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STM32_F4VE_SCHEMATIC.PDF
RTS/TIM2_CH2/TIM5_CH2 (TIM1_CH3N)/TIM8_CH3/TIM3_CH4/ADC12_IN9/PB1 PIU2036 PB1B LCD_BL R8R8 R5R RAM : 196K FLASH : 512K PA2A PIU2025PA2/ADC123_IN2/USART2_TX/TIM2_CH3/TIM5_CH3 BOOT1/PB2 PIU2037 PB2/BOOT1T PIR802PIR801
in „STM32F407 Black und Arduino“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
/ PORTA |= (1 << PA2); /* set Bit*/ PORTA |= (1 << PA3); /* set Bit*/ } else if (data_rx[0] == SIGNAL_LEDOFF) { PORTA &= ~(1 << PA1); /* delete bit*/ PORTA &= ~(1 << PA2); /* delete bit*/ PORTA &= ~(1 << PA3); /* delete
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Main_Eva.c
//Pins and Ports #define _LED_YE PB0 //Yellow LED #define _LED_RD PB1 //Red LED #define _LED_GN PB2 //Green LED (Heartbeat) #define _ATTN PB7 //ATTN-Signal from Adam (start new Measurement) #define _ACK PB6 //ACK-Signal to Adam (Measurement started) #define _RXD PD0 //UART from Device #define _IQ_RX
in „ATTiny2313 läuft nicht immer an“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test_max3100.ino
// 14k4 //#define CFG 0xC005 // 7k2 //#define CFG 0xC006 // 3k6 //#define CFG 0xC007 // 1k8 //#define CFG 0xC008 // 76k8 //#define CFG 0xC009 // 38k4 //#define CFG 0xC00A // 19k2 //#define CFG 0xC00B // 9k6 //#define CFG 0xC00C // 4k8 //#define CFG 0xC00D // 2k4 //#define CFG 0xC00E // 1k2 //#define CFG 0xC00F // 600 // SOFT-SPI, Arduino style /* uint16_t MAX_IO(uint16_t data) { uint16_t i, rx=0; digitalWrite(MAX_CS, LOW); for (i=0; i<16; i++) { if (data &
in „FIFO im MAX3100“ · Mikrocontroller und Digitale Elektronik ·
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Datei
UART0.C
bauddivider ) { UBRR0H = bauddivider >> 8; UBRR0L = bauddivider; // set baud rate UCSR0A = 0; // no U2X, MPCM UCSR0C = 1<<UCSZ01^1<<UCSZ00 // 8 Bit #ifdef URSEL0 ^1<<URSEL0 // if UCSR0C shared with UBRR0H #endif ; UCSR0B = 1<<RXEN0^1<<TXEN0^ // enable RX, TX 1<<RXCIE0; // enable RX interrupt rx_inp =
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Datei
uart0.c
bauddivider ) { UBRR0H = bauddivider >> 8; UBRR0L = bauddivider; // set baud rate UCSR0A = 0; // no U2X, MPCM UCSR0C = 1<<UCSZ01^1<<UCSZ00 // 8 Bit #ifdef URSEL0 ^1<<URSEL0 // if UCSR0C shared with UBRR0H #endif ; UCSR0B = 1<<RXEN0^1<<TXEN0^ // enable RX, TX 1<<RXCIE0; // enable RX interrupt rx_in = rx_out
in „Hilfe, komme nicht weiter. Temperatur von 0 bis -1 Grad kein negatives Vorzeichen.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ESP32Radio.pdf
2 IN SW 3 2 Rx2 23 IO15 TXD0 35 Rx CAPM 4 5 6 2 5 5 þÿ10µ 1 5V 30 7 1 1 10 R40 0 47k + C þ R R1 FB U1 C8 J7 SD SCK IO18 IO35 IO35 RST GND DEMP C49 C50 C51 C52 1 R46 U8B 7 2,4k TDA7439DS L IN 100k 7 EN
in „TDA7439DS Störgeräusche und ein kochender TDA7377“ · Mikrocontroller und Digitale Elektronik ·
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pinout_blackpill.pdf
1 1 A A P P K S STM32F103C8T6 BLACKPILL C M J J K O D C D 3 G W W 3 S S 37 34 5V 5V CK3 T1BKIN NSS2 SMBAI2 PB12 B12 25 5V 22 5V B11 PB11 SDA2 RX3 T2C4N CTS3 T1C1N SCK2 PB13 B13 26 5V 21 5V B10 PB10 SCL2 TX3 T2C3N RTS3 T1C2N MISO2 PB14 B14 27 5V 19 ~ B1 PB1 ADC9 T3C4 T1C3N T1C3N MOSI2 PB15 B15 28 5V
in „pinout blackpill STM32F103C8T6“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rs232.c
F_CPU/(BAUDRATE*8L)-1) >> 8); // calc Baud UBRRL = (uint8_t)(F_CPU/(BAUDRATE*8L)-1); // UCSRA |= (1<<U2X); // RS232 Settings: double speed UCSRB |= /*(1<<TXCIE)|*/(1<<RXCIE)|(1<<RXEN)|(1<<TXEN); // Complete Interrupts, RX und TX einschalten UCSRC |= (1<<URSEL)|(1<<UCSZ1)|(1<<UCSZ0); // Asynchron, 8-Bit TCCR1A |= (1<<WGM12); // Modus CTC TCCR1B |= (1<<CS12); // Presc. 256 TIMSK |= (1<<OCIE1A); // Outputcompare Interrupt enable OCR1AH = 0x7A; // alle Sec ein Interrupt (31250) OCR1AL = 0x12; for(i=0;i<= 49;i++){ rxBuf[i] = 0; // RX Buffer zurücksetzten
in „RS232-Frameprotokoll transmitt Problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
msp430xG46x_usart1_19200.c
U1MCTL = 0x6B; // 1MHz 19200 modulation U1CTL &= ~SWRST; // Initialize USART state machine IE2 |= URXIE1; // Enable USART1 RX interrupt for (;;) { while (!(U1TCTL & TXEPT)); // Confirm no TXing before --> LPM3 _DINT
in „msp430xG46x_usart1_19200.c "tested"?“ · Mikrocontroller und Digitale Elektronik ·
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nRF24L01plus.pdf
T40X:00,40,16,AE,FD,AE,94,89,8E,A4,39,74,F3,D7,B0,74,D0,22,EB,ED,09,46,62,E4,9 A T40X:00,40,02,FF,0A RX:00,FF,12,FE,0A,D7,D5,85,52,2C,FF,B0,8E,34,F5,66,A6,38,02,CA,C8 Key,55,E5,8E,D0,F9,C4,BF,1C,B0,05,2F,08,BE,5E,E8,91 Autsch! Wie gut das der Serialmanager
in „Repeating und Routing Netzwerk mit Arduino und nRF24L01+“ · Projekte & Code ·
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XIAO_ESP32S3_Plus_V1.0_241025.pdf
- D8/A8/SCK 12 GPIO6 SPICS0 31 SPIWP USB_D- R4 22R ESP_USB_D+ GPIO7 SPIWP D6/TX 7 8 D7/RX A7/DN1 B6/DP2 D9/A9/MISO 13 C P N 30 SPIHD U0TXD_D6/TX U0RXD_D7/RX P P GPIO8 R _ _ SPIHD A8/SBU1 B5/CC2 VBUS N N D10/A10/MOSI 14 GPIO9 _ 2 2 VDD_SPI 29 VDD_SPI IO38/DVP_VSYNC/I2S_SD 15 21 IO11/DVP_Y8
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npd4_series.pdf
J001 Test_IF_P J002 Test_IF_M J003 LO/8 J006 GPS_SPI_CLK J007 GPS_SPI_DATA J008 GPS_SPI_EN J009 XTAL 2 J010 GPS_CLK J011 GPS_B0 J012 GPS_B1 J013 GPS_B3 J014 GPS_B2 J068 GND J052 GPS_I2C_CLOCK J051 GPS_I2C_DATA J065 VDD_IO_GPS J066 GPS_U2TX J067 GPS_U2RX J064 GPS_PA_EN J063 GPS_SLEEPCLK J060 GPS_SLEEPX
in „Fehlersuche GPS-Modul von KFZ-Navigationssystem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
pins.h
COM2A0 #define OCRxA OCR2A #define TCCRxB TCCR2B #define WGMx2 WGM22 #define CSx0 CS20 #elif defined(TIMER3) #define TIMSKx TIMSK3 #define OCIExA OCIE3A #define TIMERx_COMPA_vect TIMER3_COMPA_vect // ATmega #define TCCRxA TCCR3A #define COMxA0 COM3A0 #define OCRxA OCR3A #define TCCRxB TCCR3B #define WGMx2 WGM32 #define CSx0 CS30 #else #error TIMER fehlt #endif #define UBRRnL UBRR0L #define UBRRnH UBRR0H #define UCSRnA UCSR0A #define U2Xn U2X0 /* #define USARTn_RX_vect USART0_RX_vect
in „ATmega328P mit mehr Pins“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A20_user_manual_v1.3_20141010.pdf
GNULL/ETXERR I2S1_DI Port A(PA) Multiplex Function Select Table Port B(PB) Multiplex Function Select PB0 TWI0_SCK PB1 TWI0_SDA PB2 PWM0 PB3 IR0_TX OWA_MCLK STANBYWFI PB4 IR0_RX PB5 I2S_MCLK AC97_MCLK A20 User M(Revision
in „DDR3 RAM Datenleitung beliebig anschliessen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
spi_struct.h
interrupt.*/ uint32_t cmd_err : 1; /*The clear bit for SPI_SLV_CMD_ERR_INT interrupt.*/ uint32_t mst_rx_afifo_wfull_err : 1; /*The clear bit for SPI_MST_RX_AFIFO_WFULL_ERR_INT interrupt.*/ uint32_t mst_tx_afifo_rempty_err : 1; /*The clear bit for SPI_MST_TX_AFIFO_REMPTY_ERR_INT interrupt.*/ uint32_t app2
in „C > Struct > Pointer - Adresszuweisung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2c_test_2402.bas
depth $Clock = 3.6864 ' adjust for used crystal $Source=On ' basic source in Asm $Baud = 19200 $Timer2 = Timer,Async,Prescale =128 'ext. 32.768 Crystal Declare Interrupt Ovf2() Declare Interrupt TWI() Declare Sub twi_rx_handle() Dim twi_ctrl As Byte Dim twi_data As Byte Dim twi_state As Byte Dim twi_rxd_index
in „I2C Slave mit Bascom?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
; // SPICLK = SMCLK/2 U1BR1 = 0x00; U1MCTL = 0x00; ME2 |= USPIE1; // Module enable U1CTL &= ~SWRST; // SPI enable //IE2 |= URXIE1; // RX and TX interrupt enable TBCCR0 = 55; TBCTL = TBSSEL_1 + MC_2; // SMCLK, contmode TBCCTL0
in „MSP430 Taktdiagramm“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart2.c
= USART_Mode_Rx | USART_Mode_Tx; USART_Init(USART2, &USART_InitStructure); USART_DMACmd(USART2, USART_DMAReq_Tx, ENABLE); USART_DMACmd(USART2, USART_DMAReq_Rx, ENABLE); USART_ITConfig(USART2, USART_IT_RXNE, ENABLE); USART_Cmd(USART2, ENABLE); U2.uart = USART2; U2.startTxDma = &startUart2TxDma; U2.Tx_DMAy_FLAG = DMA1_FLAG_TC7; U2.startRxDma = &startUart2RxDma; U2.Rx_DMAy_FLAG = DMA1_FLAG_TC6; } void startUart2TxDma(uint16_t dma_buffer_length
in „STM32F103 Uart DMA Rx Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN1278.pdf
to the number of the pin linked to the LIN RX pin (PC3>set 3). Example: ST72-104/215/216/254 MCU family SCI emulated by Timer A SCI emulated by Timer B LIN RX on IC1 LIN RX on IC2 LIN RX on IC1 LIN RX on IC2 LIN RX is pin: PB0 (Port B pin 0) PB2
in „LIN-Treiber für STM32F4“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
CanRxMsg RxMessage; CAN_Receive(CAN1,CAN_FIFO0, &RxMessage); /* ŽËº¯Êý°üº¬ÊÍ·ÅÌá³ö±šÎÄÁ˵Ä,ÔڷDZØÒªÊ±,²»ÐèÒª×ÔŒºÊÍ·Å */ CAN_ID=RxMessage.StdId; CAN_DATA0=RxMessage.Data[0]; CAN_DATA1=RxMessage.Data[1]; CAN_DATA2=RxMessage.Data[2]; CAN_DATA3=RxMessage.Data[3]; CAN_DATA4=RxMessage.Data[4]; CAN_DATA5=RxMessage.Data[5]; CAN_DATA6=RxMessage.Data[6]; CAN_DATA7=RxMessage.Data[7]; CAN_ClearITPendingBit(CAN1,CAN_IT_FMP0
in „STM32F103 can“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DM-KIT-SSK_for_BF533.pdf
0.1uF TXO+ RXI+ RXI- 6 11 D2RX_N C DM9000_INT 100 SA5 93 GND GND TP16 TP18 RDP RXP C DM9000_INT INT SA4 1 TXO- 1 RXI- 7 RDC RXC 10 D2RX_C DM9000 T TXO- RXI- RXI+ 8 9 D2RX_P 3V3 RDN RXN H1102 58 U14B 55 5057 5059 C145 63 DGND DVDD
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PWM_Controller_Manual_Basic.pdf
übernommen. Aufgabe: Mehrere Kanäle auslesen. PWM- Kanäle 8-11 sollte ausgelesen werden. Lösung: 1) Start 2) SLA+W 3) Byte 1: 0x08 (CMD) 4) Repeated Start 5) SLA+R 6) RX_Byte 1: 0xXX (Wert von Kanal 8). 7) RX_Byte 2: 0xXX (Wert von Kanal 9). 8) RX_Byte 3: 0xXX (Wert von Kanal 10). 9) RX_Byte 4: 0xXX (Wert
in „PWM- Controller 18- Kanal TWI- Bus Proj.“ · Projekte & Code ·
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Datei
VBus_DS_M.c
************************************ void Protokollausgabe (void) // Ausgabe des Protokolls { UCSR0B &= ~_BV(RXEN0); // RX wegen Echo sperren make_Header (0x0010,0x7631,0x10,0x0100,0x07); // Header make_Frame (Wert[1],Wert[0],Wert[3],Wert[2]); // Frames make_Frame (Wert[5],Wert[4],Wert[7],Wert[6]);
in „Suche Beschreibung vom VBUS (VegaBus)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „Zu viele Pointer - brauche Hilfe.“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „ATMega nach ADC BascomPRG stk500 WEG!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „SHT11 misst Mist“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „UART funktioniert nicht!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „Heizungssteuerung mit ATMEGA 32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „Modul antwortet nur nach Neuprogrammierung des Controllers“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „Reset bei serieller Kommunikation“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „[AVR-GCC] makefile SRC und #include“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „ATmega168 Bootloader“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „fleurys I2C + UART lib halten in Kombination die Hauptschleife an!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „Inkonsistentes Verhalten einfachem avr-gcc-codes“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „RFM70 Timing Problem?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.h
handling routines use circular buffers * for buffering received and transmitted data. * * The UART_RX_BUFFER_SIZE and UART_TX_BUFFER_SIZE constants define * the size of the circular buffers in bytes. Note that these constants must be a power of 2. * You may need to adapt this constants to your target
in „Float via UART an PC senden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ITU-R.pdf
of the measurements was 8.7 dB. Seasonal variations of 2 dB at 900 MHz and 8.5 dB at 2 200 MHz were observed. − Measurements in the frequency range 105.9-2 117.5 MHz carried out in two forest-park areas with coniferous-deciduous vegetation
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PDF
PL68K12.pdf
I3-68901 26 I4-68901 RxD-68901 (MAX232 opt.) 27 TxD-68901 (MAX232 optional) Timer B out-68901 28 Timer A out-68901 RxC/TxC-68901 29 Timer C out-68901 I1-68901 30 I0-68901 Timer B in-68901 31 I2-68901 GND, 0 Volt 32 Timer A
in „S: 68000/68HC000/68EC000/68001 CPUs min. 12MHz“ · Markt ·
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PDF
PL68K12.pdf
I3-68901 26 I4-68901 RxD-68901 (MAX232 opt.) 27 TxD-68901 (MAX232 optional) Timer B out-68901 28 Timer A out-68901 RxC/TxC-68901 29 Timer C out-68901 I1-68901 30 I0-68901 Timer B in-68901 31 I2-68901 GND, 0 Volt 32 Timer A
in „[S] MPU (Z80/6502/68k)“ · Markt ·
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PDF
MEGA_WiFi-R3-AT2560-ESP8266-32MB-CH340G-1.pdf
ESP-TX D3 ESP_TX R8 GND [OCO0A/OC1C/PCINT7]PB7 25 PB6 PL3 25 26 PL2 [OC1B/PCINT6]PB6 27 28 R10 ESP-RESET [OC1A/PCINT5]PB5 24 PB5 PL1 29 30 PL0 ESP-RESET ESP-RX R12 VDD3.3 +5V [OC2A/PCINT4]PB4 23 PB4 PB3 31 32 PB2 2 1 0 9 8 7 6 5 C11 10 VCC [MISO/PCINT3]PB3 22 PB3 PB1
in „Compilation error: exit status 1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
242462-Akku_Master_C4_Schnittstelle.pdf
sollte sich aber vorher vergewissern, daß der gewünschte Kanal nicht aktiv ist): program[tmp_ch] = rx_buffer[1]; (1...9) repeat_time[tmp_ch] = rx_buffer[2] * MINUTES_PER_DAY; (0...5, 1...30 bei Program 6) akku_type[tmp_ch] = rx_buffer[3]; (0 ... 2) cell_count[tmp_ch] = rx_buffer[4]; (1...12) nominal_capacity
in „Akkumaster C4 - Prozessor defekt - Tausch“ · Mikrocontroller und Digitale Elektronik ·
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Datei
transfer_position_deutsch.c
8); UBRR1L = (unsigned char) ubrr; /* Enable receiver and transmitter and set frame format: 8data, 2stop bit */ UCSR0B = (1<<RXEN0)|(0<<TXEN0)|(1<<RXCIE0)|(0<<TXCIE0)|(0<<UCSZ02)|(0<<UDRIE0); UCSR0C = (1<<USBS0) | (1<<UCSZ01)|(1<<UCSZ00); UCSR1B = (0<<RXEN1)|(1<<TXEN1)|(0<<RXCIE1)|(1<<TXCIE1)|(0<<UCSZ12
in „Empfangen und Übertragung von Daten über USART“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfid.ino
CWGsPReg 0x28 #define ModGsPReg 0x29 #define TModeReg 0x2A #define TPrescalerReg 0x2B #define TReloadRegH 0x2C #define TReloadRegL 0x2D #define TCounterValueRegH 0x2E #define TCounterValueRegL 0x2F //Page 3:TestRegister #define Reserved30 0x30 #define TestSel1Reg
in „Arduino leonardo invalid suffix "B9FD4" umgehen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Can.h
); set_bit(txb0con, TXPRI0); // always send Extended Identifier a = (pCanMsg->Can.Eid[3] & 00011111b) << 3; b = (pCanMsg->Can.Eid[2] & 11100000b) >> 5; txb0sidh = a | b; a = (pCanMsg->Can.Eid[2] & 00011100b) << 3; b = pCanMsg->Can.Eid[2] & 00000011b; txb0sidl = a | b | 00001000b; txb0eidh = pCanMsg-
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STLinkMini.pdf
T_JTCK PB15 4 STM32F103C8T6 5 RX R14 22 STLINK_RX 6 7 TX R13 22 STLINK_TX 8 T_JTMS 9 SWDIO R12 22 10 11 SWO R19 22 T_SWO_RX1 12 Q1 1 2 C1 C2 8 MHz U1HH 22p 22p 5 Q_IN 6 Q_OUT R4 10k 3 Q32IN 4 Q32OUT R5 10k 2 TAMP 44 BOOT0 7 RST 24 36 VCC.1 XPRG +3,3V VCC.2 +3,3V 48 VCC.3 G1 9 VCC.A 1 +3,3V 2 I2C1_SDA 1 B VBAT - 3 I2C1_SCL S 4 PGM_SWDCLK 8 GND.A S 5 BLDR_RX1 R24 C3 C4 C5 23 B 6 BLDR_TX1 35 GND.1 1 7 PGM_SWDIO 100n 100n 100n 47 GND.2 M GND.3 T 8 BLDR_BOOT
in „STM32F103C8T6.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STLinkMini.pdf
T_JTCK PB15 4 STM32F103C8T6 5 RX R14 22 STLINK_RX 6 7 TX R13 22 STLINK_TX 8 T_JTMS 9 SWDIO R12 22 10 11 SWO R19 22 T_SWO_RX1 12 Q1 1 2 C1 C2 8 MHz U1HH 22p 22p 5 Q_IN 6 Q_OUT R4 10k 3 Q32IN 4 Q32OUT R5 10k 2 TAMP 44 BOOT0 7 RST 24 36 VCC.1 XPRG +3,3V VCC.2 +3,3V 48 VCC.3 G1 9 VCC.A 1 +3,3V 2 I2C1_SDA 1 B VBAT - 3 I2C1_SCL S 4 PGM_SWDCLK 8 GND.A S 5 BLDR_RX1 R24 C3 C4 C5 23 B 6 BLDR_TX1 35 GND.1 1 7 PGM_SWDIO 100n 100n 100n 47 GND.2 M GND.3 T 8 BLDR_BOOT
in „Erstes PCB mit Eagle: STM32 Breakout Board“ · Platinen ·
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Datei
main.cpp
define B_BUTTON 8192 #define X_BUTTON 16384 #define Y_BUTTON 32768 #define INSTRUCTION_BYTES_PAN_SPEED 1 #define INSTRUCTION_BYTES_TILT_SPEED 2 #define INSTRUCTION_BYTES_PAN_TILT_SPEED 3 #define INSTRUCTION_BYTES_SLIDER_PAN_TILT_SPEED
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Datei
stm32f103rb_rom.ld
RAM */ /* Memory Spaces Definitions */ MEMORY { RAM (xrw) : ORIGIN = 0x20000000, LENGTH = 20K FLASH (rx) : ORIGIN = 0x8000000, LENGTH = 128K FLASHB1 (rx) : ORIGIN = 0x00000000, LENGTH = 0 EXTMEMB0 (rx) : ORIGIN = 0x00000000, LENGTH = 0 EXTMEMB1 (rx) : ORIGIN = 0x00000000, LENGTH = 0 EXTMEMB2 (rx) : ORIGIN
in „STM32 linker scripts“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f103rb_rom.ld
RAM */ /* Memory Spaces Definitions */ MEMORY { RAM (xrw) : ORIGIN = 0x20000000, LENGTH = 20K FLASH (rx) : ORIGIN = 0x8000000, LENGTH = 128K FLASHB1 (rx) : ORIGIN = 0x00000000, LENGTH = 0 EXTMEMB0 (rx) : ORIGIN = 0x00000000, LENGTH = 0 EXTMEMB1 (rx) : ORIGIN = 0x00000000, LENGTH = 0 EXTMEMB2 (rx) : ORIGIN
in „STM32 linker scripts“ · Mikrocontroller und Digitale Elektronik ·