT 0x12,R30 0000e2 bbe1 OUT 0x11,R30 0000e3 e8e0 LDI R30,LOW(128) 0000e4 bfe9 OUT 0x39,
in „Timer initialisierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MEGA48V_88V_168V.pdf
power-down and from reset Power conditions power-save (VCC = 5.0V) CKSEL0 SUT1..0 BOD enabled 1KCK 14CK (1) 0 00 Fast rising power 1KCK 14CK + 4.1ms (1) 0 01 Slowly rising power 1KCK 14CK + 65ms (1) 0 10 Reserved 0 11 BOD enabled 32KCK 14CK 1 00 Fast rising power 32KCK 14CK + 4.1ms 1 01 Slowly rising
in „analog comparator interrupt probleme mit atmegas“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr-libc-user-manual.pdf
long) == 8. Note the absence of a 4-byte, 32-bit type. The patch proposes to change sozeof(long long) to be 4 bytes (32 bits). When and if the patch is included in gcc, we will need to change avr-libc accordingly. 7.14 Deprecated List Global eeprom
in „C Tutorial gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMEGA88-DB.pdf
Break For On-chip Debug Only None N/A Note: 1. These instructions are only available in ATmega168. 14 2545RS–AVR–07/09 ATmega48/88/168 6. Ordering Information 6.1 ATmega48 Speed (MHz) Power Supply Ordering Code Package (1) Operational Range ATmega48V-10AI 32A ATmega48V-10MI 32M1-A ATmega48V-10PI 28P3
in „Schieberegister SN54HC595 mit Atmel atmega 88 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
STK500-Test_in_C_ASM-Translate.txt
stk500_gcc_mega16.elf: file format elf32-avr Sections: Idx Name Size VMA LMA File off Algn 0 .text 0000019e 00000000 00000000 00000054 2**1 CONTENTS, ALLOC, LOAD, READONLY, CODE 1 .stab 00000378 00000000 00000000 000001f4 2**2 CONTENTS, READONLY
in „STK500 Testprog funzt in C funzt nicht?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
disassebled_minimal_change_crash.asm
Z10is_opt3001h>: 2dc2: cf 93 push r28 2dc4: df 93 push r29 2dc6: c8 2f mov r28, r24 2dc8: 0e 94 97 01 call 0x32e ; 0x32e <_ZN7TwoWire17beginTransmissionEh.constprop.113> 2dcc: 6e e7 ldi r22, 0x7E ; 126 2dce: 81 e9 ldi r24, 0x91 ; 145 2dd0: 99 e2 ldi r25, 0x29 ; 41 2dd2: 0e 94 c8 14 call 0x2990 ; 0x2990 <_ZN7TwoWire5writeEh
in „Bizarrer Firmware crash - ATmega4808. Wie Debuggen?“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Datenblatt Ausschnitt MUX Selection für ADC Input
33.5.7 MUX Selection for Positive ADC Input AVR16/32DD14/20 ADC - Analog-to-Digital Converter Name: MUXPOS Offset: 0x08 Reset: 0x00 Property: - Bit 7 6 5 4 3 2 1 0 Access R/W R/W R/W MUXPOS[6:0] R/W R/W R/W Reset 0 0 0 Bits 6:0 - MUXPOS[6:0] MUX
in „neue AVR-µCs: Entwicklungsumgebung“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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PDF
Datasheet_ATmega1281_doc2549.pdf
File is described in “General Purpose Register File” on page 14. 21 2549L–AVR–08/07 Figure 8-2. Data Memory Map Address (HEX) 0 - 1F 32 Registers 20 - 5F 64 I/O Registers 60 - 1FF 416 External I/O Registers 200 Internal SRAM 21FF (8192 x 8) 2200 External SRAM (0
in „LM73 über TWI/I2C mit Atmega1281 auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
db_atmega8.pdf
input. One 16-bit output operand and one 16-bit result input. Figure 3 shows the structure of the 32 general purpose working registers in the CPU. Figure 3. AVR CPU General Purpose Working Registers 7 0 Addr. R0 0x00 R1 0x01 R2 0x02 … R13 0x0D General R14 0x0E Purpose R15 0x0F Working R16 0x10 Registers
in „ADC-Input und Auswahlverfahren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATmega8.pdf
result input One 16-bit output operand and one 16-bit result input Figure 3 shows the structure of the 32 general purpose working registers in the CPU. Figure 3. AVR CPU General Purpose Working Registers 7 0 Addr. R0 0x00 R1 0x01 R2 0x02 … R13 0x0D General R14 0x0E Purpose R15 0x0F Working R16 0x10 Registers
in „Mikrocontroller und 15'' TFT LCD“ · Mikrocontroller und Digitale Elektronik ·
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Datei
n5110.h
ñèìâîëîâ) */ static const byte FontLookup [][5] PROGMEM= { { 0x00, 0x00, 0x00, 0x00, 0x00 }, // 0x20 32 { 0x00, 0x00, 0x5F, 0x00, 0x00 }, // ! 0x21 33 { 0x00, 0x07, 0x00, 0x07, 0x00 }, // " 0x22 34 { 0x14, 0x7F, 0x14, 0x7F, 0x14 }, // # 0x23 35 { 0x24, 0x2A, 0x7F, 0x2A, 0x12 }, // $ 0x24 36 { 0x4C, 0x2C
in „Atxmega 128a1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ttester.pdf
40 / t 38 a a C 36 34 32 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 Processor number Abbildung 5.60: Selbsttest: Nullwert der Kapazitätsmessung 80 REF_R_KORR 60 V m 40 / o c 20 r c 0 e t o -20 V -40 -60 0 1 2 3 4 5 6 7 8 9 10
in „Sammelbestellung Transistortester III - schnelle Runde“ · Markt ·
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Datei
disassebled_original_working.asm
Z10is_opt3001h>: 2dc2: cf 93 push r28 2dc4: df 93 push r29 2dc6: c8 2f mov r28, r24 2dc8: 0e 94 97 01 call 0x32e ; 0x32e <_ZN7TwoWire17beginTransmissionEh.constprop.113> 2dcc: 6e e7 ldi r22, 0x7E ; 126 2dce: 81 e9 ldi r24, 0x91 ; 145 2dd0: 99 e2 ldi r25, 0x29 ; 41 2dd2: 0e 94 c8 14 call 0x2990 ; 0x2990 <_ZN7TwoWire5writeEh
in „Bizarrer Firmware crash - ATmega4808. Wie Debuggen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR-ASM-Tutorial_16_05_08_v2.pdf
• DCF77-Funkwecker mitAVR • Fahrradcomputer • Einfacher und billiger Webserver mitAtMega32 • AVR RFM12 0.6 Tutorials • AVR-Tutorial • AVR-GCC-Tutorial • http://www.avr-asm-tutorial.net - 9 - 0.7 Tipps & Hinweise • AVR Typen
in „AVR-ASM-Tutorial: PDF 16.5.08“ · www.mikrocontroller.net ·
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PDF
A300_ATMEGA8xxx.pdf
input. One 16-bit output operand and one 16-bit result input. Figure 3 shows the structure of the 32 general purpose working registers in the CPU. Figure 3. AVR CPU General Purpose Working Registers 7 0 Addr. R0 0x00 R1 0x01 R2 0x02 … R13 0x0D General R14 0x0E Purpose R15 0x0F Working R16 0x10 Registers
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