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PDF
SCHALTUNG_1_WIRE_SLAVE.pdf
1-WIRE-SLAVE 7805 ) IC2 +5V V . 10µ 10µ 0 s LCD 2x16 1 t W s D o S / 0 1 2 3 4 5 6 7 16 V V K R R E D D D D D D D D Programmieradapter 1 5 8 7 6 5 4 3 2 1 0 9 8 7 6 5 ) ) ) ) ) ) ) 2 ) ) ) ) ) ) p 5 4 3 2 1 0
in „1-Wire OW-wire slave device <=4MHz low current AVR assembler ATmega8“ · Projekte & Code ·
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PDF
SCHALTUNG_1_WIRE_SLAVE.pdf
1-WIRE-SLAVE 7805 ) IC2 +5V V . 10µ 10µ 0 s LCD 2x16 1 t W s D o S / 0 1 2 3 4 5 6 7 16 V V K R R E D D D D D D D D Programmieradapter 1 5 8 7 6 5 4 3 2 1 0 9 8 7 6 5 ) ) ) ) ) ) ) 2 ) ) ) ) ) ) p 5 4 3 2 1 0
in „1-Wire OW-wire slave device <=4MHz low current AVR assembler ATmega8“ · Projekte & Code ·
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Datei
1-Wire-Slave_SHT11.bas
Sck) ' : LED an PORTB.0 als Rueckmeldung ' : 1-Wire-Anschluss an PORTD.2 'Function : Emulation 1-Wire Slave mit SHT11 'Clock frequency : 8,000000 MHz '********************************************************** ' Emulation von 1-Wire-Slaves mit AVR-Bausteinen, z.B. ATmega32, ATmega8 ' Grundgeruest entnommen
in „1-Wire OW-wire slave device <=4MHz low current AVR assembler ATmega8“ · Projekte & Code ·
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Datei
ow.c
Einbinden eigener Funktionssammlungen ***/ #include "ow.h" //#include "ow_slaves.h" // Adressen der 1-Wire-Slaves im Gesamtsystem // definitions #define FALSE 0 #define TRUE 1 /*************************************************************************************/ // method declarations int OW_First(); int OW_Next
in „Projekt Autoboardcomputer: 12V Schalter, Relais, 1-Wire Temperatursensoren, MOSFET Innenraumbel.“ · Mikrocontroller und Digitale Elektronik ·
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DS2482-800-DS2482S-800.pdf
directional protocol conversion between the I²C Passive 1-Wire Pullup master and any downstream 1-Wire slave devices. § Provides Reset/Presence, 8-Bit, Single-Bit, and Three-Bit 1-Wire I/O Sequences Relative to any attached 1-Wire slave device, the DS2482-800 is a 1-Wire master. Internal factory- § Eight
in „1-Wire Leitungs Problem“ · Mikrocontroller und Digitale Elektronik ·
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cm6631a.pdf
master serial clock 64 XMSCL DIO Programmable 3.3V/5V tolerant bidirectional buffer, pull-down 2-Wire Slave Serial Bus (I2C) 2-wire slave serial data 56 XSSDA DIO Programmable 3.3V/5V tolerant bidirectional buffer, pull-down 57 XSSCL DIO 2-wire slave serial clock Programmable 3.3V/5V tolerant bidirectional
in „Logo -> IC-Hersteller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tmp175.pdf
0 0 0 P1 P0 … 0 0 0 Start By ACK By ACK By Master TMP175 or TMP75 TMP175 or TMP75 Frame 1 Two−Wire Slave Address Byte Frame 2 Pointer Register Byte 1 9 1 9 SCL … (Continued) SDA 1 0 0 1 0 0 0 R/W D7 D6 D5 D4 D3 D2 D1 D0 … (Continued) Start By ACK By From ACK By Master TMP175 or TMP75 TMP175 or TMP75 Master Frame 3 Two−Wire Slave Address Byte Frame 4 Data Byte 1 Read Register 1 9 SCL (Continued) SDA (Continued) D7 D6 D5 D4 D3 D2 D1 D0 From ACK By Stop By TMP175 or TMP75 Master Master Frame 5 Data Byte 2 Read Register NOTE
in „Temperaturmessung mit dem LM75“ · Mikrocontroller und Digitale Elektronik ·
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1-Wire-Networks.pdf
that use Category 5 twisted pair copper wire and have 5V bus power supplied by the master. (1-Wire slave devices will operate at lower bus voltages, but large networks often have too much loss to perform well under low voltage conditions.) This document does not address the special considerations involved
in „AVR für wenig Geld im LAN“ · Mikrocontroller und Digitale Elektronik ·
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PDF
guidelines_for_reliable_1_wire_networks.pdf
that use Category 5 twisted pair copper wire and have 5V bus power supplied by the master. (1-Wire slave devices will operate at lower bus voltages, but large networks often have too much loss to perform well under low voltage conditions.) This document does not address the special considerations involved
in „DS18B20 - 10m Leitung, Position des Widerstandes“ · Mikrocontroller und Digitale Elektronik ·
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Datei
FET140_demolist_C.txt
Interface to TLV5616 DAC fet140_spi0_05.c - USART0, SPI 3-Wire Master fet140_spi0_06.c - USART0, SPI 3-Wire Slave fet140_spi0_07.c - USART0, SPI Full-Duplex 3-Wire Master P1.x Exchange fet140_spi0_08.c - USART0, SPI Full-Duplex 3-Wire Slave P1.x Exchange fet140_spi1_03.c - USART1, SPI Interface to TLV5616 DAC
in „MSP430 UART Baudrate einstellen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TMP006_IR_temperatur_I2C__sbos518.pdf
0 0 0 0 R/W P7 P6 P5 P4 P3 P2 P1 P0 ¼ Start By ACK By ACK By Master TMP006 TMP006 Frame 1 Two-Wire Slave Address Byte Frame 2 Pointer Register Byte 1 9 1 9 SCL (Continued) SDA D7 D6 D5 D4 D3 D2 D1 D0 D7 D6 D5 D4 D3 D2 D1 D0 (Continued) ACK By ACK By Stop By TMP006 TMP006 Master Frame 3 MSB Frame 4 LSB
in „Temperaturfühler TMP006 von T, wie anschließen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tmp006.pdf
0 0 0 0 R/W P7 P6 P5 P4 P3 P2 P1 P0 ¼ Start By ACK By ACK By Master TMP006 TMP006 Frame 1 Two-Wire Slave Address Byte Frame 2 Pointer Register Byte 1 9 1 9 SCL (Continued) SDA D7 D6 D5 D4 D3 D2 D1 D0 D7 D6 D5 D4 D3 D2 D1 D0 (Continued) ACK By ACK By Stop By TMP006 TMP006 Master Frame 3 MSB Frame 4 LSB
in „Temperaturfühler TMP006 von T, wie anschließen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tmp275.pdf
1 0 0 1 R/W 0 0 0 0 0 0 P1 P0 … 0 0 0 Start By ACK By ACK By Master TMP275 TMP275 Frame 1 Two−Wire Slave Address Byte Frame 2 Pointer Register Byte 1 9 1 9 SCL … (Continued) SDA 1 0 0 1 0 0 0 R/W D7 D6 D5 D4 D3 D2 D1 D0 … (Continued) Start By ACK By From ACK By Master TMP275 TMP275 Master Frame 3 Two−Wire Slave Address Byte Frame 4 Data Byte 1 Read Register 1 9 SCL (Continued) SDA (Continued) D7 D6 D5 D4 D3 D2 D1 D0 From ACK By Stop By TMP275 Master Master Frame 5 Data Byte 2 Read Register NOTE: Address
in „Abmessungen Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SCHALTPLAN_DCF77_1WIRE_SPARVARIANTE.pdf
DCF77 1-WIRE-SLAVE (SPARVARIANTE) 1N4001 5V 10µ10n 10n10µ 0 4 DCF77 Programmier-Adapter 1 5 2 2 2 2 2 2 2 2 2 1 1 1 1 1 e 5 4 3 2 1 0 ) ) ) ) ) ) ) ) a C C C C C C N FE C B B B B B r ( ( ( ( ( ( G R V ( ( ( ( ( m (
in „DCF / DCF77 UHR 1-WIRE / 1WIRE SLAVES / DEVICES ATmega8 ASSEMBLER“ · Projekte & Code ·
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Datei
I2C_Array_TestRX.ino
// Wire Slave Receiver // by Nicholas Zambetti <http://www.zambetti.com> // Demonstrates use of the Wire library // Receives data as an I2C/TWI slave device // Refer to the "Wire Master Writer" example for use
in „Wie kann ich ein Array über I2C übertragen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SCHALTPLAN_DCF77_1WIRE.pdf
DCF77 1-WIRE-SLAVE LCD 164A LED (4x16) t 0 1 s 16 2 t W s D on S / 0 1 2 3 4 5 6 7 10k V V K R R E D D D D D D D D 5V 1N4001 0,5V 0 1 10µ10n 10n10µ 7 4 DCF77 Programmier-Adapter FIN 36.11 5V 1 5 33µ 4 4 4 2 2 2 2 2
in „DCF / DCF77 UHR 1-WIRE / 1WIRE SLAVES / DEVICES ATmega8 ASSEMBLER“ · Projekte & Code ·
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Datei
I2C2_BME.ino
I2C_FAST_MODE); // to use the I2C 1 //TwoWire myWire2 (2, I2C_FAST_MODE); // to use the I2C 2 #include <Wire_slave.h> #include <Adafruit_Sensor.h> #include "Adafruit_BME680.h" #define SEALEVELPRESSURE_HPA (1013.25) Adafruit_BME680 bme; // I2C void setup() { Serial.begin(115200); delay(2000); Wire.begin(); delay
in „STM32 I2C2 & BME680 Probleme“ · Mikrocontroller und Digitale Elektronik ·
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Datei
1wire.c
} /* **************************************************************** Input: Write a bit to 1-wire slave device. Output: Keine Rückgabe Vorgang: Übertragung eines bits zum Master */ void OW_write_bit (unsigned char write_bit) { if(write_bit) // schreibe bit '1' { drive_OW_low(); // Port=0 (LOW) DelayUs
in „Serielle Verbindung 2-er PICs“ · Mikrocontroller und Digitale Elektronik ·
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Datei
OneWireProtokol.c
unsigned char PB2_Read(void); void _delay(unsigned char delay); //Basisfunktionen (muß jeder 1-Wire-Slave beherrschen) unsigned char MasterReset_SlavePresence(void); void WriteBit(unsigned char zustand); void WriteByte(unsigned char data); unsigned char ReadBit(void); unsigned char ReadByte(void); //
in „OneWire Protokoll“ · Mikrocontroller und Digitale Elektronik ·
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Datei
OneWireProtokol.c
unsigned char PB2_Read(void); void _delay(unsigned char delay); //Basisfunktionen (muß jeder 1-Wire-Slave beherrschen) unsigned char MasterReset_SlavePresence(void); void WriteBit(unsigned char zustand); void WriteByte(unsigned char data); unsigned char ReadBit(void); unsigned char ReadByte(void); //
in „1-Wire-Bus-Projekt: DS1820 / DS18S20 / DS2450 / DS2408 / unter C und 8051“ · Projekte & Code ·
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Datei
OneWireProtokol.c
PB2_HIGH(void); void PB2_LOW(void); unsigned char PB2_Read(void); //Basisfunktionen (muß jeder 1-Wire-Slave beherrschen) unsigned char MasterReset_SlavePresence(void); void WriteBit(unsigned char zustand); void WriteByte(unsigned char data); unsigned char ReadBit(void); unsigned char ReadByte(void); //
in „OneWire Protokoll“ · Mikrocontroller und Digitale Elektronik ·
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Datei
spi_via_usi_driver.c
Inputs. USI_OUT_REG |= (1<<USI_DATAIN_PIN) | (1<<USI_CLOCK_PIN); // Pull-ups. // Configure USI to 3-wire slave mode with overflow interrupt. USICR = (1<<USIOIE) | (1<<USIWM0) | (1<<USICS1) | (spi_mode<<USICS0); // Init driver status register. spiX_status.masterMode = 0; spiX_status.transferComplete = 0; spiX_status.writeCollision
in „attiny2313 timer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BK2433Datasheetv1.0.pdf
addressing the device in 3-wire slave mode, SPI must be the only slave device present on the bus. It is important to note that in 3-wire slave mode there is no external means of resetting the bit counter that determines when a full byte
in „Chinesische USB/nRF24L01 Adpapter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
One-Wire-Bussysteme.pdf
iButton® viewer) 2. wiring and associated connectors 3. 1-Wire devices Features/Benefits each 1-Wire slave has stored in ROM a unique 64-bit serial number that acts as its node address device to be individually selected from among many that can be connected to the same bus wire o This globally unique
in „Timing Probleme 1-Wire“ · Mikrocontroller und Digitale Elektronik ·
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PDF
One-Wire-Bussysteme.pdf
iButton® viewer) 2. wiring and associated connectors 3. 1-Wire devices Features/Benefits each 1-Wire slave has stored in ROM a unique 64-bit serial number that acts as its node address device to be individually selected from among many that can be connected to the same bus wire o This globally unique
in „1-Wire Protokollablauf“ · Mikrocontroller und Digitale Elektronik ·
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Datei
SPI.c
Inputs. USI_OUT_REG |= (1<<USI_DATAIN_PIN) | (1<<USI_CLOCK_PIN); // Pull-ups. // Configure USI to 3-wire slave mode with overflow interrupt. USICR = (1<<USIOIE) | (1<<USIWM0) | (1<<USICS1) | (spi_mode<<USICS0); // Init driver status register. spiX_status.masterMode = 0; spiX_status.transferComplete = 0; spiX_status.writeCollision
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Datei
SPI_treiber.c
Inputs. USI_OUT_REG |= (1<<USI_DATAIN_PIN) | (1<<USI_CLOCK_PIN); // Pull-ups. // Configure USI to 3-wire slave mode with overflow interrupt. USICR = (1<<USIOIE) | (1<<USIWM0) | (1<<USICS1) | (spi_mode<<USICS0); // Init driver status register. spiX_status.masterMode = 0; spiX_status.transferComplete = 0; spiX_status.writeCollision
in „USI Interface als SPI Schnittstelle beim ATtiny261A“ · Mikrocontroller und Digitale Elektronik ·
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Datei
SPI_Master.c
Inputs. USI_OUT_REG |= (1<<USI_DATAIN_PIN) | (1<<USI_CLOCK_PIN); // Pull-ups. // Configure USI to 3-wire slave mode with overflow interrupt. USICR = (1<<USIOIE) | (1<<USIWM0) | (1<<USICS1) | (spi_mode<<USICS0); // Init driver status register. spiX_status.masterMode = 0; spiX_status.transferComplete = 0; spiX_status.writeCollision
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c8051f32x.pdf
. Since there is no way of uniquely addressing the device in 3-wire slave mode, SPI0 must be the only slave device present on the bus. It is important to note that in 3-wire slave mode there is no external means of resetting the bit counter that determines when a full
in „Drehwinkelmessung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
C8051F53x.pdf
. Since there is not a way of uniquely addressing the device in 3-wire slave mode, SPI0 must be the only slave device present on the bus. It is important to note that in 3-wire slave mode there is no external means of resetting the bit counter that determines when a full
in „[V]erkaufe 35 µC von Silabs C8051F531 (TSSOP-20)“ · Markt ·
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PDF
C8051F531.pdf
. Since there is not a way of uniquely addressing the device in 3-wire slave mode, SPI0 must be the only slave device present on the bus. It is important to note that in 3-wire slave mode there is no external means of resetting the bit counter that determines when a full
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TMP117.pdf
1 0 0 1 0 A1 R/W 0 0 0 0 P3 P2 P1 P0 ¼ Start By ACK By ACK By Master Device Device Frame 1 Two-Wire Slave Address Byte Frame 2 Pointer Register Byte 1 9 1 9 SCL (Continued) SDA (Continued) D15 D14 D13 D12 D11 D10 D9 D8 D7 D6 D5 D4 D3 D2 D1 D0 ACK By ACK By Stop By Device Device Master A Frame 3 Data
in „Präzise Temperaturmessung mit 12Bit-ADC und NTC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FRAM_RAMTRON_FM24C04A.pdf
Address 1-2: The address pins set the device select address. The device address value in the 2-wire slave address must match the setting of these two pins. These pins are internally pulled down. SDA I/O Serial Data/Address: This is a bi-directional pin used to shift serial data and addresses for the
in „Verständnisfrage: Pinning ATMEGA32 -> FRAM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Silabs_Selector_Guide_0307.pdf
The CP2120 allows an SPI master to communicate as an I C master device. The chip includes a 4-wire slave SPI bus, bridge control logic, a bi-directional I C bus interface and 8 general purpose input/output pins. The CP2120 Evaluation Kit demonstrates the SPI-I C fixed functionality and requires absolutely
in „Suche passenden Controller: 2K SRAM, 250KHz ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
app162__Interfacing_DS1820_in_a_MC_environment_.pdf
(8 + 3 x 64) 61 ms = 13.16 m The bus master is therefore capable of identifying 75 different 1-wire slave devices per second. SEARCH ROM CODE EXAMPLES As shown in the prototype function below, the “Find The “Next” function is quite extensive and does Devices” function begins with a 1-Wire reset to most
in „DS18B20 zu komplizierte Ansteuerung?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
app162__Interfacing_DS1820_in_a_MC_environment_.pdf
(8 + 3 x 64) 61 ms = 13.16 m The bus master is therefore capable of identifying 75 different 1-wire slave devices per second. SEARCH ROM CODE EXAMPLES As shown in the prototype function below, the “Find The “Next” function is quite extensive and does Devices” function begins with a 1-Wire reset to most
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PDF
AN162.pdf
+ (8 + 3 × 64) 61µs = 13.16m The bus master is therefore capable of identifying 75 different 1-Wire slave devices per second. Search ROM code examples As shown in the prototype function below, the "Find Devices" function begins with a 1-Wire reset to determine if any devices are on the net, and if so
in „Temperaturfühler identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
nRF24LE1_Product_Specification_rev1_6-6439.pdf
Configuration Register 1/Status Register W2DAT 0xDA 0x00 2-Wire Data Register W2SADR 0xD9 0x00 2-Wire Slave Address Register ADCON 0xD8 0x00 Serial Port 0 Baud Rate Select register (only adcon.7 bit used) WDSW 0xAF 0x00 Watchdog Start Value Register WUCON 0xA5 0x00 Wakeup configuration register WUOPC0
in „Projekt: Kugelschreiber-Morse“ · Mikrocontroller und Digitale Elektronik ·
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Datei
config-mod-LK511-mt7623n-BPiR2.txt
=m CONFIG_W1_MASTER_DS2482=m # CONFIG_W1_MASTER_DS1WM is not set CONFIG_W1_MASTER_GPIO=m # # 1-wire Slaves # CONFIG_W1_SLAVE_THERM=m # CONFIG_W1_SLAVE_SMEM is not set # CONFIG_W1_SLAVE_DS2405 is not set # CONFIG_W1_SLAVE_DS2408 is not set # CONFIG_W1_SLAVE_DS2413 is not set # CONFIG_W1_SLAVE_DS2406 is
in „Linux Kernel 5.1.1. auf dem BPi-R2“ · PC Hard- und Software ·
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PDF
reference_manual.pdf
Simplex bidirectional data wire / masterAlternate function push-pull Simplex bidirectional data wire/ slave Not used. Can be used as a GPIO Full duplex / master Input floating / Input pull-up Full duplex / slave (point to point) Alternate function push-pull Full duplex / slave (multi-slave) Alternate
in „I2S zwischen STM32F103RET6 und PCM3168A möglich?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
attiny84.pdf
This is also the maximum data transmit and receive rate in both two- and three-wire mode. In two-wire slave mode the Two-wire Clock Con- trol Unit will hold the SCL low until the slave is ready to receive more data. This may reduce the actual data rate in two-wire mode. 123 8006H–AVR–10/09 14.4 Alternative
in „Attiny 84 ISP?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR_ATtiny_24_44_84.pdf
This is also the maximum data transmit and receive rate in both two- and three-wire mode. In two-wire slave mode the Two-wire Clock Con- trol Unit will hold the SCL low until the slave is ready to receive more data. This may reduce the actual data rate in two-wire mode. 123 8006K–AVR–10/10 14.4 Alternative
in „AVR Programm brennen ohne Bootloader“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny261A_Complete.pdf
This is also the maximum data transmit and receive rate in both two- and three-wire mode. In two-wire slave mode the Two-wire Clock Con- trol Unit will hold the SCL low until the slave is ready to receive more data. This may reduce the actual data rate in two-wire mode. 13.4 Alternative USI Usage The flexible
in „USI Interface als SPI Schnittstelle beim ATtiny261A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Attiny24a-44a-84a.pdf
This is also the maximum data transmit and receive rate in both two- and three-wire mode. In two-wire slave mode the Two-wire Clock Con- trol Unit will hold the SCL low until the slave is ready to receive more data. This may reduce the actual data rate in two-wire mode. 122 ATtiny24A/44A/84A 8183F–AVR–
in „Kann jemand über meine Inialisierung drüberfliegen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
Registers” on page 186. ATtiny441/841 [DATASHEET] 196 8495H–AVR–05/2014 2 20. I C Compatible, Two-Wire Slave Interface 20.1 Features 2 I C compatible SMBus compatible (with reservations) 100kHz and 400kHz support at low system clock frequencies Slew-Rate Limited Output Drivers Input Filter provides
in „TOCPMSA1 und TOCPMCOE Verhalten beim Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny441_841.pdf
Registers” on page 186. ATtiny441/841 [DATASHEET] 196 8495H–AVR–05/2014 2 20. I C Compatible, Two-Wire Slave Interface 20.1 Features 2 I C compatible SMBus compatible (with reservations) 100kHz and 400kHz support at low system clock frequencies Slew-Rate Limited Output Drivers Input Filter provides
in „Suche nach ATtiny mit ADC und Gain > 20x“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
Registers” on page 186. ATtiny441/841 [DATASHEET] 196 8495H–AVR–05/2014 2 20. I C Compatible, Two-Wire Slave Interface 20.1 Features 2 I C compatible SMBus compatible (with reservations) 100kHz and 400kHz support at low system clock frequencies Slew-Rate Limited Output Drivers Input Filter provides
in „sleep und Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
Registers” on page 186. ATtiny441/841 [DATASHEET] 196 8495H–AVR–05/2014 2 20. I C Compatible, Two-Wire Slave Interface 20.1 Features 2 I C compatible SMBus compatible (with reservations) 100kHz and 400kHz support at low system clock frequencies Slew-Rate Limited Output Drivers Input Filter provides
in „Takt-Vorskalierungsregister beim Attiny841“ · Mikrocontroller und Digitale Elektronik ·