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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 /* Bit Mnemonics */ #define MASK_RX_DR 6 #define MASK_TX_DS 5 #define MASK_MAX_RT 4 #define EN_CRC
in „Problem Linken von nRF24 Multi Network mit AVR Studio“ · Mikrocontroller und Digitale Elektronik ·
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MFRC522.pdf
Pinning information X R / T T S / O O C I / S/ / _ _ _ _ _ _ C D D D D D D / / / / / / / E D D D D D D D 2 1 3 3 3 2 2 2 2 2 I2C 1 24 SDA/NSS/RX PVDD 2 23 IRQ DVDD 3 22 OSCOUT DVSS 4 MFRC522 21 OSCIN PVSS 5 20 AUX2 NRSTPD 6 19 AUX1 MFIN 7 18 AVSS MFOUT 8 17 RX 9 0 1 2 3 4 5 6 1 1 1 1 1 1 1 D S 1 D 2 S D DI
in „Schlüsselcodes in EEPROM identifizieren“ · Fahrzeugelektronik ·
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PDF
Datasheet_MFRC522.pdf
Pinning information X R / T T S / O O C I / S/ / _ _ _ _ _ _ C D D D D D D / / / / / / / E D D D D D D D 2 1 3 3 3 2 2 2 2 2 I2C 1 24 SDA/NSS/RX PVDD 2 23 IRQ DVDD 3 22 OSCOUT DVSS 4 MFRC522 21 OSCIN PVSS 5 20 AUX2 NRSTPD 6 19 AUX1 MFIN 7 18 AVSS MFOUT 8 17 RX 9 0 1 2 3 4 5 6 1 1 1 1 1 1 1 D S 1 D 2 S D DI
in „IRQ am RFID RC522“ · Mikrocontroller und Digitale Elektronik ·
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STK520.pdf
2 2 2 2 2 1 1 1 O O _ 7 6 5 7 4 3 6 F D C 5 4 2 7 6 5 T _ G B B B C B B C E N C C C B D D D 3 A F V P P P P P P P A G V P P P P P P 3 R A A A e c S 2 F i 3 0 0 0 0 0 0 1 2 3 1 C D 2 3 0 1 1 2 4 P I 1 1
in „DALI EVG stk520“ · Mikrocontroller und Digitale Elektronik ·
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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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Datei
polymcv_c.htm
*************/ /* Global constants */ /*****************************************/ #define MAX_DAC 0b0000111111111111 #define MID_DAC 0b0000011111111111 #define NOTE_ON 0b10010000 #define NOTE_OFF 0b10000000 #define CHANMODE 0b10110000 #define PITCH 0b11100000 #define AFTERTOUCH 0b11010000 #define RX_BUFFER_SIZE
in „kompilieren von C-Quellcode“ · Mikrocontroller und Digitale Elektronik ·
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Datei
bluetooth.c
Modul-Reset aktivieren } cbi(PORTD,D_BT_CTSb); // Ausgänge zum Modul auf 0-Pegel // USART1 deaktivieren UCSR1B = 0; // RX und TX-deaktivieren cbi(PORTD,D_BT_RXb); // BT_RX auf 0-Pegel cbi(DDRC,C_BTPWRb); // BT_PWR auf Input, damit die Stromversorgung des Moduls ausgeschaltet bleibt } #define BT_BAUD 19200 //
in „AVR-gcc. Optimierung ignoriert Vergleich mit volatile Variable“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mca25.c
EF 1D 41 54 2B 43 53 43 43 3D 31 2C 31 39 39 0D 54 F9] // [F9 21 EF 1B 0D 0A 2B 43 53 43 43 3A 20 45 33 0D 0A B0 F9 ] //printf_P(PSTR("\xF9\x21\xEF\x1D\x41\x54\x2B\x43\x53\x43" // "\x43\x3D\x31\x2C\x31\x39\x39\x0D
in „Handykamera MCA-25 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
int_vect.h
define TIMER2_COMPB_vect _VECTOR(10) #define SIG_OUTPUT_COMPARE2B _VECTOR(10) /* Timer/Counter2 Overflow */ #define TIMER2_OVF_vect_num 11 #define TIMER2_OVF_vect _VECTOR(11) #define SIG_OVERFLOW2 _VECTOR(11) /* Timer
in „Veraltete avr-lib in AVR-Studio 6.2. verwenden?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.cpp
{ return(FAIL); } return(OK); } enum class e_REG { BMCR = 0x00, BMSR = 0x01, PHY_ID1 = 0x02, PHY_ID2 = 0x03, ANAR = 0x04, ANLPAR = 0x05, ANER = 0x06, ANNPTR = 0x07, ANLNPTR = 0x08, CR1 = 0x09, CR2 = 0x0A, CR3 = 0x0B, REG12 = 0x0C, REGCR = 0x0D, ADDAR = 0x0E, FLDS = 0x0F, PHY_STS = 0x10, PHY_SCR = 0x11, MISR1 = 0x12, MISR2 = 0x13, FCSCR = 0x14, RECR = 0x15, BISCR = 0x16, RCSR = 0x17, LEDCR = 0x18, PHY_CR = 0x19, _10BTSCR = 0x1A, BICSR1 = 0x1B, BICSR2 = 0x1C, RESERVED = 0x1D, CDCR = 0x1E, PHY_RCR = 0x1F }; void init_pins
in „STM32F107 Ethernet RMII“ · Mikrocontroller und Digitale Elektronik ·
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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 „Efahrungen mit TFP401 und TFP410 von TI“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uartbuf-volatile_pgm.patch
:31:59.000000000 +0100 @@ -49,7 +49,7 @@ while( !ukbhit0() ); // until at least one byte in data = rx_buff[rx_out]; // get byte - ROLLOVER( rx_out, RX0_SIZE ); + ROLLOVER( vu8(rx_out), RX0_SIZE ); URX0_IEN = 1; // enable RX interrupt return data; } @@ -97,7 +97,7 @@ tx_buff[tx_in] = c; while( i == vu8
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Datei
rfm12.c
); // 600 => cs=1 R=0x47 (C7) 0 // 1200 => cs=1 R=0x23 (A3) 1 // 2400 => cs=1 R=0x11 (91) 2 // 4800 => cs=0 R=0x47 3 // 9600 => cs=0 R=0x22 4 // 19200 => cs=0 R=0x11 5 // 38400 => cs=0 R=0x05 6 RF_Init_SPI(); switch (baudrate) { case b1200 : RF_CMD(0xC6A3); // 1200 Baud break; case b2400 :
in „Beispielprogramm für RFM12 433MHz Funk-Module“ · Projekte & Code ·
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PDF
HAL_STM32F1.pdf
180/1208 UM1850 ETH Firmware driver defines ETH_DMARXDESC_RBS1 Receive Buffer1 Size ETH_DMARXDESC_B1AP Buffer1 Address Pointer ETH_DMARXDESC_B2AP Buffer2 Address Pointer ETH DMA Rx descriptor buffers ETH_DMARXDESC_BUFFER1 DMA Rx Desc Buffer1 ETH_DMARXDESC_BUFFER2 DMA Rx Desc Buffer2 ETH DMA transmit
in „CAN auf STM32F4“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rs232.txt
= LL_DMAMUX1_REQ_USART3_RX; // DMA_InitStruct.Priority = LL_DMA_PRIORITY_HIGH; // LL_DMA_Init(DMA1, LL_DMA_STREAM_2, &DMA_InitStruct); // LL_DMA_EnableStream(DMA1, LL_DMA_STREAM_2); //------------------------------ // USART DMA
in „STM32H7 USART geht nicht mehr mit Compiler V6.14“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
+ 1] = ""; //Public declarations char receivedAddress =0; char receivedData1 =0; char receivedData2 =0; //------------------------------------------------------------------------------ void UART0_init (void) { //enable serial UBRR0H = 0; UBRR0L = BAUDRATE; UCSR0A = 2; //double speed aysnc UCSR0B =
in „Brauche Unterstützung beim OV7670 (bzw. SCCB)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
+ 1] = ""; //Public declarations char receivedAddress =0; char receivedData1 =0; char receivedData2 =0; //------------------------------------------------------------------------------ void UART0_init (void) { //enable serial UBRR0H = 0; UBRR0L = BAUDRATE; UCSR0A = 2; //double speed aysnc UCSR0B =
in „Brauche Unterstützung beim OV7670 (bzw. SCCB)“ · Mikrocontroller und Digitale Elektronik ·
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ALSE_UART_us.pdf
UARTS RS 232 Output SDout[7:0] Din[7:0] Tx TX * TXout RS232 Inputs I14 LD_SDout LD TxBusy TxBusy RawRx RX TxBusy (0=active) RXFLEX * D Q Rx SDin[7:0] SDout[7:0] SDout[7:0] * CTSFLEX I15 CLK Baud[2:0] Baud[2:0] Dout[7:0] SDin[7:0] LD_SDout LD_SDout Noted on PCB = RTSFlex C RxRDY RxRDY RxRDY I306 CLK CLK
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grundig32zollLedTV.pdf
6 HDMIA-RX1_N 2N7002LT1G GND1 5 3 BC847B R1117 4 HDMIA-RX1_P RX1+ 3 HDMIA-RX2_N 1 HDMIA-HPD NC RX2- 2 R1102 47K GND2 1 HDMIA-RX2_P RX2+ 2 IC1101 TP122 TPS2065C HDMIA-5V L1100 5 6 7 8 R1103 C1100 VCC5V_DCDC TP128
in „Reparaturbericht LED-TV Grundig 32 VLE 5620 BN Ton gut, aber kein Bild“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
spi_hard_dma_stm32f4xx.c
GPIO_AF_SPI1); GPIO_PinAFConfig(SPIx_MOSI_GPIOx, GPIO_PinSource7, GPIO_AF_SPI1); DMA_StreamTx = DMA2_Stream3; DMA_StreamRx = DMA2_Stream2; DMA_ChannelTx = DMA_Channel_3; DMA_ChannelRx = DMA_Channel_3; DMA_FlagTcif_Tx = DMA_FLAG_TCIF3; DMA_FlagTcif_Rx = DMA_FLAG_TCIF2; break; case spi_hard_STM32F4XX_SPI2
in „10k Pull-Up zerstört SPI-Signal (STM32F407)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usb_descriptors.h
#define INTERFACE2_NB 2 #define ALTERNATE2 0 #define NB_ENDPOINT2 1 #define INTERFACE2_CLASS CDC_COMM_CLASS // CDC ACM Com #define INTERFACE2_SUB_CLASS CDC_DATA_SUBCLASS #define INTERFACE2_PROTOCOL CDC_DATA_PROTOCOL #define
in „Dual Role USB - Device (CDC + CDC)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
document_1_.pdf
figure 2.1. Figure 2.1. Use case recording with the BoB. 2.2.2 Data playback When in the test lab, the BoB will enable playback of recorded video and CAN data from PC to an ECU, see figure 2.2. Figure 2.2. Use
in „BMW Nightvision (FLIR PathfindIR) "Wärmebildkamera"“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
]-'0')*100; speed += (rx_data[1]-'0')*10; speed += (rx_data[2]-'0')*1; return speed; } // display speed // 2 1/2 digit display void display(int speed) { uint8_t l, f; if (speed > 199) speed = 199; // maximum l = pgm_read_byte
in „Programmänderungen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
U2532B.pdf
2 TxD Transmitter input 3 RxD Receiver output 4 Reset AGC-Reset RxD 3 14 O_GND 5 VCC Supply voltage 6 SC Sensitivity Control Reset 4 13 NC 7, 8, NC Not connected U2532B 10, 12, 5 12 13, 16 VCC NC 9 IN
in „Temic-Datenblättern“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
NETWORK_SWITCH_2PORT.pdf
C5 4 GND TCT 1 AVDDL TXP1 5 100nF 13 AVDDL TXN1 4 23 AVDDL RXN1 3 ETH_CONN1_TX_N 2 TD- 1V2_ETH_PLL 3V3_ETH_PLL 43 AVDDL RXP1 2 ETH_CONN1_RX_P 3 38 9 ETH_CONN1_TX_P RD+ 41 AVDDHPLL TXP2 10 ETH_CONN1_TX_N AVDDLPLL TXN2 11 ETH_CONN1_RX_N C6 5 HR911105A 31 RXN2 12 ETH_CONN1_RX_P GND 100nF
in „RTL8305 Switch funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
startup_stm32f4xx.S
RX0_IRQHandler // CAN2 RX0 .long CAN2_RX1_IRQHandler // CAN2 RX1 .long CAN2_SCE_IRQHandler // CAN2 SCE .long OTG_FS_IRQHandler // USB OTG FS .long DMA2_Stream5_IRQHandler // DMA2 Stream 5 .long DMA2_Stream6
in „Eclipse kompiliert asm startup nicht bei STM32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Beispiel.bas
(1) = "s" Tx_data(2) = Scannode Or &H30 Result = Addchksum(2) Sendflag = 1 Reset Tx_complete Tx_ptr = 0 End If ' result = scannode Reset Rx_complete Rx_ptr = 0 Rx_data(1) = 0 Rx_data(2) = 255 Rx_data(3) = 0 End If 'if rxcomplete
in „Sporadische Aussetzer Serielle Kummunikation AVR“ · Mikrocontroller und Digitale Elektronik ·
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nokia_6085_rm-198_service_schematics_v2.pdf
N1 TXP GENIO12 AA20 12 LP3928TLX-1828_NOPB 5 N8 TXA GENIO13 V18 13 MESSI_CMT(25:0) 6 CMDDIR J3201 B3 Dir1 A1 C4 R3200 H X3200 1 26 N3 RX1 GENIO14 Y19 14 16 GENIO16 MESSI0 0 UI B2 Dir2 A2 D4 EMIF04-MMC02F2 0 0 2 N7 AA19 15 17 GENIO17 MESSI1 1 7 DATADIR R3206 C3 D3 C2 1 2 1 RX2 GENIO15 18 GENIO18 2 33R
in „H179IT01 1,7" TFT aus Nokia Handy - Daten?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart_printf.c
(7) --------------------------------------------------- ATtiny2313 / 4313 PD1 TxD (3) PD0 RxD (2) --------------------------------------------------- 28 pol. ATmega (8, 48, 88, 168, 328) --------------------------------------------------- PD1 TxD (3) PD0 RxD (2) -----------------------------
in „Ausgabe mittels printf über UART für ATmega / ATtiny“ · Projekte & Code ·
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Datei
Can.c
void CANInit(char bRefresh) { RCC_APB1PeriphClockCmd(RCC_APB1Periph_CAN, ENABLE); RCC_APB2PeriphClockCmd(RCC_APB2Periph_AFIO, ENABLE); GPIO_PinRemapConfig(GPIO_Remap1_CAN, ENABLE); GPIO_InitTypeDef GPIO_InitSt; GPIO_InitSt.GPIO_Pin
in „Heizungssteurung im Eigenbau“ · Mikrocontroller und Digitale Elektronik ·
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Schematic_ED2109-015.pdf
C13 AbraconAB26TRQ-32.768KHZ-T TX1- B2 GND GND 6 D+ DCD# 11 OSCA_2 MNT1 TX2+ B3 D- RI# I 10 1 MNT2 CASE1 TX2- DSR# 9 GND 22pF AbraconABS07-LR-32.768KHZ-6-1-T CASE2 CTS# MNT3 CASE3 RX1+ B11 15 R232 C14 D MNT4 CASE4 RX1- B10 X0 8 OSCB_1 D RX2+ A11 1 GND X1 7 3 Y1 4 Y2 RX2- A10 MurataCSTCE12M0G52-R0 22pF H 1 G 2 GND GND 2 R15 z X4 3 4 A5 CH340G 10M H G A1 CC1 B5 VUSB 1 GND C15 8 AbraconABM3B-8.000MHZ-B2-T Title A12 GND1 CC2 OSCB_2 M-Bus LoRaWAN
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MSP430_Testprogramme.pdf
interrupt flag reti ; return from interrupt P2_ISR_2 bit.b #BIT2,&P2IFG ; and so on... jz P2_ISR_3 xor.b #BIT2,&P1OUT bic.b #BIT2,&P2IFG reti P2_ISR_3 bit.b #BIT5,&P2IFG jz end_P2_ISR xor.b #BIT3,&P1OUT bic.b #BIT5,&P2IFG reti end_P2_ISR clr.b &P2IFG
in „Anfängerfrage: MSP430F2274“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Interrupt.asm
.include "m16def.inc" ;ATmega16def.inc .equ SUART_DELAY1 = 0x89 ; Bautrate 9600 .equ SUART_DELAY2 = 0x8A .equ SUART_DELAY3 = 0x89 .def s_temp2 = r27 .def s_temp1 = r26 .def temp = r16 .org 0x0000 rjmp main reti rjmp SUART_RX_FUNCTION ; INTERRUPT1 am PORTD, 3 .org 0x0020 main: ldi temp, LOW(RAMEND
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Datei
main.c
HAL_I2SEx_TxRxHalfCpltCallback(I2S_HandleTypeDef *hi2s1){ callback_state = 1; } void HAL_I2SEx_TxRxCpltCallback(I2S_HandleTypeDef *hi2s1){ callback_state = 2; } /** * @brief I2S1 Initialization Function * @
in „STM32H745 I2S DMA (NUCLEO-STM32H745ZI-Q DualCore)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
simple_rx.c
must //! review these and change as needed for your own board: //! - CAN0 peripheral //! - GPIO port B peripheral (for CAN0 pins) //! - CAN0RX - PB4 //! - CAN0TX - PB5 //! //! The following UART signals are configured only for displaying console //! messages for this example. These are not required for
in „CAN-Bus mit TM4C123G und MCP2562“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm12.c
avr/pgmspace.h> #include <avr/interrupt.h> #include <util/delay.h> static volatile FIFO128_t _RFM12_rxFifo; static volatile FIFO128_t _RFM12_txFifo; static volatile bool _RFM12_isReceiving = false; typedef union conver_ { unsigned long dw; unsigned int w[2]; unsigned char b[4]; } CONVERTDW; typedef union conver2_ { unsigned int w; unsigned char b[2]; } CONVERTW; prog_uint8_t hamminge[16]={0x15,0x02,0x49,0x5E,0x64,0x73,0x38,0x2F,0xD0,0xC7,0x8C,0x9B,0xA1,0xB6,0xFD,0xEA}; prog_uint8_t hammingd[256]={ 0x01,0x00,0x01,0x01,0x00,0x00,0x01,0x01,0x02,0x02,0x01,0x03,0x0A
in „Problem RFM12 Library von Manuel Stahl“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Schaltplan einer RS232-Schnittstelle und Mikrocontroller-Pinbelegung
, 7, TX1OUT, 10, T2IN, T2OUT, 6, RX1OUT, 13, TX1IN, 10, TX1IN, 9, RX0OUT, 12, R2OUT, 11, TX1IN, 10, TX1IN, 9, RX0OUT, MAX232ECWE, (PCINT17/SDA)PC1, (PCINT16/SCL)PC0, (PCINT31/OC2A)PD7, CINT30/OC2B/ICP PD6, (PCINT29/OC1A)PD5, (PCINT28/OC1B)PD4, (PCINT27/INT1)PD3, (PCINT26/INT0)PD2, (PCINT25/TXD0)PD1, (PCINT24/RXD0)PD0, OC1A, TX1IN, RX1OUT, TX0IN, RX0OUT
in „UART sendet immer gleiches zeichen“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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PDF
hitachi_55hk6t64u_55293dlb_48hk6t64u_48293dlb_chassis_17mb100-r1_17ips20-r9_sm.pdf
0 R R R WO/MHL R R R I2S_IN_BCK TP327 M 1 1 1 1 1 1 1 HDMI2_RX0N G2 RXC0N I2S_IN_SD B14 TP328 D G3 RXC0P I2S_IN_WS B13 TP329 H HDMI2_RX0P H2 HDMI2_5V HDMI2_RX1N RXC1N HDMI2_RX1P H3 RXC1P I2S_OUT_BCK F16 22R R353 I2S_OUT_BCK
in „Vestel Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.asm
Switch off UPDI Tx LED: cbi LED_UPDI_TX_VOUT, LED_UPDI_TX_bp rjmp isrUpdiUartTimer_pop isrUpdiUartTimer_rx: ; temp0 still contains bit counter value. cpi temp0, 1 breq isrUpdiUartTimer_rxStart cpi temp0, 10 breq isrUpdiUartTimer_rxParity cpi temp0, 11 breq isrUpdiUartTimer_rx1stStop cpi temp0, 12 brsh isrUpdiUartTimer_rx2ndStop
in „AVR64DD28, mEDBG, Studio 7.0 - Fehler beim Schreiben von Fuses“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
the next 2 adc values ADC_get(); // flush the next 2 adc values // set the pot location of 1000ma b = 0; while ('n' != b) { uart_putsl_p(PSTR("Move dial to 1000mAH")); uart_putsl_p(PSTR("Press <N> to continue")
in „C-Programm compilieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
eth.h
MSS_MAC_ANEG_ALL_SPEEDS; mac_config.mac_addr[0] = 0x00; mac_config.mac_addr[1] = 0x50; mac_config.mac_addr[2] = 0xC2; mac_config.mac_addr[3] = 0xDB; mac_config.mac_addr[4] = 0x2B; mac_config.mac_addr[5] = 0x89; MSS_MAC_init(&mac_config); MSS_MAC_set_tx_callback(eth_tx_callback); MSS_MAC_set_rx_callback(eth_rx_callback
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nightsky_arx15.pdf
0.22u_10V_X5R_04 PEX_RX3# BH29 2 PEG_RX#3 PEX_TX3 a B 2 PEG_TX3 BL30 PEX_RX3 1 B i 2 PEG_TX#3 BK30 PEX_RX3 C544 C543 C565 C1341 8C554 N C530 N1342 C1336 C1337 C523 0 0 0 4 - 1 8 1 8 4 1 1 2 2 PEG_RX4 C411 0.22u_10V_X5R_04 PEX_RX4
in „SMD TGAJ TVS Diode USB“ · Mikrocontroller und Digitale Elektronik ·
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Datei
parseSPI.py
RF_SETUP = int("0x06", 16) STATUS = int("0x07", 16) OBSERVE_TX = int("0x08", 16) RPD = int("0x09", 16) RX_ADDR_P0 = int("0x0A", 16) RX_ADDR_P1 = int("0x0B", 16) RX_ADDR_P2 = int("0x0C", 16) RX_ADDR_P3 = int("0x0D", 16) RX_ADDR_P4 = int("0x0E", 16) RX_ADDR_P5 = int("0x0F", 16) TX_ADDR = int("0x10", 16) RX_PW_P0
in „Hackbarer(?) 21 EUR Quadcopter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Schematic_Scope_1014D_2023-01-06.pdf
ADC2_D7A D7A (MSB) D15 24 11 C23 5U14 R95 1N5819 ADC2_D0B 23 D0B AINB 10 4 RS8751XF 1 ADC2_D1B 22 D1B AINB R34 1 ADC2_D2B 21 D2B 47 1K5 3 ADC2_D3B D3B ENCA ADC2_ENCA DAC_D0 GND ADC2_D4B 20 D4B ENCB 14 ADC2
in „Fnirsi 1014d defekt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
I2CIO.ASM
bits of I2C data ;------------------------------------------------------------------------------- mov.b #08,BITI2C ; Load I2C bit counter I2C_RX bic.b #SCL,&P0DIR ; Set to input, SDL = 1 due to pull-up bit.b #SDA,&P0IN ; Test SDA state, status -> carry bit rlc.b RXTXI2C ; Carry shifted into LSBit bis.b #SCL,&P0DIR ; Set to output, data low so SCL = 0 dec.b BITI2C ; Decrement I2C bit counter jnz I2C_RX ; Loop until 8 bits are read jmp I2C_Ackn ; Jump to send
in „Software I2C MSP430“ · Mikrocontroller und Digitale Elektronik ·
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Ein___Ausg_nge.pdf
30 CAN_OFF Pin4 ist ein Analoger Ausgang. Also alles frei wählbar per Software 2 N N 100yF/50V MISO 14 PB3/MISO PD5/TXCAN/XCK1 31 TxCAN Out E G G PB4/OC2A PD6/RXCAN/T1 RxCAN 15 PB5/OC1A PD7/T0 32 5 3 6 16 PB6/OC1B RxD Rs232 Eingangsmessgößen +/- 10V oder +/-5V +C20 D40 17 PB7/OC0A
in „Messtechnik (Ein & Ausgangsproblem)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
owx.h
===================================================================== v u8 owx_tx_buffer[20]={'a','b','c','d','e','f','g','h','i','j'}; v u8 owx_rx_buffer[20]={0,1,2,3,4,5,6,7,8,9,0,1,2,3,4,5,6,7,8,9}; v u8 crc=0,owx_len; //===========================================================================
in „mikrokontroller per I2C verbinden“ · Mikrocontroller und Digitale Elektronik ·
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Datei
projectMainProg.c
ubrr; // Enable receiver and transmitter and enable receive and transmit complete interrupts UCSR0B = ((1<<RXCIE0)|/*(1<<TXCIE0)|*/(1<<RXEN)|(1<<TXEN)); // Set frame format: 8data, 1stop bit UCSR0C = ((0<<USBS)|(3<<UCSZ0)); } //usart0 receive complete interrupt ISR (USART0_RX_vect) { char dummy; unsigned
in „Atmega128 USART Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nrf24l01.c
// CE @ RC1 // CSN @ RC2 #include "nrf24l01.h" #define CE_HIGH() RC1_bit=1 #define CE_LOW() RC1_bit=0 #define CSN_HIGH() RC2_bit=1 #define CSN_LOW() RC2_bit=0 char nRF_data_available=0; char op_status; char RX0_Address[] ={0x34,0x43,0x10,0x11,0x11}; // Receive address data pipe 0 char RX1_Address[] ={0x39,0x38,0x37,0x36,0xc2}; // Receive address data pipe 1 void SPI_init() { //Init SPI: SSP1STAT=0x00; SSP1CON1=0b00100001; TRISC.TRISC3=0; // SCK: output TRISC.TRISC4=1; // SDI: input TRISC.TRISC5
in „RFM12 vs nrf24l01“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DE_Technisches_Handbuch_RIO_Module_V4795.pdf
Moduldeckel zu finden Schlitzschraubendreher öffnen Parameter Wert Baudrate Uart1 Config 1 ON = 115.200kB OFF = 57.600kB (Standard) RIO37 Mastermode < Config 2 ON = Modul agiert als Mastermodul (Busankoppler) OFF = Modul agiert als Slavemodul, wie ein RIO16 Notbetrieb: nach 2 min ohne Buskommunikation ON
in „PWM-Signal 24V 500Hz wandeln in 10V PWM“ · Haus & Smart Home ·