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PDF
atmega8China.pdf
–07/04 Figure 3. AVR CPU 通用工作寄存器 7 0 Addr. R0 0x00 R1 0x01 R2 0x02 … R13 0x0D 通用 R14 0x0E 工作 R15 0x0F 寄存器 R16 0x10 R17 0x11 … R26 0x1A X 寄存器,低字节 R27 0x1B X 寄存器,高字节 R28 0x1C Y 寄存器,低字节 R29 0x1D Y 寄存器,高字节 R30 0x1E Z 寄存器,低字节
in „Buch AVR von Günter Schmitt durcharbeiten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Powermeter.pdf
means that at 50Hz mains frequency there is a phase difference of 360 x (50Hz/2400Hz) = 7.5 degrees. 16 AVR465 2566A-AVR-07/04 AVR465 The phase displacements are adjusted using linear interpolation, which is fast, easy and sufficiently accurate. The limitation is that linear interpolation introduces a
in „230V Leistung erfassen mit ATmega128“ · Mikrocontroller und Digitale Elektronik ·
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PDF
volt230.pdf
means that at 50Hz mains frequency there is a phase difference of 360 x (50Hz/2400Hz) = 7.5 degrees. 16 AVR465 2566A-AVR-07/04 AVR465 The phase displacements are adjusted using linear interpolation, which is fast, easy and sufficiently accurate. The limitation is that linear interpolation introduces a
in „Netzteil ohne Trafo“ · Mikrocontroller und Digitale Elektronik ·
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PDF
energymeter.pdf
means that at 50Hz mains frequency there is a phase difference of 360 x (50Hz/2400Hz) = 7.5 degrees. 16 AVR465 2566A-AVR-07/04 AVR465 The phase displacements are adjusted using linear interpolation, which is fast, easy and sufficiently accurate. The limitation is that linear interpolation introduces a
in „Leistungsmessung über Shunt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
doc2566.pdf
means that at 50Hz mains frequency there is a phase difference of 360 x (50Hz/2400Hz) = 7.5 degrees. 16 AVR465 2566A-AVR-07/04 AVR465 The phase displacements are adjusted using linear interpolation, which is fast, easy and sufficiently accurate. The limitation is that linear interpolation introduces a
in „Cadsoft Eagle“ · Platinen ·
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Datei
mit_kontrollausgabe.asm
size) { be: af 92 push r10 c0: bf 92 push r11 c2: cf 92 push r12 c4: df 92 push r13 c6: ef 92 push r14 c8: ff 92 push r15 ca: 0f 93 push r16 cc: 1f 93 push r17 ce: cf 93 push r28 d0: df 93 push r29 d2: 6c 01 movw r12, r24 d4: 7b 01 movw r14, r22 d6: 8b 01 movw r16, r22 d8: 04 0f add r16, r20 da: 15 1f adc r17, r21 dc: eb 01 movw r28, r22 de: 5e 01 movw r10, r28 e0: ae 18 sub r10, r14 e2: bf 08 sbc r11, r15 size_t n = 0; while (size--) { e4: c0 17 cp r28, r16 e6: d1 07 cpc r29, r17 e8: 59 f0 breq .+22 ; 0x100 <Print::
in „AVR Inline Optimierung kaputt?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test.c
/* testprogramm for generating a PWM - Singal */ // Microcontroller ATTINY44A #include <avr/io.h> #include <avr/interrupt.h> #include <util/delay.h> #include "AttinyPWM.h" #include "Typedef.h" #define divider 1 volatile uint8_t pwm_flag; int main(void) { // first square sinwave lookup table
in „PWM mit Interrupts steuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd.h
define PINLCD PINA" "#define DDRLCD DDRA" */ #include <io.h> #include <pgmspace.h> #include <string-avr.h> #define BUSY 3 #define E 6 /* Declarations of Commands for the Display */ #define Clear_Display 0x01 #define Return_home 0x02 #define Cursor_Left 0x10 #define Cursor_Right 0x14 #define Display_Left
in „Ausgabe 3-stelliger Zahlen auf Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test.txt
0x02 ; 2 fe: 00 e0 ldi r16, 0x00 ; 0 100: 0b bf out 0x3b, r16 ; 59 102: 02 c0 rjmp .+4 ; 0x108 <__do_copy_data+0x14> 104: 07 90 elpm r0, Z+ 106: 0d 92 st X+, r0 108: a4 30 cpi r26, 0x04 ; 4 10a: b1 07 cpc r27, r17 10c: d9 f7 brne
in „Arduino Compiler Speicherverwaltung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny261A_Complete.pdf
A ( 4.0 V C 1 I 0.8 0.6 3.3 V 0.4 2.7 V 0.2 1.8 V 0 0 2 4 6 8 10 12 14 16 18 20 Frequency (MHz) 205 8197C–AVR–05/11 20.2.5 Current Consumption of Peripheral Units Figure 20-15. Analog Comparator Current vs. V CC ANALOG COMPARATOR CURRENT vs. CC 80 70 60 50 ) u C40 I 30
in „USI Interface als SPI Schnittstelle beim ATtiny261A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
24fc256.pdf
DS20001203Y-page 5 24AA256/24LC256/24FC256 FIGURE 1-1: BUS TIMING DATA 5 4 2 D3 SCL 7 3 SDA 8 9 10 IN 6 16 13 14 SDA OUT (protected) WP 11 12 (unprotected) DS20001203Y-page 6 1998-2022MicrochipTechnologyInc.anditssubsidiaries 24AA256/24LC256/24FC256 2.0 PIN DESCRIPTIONS The descriptions of the pins are listed
in „Wodtke HP-S5 HP Er3 EEPROM Schreib-/Lesefehler“ · Haus & Smart Home ·
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Datei
avr-m8_z80.asm
= (12<<10) .equ OP_ANDA = (13<<10) .equ OP_ORA = (14<<10) .equ OP_XORA = (15<<10) .equ OP_ADDHL = (16<<10) .equ OP_STHL = (17<<10) ;store HL in fetched address .equ OP_RMEM16 = (18<<10) ;read mem at fetched address .equ OP_RMEM8 = (19<<10) ;read mem at
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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Datei
z80.asm
= (12<<10) .equ OP_ANDA = (13<<10) .equ OP_ORA = (14<<10) .equ OP_XORA = (15<<10) .equ OP_ADDHL = (16<<10) .equ OP_STHL = (17<<10) ;store HL in fetched address .equ OP_RMEM16 = (18<<10) ;read mem at fetched address .equ OP_RMEM8 = (19<<10) ;read mem at
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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Datei
all_cmds.txt
avifdec avifenc avifile-config avimake avitype avobabel avocjsontocml avogadro avogadro2 avogen avologin avr-addr2line avr-ar avr-as avr-c++ avr-c++filt avr-cpp avr-elfedit avr-g++ avr-gcc avr-gcc-5.4.0 avr-gcc-ar avr-gcc-nm avr-gcc-ranlib avr-gcov avr-gcov-tool avr-gdb avr-gdb-add-index avr-gprof avr-ld avr-ld.bfd avr-man avr-nm avr-objcopy avr-objdump avr-ranlib avr-readelf avr-run avr-size avr-strings avr-strip avra avrdude (1) - driver program for ``simple'' Atmel AVR MCU programmer avro avroappend avrocat avromod
in „Vergleichstabelle von Systemeigenen Tools in Windows“ · PC Hard- und Software ·
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PDF
Atiny2313.pdf
resonator, fast rising power 1 00 1K CK (2) 14CK + 65 ms Ceramic resonator, slowly rising power 01 16K CK 14CK Crystal Oscillator, BOD 1 enabled 1 10 16K CK 14CK + 4.1 ms Crystal Oscillator, fast rising power 1 11 16K CK 14CK + 65 ms Crystal Oscillator
in „Suche tutorial“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc7707.pdf
4 4.5 5 5.5 6 0 2 2.5 3 3.5 4 V CC4.5 5 5.5 6 V (V) 277 7707F–AVR–11/10 27.5 Idle Supply Current Figure 27-16. Idle Supply Current vs. Frequency and Vcc, T=25°C, Regulator Disabled (below 4V) 6 5 5.5 4 5 A m 3 4.5 (C 4 IC 3.3 2 1 0 0 2 4 6 8 10 12 14 16 Frequency (MHz) 278 AT90USB82/162 7707F–AVR–11/10 AT90USB82/162 27.6 Active Supply Current Figure 27-17. Active Supply Current vs Frequency and Vcc, T=25°C 20 18 16 14 12 A 5.5 ( 10 C 5 I 8 4.5 3.6 6 2.7 4 2 0 0 2 4 6 8 10 12 14 16 Frequency
in „AVR (AT90USB162) - Sleep Mode und PCINT“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mispav.cpp
hemst und mit Java ModbusMaster zuverlaessig. * @version 2023-11-13 : 32-Bit-Werte mit FC=16 empfangen * @version 2024-04-29 : 32-Bit-Werte mit FC=16 empfangen * weil 8 x 16 = 128 Worte * 4.8.1 C:/WinAVR/bin/avr-g++ -c -I D://h/home/cc/include -I C:/WinAVR/avr/include -gdwarf-2 -mmcu=atmega644p
in „Implementierung von Menüs auf alphanumerischen Displays“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nano_os_OPT3.txt
15 02 lds r24, 0x0215 14bc: 88 23 and r24, r24 14be: 41 f0 breq .+16 ; 0x14d0 <display_minutes+0xda> 14c0: 80 91 15 02 lds r24, 0x0215 14c4: 88 23 and r24, r24 14c6: 21 f0 breq .+8 ; 0x14d0 <display_minutes+0xda> 14c8: 80 91
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Datei
MapFile.txt
halWriteW1bit 0x00000654 halWriteW1 0x00000666 __delay_us .text 0x00000676 0xe2 c:/program files/atmel/avr studio 5.0/avr toolchain/bin/../lib/gcc/avr/4.5.1/avr51\libgcc.a(_lshrdi3.o) 0x00000676 __lshrdi3 0x00000758 . = ALIGN (0x2) *(.text.*) .text.ConfigPwm 0x00000758 0x16 ./Receiver.o .text.SetDutyCycle
in „AVR 5 Breakpoint Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Bidirektionale_RS232_Funkbr_cke_mit_RFM12_2.pdf
K. (benedikt) (Moderator) Datum: 13.05.2009 13:14 Ich vermute dass die Baudrate nicht passt. Sind die Fusebits auf externen Oszillator gesetzt? Stell mal auch im AVR Studio die Frequenz auf 10MHz. Autor: Andreas V. (sevenup) Datum: 13.05.2009 14:20
in „bidirektionale RS232 Funkbrücke mit RFM12“ · Projekte & Code ·
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PDF
B-1220.pdf
C9 40p, Folientrimmer HF C59 470µ BK C10 1n BK C60 1µ BK C11 1n BK C61 1µ BK C12 2,2µ BK C62 100µ/16V BK C13 22p BK C63 5p6 BK C14 nb BK C64 1n BK C15 12p BK C65 1n BK C16 nb BK C66 100n BK C17 1n BK C67 33p BK C18 1n BK C68 39p BK C19 18p BK C69 18p BK C20 3n3 BK C70 15p BK C21 3n3 BK C71 1p2 BK C22
in „JR 78 von DF5FC Schaltbild gesucht“ · HF, Funk und Felder ·
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PDF
ATtiny26.pdf
shows the structure of the 32 general purpose working registers in the CPU. Register File Figure 3. AVR CPU General Purpose Working Registers 7 0 Addr. R0 $00 R1 $01 R2 $02 … R13 $0D General R14 $0E Purpose R15 $0F Working R16 $10 Registers R17 $11 … R26 $1A X-register Low Byte R27 $1B X-register High
in „ATtiny26(L) Analog-Digital-Wandler ( ADC ) Datenblattübersetzung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
avr_f64.c
); return x; } #endif #ifdef F_WITH_exp float64_t f_exp(float64_t x) { uint8_t f_sign, f_sign2; int16_t f_ex; float64_t g, rest; int16_t gi; uint64_t w, w2; static uint64_t interp[] FLASHMEM_IF_AVR = { // Interpolation von exp(x) im Bereich von x=0 ... log(2.0) // Zähler: 12 Koeffizienten, Nenner: 0
in „64 Bit float Emulator in C, IEEE754 compatibel“ · Projekte & Code ·
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Datei
avr_f64.c
); return x; } #endif #ifdef F_WITH_exp float64_t f_exp(float64_t x) { uint8_t f_sign, f_sign2; int16_t f_ex; float64_t g, rest; int16_t gi; uint64_t w, w2; static const uint64_t interp[] FLASHMEM_IF_AVR = { // Interpolation von exp(x) im Bereich von x=0 ... log(2.0) // Z�hler: 12 Koeffizienten, Nenner
in „64 Bit float Emulator in C, IEEE754 compatibel“ · Projekte & Code ·
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Datei
ttester_110k_20140511.diff
_vertikal_LSB_1.h" +#else +#ifdef FONT_8X14 +#include "8x14_vertikal_LSB_1.h" +#else +#ifdef FONT_10X16 +#include "10x16_vertikal_LSB_1.h" +#else +#error No Font specified. Check Makefile! +#endif +#endif +#endif +#endif +#endif +#endif + diff
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PDF
mikrobeginner_gesamt.pdf
11 clr rmp ; Timer-Int ausschalten, 12 ldi rCntL,Low(cPaus) ; 12 out TIMSK0,rmp ; 13 ret ; fertig, 16 sbr rFlag,1<<bRst ; Flagge setzen, 14 TimeOut2: ; 11 rjmp StartOut1 ; 16 ldi rCntH,High(cKurz) ; lade kurzes Bit, 12 ; ldi rCntL,Low(cKurz) ; 13 ; StartOut-Routine lsl rData7 ; schiebe Bits, 14 ; wird
in „Attiny26 PortD“ · Mikrocontroller und Digitale Elektronik ·
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Datei
0001-spice-up-for-customized-edition.patch
atmega32 # where the updating firmware should be located (starting address) FLASHADDRESS = 0x0000 @@ -16,14 +16,15 @@ FLASHADDRESS = 0x0000 DEFINES += -DCONFIG_NO__CHIP_ERASE -DCONFIG_NO__ONDEMAND_PAGEERASE # have the bootloader always enter the programming mode -;DEFINES += -DCONFIG_HAVE__BOOTLOADER_ALWAYSENTERPROGRAMMODE
in „ATMEGA32 Minimum System Board“ · Mikrocontroller und Digitale Elektronik ·
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Datei
wave.h
,0x1C, 0x1A,0x18,0x15,0x14,0x12,0x11,0x0F,0x0F,0x0E,0x0E,0x0D,0x0D,0x0D,0x0D,0x0E,0x0E, 0x0F,0x0F,0x10,0x10,0x11,0x12,0x13,0x13,0x14,0x14,0x15,0x15,0x16,0x16,0x16,0x16, 0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17,0x17
in „Glühwürmchen in Rotkohlglas gefangen“ · Projekte & Code ·
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Datei
main.c
mode // by: luo // Date: 2012-12-18 //---------------------------------------------------- #include <avr/io.h> #include <avr/pgmspace.h> #include <util/delay.h> #include "main.h" #define uchar unsigned char // 8bit, 0 ~ 255 #define uint unsigned int // 16bit, 0 ~ 65,535 #define ulong unsigned long // 32bit
in „Benörige Hilfe bei Grafikdisplay LM240120“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT90CAN128.pdf
rising power Ceramic resonator, slowly 1 00 1K CK (2) 14 CK + 65 ms rising power 1 01 16K CK 14 CK Crystal Oscillator, BOD enabled Crystal Oscillator, fast 1 10 16K CK 14 CK + 4.1 ms rising power 1 11 16K CK 14 CK + 65 ms Crystal Oscillator, slowly rising
in „Umrechnen von analog to digital“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IgorPlug-USB__AVR__firmware.pdf
CRC5poly =0b00101 ;CRC5 polynom 11.equ CRC5zvysok =0b01100 ;CRC5 zvysok po uspesnpm CRC5 11.equ CRC16poly =0b1000000000000101 ;CRC16 polynom 11.equ CRC16zvysok =0b1000000000001101 ;CRC16 zvysok po uspesnom CRC16 113 11.equ MAXUSBBYTES =14 ;maximum bytes in USB input message 11.equ MAXINFRALENGTH =36
in „IGORPLUG-USB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IgorPlug-USB__AVR__firmware.pdf
CRC5poly =0b00101 ;CRC5 polynom 11.equ CRC5zvysok =0b01100 ;CRC5 zvysok po uspesnpm CRC5 11.equ CRC16poly =0b1000000000000101 ;CRC16 polynom 11.equ CRC16zvysok =0b1000000000001101 ;CRC16 zvysok po uspesnom CRC16 113 11.equ MAXUSBBYTES =14 ;maximum bytes in USB input message 11.equ MAXINFRALENGTH =36
in „90s2343 als usb ir empfänger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IgorPlug-USB__AVR__firmware.pdf
CRC5poly =0b00101 ;CRC5 polynom 11.equ CRC5zvysok =0b01100 ;CRC5 zvysok po uspesnpm CRC5 11.equ CRC16poly =0b1000000000000101 ;CRC16 polynom 11.equ CRC16zvysok =0b1000000000001101 ;CRC16 zvysok po uspesnom CRC16 113 11.equ MAXUSBBYTES =14 ;maximum bytes in USB input message 11.equ MAXINFRALENGTH =36
in „Per USB mit ATMega32 kommunizieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IgorPlug-USB__AVR__firmware.pdf
CRC5poly =0b00101 ;CRC5 polynom 11.equ CRC5zvysok =0b01100 ;CRC5 zvysok po uspesnpm CRC5 11.equ CRC16poly =0b1000000000000101 ;CRC16 polynom 11.equ CRC16zvysok =0b1000000000001101 ;CRC16 zvysok po uspesnom CRC16 113 11.equ MAXUSBBYTES =14 ;maximum bytes in USB input message 11.equ MAXINFRALENGTH =36
in „Booten auf Knopfdruck mit AT90S23X3“ · Mikrocontroller und Digitale Elektronik ·
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Datei
8080int-jmp.asm
instr fetch_nop, op_INV, store_nop ;10 oo ;DJNZ o instr fetch_DIR16, op_nop, store_DE ;11 nn nn ;LD DE,nn instr fetch_nop, op_nop, store_MDE ;12 ;LD (DE),A instr fetch_DE, op_INC16, store_DE ;13 ;INC DE instr fetch_D, op_INC, store_D ;14 ;INC D instr fetch_D, op_DEC,
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Porting_ucOSII_to_ARM.pdf
dependent on the operating mode 4 AR1803 May 10, 2006 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 N Z C V I F T M4 M3 M2 M1 M0 FLAGS STATUS EXTENSION CONTROL Figure 2: Control and program status register (CPSR) bits. The defined bits are the flags; negative, zero
in „uC/OS-II portieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nano_os_OPTs.txt
r5 178: 6f 90 pop r6 17a: 7f 90 pop r7 POP( 8);POP( 9);POP(10);POP(11);POP(12);POP(13);POP(14);POP(15); 17c: 8f 90 pop r8 17e: 9f 90 pop r9 180: af 90 pop r10 182: bf 90 pop r11 184: cf 90 pop r12 186: df 90 pop r13 188: ef 90 pop r14 18a: ff 90 pop r15 POP(16);POP(17);POP(18);POP(19);POP(20)
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PDF
atmel-8393-mcu_wireless-atmega256rfr2-atmega128rfr2-atmega64rfr2_datasheet.pdf
for AVR & Rx/Tx: 10.1mA/18.6 mA - CPU Active Mode (16MHz): 4.1 mA - 2.4GHz Transceiver: RX_ON 6.0 mA / TX 14.5 mA (maximum TX output power) - Deep Sleep Mode: <700nA @ 25°C • Speed Grade: 0 – 16 MHz @ 1.8 –
in „AVR-Verlustleistung maximieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATmega8.pdf
1 Frequency (MHz) Figure 126. Idle Supply Current vs. Frequency (1MHz - 20MHz) 14 5.5V 12 5.0V 10 4.5V ) 8 m C 4.0V I 6 4 3.3V 3.0V 2 2.7V 0 0 2 4 6 8 10 12 14 16 18 20 Frequency (MHz) 246 ATmega8(L) 2486Z–AVR–02/11 ATmega8(L) Figure 127. Idle Supply Current vs. V CC (Internal RC
in „Mikrocontroller und 15'' TFT LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
db_atmega8.pdf
Figure 126. Idle Supply Current vs. Frequency (1 - 20 MHz) IDLE SUPPLY CURRENT vs. FREQUENCY 1 - 20 MHz 14 5.5V 12 5.0V 10 4.5V ) A 8 ( C 4.0V I 6 3.3V 4 2 3.0V 2.7V 0 0 2 4 6 8 10 12 14 16 18 20 Frequency (MHz) 253 2486P–AVR–02/06 Figure 127. Idle Supply Current vs. V CC (Internal RC Oscillator, 8 MHz) IDLE
in „ADC-Input und Auswahlverfahren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
gen_tables.pl
emulator # must be regenerated when recompiling the emulator # this is a workaround for a limitation in avr-as, # since avr-as does not support pm_lo8(sym) for data symbols use strict; use warnings; use v5.010; my @instrs = ( [ "fetch_nop", "exec_nop", "store_nop", 4 ], # 00 : NOP [ "fetch_dir16", "exec_nop
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A300_ATMEGA8xxx.pdf
Figure 126. Idle Supply Current vs. Frequency (1 - 20 MHz) IDLE SUPPLY CURRENT vs. FREQUENCY 1 - 20 MHz 14 5.5V 12 5.0V 10 4.5V ) A 8 ( C 4.0V I 6 3.3V 4 2 3.0V 2.7V 0 0 2 4 6 8 10 12 14 16 18 20 Frequency (MHz) 248 ATmega8(L) 2486M–AVR–12/03 ATmega8(L) Figure 127. Idle Supply Current vs. V CC (Internal RC
in „atMega8-16 Au beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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Datei
avr-m8_z80.asm
= (12<<10) .equ OP_ANDA = (13<<10) .equ OP_ORA = (14<<10) .equ OP_XORA = (15<<10) .equ OP_ADDHL = (16<<10) .equ OP_STHL = (17<<10) ;store HL in fetched address .equ OP_RMEM16 = (18<<10) ;read mem at fetched address .equ OP_RMEM8 = (19<<10) ;read mem at
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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Datei
avr_cpm.asm
= (12<<10) .equ OP_ANDA = (13<<10) .equ OP_ORA = (14<<10) .equ OP_XORA = (15<<10) .equ OP_ADDHL = (16<<10) .equ OP_STHL = (17<<10) ;store HL in fetched address .equ OP_RMEM16 = (18<<10) ;read mem at fetched address .equ OP_RMEM8 = (19<<10) ;read mem at
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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Datei
avr-m8_z80.asm
= (12<<10) .equ OP_ANDA = (13<<10) .equ OP_ORA = (14<<10) .equ OP_XORA = (15<<10) .equ OP_ADDHL = (16<<10) .equ OP_STHL = (17<<10) ;store HL in fetched address .equ OP_RMEM16 = (18<<10) ;read mem at fetched address .equ OP_RMEM8 = (19<<10) ;read mem at
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMEGA8_DATENBLATT.pdf
Figure 126. Idle Supply Current vs. Frequency (1 - 20 MHz) IDLE SUPPLY CURRENT vs. FREQUENCY 1 - 20 MHz 14 5.5V 12 5.0V 10 4.5V ) A 8 ( C 4.0V I 6 4 3.3V 2 3.0V 2.7V 0 0 2 4 6 8 10 12 14 16 18 20 Frequency (MHz) 253 2486X–AVR–06/10 Figure 127. Idle Supply Current vs. V CC (Internal RC Oscillator, 8 MHz) IDLE
in „I2C/TWI TWBR > 10 warum?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
0001-Visual-Studio-2015-Files.patch
-typedef int16_t int_least16_t; -typedef int32_t int_least32_t; -typedef int64_t int_least64_t; -typedef uint8_t uint_least8_t; -typedef uint16_t uint_least16_t; -typedef uint32_t uint_least32_t; -typedef uint64_t
in „Simulavr unter Windows mit Visual Studio 2015 kompilieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Atmel-8209-8-bit_AVR_ATmega16M1-32M1-64M1_Datasheet_1_.pdf
, 7.0mm × 7.0mm body, 0.65mm pitch quad flat no lead package (QFN) Atmel ATmega16M1/32M1/64M1 [DATASHEET] 14 Atmel-8209F-ATmega16M1/32M1/64M1_Datasheet_Complete-10/2016 3. Overview The Atmel ATmega16M1/32M1/64M1 is a low-power CMOS 8-bit microcontroller based on the AVR enhanced RISC
in „Externer Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KSZ8851SNL.pdf
I/O Physical receive (MDI) or transmit (MDIX) signal (– differential). 13 AGND GND Analog ground. 14 TXP I/O Physical transmit (MDI) or receive (MDIX) signal (+ differential). 15 TXM I/O Physical transmit (MDI) or receive (MDIX) signal (– differential). 16 VDD_A3.3 P 3.3V analog DD input power supply
in „KSZ8851 Ethernet komplizierte Frage.“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ODM100.c
- - 0x002D Hyphen-Minus {0x00,0x60,0x60,0x00,0x00}, // ( 14) . - 0x002E Full Stop {0x20,0x10,0x08,0x04,0x02}, // ( 15) / - 0x002F Solidus {0x3E,0x51,0x49,0x45,0x3E}, // ( 16) 0 - 0x0030 Digit Zero {0x00,0x42,0x7F,0x40,0x00}, // ( 17) 1 - 0x0031 Digit One {0x42,0x61,0x51,0x49,0x46
in „Frage zum ODM100 OLED Bausatz von ELV“ · Mikrocontroller und Digitale Elektronik ·