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Datei
main.c
/* Timeout time setting change: "Normal setting time -> Initial setting time" */ timeoutTimeNormal2Initial(); } /* (2)Device main processing */ /*TODO: add your code here */ // Loopback sample j = (senyuKyoku + 1) * 2; for (i = 0; i < j; i ++) { *(rx_base + i) = *(ry_base + i); if(rx_merker != *rx_base
in „R-IN32M3-CL (Cortex-M3): Wie funktioniert Senden/Empfangen auf dem Feldbus?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart.c
(1<<UCSZ1)|(1<<UCSZ0); //#endif #else UCSR0C = (1<<UCSZ01)|(1<<UCSZ00); #endif #if USE_2X UCSR0A |= (1 << U2X0); #endif /*USE_2X*/ USART0_RxTail = 0; USART0_RxHead = 0; USART0_TxTail = 0; USART0_TxHead = 0; } ISR(UART0_RECV_IRQ) { char data; unsigned char tmp; /* #ifdef USART0_PARITY if(
in „AVR: 16 Bit PWM funktioniert nur sporadisch“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet.pdf
ns 11b (Tx) CK high to STXD low -2.44 -0.60 -2.65 -0.98 ns 12 (Tx) CK high to STXD high impedance -2.67 -0.99 -2.65 -0.98 ns 13 SRXD setup time before (Rx) CK low 23.68 – 22.09 – ns 14 SRXD hold time after
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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Datei
FIFO_VERSUCH.c
volatile unsigned char UART_LastRxError; void usart_init(unsigned int UBRR) { UART_TxHead = 0; UART_TxTail = 0; UART_RxHead = 0; UART_RxTail = 0; UBRR0H = ( unsigned char )( UBRR >> 8 ); UBRR0L = ( unsigned char )( UBRR ); UCSR0B =( 1
in „Probleme beim Empfang über UART: Abhilfe FIFO?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
USI_UART.c
) ) #else #define INITIAL_TIMER0_SEED ( 256 - (( (SYSTEM_CLOCK / BAUDRATE) / TIMER_PRESCALER ) * 3/2) ) #define USI_COUNTER_SEED_RECEIVE (USI_COUNTER_MAX_COUNT - DATA_BITS) #endif #define UART_RX_BUFFER_MASK ( UART_RX_BUFFER_SIZE - 1 ) #if ( UART_RX_BUFFER_SIZE & UART_RX_BUFFER_MASK ) #error RX buffer
in „IAR vs. GCC“ · Mikrocontroller und Digitale Elektronik ·
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Schaltplan_FARBE.pdf
129 PG14 A25 USER1 USER2 CON3 3V3 BEEP PD0 114 132 PG15 SD_CS 2 D2 PD1 115 PD0/FSMC_D2 PG15 C21 20pF JP6 B P SDIO_CMD D3 PD2 116 PD1/FSMC_D3 6 PB4 JNTRST B U4 R37 R38 C20 10pF USER2_BUTTON PD3 117 PD2/TIM3_ETR/USART5_RX/SDIO_CMD
in „STM32 Port-Initialisierung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
measurement.txt
# DAQ Thread class DAQThread(QObject): finished = pyqtSignal() def __init__(self): global MAX_LEN_RX_SIGNAL, MAX_LEN_TX_SIGNAL, SAMPLING_RATE super().__init__() self.serial = None self.data = np.zeros(MAX_LEN_RX_SIGNAL) self.data1 = np.zeros(MAX_LEN_RX_SIGNAL) self.data2 = np.zeros(MAX_LEN_RX_SIGNAL
in „Mikrocontroller mit Python auswerten“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart.c
switch (by) { case 's': ptr = va_arg(ap,char *); while(*ptr) { usart_write_char(*ptr++); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); usart_write_char (format_flag++); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop
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Datei
int_3083.h
INTERRUPT timer_a4_interrupt #pragma INTERRUPT uart0tx_interrupt #pragma INTERRUPT uart0rx_interrupt #pragma INTERRUPT uart1tx_interrupt #pragma INTERRUPT uart1rx_interrupt #pragma INTERRUPT timer_b0_interrupt #pragma INTERRUPT timer_b1_interrupt #pragma INTERRUPT timer_b2_interrupt #pragma
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Datei
rs232_test_top.v
; output wire [7:0] RxD_data; wire SYNTHESIZED_WIRE_0; wire [7:0] SYNTHESIZED_WIRE_1; wire SYNTHESIZED_WIRE_2; wire [7:0] SYNTHESIZED_WIRE_3; async_receiver b2v_empf( .clk(osc_clk), .RxD(RxD), .RxD_data_ready(SYNTHESIZED_WIRE_0), .RxD_data(SYNTHESIZED_WIRE_1)); assign RxD_data = SYNTHESIZED_WIRE_1; assign RxD_data_ready = SYNTHESIZED_WIRE_0; kom b2v_Kommuikator( .clk(osc_clk), .RXD_data_ready(SYNTHESIZED_WIRE_0), .RXD_data(SYNTHESIZED_WIRE
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Datei
top_level.v
.tse_conduit_connection_gm_rx_d (1'b0), // .gm_rx_d .tse_conduit_connection_m_rx_d (enet_rx_d), // .m_rx_d .tse_conduit_connection_m_rx_en (enet_rx_en), // .m_rx_en .tse_conduit_connection_m_rx_err (enet_rx_err), // .m_rx_err .tse_conduit_connection_m_rx_crs
in „Beispiel : niosii ethernet standard 3c25“ · FPGA, VHDL & Co. ·
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PDF
QIACHIP_RX480E-4_receiver_module_Instructions_manual_433.92MHz_152.pdf
into toggle setting mode Wait for a moment , the LED will be off , it comes into learning state . 2 von 16 25.02.2023, 11:43 QIACHIP RX480E-4 receiver module Instructions manual | 433.https://qiachip.com/en-de/blogs/usermenu/qiachip-433-92mhz1527-lear... Push the remote button,LED indicator on the
in „Klingel mit 100 Melodien - last minute Weihnachtsgeschenk“ · Projekte & Code ·
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hy-stm32_schematic.pdf
8 3V3 2 2 PA6 2 CS VCC 7 3V3 GND 3V3 3 Q HOLD 6 PA5 所有 IO均已引出 4 W C 5 PA7 1 2 1 2 4 1 9 1 2 3 D IO GND D USB 接口 V E A C E E E B B D C B B D C A A A V N GND M25Pxx 3 P P P P P P P P P P P P P P P P P 3 G SP1
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Datei
usbdrv.c
------------------------------- */ /* raw USB registers / interface to assembler code: */ uchar usbRxBuf[2*USB_BUFSIZE]; /* raw RX buffer: PID, 8 bytes data, 2 bytes CRC */ uchar usbInputBufOffset; /* offset in usbRxBuf used for low level receiving */ uchar usbDeviceAddr; /* assigned during enumeration
in „Problem mit libUSB - wie Gerät ansprechen?“ · Softwareentwicklung ·
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Datei
lcd_text_twi.asm
<<COM1A0); 8bit PWM out TCCR1A, temp ldi temp, 1 ; 62,5kHz PWM out TCCR1B, temp ldi temp, 128 out OCR1AL, temp ldi temp, (1<<WGM21)|2 ; CTC out TCCR2, temp ldi temp, (1<<OCIE2) ; Compare2 Interrupt: Beginn der Datenausgabe out TIMSK, temp in RX, PIND lsr RX lsr RX lsr RX lsr RX lsr RX cpi RX, 0 brne notb0 rjmp init_twi notb0: cpi RX, 1 brne notb1 ldi XH, high(Bauddiv1) ldi XL, low(Bauddiv1) notb1: cpi RX, 2 brne notb2 ldi XH, high(Bauddiv2) ldi XL, low(Bauddiv2) notb2: cpi
in „Einfacher Low Cost LCD Controller für 320x240 LCD im Textmodus“ · Projekte & Code ·
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Datei
nrf24l01.c
REG_OBSERVE_TX 0x08 //Transmit observe register #define NRF24L01_REG_RPD 0x09 #define NRF24L01_REG_RX_ADDR_P0 0x0A //Receive address data pipe 0. 5 Bytes maximum length. #define NRF24L01_REG_RX_ADDR_P1 0x0B //Receive address data pipe 1. 5 Bytes maximum length. #define NRF24L01_REG_RX_ADDR_P2 0x0C //
in „Wer hat noch Ärger mit NRF24L01+ Funkmodulen?“ · Mikrocontroller und Digitale Elektronik ·
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FEZ_Cerb40.pdf
/J_TRST/PWM/SPI1_MISO GND R 1 PA5/SPI1_SCK/ADC12_IN5/DAC2 21 PA5 PB5 57 PB5/CAN2_RX/PWM/SPI1_MOSI PA6/SPI1_MISO/ADC12_IN6 22 58 PB6/I2C1_SCL/UART1_TX PA7/SPI1_MOSI/ADC12_IN7 23 PA6 PB6 59 PB7/I2C1_SDA/UART1_RX B PA8/MCO1 41 PA7 PB7 61 PB8/I2C1_SCL/CAN1_RX 3
in „Störsignal auf Spannungsversorgung“ · Mikrocontroller und Digitale Elektronik ·
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UART_Daten.pdf
Control Tx Clock Tx IRQSend SCON0 TI UART Baud E Serial Rate Generator D 0 0 0 0 Port Port I/O O C E B B T RI RI Interrupt 0 M R T R S Rx IRQ Rx Clock Rx Control Load Start Shift 0x1FF RB8 SBUF Input Shift Register (9 bits) Load SBUF0 SBUF (RX Latch) SBUF SFR Bus RX Crossbar Figure 14.1. UART0 Block Diagram
in „Silicon C8051F300 UART Problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mcp2515_equ.inc
BFPCTRL ;*; .equ B1BFS =5 .equ B0BFS =4 .equ B1BFE =3 .equ B0BFE =2 .equ B1BFM =1 .equ B0BFM =0 ;;*;* \brief Bitdefinition von TXRTSCTRL ;*; .equ B2RTS =5 .equ B1RTS =4 .equ B0RTS =3 .equ B2RTSM =2 .equ B1RTSM =1 .equ
in „CAN Controller MCP2515: Schreiben in CANCTRL“ · Mikrocontroller und Digitale Elektronik ·
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Datei
prog.c
OSC.CTRL|=OSC_PLLEN_bm; // System Clock prescaler A division factor: 1 // System Clock prescalers B & C division factors: B:1, C:1 // ClkPer4: 32000,000 kHz // ClkPer2: 32000,000 kHz // ClkPer: 32000,000 kHz // ClkCPU: 32000,000 kHz n=(CLK.PSCTRL & (~(CLK_PSADIV_gm | CLK_PSBCDIV1_bm | CLK_PSBCDIV0_
in „Codevision CodeWizardAVR TWI Probleme“ · Mikrocontroller und Digitale Elektronik ·
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Sti7105_SDK_Main_Board_V1.2.pdf
1K 18 DISEQCTX RX 60 UART3_RXD 250R Nim Address:00 19 61 UART3_TXD 3.3Vstb UN3 Select_Alim_1V_NimB 20 OP1 TX 62 UART3_CTS LD49300 1.8V_NimB 21 OP0 CTS 63 UART3_RTS RN20 0.7R 3W RN21 22 OP2 RTS 64 2 4 1.8VA_NimB 23 GNDD
in „Motorola Vip19x0 (Big brother of Vip1710)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
swuart.c
(void) { MCUCR |= (2 << ISC00); GICR |= (1 << 6); PORTD |= (1 << 2); DDRD &= ~(1 << 2); TCNT2 = 255 - RX_TIME_BIT_TIME; TCCR2 = TIMER2_DIVIDER; // TIFR &= ~(1 << TOV2); TIMSK &= ~(1 << TOIE2); ucRxCnt = 0; INIT_TX_PIN; // uiShiftReg = 0x200; } void vSetEdgeDetect (void) { TIFR |= (1 << TOV2); GIFR |= (1 << 6); TIMSK &= ~(1 << TOIE2); GICR |= (1 << 6); } ISR (TIMER2_OVF_vect) { TCNT2 = 255 - RX_TIME_BIT_TIME; if (ucRxCnt >= 8) { if (PIN_RX) { ucSWUARTData = ucInputShiftReg; bSWUARTReceived
in „Problem mit SW UART“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm12_interupt_test.c
define RF_PORT PORTB #define RF_DDR DDRB #define RF_PIN PINB #define SDI 3 #define SCK 5 #define CS 2 #define SDO 4 //ausgänge für rfm12bp #define RX 1 #define TX 2 #define RF12_DataLength 2 #define RF_IRQDDR DDRD #define RF_IRQPIN PIND #define IRQ 2 struct RF12_stati { unsigned char Rx:1; unsigned char
in „rfm12 mit interrupt“ · Mikrocontroller und Digitale Elektronik ·
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IA4421-DS.pdf
0603CS-3N9X 0603CS-3N9X 1 L4 Coilcraft 0603CS-18NX 0603CS-3N9X 0603CS-3N9X 1 L2 Coilcraft 0603CS-47NX 0603CS-18NX 0603CS-16NX 1 L3 Coilcraft 0603CS-R39X 0603CS-R10X 0603CS-R10X 2 C9 Murata GRM1885C1H2R7CZ01B GRM1885C1H1R2CZ01B GRM1885C1H1R2CZ01B 3 C8 Murata GRM1885C1H5R0CZ01B GRM1885C1H2R7CZ01B GRM1885C1H2R7CZ01B 3 C10 Murata GRM1885C1H2R7CZ01B GRM1885C1H1R8CZ01B GRM1885C1H1R8CZ01B 3, 4 C11 Murata GRM1885C1H221JA01B GRM1885C1H470JZ01B GRM1885C1H330JZ01B 3 C3 Murata GRM1885C1H221JA01B GRM1885C1H470JZ01B
in „Software SPI zur Chip Konfig“ · Mikrocontroller und Digitale Elektronik ·
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Si_4421__RFM12B_.pdf
0603CS-3N9X 0603CS-3N9X 1 L4 Coilcraft 0603CS-18NX 0603CS-3N9X 0603CS-3N9X 1 L2 Coilcraft 0603CS-47NX 0603CS-18NX 0603CS-16NX 1 L3 Coilcraft 0603CS-R39X 0603CS-R10X 0603CS-R10X 2 C9 Murata GRM1885C1H2R7CZ01B GRM1885C1H1R2CZ01B GRM1885C1H1R2CZ01B 3 C8 Murata GRM1885C1H5R0CZ01B GRM1885C1H2R7CZ01B GRM1885C1H2R7CZ01B 3 C10 Murata GRM1885C1H2R7CZ01B GRM1885C1H1R8CZ01B GRM1885C1H1R8CZ01B 3, 4 C11 Murata GRM1885C1H221JA01B GRM1885C1H470JZ01B GRM1885C1H330JZ01B 3 C3 Murata GRM1885C1H221JA01B GRM1885C1H470JZ01B
in „RFM12b ideale Konfiguration“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Snap.c
---- void SnapReceiveChar(unsigned char ch) { unsigned int x; static unsigned int crc = 0; if (SnapRxState == SNAP_STATE_HEADER2) crc = crc16(&ch, 1); else if ((SnapRxState > SNAP_STATE_HEADER2) & (SnapRxState <= SNAP_STATE_DATA)) crc = crc16_continue(&ch, 1, crc); switch (SnapRxState) { case SNAP_STATE_PREAMBLE1: if (ch == SNAP_PREAMBLE1) SnapRxState++; break; case SNAP_STATE_PREAMBLE2: if (ch == SNAP_PREAMBLE2) SnapRxState++; else SnapRxState=0; break; case SNAP_STATE_SYNC: if (ch == SNAP_SYNC) SnapRxState++; else SnapRxState=0; break; case
in „AVR4: collect2: ld returned 1 exit status“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2c_slave.c
uint8_t I2C_RxBuffer[I2C_PACKETSIZE]; static volatile uint8_t I2C_RxIndex; static volatile uint8_t I2C_TxBuffer[I2C_PACKETSIZE]; static volatile uint8_t I2C_TxIndex; static volatile uint8_t I2C_TxLength; static
in „AVR: TWI (I²C) Slave mit oder ohne Interrupt?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
#include <msp430g2553.h> int data1; int data2; int data3; int data4; int TXByteCtr = 1; unsigned char PRxData; int Rx = 1; char WHO_AM_I = 0x00; char itgAddress = 0x5C; //char itgAddress = 0xB8; void init_I2C(void); void Transmit(void); void Receive
in „MSP430G2553 / DHT12 Sensoranbindung / Initialsierung anfangs fehlerhaft“ · Mikrocontroller und Digitale Elektronik ·
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ltn154x3-l06.pdf
Differential Data INPUT (R0-R5,G0) Positive 10 VSS Ground 11 RxIN1- LVDS Differential Data INPUT (G1-G5,B0-B1) Negative 12 RxIN1+ LVDS Differential Data INPUT (G1-G5,B0-B1) Positive 13 VSS Ground 14 RxIN2- LVDS Differential Data INPUT (B2-B5,Sync,DE) Negative 15
in „BeagleBoard LVDS Transmitter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dm9161-ds-f05_091008.pdf
......................31 7.2.1.5 MLT-3 Converter........................................15 7.2.1.6 MLT-3 Driver ..............................................15 9. DC and AC Electrical Characteristics 7.2.1.7 4B5B Code Group....
in „Beschaltung VICOM DM9161CEP“ · Mikrocontroller und Digitale Elektronik ·
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6300_RM-217_RM-222_schematics.pdf
GND 2p7 2p7 PIO4 E6 BT_WAKEUP 5 C7 VSS_DIG PIO5 E5 GND GND G3 VSS_DIG D4 B1 VSS_VCO PIO7 C1 VSS_RADIO PIO8 F3 B3 PIO9 F1 VSS_ANA UART_TX B5 UART_TX 1 GND UART_RX A5 UART_RX 2 C6032 A7 UART_RTS 3 A3 XTAL_IN
in „Nokia 6300 Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MAIN.C
1 : Set Transmission Request // DATAA = 1 : Transfer Data A register // DATAB = 1 : Transfer Data B register IF2CREQ0 = buffer; // Start transfer if( IF2MCTR0_MSGLST ) // check whether or not a message was lost { IF2MCTR0_MSGLST = 0; // Clear MSGLST Flag IF2CMSK0 = 0x90; // Prepare Interface Command
in „program CANbus interface on fujitsu MB96340 Series with id filtering“ · Projekte & Code ·
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Datei
rectra.c
buffer until that buffer is emptied again. */ int uart_getchar(FILE *stream) { uint8_t c; char *cp, *cp2; static char b[RX_BUFSIZE]; static char *rxp; if (rxp == 0) for (cp = b;;) { loop_until_bit_is_set(UCSRA, RXC); if (UCSRA & _BV(FE)) return _FDEV_EOF; if (UCSRA & _BV(DOR)) return _FDEV_ERR; c = UDR;
in „AVR UART Datei senden und Empfanfangen“ · Mikrocontroller und Digitale Elektronik ·
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bourns-PTC-MF-R.pdf
should verify actual device performance in their specific applications. MF-R, MF-R/90, MF-R/600, MF-RX, & MF-RX/72 Series Tape and Reel Specifications Devices taped using EIA468–B/IEC286-2 standards. See table below and Figures 1 and 2 for details. IEC EIA Dimensions Dimension Description Mark Mark Dimensions
in „Batteriehalter mit unbekannten Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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avrcpm_cpu_board.sch.pdf
1 TX_HOST R 1 A[0..7],A8_MOSI,A9_MISO,A10 B 2 USBDM 4 VCCIO RXD 5 RX_HOST /RESET_AVR DQ[0..7] S 3 USBDP RTS 3 5 U 4 19 RESET CTS 11 3 4 /WE,/RAS,/CAS + C4 DTR 2 /RESET_PRO S p USB 27 9 C6 7 2 U3 X6 10n TP1 28 OSCI DSR 10 e 1 2 C 2 20 44 DQ7 OSCO
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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EMS_PIC.pdf
V EMS Bus V + V 2 1 L1 2 + + 1 4 EMS_TX 7 6 7 2 4700µH 9 1 T 2 0 4 R 1 k 4 1 JP1 C1 D D B C 1 3 IC1A R 4 5 IC1B R B 4 R1 3 n 1 R7 7 R13 L2 5 T C 1 2 232_RX 6 EMS_TX 1 2 D B 10K 2 LM393N 4k7 232_TX LM393N 4k7 4700µH 4 0 R K 3 4k 5 2 A 4 3 3 4 1 R0 R 5 D B T D 1 1 k B R 4 D6 GND 1N4148DO35-7 GND GND GND JP3 1 U1 5 5 2 JP2 + + 3 5 0 R 4 CAN_TX 1 TXD CANH 7 1 IC4 + SW1 1 IC2 GND 5 2 6 6 CAN_RX 4 RXD CANL 6 5 20 VCC TXD 1 232_RX 8 1
in „Buderus EMS-"Gateway" mit PIC18F / Sammelbestellung“ · Haus & Smart Home ·
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EMS_PIC.pdf
V EMS Bus V + V 2 1 L1 2 + + 1 4 EMS_TX 7 6 7 2 4700µH 9 1 T 2 0 4 R 1 k 4 1 JP1 C1 D D B C 1 3 IC1A R 4 5 IC1B R B 4 R1 3 n 1 R7 7 R13 L2 5 T C 1 2 232_RX 6 EMS_TX 1 2 D B 10K 2 LM393N 4k7 232_TX LM393N 4k7 4700µH 4 0 R K 3 4k 5 2 A 4 3 3 4 1 R0 R 5 D B T D 1 1 k B R 4 D6 GND 1N4148DO35-7 GND GND GND JP3 1 U1 5 5 2 JP2 + + 3 5 0 R 4 CAN_TX 1 TXD CANH 7 1 IC4 + SW1 1 IC2 GND 5 2 6 6 CAN_RX 4 RXD CANL 6 5 20 VCC TXD 1 232_RX 8 1
in „Junkers HT-Bus Heatronic 3 Schnittstelle“ · Haus & Smart Home ·
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Schematic_Prints.pdf
1 2 3 4 +12 +12 5V KA7805TU J 1 1 IN OUT 2 1 3 USB 5V 2 2 C1 C2 GND C3 C4 Pwr 4.7U/35 100n 3 100n 4.7U/35 A +5 A +5 1 2 R1 LED 1k B RS485 +12 C6 B 1 VCC RS-485 4-wire +12 Bus 2 8 100n 1 2 USB R 7 3 4 1 (
in „Bus an Atmega32 funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
fd02-101g.pdf
Voltage: 2,000Vrms Min. Attenuation @ 30MHz: Transmit -27 dB Min. Insertion Loss (5-10MHz): -1 dB Max. Receive -18 dB Min. Return Loss (5-10MHz): -20 dB Min. Cutoff Frequency: 17 MHz Typ. Filter Description Optional
in „Was gibts neues vom ENC28J60??“ · Mikrocontroller und Digitale Elektronik ·
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PDF
fd02-101g.pdf
Voltage: 2,000Vrms Min. Attenuation @ 30MHz: Transmit -27 dB Min. Insertion Loss (5-10MHz): -1 dB Max. Receive -18 dB Min. Return Loss (5-10MHz): -20 dB Min. Cutoff Frequency: 17 MHz Typ. Filter Description Optional
in „Ethernet Transformator/Übertrager für ENC28J60“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HC11.pdf
/7 8 A4 E4 9 9 BAR IN4 50 PE7 E 5 E A0 12 A0 O0 13 D0 A2 6 A2 D1 13 D1 CA1 40 CA1 A1 11 A1 O1 14 D1 A3 7 A3 D2 12 D2 CA2 39 CON16 4x1k ILQ74 8x4,7k RxD1 20 PD0/RxD MOD_A 3 MODA A2 10 A2 O2 15 D2 RD/ 8 RD D3 11 D3 XIRQ/ 38 IRQA CB1 18 CB1 TxD1 21 PD1/TxD MOD_B
in „MC68HC11 MOPS 1.3e GLCD KS0108 Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INTERFACE_20.pdf
Schnittstellenbaustein für Ihre Anwendung! Transceiver Baustein Schnittstellenprotokoll am Bus Pins/Gehäuse MAX3160 2Tx/2Rx RS-232 oder 1Tx/1Rx RS-485/RS-422, pin-programmierbar 128 20-SSOP MAX3161 2Tx/2Rx RS-232 oder 1Tx/1Rx RS-485/RS-422, pin-programmierbar 256 24-SSOP MAX3162 2Tx/2Rx RS-232 und 1Tx/1Rx RS-485/RS-
in „galvanische Trennung RS232“ · Mikrocontroller und Digitale Elektronik ·
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auo-B101AW06-V1-pre.pdf
data. B2 Blue Data 2 B1 Blue Data 1 B0 Blue Data 0 (LSB) Blue-pixel Data RxCLKIN Data Clock The signal is used to strobe the pixel data and DE signals. All pixel data shall be valid at the falling edge when
in „Handydummy (Attrappe)mit richtigem Display 10Zoll - u.a.Motorola Xoom“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
[0] == 0) { dmx_valid = 1; dmx_channel_rx_count++; } else { dmx_valid = 0; } return; } if(dmx_valid) { if(dmx_channel_rx_count == dmx_adresse) dmx_buffer[1] = tmp; if(dmx_channel_rx_count == dmx_adresse+1) dmx_buffer[2] = tmp; if(dmx_channel_rx_count
in „DMX und der Attiny2313“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CMU200-internal-cabeling-MW.txt
==== ? ============> ? X705 = REFOUT2 (BNC Rear) <========== W35 ============> RFOUT2 (BNC Rear?) X706 = IF3RX1 in X707 = n/c X708 = IF3TX1 out X709 = n/c A9: UMTS... Opt. B66/68/76/78 ============================= X900 = n/c X901 = X902
in „CMU200 Erfahrungen und Modifikationen“ · HF, Funk und Felder ·
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PDF
Core429I-Schematic.pdf
PA1<>USART2_RTS/UART4_RX/ETH_RMII_REF_CLK/ETH_MII_RX_CLK/TIM5_CH2/TIM2_CH2/ADC123_IN1 PD1<>FSMC_D3/CAN1_TX 144 PD2 5V 3.3V USB_5V 2 7 USB_5V PA3 47 PA2<>USART2_TX/TIM5_CH3/TIM9_CH1/TIM2_CH3/ETH_MDIO/ADC123_IN2 PD2
in „STM32F4x9 - FMC - SSD196x“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main-master.c
(UINT8 reg, UINT8 *pBuf); void SPI_Bank1_Read_Reg(UINT8 reg, UINT8 *pBuf); void Carrier_Test(UINT8 b_enable); //carrier test extern void RFM70_Initialize(void); extern void SwitchToTxMode(void); extern void SwitchToRxMode(void); const UINT8 tx_buf[17]={0x30,0x31,0x32,0x33,0x34,0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x78}; UINT8 rx_buf[MAX_PACKET_LEN]; extern const UINT8 RX0_Address[]; extern const unsigned long Bank1_Reg0_13[]; UINT8 test_data; main() { unsigned char i, j, chksum; OSCCON = 0X70
in „Hat jemand Erfahrung mit dem 2,4GHz-Transceiver RFM70?“ · HF, Funk und Felder ·
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Datei
main-slave.c
(UINT8 reg, UINT8 *pBuf); void SPI_Bank1_Read_Reg(UINT8 reg, UINT8 *pBuf); void Carrier_Test(UINT8 b_enable); //carrier test extern void RFM70_Initialize(void); extern void SwitchToTxMode(void); extern void SwitchToRxMode(void); const UINT8 tx_buf[17]={0x30,0x31,0x32,0x33,0x34,0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x78}; UINT8 rx_buf[MAX_PACKET_LEN]; extern const UINT8 RX0_Address[]; extern const unsigned long Bank1_Reg0_13[]; UINT8 test_data; main() { unsigned char i, j, chksum; OSCCON = 0X70
in „Hat jemand Erfahrung mit dem 2,4GHz-Transceiver RFM70?“ · HF, Funk und Felder ·
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Datei
stm32f4xx_spi.h
IS_I2S_MODE(MODE) (((MODE) == I2S_Mode_SlaveTx) || \ ((MODE) == I2S_Mode_SlaveRx) || \ ((MODE) == I2S_Mode_MasterTx)|| \ ((MODE) == I2S_Mode_MasterRx)) /** * @} */ /** @defgroup SPI_I2S_Standard * @{ */ #define
in „STM32F4XX SPI Slave“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mcp2515.txt
BFPCTRL */ #define B1BFS 5 #define B0BFS 4 #define B1BFE 3 #define B0BFE 2 #define B1BFM 1 #define B0BFM 0 /** \brief Bitdefinition von TXRTSCTRL */ #define B2RTS 5 #define B1RTS 4 #define B0RTS 3 #define B2RTSM 2 #define B1RTSM 1 #define B0RTSM 0 /** \brief Bitdefinition von CANSTAT */ #define OPMOD2 7 #define OPMOD1 6 #define OPMOD0 5 #define ICOD2 3 #define ICOD1 2 #define ICOD0 1 /** \brief Bitdefinition von CANCTRL
in „MCP2515 richtig initialisiert?“ · Mikrocontroller und Digitale Elektronik ·