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TDA5051A_-_PowerLine.pdf
power-up XTAL = 8.48 MHz; − 1 − s and DATA INin C1 = C2 = 27 pF; transmission mode Rp = 2.2 M ; see Fig.10 td(pu)(RX) delay between power-up XTAL = 8.48 MHz; − 1 − s and DATA OUT in reception C1 = C2 = 27 pF; mode Rp = 2.2 M ; RXIN = 132.5 kHz; 120 dB V sine
in „Probleme mit PLC-Modem-Chip TDA5051“ · Haus & Smart Home ·
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PDF
TDA5051A.pdf
power-up XTAL = 8.48 MHz; − 1 − s and DATA INin C1 = C2 = 27 pF; transmission mode Rp = 2.2 M ; see Fig.10 td(pu)(RX) delay between power-up XTAL = 8.48 MHz; − 1 − s and DATA OUT in reception C1 = C2 = 27 pF; mode Rp = 2.2 M ; RXIN = 132.5 kHz; 120 dB V sine
in „µC Kommunikation (Signale) über Gleichspannung modulieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mikrobeginner_gesamt.pdf
clt sbrc rmp,bKKl ; Timer 1 initiieren, freilaufend durch 8 rjmp Update1 ldi rmp,1<<CS11 ; Prescaler durch 8 ldi ZH,HIGH(2*ErrDKu) out TCCR1B,rmp ; an Kontrollregister B ldi ZL,LOW(2*ErrDKu) ; PCINT0 fuer IR-Rx sbrc
in „Attiny26 PortD“ · Mikrocontroller und Digitale Elektronik ·
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Datei
UART.c
char *s){ while(*s){ sendchar(*s); s++; } } void init_USART(){ UART_TxHead = 0; UART_TxTail = 0; UART_RxHead = 0; UART_RxTail = 0; unsigned int ubrr = MYUBRR; /*Set baud rate */ UBRR0H = (unsigned char)(ubrr>>8); UBRR0L = (unsigned char)ubrr; /*Enable receiver and transmitter */ UCSR0B = (1<<RXEN0)|(1<<TXEN0)|(1<<RXCIE0); /* Set frame format: 8data, 2stop bit */ UCSR0C = (1<<USBS0)|(3<<UCSZ00); } unsigned int uart_getc(void) { unsigned char tmptail; unsigned char data; if ( UART_RxHead == UART_RxTail ) { return UART_NO_DATA; /* no data available *
in „UART Software Flow Control Befehle werden ignoriert“ · Mikrocontroller und Digitale Elektronik ·
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PDF
B156XW03_V.2.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 „Pollin LVDS-Board an B156XW03 Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmel-42559-differences-between-atmega328p-and-atmega328pb_applicationnote_at15007.pdf
. Figure 2-2. Output Compare Modulator - Block Diagram The Output Comparator unit 3B and Output compare unit 4B shares the PD2 port pin for output. The outputs of the Output Compare units (OC3B and OC4B) overrides the normal PORTD2 bit when one of them is enabled (that is, when COMnx1:0 is not equal to zero). When both OC3B and OC4B are enabled simultaneously, the modulator is automatically enabled. 2.4. USART ATmega328PB has one
in „ATmega328p: timestamp beim Flashen ohne Zusatzhardware?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT15007.pdf
. Figure 2-2. Output Compare Modulator - Block Diagram The Output Comparator unit 3B and Output compare unit 4B shares the PD2 port pin for output. The outputs of the Output Compare units (OC3B and OC4B) overrides the normal PORTD2 bit when one of them is enabled (that is, when COMnx1:0 is not equal to zero). When both OC3B and OC4B are enabled simultaneously, the modulator is automatically enabled. 2.4. USART ATmega328PB has one
in „ATMega328PB lässt sich nur noch programmieren. Sonst keine Funktion mehr“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32_ub_uart.c
Receive wird per Interrupt behandelt // // Hinweis : mögliche Pinbelegungen // UART1 : TX:[PA9,PB6] RX:[PA10,PB7] // UART2 : TX:[PA2,PD5] RX:[PA3,PD6] // UART3 : TX:[PB10,PC10,PD8] RX:[PB11,PC11,PD9] // UART4 : TX:[PA0,PC10] RX:[PA1,PC11] // UART5 : TX:[PC12] RX:[PD2] // UART6 : TX:[PC6,PG14] RX:[PC7,
in „STM32F030F4P6 und USART1“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
#define BAUD 9600UL #include <avr/interrupt.h> #define BUFFER_LEN 128 #include "MYDEFS.H" #define RX0_SIZE 10 // usable: RX0_SIZE + 2 (4 .. 258) #define TX0_SIZE 8 // usable: TX0_SIZE + 1 (3 .. 257) #define UTX0_IEN SBIT( UCSR0B, UDRIE0 ) #define URX0_IEN SBIT( UCSR0B, RXCIE0 ) //USART0 //**********
in „ATMega1280 und UART Lib Peter Dannegger“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Referenzkarte für RX01/RX02 Digital-Speichermedien
OPERATING TEMPERATURE 59° to 90° (F), 15° to 32° (C) DISK LIFE 3 million revolutions/track, head loaded RX8, RX28 INSTRUCTIONS 67X0 NOP No operation (RX8, RX28) 67X1 SEL Select drive pair: AC11=0 pair A; =1 pair B (VT78 only) 67X2 LCD Load command, clear AC (RX28 - second byte 67X2 if 8 bit mode) 67X3 XDR
in „Keine Ahnung welcher Controller für 8 Zoll Floppy“ · PC Hard- und Software · · Fotos
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Datei
NRF24_SendRcvMIesp.ino
(p->packet[25] ); FCNT = (uint8_t)(p->packet[26]); FCODE = (uint8_t)(p->packet[27]); if (p->packet[2] == 0xB6) {PV= 0; TotalP[1]=P_DC; pvCnt[0]=1;}//port 1 if (p->packet[2] == 0xB7) {PV= 1; TotalP[2]=P_DC; pvCnt[1]=1;}//port 2 if (p->packet[2] == 0xB8) {PV= 2; TotalP[3]=P_DC; pvCnt[2]=1;}//port 3 if
in „Wechselrichter Hoymiles HM-xxxx 2,4 GhZ Nordic Protokoll?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
UART.c
(int baur_reg) { _TRISB0=0; // TX-Pin Output _TRISB1=1; // RX-Pin Input U2MODEbits.STSEL=0; // One Stop bit U2MODEbits.PDSEL=0b00; // 8-bit data, no parity U2MODEbits.BRGH=1; // BRG generates 4 clocks per bit period (4x baud clock, High-Speed mode) U2MODEbits.RXINV=0; // UxRX Idle state is '1' U2MODEbits.ABAUD=0; // Baud rate measurement is disabled or completed U2MODEbits.UEN=0b00; // UxTX and UxRX pins are enabled and used; UxCTS and UxRTS/UxBCLK pins are controlled by
in „Einfacher Webserver mit PIC24 + ESP8266“ · Projekte & Code ·
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Digital_IO_Operating_Guide_100804_.pdf
on PMIO_49[2] GPI21 V1 PMU_RXE4[6] PMU_RXE4[6]=1 and PMU_RXE5[2] PMU_RXE5[2]=0 and PMIO_RX4E[5] PMIO_RX4E[5]=1:GPI21 GPI21 input value on PMIO_4A[5] GPI28 P25 PMU_RXE5[3] PMU_RXE5[3]=1 and PMIO_RX4F[4] PMIO_RX4F[4]=1: GPI28 GPI28 input value on PMIO_4B[4] GPI29 P24 PMU_RXE5[3] PMU_RXE5[3]=1 and PMIO_RX4F[5] PMIO_RX4F[5]=1: GPI29 GPI29 input value on PMIO_4B[5] GPO5 AC7 PMU_RXE4[0] PMU_RXE4[0]=1:GPO5 output control on PMIO_4C[5] GPO6 AF6 PMU_RXE4[1]
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Datei
nRF24L01.h
RF_CH 0x05 #define RF_SETUP 0x06 #define STATUS 0x07 #define OBSERVE_TX 0x08 #define CD 0x09 #define RX_ADDR_P0 0x0A #define RX_ADDR_P1 0x0B #define RX_ADDR_P2 0x0C #define RX_ADDR_P3 0x0D #define RX_ADDR_P4 0x0E #define RX_ADDR_P5 0x0F #define TX_ADDR 0x10 #define RX_PW_P0 0x11 #define RX_PW_P1 0x12 #define RX_PW_P2 0x13 #define RX_PW_P3 0x14 #define RX_PW_P4 0x15 #define RX_PW_P5 0x16 #define FIFO_STATUS 0x17 #define DYNPD 0x1C /* Bit Mnemonics */ /* configuratio nregister */ #define MASK_RX_DR 6 #define
in „NRF24L01+ mit ATMEGA328P Standalone“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nRF24L01.h
RF_CH 0x05 #define RF_SETUP 0x06 #define STATUS 0x07 #define OBSERVE_TX 0x08 #define CD 0x09 #define RX_ADDR_P0 0x0A #define RX_ADDR_P1 0x0B #define RX_ADDR_P2 0x0C #define RX_ADDR_P3 0x0D #define RX_ADDR_P4 0x0E #define RX_ADDR_P5 0x0F #define TX_ADDR 0x10 #define RX_PW_P0 0x11 #define RX_PW_P1 0x12 #define RX_PW_P2 0x13 #define RX_PW_P3 0x14 #define RX_PW_P4 0x15 #define RX_PW_P5 0x16 #define FIFO_STATUS 0x17 #define DYNPD 0x1C /* Bit Mnemonics */ /* configuration register */ #define MASK_RX_DR 6 #define
in „nrf24l01 sendet nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nRF24L01.h
RF_CH 0x05 #define RF_SETUP 0x06 #define STATUS 0x07 #define OBSERVE_TX 0x08 #define CD 0x09 #define RX_ADDR_P0 0x0A #define RX_ADDR_P1 0x0B #define RX_ADDR_P2 0x0C #define RX_ADDR_P3 0x0D #define RX_ADDR_P4 0x0E #define RX_ADDR_P5 0x0F #define TX_ADDR 0x10 #define RX_PW_P0 0x11 #define RX_PW_P1 0x12 #define RX_PW_P2 0x13 #define RX_PW_P3 0x14 #define RX_PW_P4 0x15 #define RX_PW_P5 0x16 #define FIFO_STATUS 0x17 #define DYNPD 0x1C /* Bit Mnemonics */ /* configuratio nregister */ #define MASK_RX_DR 6 #define
in „NRF24L01 und Atmega328P“ · Mikrocontroller und Digitale Elektronik ·
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Datei
NRF24_SendRcvMIesp.ino
(p->packet[25] ); FCNT = (uint8_t)(p->packet[26]); FCODE = (uint8_t)(p->packet[27]); if (p->packet[2] == 0xB6) {PV= 0; TotalP[1]=P_DC; pvCnt[0]=1;}//port 1 if (p->packet[2] == 0xB7) {PV= 1; TotalP[2]=P_DC; pvCnt[1]=1;}//port 2 if (p->packet[2] == 0xB8) {PV= 2; TotalP[3]=P_DC; pvCnt[2]=1;}//port 3 if
in „Wechselrichter Hoymiles HM-xxxx 2,4 GhZ Nordic Protokoll?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
NRF24_SendRcvMIesp.ino
(p->packet[25] ); FCNT = (uint8_t)(p->packet[26]); FCODE = (uint8_t)(p->packet[27]); if (p->packet[2] == 0xB6) {PV= 0; TotalP[1]=P_DC; pvCnt[0]=1;}//port 1 if (p->packet[2] == 0xB7) {PV= 1; TotalP[2]=P_DC; pvCnt[1]=1;}//port 2 if (p->packet[2] == 0xB8) {PV= 2; TotalP[3]=P_DC; pvCnt[2]=1;}//port 3 if
in „Wechselrichter Hoymiles HM-xxxx 2,4 GhZ Nordic Protokoll?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Lan_Karte_Doku.pdf
Bit RW Name Polarisierung Beschreibung 0 W RX_START Das eine DV = LOW aus der RX FIFO "weglesen" DV in die TX FIFO schreiben und danach ein DV = LOW 1 RW TX_FLG_DV byte 2 RW TX_EN nTX_EN TX Pfad ist aktiv 3 W IRQ_RX_clear nIRQ_RX_clear RX Pfad IRQ
in „Space Age 2 der 32Bit MIPS Rechner in TTL“ · Projekte & Code ·
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Datei
PT1000.c
ein etwas zu hoher ADC-Wert von 512. Nach der unten (in 'main()') gezeigten Berechnung ergibt sich: rx = 1001 * 512 / 511 => 1002,96 Ohm als Abweichung zu R_PT0 ergibt sich: rx = rx - R_PT0 - R_ZULEITUNG => 2,96 Ohm umgerechnet auf Grad C: 2,96 / PT_FAKTOR => 0,77 Grad C Dieser Abschaetzung zu Folge wird
in „PT1000, einfache Auswertung mit AVR (ATmega328)“ · Projekte & Code ·
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Datei
mcp_can_dfs_ext.h
0x40 #define MCP_RXB_RX_STD 0x20 #define MCP_RXB_RX_STDEXT 0x00 #define MCP_RXB_RX_MASK 0x60 #define MCP_RXB_BUKT_MASK (1<<2) /* ** Bits in the TXBnCTRL registers. */ #define MCP_TXB_TXBUFE_M 0x80 #define MCP_TXB_ABTF_M 0x40
in „MCP2515 an Arduino mehr als 8 Frames senden“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
_t rx_buffer_time; uint8_t uart_in[10]; void uart_init(void){ #undef BAUD #define BAUD 38400 #include <util/setbaud.h> UBRR0H = UBRRH_VALUE; UBRR0L = UBRRL_VALUE; #if USE_2X UCSR0A |= (1 << U2X0); #else UCSR0A &= ~(1 << U2X0); #endif //UCSR0A |= (1<<RXC0); UCSR0B |= (1<<TXEN0)|(1<<RXEN0)|(1<<RXCIE0); // UART TX/RX einschalten, RX-Interrupt aktivieren UCSR0C = (1<<UCSZ01)|(1<<UCSZ00); // Asynchron 8N1 } void uart_tx(void
in „UART-Interrupt wird nicht ausgelöst“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Orion_Rev_3.0__1_.pdf
VREFB7N0 GXB_RX2P W2 PHY_INT_N A6 IO_B8_A6/DIFFIO_T16P IO_B8_D9/DIFFIO_T6P/DQ1T D9 D C21 VREFB7N1 GXB_RX3N U1 PHY_MDIO A7 IO_B8_A7/DIFFIO_T18N IO_B8_E10/DIFFIO_T7P/DQ1T E10 D G16 U2 PHY_MDC A8 E12 B13 VREFB7N2 GXB_RX3P
in „Suche Firma die für Privat BGA FPGA reballing macht“ · Markt ·
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PDF
Receiver_2.pdf
V VO_R7 75 DATA1+ RX2- A A A A P D D D O O O O OO_R6 DATA1/3S 11 O_R5 74 DATA3- 12 5 R1 85 RX1+ O_R4 73 DATA3+ 13 + 86 RX1- O_R3 72 +5V 14 100 O_R2 71 GND 15 90 RX0+ O_R1 70 HOT-PLUG 16 91 RX0- O_R0 69 SV2 DATA0- 17 R10
in „digital VGA 6bit -> VGA?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LTN150XB-L03.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 (B1-B5,Sync,DE) Negative 15
in „Samsung LTN150XB-L03 Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Slave.cpp
; h_dma_rx.DMA_Channel = DMA_Channel_3; h_dma_rx.DMA_DIR = DMA_DIR_PeripheralToMemory; h_dma_rx.DMA_Memory0BaseAddr = (uint32_t)&DAQPipe.rx_frame; DMA_Init(DMA2_Stream2, &h_dma_rx); DMA_Cmd(DMA2_Stream2, ENABLE
in „2 STM32F4 SPI Master/Slave FullDuplex“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nrf24l01.h
0x08 // 'Observe TX' register address #define CD 0x09 // 'Carrier Detect' register address #define RX_ADDR_P0 0x0A // 'RX address pipe0' register address #define RX_ADDR_P1 0x0B // 'RX address pipe1' register address #define RX_ADDR_P2 0x0C // 'RX address pipe2' register address #define RX_ADDR_P3 0x0D
in „RFM12 vs nrf24l01“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an169.pdf
. Supported Devices: CP2101/2 Prototype: SI_STATUS SI_SetFlowControl (HANDLE Handle, BYTE bCTS_MaskCode, BYTE bRTS_MaskCode, BYTE bDTR_MaskCode, BYTE bDSRMaskCode, BYTE bDCD_MaskCode, BYTE bFlowXonXoff) Parameters: 1. Handle—Handle to the device as returned by SI_Open. 2. bCTS_MaskCode—The CTS pin characteristic must be: SI_STATUS_INPUT or SI_HANDSHAKE_LINE. 3. bRTS_MaskCod—The RTS pin characteristic must be: SI_HELD_ACTIVE, SI_HELD_INACTIVE, SI_FIRMWARE_CONTROLLED or
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Datei
USART.cpp
1)>>8); UBRR0L = (unsigned char) (F_CPU/(baudrate*16L)-1); // enable receiver and transmitter UCSR0B = (1<<RXEN0)|(1<<TXEN0); // set fifo _usart0_fifo = &dataFifo; // enable ISR UCSR0B |= (1<<RXCIE0); } // channel 1 setup if (chan==1){ // port setup DDRD &= (1<<DDE3)|(0<<DDE2); // set baud UBRR1H =
in „AVR AT90CAN128 uart“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TRC103_Transceiver_RFM_121129.pdf
MHz Table 23 0x0B - MCFG0B [default 0x32] Name Bits R/W Description RF frequency 2, Z counter SynthS2 7..0 r/w S2 = 0x32 (00110010b) for 920 MHz Table 24 0x0C - MCFG0C [default 0x18] Name Bits R/W Description - 7,6,5
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Datei
usart_driver.h
USART_DRIVER_H #include "avr_compiler.h" /* USART buffer defines. */ /* \brief Receive buffer size: 2,4,8,16,32,64,128 or 256 bytes. */ #define USART_RX_BUFFER_SIZE 8 /* \brief Transmit buffer size: 2,4,8,16,32,64,128 or 256 bytes */ #define USART_TX_BUFFER_SIZE 8 /* \brief Receive buffer mask. */ #define USART_RX_BUFFER_MASK ( USART_RX_BUFFER_SIZE - 1 ) /* \brief Transmit buffer mask.*/ #define USART_TX_BUFFER_MASK ( USART_TX_BUFFER_SIZE - 1 ) #if ( USART_RX_BUFFER_SIZE & USART_RX_BUFFER_MASK ) #error RX buffer
in „XMEGA + iPod“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart_driver.h
USART_DRIVER_H #include "avr_compiler.h" /* USART buffer defines. */ /* \brief Receive buffer size: 2,4,8,16,32,64,128 or 256 bytes. */ #define USART_RX_BUFFER_SIZE 8 /* \brief Transmit buffer size: 2,4,8,16,32,64,128 or 256 bytes */ #define USART_TX_BUFFER_SIZE 8 /* \brief Receive buffer mask. */ #define USART_RX_BUFFER_MASK ( USART_RX_BUFFER_SIZE - 1 ) /* \brief Transmit buffer mask.*/ #define USART_TX_BUFFER_MASK ( USART_TX_BUFFER_SIZE - 1 ) #if ( USART_RX_BUFFER_SIZE & USART_RX_BUFFER_MASK ) #error RX buffer
in „IPOD and AVR anschließen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart_driver.h
USART_DRIVER_H #include "avr_compiler.h" /* USART buffer defines. */ /* \brief Receive buffer size: 2,4,8,16,32,64,128 or 256 bytes. */ #define USART_RX_BUFFER_SIZE 8 /* \brief Transmit buffer size: 2,4,8,16,32,64,128 or 256 bytes */ #define USART_TX_BUFFER_SIZE 8 /* \brief Receive buffer mask. */ #define USART_RX_BUFFER_MASK ( USART_RX_BUFFER_SIZE - 1 ) /* \brief Transmit buffer mask.*/ #define USART_TX_BUFFER_MASK ( USART_TX_BUFFER_SIZE - 1 ) #if ( USART_RX_BUFFER_SIZE & USART_RX_BUFFER_MASK ) #error RX buffer
in „IPOD and AVR anschließen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AVRootloader.asm
m8Adef.inc" ; ATmega8A ;.include "m8def.inc" ; ATmega8 ;.include "pwm216def.inc" ; AT90PWM216 ;.include "pwm2Bdef.inc" ; AT90PWM2B ;.include "pwm2def.inc" ; AT90PWM2 ;.include "pwm316def.inc" ; AT90PWM316 ;.include "pwm324def.inc" ; AT90PWM324 ;.include "pwm3Bdef.inc" ; AT90PWM3B ;.include "pwm3def.inc" ; AT90PWM3
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PDF
tps92661-q1.pdf
air unless otherwise specified 6 6 ) 5.4 ) 5.4 A A ( 4.8 fPWM = 732 Hz ( 4.8 n fPWM = 146 Hz n r 4.2 r 4.2 u u s 3.6 s 3.6 i i B 3 B 3 i i r 2.4 r 2.4 e 1.8 e 1.8 f = 4185 Hz O O PWM u 1.2 u 1.2 PWM = 523 Hz n n PWM = 209 Hz I 0.6 I 0.6 0 0 -40 -25 -10 5 20 35 50 65 80 95 110 125 -40 -25 -10 5 20 35
in „LED Serienschaltung mittels Transistor schalten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
usblc6-4sc6.pdf
RPU TRANSCEIVER USB connector SW 2 SW 1 VBUS VBUS RX LS/FS RX LS/FS T X H+ TX HS+ RX LS/FS - D+ RX LS/FS - RX HS - RX HS - TX HS - D- TX HS - GND GND RS USBLC6-2P6 GND R S TX LS/FS USBLC6-4SC6 TX LS/FS RS R S TX LS/FS - TX LS/FS - R PD RPD Mode SW 1 SW 2 Low Speed LS Open Closed Full Speed FS Closed Open High Speed HS Closed then open Open Figure 15. T1/E1/Ethernet protection Tx SMP75-8 +VCC 6 DATA - C 100nF B U TRANSCEIVER Rx SMP75-8 8/13 DocID11068
in „Instabile USB Verbindung mit USBLC6-4SC6“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ANLOGIC_EG4S20BG256_DevBoard_V1.2.pdf
--- JTAG TDO SPI2 SCK P7 77 SPI2_SCK 1 1 1 1 UART_TX 5J13 UART1 TX +3,3V 76 3V3 SEG1 SEG2 SEG3 SEG4 JTAG_TCK 6C14 --- JTAG TCK UART2 RX M13 75 UART2_RX UART_RX 7H13 UART1 RX +2,5V 74 2V5 JTAG_TMS 8A15 --- JTAG TMS UART2
in „Sipeed Lichee Tang FPGA mit RISC-V Core aus China unter 20€“ · FPGA, VHDL & Co. ·
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Datei
RFM70.h
0x08 // 'Observe TX' register address #define CD 0x09 // 'Carrier Detect' register address #define RX_ADDR_P0 0x0A // 'RX address pipe0' register address #define RX_ADDR_P1 0x0B // 'RX address pipe1' register address #define RX_ADDR_P2 0x0C // 'RX address pipe2' register address #define RX_ADDR_P3 0x0D
in „Hat jemand Erfahrung mit dem 2,4GHz-Transceiver RFM70?“ · HF, Funk und Felder ·
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PDF
TPN15.1E_LA.pdf
2B 8 DV33SB M_RX2_1 8 M_RX2_1B M_RX2_1B 8 D501 M_RX2_0 M_RX2_0 8 BAS316 M_RX2_0B M_RX2_0B 8 2 1 M_RX2_C M_RX2_C 8 from Scaler ARC K A M_RX2_CB M_RX2_CB 8 HDMI2_SDA HDMI2_SDA 8 HDMI2_SCL HDMI2_SCL 8 R549
in „Philips 6300 TV Bildfehler "fading"“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
emw3165.pdf
power 1~11Mbps - -25.52 -9 dB 11 Table 4.4 IEEE802.11b mode RX characteristics RX Characteristics Min. Test data Max. Unit Minimum Input Level Sensitivity 1Mbps (FER≦8%) - -87 -83 dBm 2Mbps (FER≦8%) - -85 -80 dBm 5.5Mbps (FER≦8%)
in „EMW3165 - Der ESP8266 Killer ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
RF12_RX__TX.h
void rf12_rxdata(unsigned char *data, unsigned char number) { unsigned char i; PORTD |= (1<<RXEN); // RX on writeCmd(0x82C8); // RX on writeCmd(0xCA81); // set FIFO mode writeCmd(0xCA83); // enable FIFO for (i=0; i<number; i++) { rf12_ready(); *data++ = writeCmd(0xB000); } writeCmd(0x8208); // RX off PORTD
in „[RFM12BP] UART funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dds.pdf
PA1 DbgRx DbgRx DbgRx DbgRx VdVDigiD0l D7 DDSData DDSData DDSDatDDSData td D 3 Y v 2 31 4 25 ig V Q2 C n <nc> PA5 PA0 DbgTx DbgTx DbgTx DbgTx GND GND GND PGnd DGnd GND GND GND d F I n t D C x 3 30 5 24 V n V+
in „Testsender/Generator für 40MHz-Band“ · HF, Funk und Felder ·
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PDF
STM32F100RB_Reference_Card_Ausschnitt_I2C.pdf
. I C register map and reset values 1 0 9 8 7 6 5 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0 Offset Register 3 3 2 2 2 2 2 2 2 2 2 2 1 1 1 1 1 1 1 1 1 1 9 8 7 6 5 4 3 2 1 0 H T C E S S e R C S K P R E C E R Y e U 0x00 I2C_CR1 Reserved R r L E O C T T R N P A B r B P S
in „I2C an STM32F100RB konfigurieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
alf.c
ausgeschaltet? Bitte mit PWMChannels // übereinstimmende Anzahl Initialisierer eingeben. // Channel2Port = C2P const unsigned char pmwC2PBitmask0_FLASH[PWMChannels] = { 0b00001000, 0b01000000, 0b00000000, 0b00000100, 0b00100000, 0b00000000, 0b00000010, 0b00010000, 0b00000000 }; const unsigned char pmwC2PBitmask1
in „12bit, 9-Kanal Soft-PWM für LEDs auf Mega16“ · Mikrocontroller und Digitale Elektronik ·
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Datei
clock.c
== 59 && flags.parity_P1 == rx_buffer->P1 && flags.parity_P2 == rx_buffer->P2 && flags.parity_P3 == rx_buffer->P3) //Alle 59Bits empfangen stellen der Uhr nach DCF77 Buffer { //Berechnung der Minuten BCD to HEX mm = rx_buffer->Min
in „DCF77 und der C-Code von Ulrich Radig“ · Mikrocontroller und Digitale Elektronik ·
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Datei
clock.c
== 59 && flags.parity_P1 == rx_buffer->P1 && flags.parity_P2 == rx_buffer->P2 && flags.parity_P3 == rx_buffer->P3) //Alle 59Bits empfangen stellen der Uhr nach DCF77 Buffer { //Berechnung der Minuten BCD to HEX mm = rx_buffer->Min
in „Probleme mit Auswertung des DCF77-Signals“ · Mikrocontroller und Digitale Elektronik ·
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Datei
clockorig.c
== 59 && flags.parity_P1 == rx_buffer->P1 && flags.parity_P2 == rx_buffer->P2 && flags.parity_P3 == rx_buffer->P3) //Alle 59Bits empfangen stellen der Uhr nach DCF77 Buffer { //Berechnung der Minuten BCD to HEX mm = rx_buffer->Min
in „xmega und dcf von u. radig“ · Mikrocontroller und Digitale Elektronik ·
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Datei
clock.c
== 59 && flags.parity_P1 == rx_buffer->P1 && flags.parity_P2 == rx_buffer->P2 && flags.parity_P3 == rx_buffer->P3) //Alle 59Bits empfangen stellen der Uhr nach DCF77 Buffer { //Berechnung der Minuten BCD to HEX mm = rx_buffer->Min
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Datei
clock.c
== 59 && flags.parity_P1 == rx_buffer->P1 && flags.parity_P2 == rx_buffer->P2 && flags.parity_P3 == rx_buffer->P3) //Alle 59Bits empfangen stellen der Uhr nach DCF77 Buffer { //Berechnung der Minuten BCD to HEX mm = rx_buffer->Min
in „DCF auf INT0“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mw_clock.c
== 59 && flags.parity_P1 == rx_buffer->P1 && flags.parity_P2 == rx_buffer->P2 && flags.parity_P3 == rx_buffer->P3) //Alle 59Bits empfangen stellen der Uhr nach DCF77 Buffer { //Berechnung der Minuten BCD to HEX mm = rx_buffer->Min
in „DCF auf INT0“ · Mikrocontroller und Digitale Elektronik ·