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Datei
Hardware_Test_Mega128.asm
.include "m128def.inc" .def temp1 = r16 .def USART0_tx = r17 .def USART1_tx = r18 .cseg rjmp start ;RESET nop reti ;INT0 External Interrupt Request 0 nop reti ;INT1 External Interrupt Request 1 nop reti ;INT2 External Interrupt Request 2 nop reti ;INT3 External
in „Problem mit Mega64“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
a power of 2 #endif #if ( UART_TX_BUFFER_SIZE & UART_TX_BUFFER_MASK ) #error TX buffer size is not a power of 2 #endif #if defined(__AVR_AT90S2313__) \ || defined(__AVR_AT90S4414__) || defined(__AVR_AT90S4434__)
in „UART Auswertung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
a power of 2 #endif #if ( UART_TX_BUFFER_SIZE & UART_TX_BUFFER_MASK ) #error TX buffer size is not a power of 2 #endif #if defined(__AVR_AT90S2313__) \ || defined(__AVR_AT90S4414__) || defined(__AVR_AT90S4434__)
in „µC rechnet falsch oder ich finde den Fehler nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
a power of 2 #endif #if ( UART_TX_BUFFER_SIZE & UART_TX_BUFFER_MASK ) #error TX buffer size is not a power of 2 #endif #if defined(__AVR_AT90S2313__) \ || defined(__AVR_AT90S4414__) || defined(__AVR_AT90S4434__)
in „µC rechnet falsch oder ich finde den Fehler nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
a power of 2 #endif #if ( UART_TX_BUFFER_SIZE & UART_TX_BUFFER_MASK ) #error TX buffer size is not a power of 2 #endif #if defined(__AVR_AT90S2313__) \ || defined(__AVR_AT90S4414__) || defined(__AVR_AT90S4434__)
in „avr dude Programm zu groß? Eclipse GCC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
RFM69-Fragmente1.c
/config RFM69 base parameters for(i=0;i<3;i++) //config RFM69 TxMode parameters SPIWrite(RFM69TxTable[i]); //wait_ms(10); // if((SPIRead(0x27)&0xA0)==0xA0) //Status OK? 0xA0 = 0b10100000, Bit 5 set in TX-Mode if((SPIRead(0x27)&0xB0)==0xB0) //Status OK? 0xA0 = 0b10110000
in „RFM69HW - Arduino Uno“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ir-empf_nger-andi.asm
gr_e,4 call TxEins btfss gr_e,4 call TxNull btfsc gr_e,3 call TxEins btfss gr_e,3 call TxNull btfsc gr_e,2 call TxEins btfss gr_e,2 call TxNull btfsc gr_e,1 call TxEins btfss gr_e,1 call TxNull btfsc gr_e,0 call TxEins btfss gr_e,0 call TxNull ;C5,4,3,2,1,0 btfsc co_e,5 call TxEins btfss co_e,5 call TxNull btfsc co_e,4 call TxEins btfss co_e,4 call TxNull btfsc co_e,3 call TxEins btfss co_e,3 call TxNull btfsc co_e,2 call TxEins btfss
in „IR-Empfänger mit PIC16F84A zum Ein-Ausschalten des PC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
VirtualWire.cpp
328p or similar) # define TIMER_VECTOR TIMER1_COMPA_vect #endif // __AVR_ATtiny85__ static uint8_t vw_tx_buf[(VW_MAX_MESSAGE_LEN * 2) + VW_HEADER_LEN] = {0x2a, 0x2a, 0x2a, 0x2a, 0x2a, 0x2a, 0x38, 0x2c}; // Number of symbols in vw_tx_buf to be sent; static uint8_t vw_tx_len = 0; // Index of the next symbol
in „Korrigierte "VirtualWire" Library für Attiny84 / 85“ · Projekte & Code ·
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PDF
rpc_f_2.pdf
There are two classes of OST ↔ RPC transfers: 1. Data Packets: To the transmitter or from the receiver 2. Memory Access: To or from the RPC’s memory figure 6: ↔PHost data transfer Radiometrix Ltd, RPC Page 6 2.1.1 WRITE A B YTE T OPC The sequence for a byte transfer from the Host to the RPC (i.e. TX download
in „Problem mit BIM2 und RPC Funkübertragung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tfrec-d-tx22.txt
30kHz (CRC 0f 90) len 18 #005 1524492599 2d d4 a6 b5 06 80 10 40 20 00 30 fe 41 fe d3 00 1f ff TX22(08) BAD 6 RSSI 86 Offset 23kHz (CRC 1f 00) len 18 #006 1524492604 2d d4 a6 b5 06 80 10 40 2c 3f 90 7f b4 c0 07 ff TX22(08) BAD 7 RSSI 86 Offset
in „SDR-Dekoder für TFA KlimaLogg Pro/IT+ Temperatursensoren“ · Projekte & Code ·
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PDF
Lueftungszentrale.pdf
nc5 5 3 CON CLAMP 2pol GND R39 DAC122S085 2 U9 GND 43 CLK0/I CLK3/I 42 CLKO 10k GND 44 41 45 A0/GOE0 B15/GOE1 40 GND 46 A1 B14 39 BUS_RXD 47 A2 B13 38 BUS_TXD 48 A3 B12 34 2 A4 B11 33 3 A5 B10 32 BUS_TxEn 4 A6 B9 31 7 A7 B8 28 FBus_Tx 8 A8 B7 27 VCC_3V3 FBus_TxEn 9 A9 B6 26 A10 B5 FBus_Rx 10 A11 B4 24 HBus_Rx 14 A12 B3 23 HBus_TxEn 15 A13 B2 22 R1 R2 R3 R4 R5 HBus_Tx 16 A14 B1 21 LED1 R15 10k 10k 10k 10k 10k 17 A15 B0
in „Umfrage zu installierten Hausbussen“ · Haus & Smart Home ·
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PDF
BT-WiFi-52rf5541.pdf
_0 Please write with 0 x08B2 --2401table_A) 0xFFFFFEF7CF208104082041 0 x08B1 0 x08B0 0 x08AF 0 x08AE 0 x08AD 0 x08AC 0 x08AB 0 x08AA BK-RF_ce 0 x08B5 7:1 reserved 0 ce 8'b10000000 : Flush RX 8'b10100000 : Flush TX 8'b00010000 : Reusle TX PL 8'b01000000 : Read RX Payload 8'b01100000 : Write TX Payload 0 x08B6 BK-RF_cmd 8'b01101ppp : W_ACK_PAYLOAD 8'b01101000 : W_TX_PAYLAOD_NOACK 8'b00000000 : NOP TX MODE: TX data payload register 1 -
in „JDY-40 ein neuer Geniestreich aus China?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tx23.c
[0] == 0x1b) // chaeck leading sync byte && (tx23_buf[1] == ((~tx23_buf[6]) & 0x0f) ) // check inverted values in the second half of the packet && (tx23_buf[2] == ((~tx23_buf[7]) & 0x0f) ) && (tx23_buf[3] == ((~
in „Windsensor TX23 / TX20 von WS2x00 - Protokoll ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tx23.c
[0] == 0x1b) // chaeck leading sync byte && (tx23_buf[1] == ((~tx23_buf[6]) & 0x0f) ) // check inverted values in the second half of the packet && (tx23_buf[2] == ((~tx23_buf[7]) & 0x0f) ) && (tx23_buf[3] == ((~
in „Wetterstation Windrichtung kodieren und dekodieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
--------------------- void chip_select(int RAM_bank) { switch (RAM_bank) { case 0: // 0b000 GPIOA->BRR |= (GPIO_Pin_2 | GPIO_Pin_1 | GPIO_Pin_0); break; case 1: // 0b001 GPIOA->BRR |= (GPIO_Pin_2 | GPIO_Pin_1); GPIOA->BSRR |= (GPIO_Pin_0); break; case 2: // 0b010 GPIOA->BRR |= (GPIO_Pin_2 | GPIO_Pin_0); GPIOA->BSRR |= (GPIO_Pin_1); break; case 3: // 0b011 GPIOA->BRR |= (GPIO_Pin_2); GPIOA->BSRR |= (GPIO_Pin_1 | GPIO_Pin_0); break; case 4: // 0b100 GPIOA->BRR |= (GPIO_Pin_1 | GPIO_Pin_
in „SPI-RAM-Bank an STM32F0-Discovery - write, kein read“ · Mikrocontroller und Digitale Elektronik ·
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PDF
W5500_ds_v110e.pdf
(2KB) . 11011 (0x1B) Socket 6 RX Buffer Socket 4 Socket 7 RX Buffer 0x9E2C RX Buffer (2KB) 11010 (0x1A) Socket 6 TX Buffer 0x2000 . Socket 3 11001 (0x19) . Socket 6 Register 0x1800RX Buffer (2KB) 0x0FFF
in „Schaltung W5500“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AVR-SL013.c
===== unsigned char g_cCardType; unsigned long int g_iTimer; unsigned char g_bOverTime; unsigned char g_cUartTxCnt; unsigned char g_cUartTxDataLen; unsigned char *g_pUartTxDat; unsigned char g_cUartTxCheckSum; unsigned char g_cUartRxCnt; unsigned char g_cUartRxBuf[60]; unsigned
in „RFID c Code, fehlende h-files“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN10658_1.pdf
xxxxxxxxxxxxxxxxxxxxxxxxx xxxxxxxxxxxxxxxxxxxx xxx A N N p 6 X c 8 P a 1 S o e n m o e c o n d u t CON4 o 1 2 3 4 5 6 7 8 9 VCC VCC VCC VCC VCC VCC V CC VCC s 5 V CON1 . C 1 . V C 2 n 5 V 3 2.7 kΩ 2.7 kΩ J1 1 2 3 Axial R4 Axial R8 150R 150R 4 5 7 VCC 8 R e 8 . P82B96 1 — Sx Sx 1 3 Tx Tx S 2 e 6 R6 d e 2 Rx 1 Rx 3 n b 1 kΩ g u Sy Sy 7 5 Ty Ty I r C2 2 - 0 6 Ry 2 Ry R10 4 u 8 GND GND 1 kΩ V s 4 CC CON2 s IC1 1 g 2 n J2 3 l Sx 1 8 VCC 4 s 1 2 3 4 5 6 7 8 9 VCC Rx 2 7 Sy D1 D2 D3A D4 D5 D3B 5 v Tx 3 6 Ry Axial BZX84C15
in „TWI Übertragungsprobleme seitdem Übertragungsleitung kürzer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN10658_1.pdf
xxxxxxxxxxxxxxxxxxxxxxxxx xxxxxxxxxxxxxxxxxxxx xxx A N N p 6 X c 8 P a 1 S o e n m o e c o n d u t CON4 o 1 2 3 4 5 6 7 8 9 VCC VCC VCC VCC VCC VCC V CC VCC s 5 V CON1 . C 1 . V C 2 n 5 V 3 2.7 kΩ 2.7 kΩ J1 1 2 3 Axial R4 Axial R8 150R 150R 4 5 7 VCC 8 R e 8 . P82B96 1 — Sx Sx 1 3 Tx Tx S 2 e 6 R6 d e 2 Rx 1 Rx 3 n b 1 kΩ g u Sy Sy 7 5 Ty Ty I r C2 2 - 0 6 Ry 2 Ry R10 4 u 8 GND GND 1 kΩ V s 4 CC CON2 s IC1 1 g 2 n J2 3 l Sx 1 8 VCC 4 s 1 2 3 4 5 6 7 8 9 VCC Rx 2 7 Sy D1 D2 D3A D4 D5 D3B 5 v Tx 3 6 Ry Axial BZX84C15
in „i2c Bus instabil“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN10658_1.pdf
xxxxxxxxxxxxxxxxxxxxxxxxx xxxxxxxxxxxxxxxxxxxx xxx A N N p 6 X c 8 P a 1 S o e n m o e c o n d u t CON4 o 1 2 3 4 5 6 7 8 9 VCC VCC VCC VCC VCC VCC V CC VCC s 5 V CON1 . C 1 . V C 2 n 5 V 3 2.7 kΩ 2.7 kΩ J1 1 2 3 Axial R4 Axial R8 150R 150R 4 5 7 VCC 8 R e 8 . P82B96 1 — Sx Sx 1 3 Tx Tx S 2 e 6 R6 d e 2 Rx 1 Rx 3 n b 1 kΩ g u Sy Sy 7 5 Ty Ty I r C2 2 - 0 6 Ry 2 Ry R10 4 u 8 GND GND 1 kΩ V s 4 CC CON2 s IC1 1 g 2 n J2 3 l Sx 1 8 VCC 4 s 1 2 3 4 5 6 7 8 9 VCC Rx 2 7 Sy D1 D2 D3A D4 D5 D3B 5 v Tx 3 6 Ry Axial BZX84C15
in „I²C ist durch äusere Einflüsse unstabil. Was kann man dagegen machen?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usbdrv.c
= usbTxBuf3 + 1; for(i=len;i--;) *p++ = *data++; usbCrc16Append(&usbTxBuf3[1], len); usbTxLen3 = len + 4; /* len must be given including sync byte */ DBG2(0x23, usbTxBuf3, len + 3); } #endif static uchar usbRead
in „Problem mit libUSB - wie Gerät ansprechen?“ · Softwareentwicklung ·
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PDF
mcu-mcu.pdf
1 MCU_EN_LLC 29 PTA13/LLWU_P4/FTM1_CH1/I2S0_TX_FS/FTM1_QD_PHB PTC9/ADC1_SE5b/CMP0_IN3/FTM3_CH5/I2S0_RX_BCLK/FB_AD6/FTM2_FLT0 54 S_CURR_A G CONN_01X01 32 55 PTA18/EXTAL0/FTM0_FLT2/FTM_CLKIN0 PTC10/ADC1_SE6b/I2C1_SCL/FTM3_CH6/I2S0_RX_FS/FB_AD5
in „Quarz Startup Problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
(char c[]); char getChar(void); char peekChar(void); int main(void) { DDRB=(1<<PB0)|(1<<PB1)|(1<<PB2)|(1<<PB5); DDRD=(1<<PD5)|(1<<PD6)|(1<<PD7); TCCR0A=(1<<WGM01)|(1<<WGM00)|(1<<COM0A1)|(1<<COM0B1); TCCR0B=(1<<CS02); DDRB = ( 1 << PB5); UBRR0H = (BRC >> 8); UBRR0L = BRC; UCSR0B = (1 << TXEN0) | (1 <
in „ATmega 328p Uart“ · Mikrocontroller und Digitale Elektronik ·
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PDF
manual_XT-v.005.pdf
10 Revision 0.05 Connect Tech Xtreme/104 User’s Manual Table 1: Port Address Settings Jumper Ports 2 1 0 1 2 3 4 5 6 7 8 Status on on on 150 158 160 168 170 178 180 188 190 on on off 250 258 260 268 270 278 280 288 290 on off on 1A0 1A8 1B0 1B8 1C0 1C8 1D0 1D8 1E0 on off off 2A0 2A8 2B0 2B8 2C0 2C8
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Datei
Unterprogramme.h
a power of 2 #endif #if ( UART_TX_BUFFER_SIZE & UART_TX_BUFFER_MASK ) #error TX buffer size is not a power of 2 #endif #if defined(__AVR_AT90S2313__) \ || defined(__AVR_AT90S4414__) || defined(__AVR_AT90S4434__)
in „Roboter-Linienverfolgung mit P-Regler und Ausweichmodus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
fd02-101g.pdf
+ Filter – B FD12-104R1 400Ω Transformer + Filter 100Ω Transformer + Filter TX B FD22-104R1 400Ω Transformer + Filter 100Ω Transformer + Filter TX / RX B T - E Impedence Matching DIL S 10BASE-T Filter Modules A HALO
in „Was gibts neues vom ENC28J60??“ · Mikrocontroller und Digitale Elektronik ·
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PDF
fd02-101g.pdf
+ Filter – B FD12-104R1 400Ω Transformer + Filter 100Ω Transformer + Filter TX B FD22-104R1 400Ω Transformer + Filter 100Ω Transformer + Filter TX / RX B T - E Impedence Matching DIL S 10BASE-T Filter Modules A HALO
in „Ethernet Transformator/Übertrager für ENC28J60“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BK4802N_Datasheet_V1.1_EN.pdf
0 -> 1 -> 0 13 Write Only 0xFFFF Settings for PLL. Please use default value B15~B14: Gain of Digital Filters in TX Audio Path 14 W/R 0xFFE0 0-0dB; 1-1dB; 2-3.5dB; 3-6dB B13~B09: Volume of TX Audio B08~B05: In-band Signal Deviation 15 W/R 0x061F B12~B00: Limiter for TX Audio 16 W/R 0x9E3C B15: Enable AGC for TX Audio. 0-Disable; 1-Enable 17 W/R 0x1F00 Settings for TX Audio AGC. Please use default value B05~B03: Speaker on if ON conditions last for T seconds 0-100ms 1-200ms 2-300ms 3-400ms
in „Tranceiver Chip RDA1846 Erfahrungen Selbstbau“ · HF, Funk und Felder ·
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PDF
RFM24W.PDF
Fax: +86-755-82973550 E-mail: sales@hoperf.com http://www.hoperf.com RFM24W Output Power Range 1 P TX -40 — +11 dBm Using switched current match TX RF Output Steps2 △ PRF_OUT within — 0.1 — dB 6 dB of max power 2 TX RF Output Level △ P RF_TEMP –40 to +85℃ — 1 — dB Variation vs. Temperature TX RF Output Level Variation vs. Frequency △ P RF_FREQ Measured across 902–928 MHz — 0.5 — dB Transmit Modulation B*T Gaussian Filtering Bandwith Time — 0.5 — Filtering Product P Using reference design TX matching — — -42 dBm 2HARM network and filter with max output Harmonics 2 P3HARM power.
in „Small Antenna Design bei 433 MHz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2.transceiver_si4468.pdf
169 MHz, 9.5 10 10.5 dBm (Si4467) Class E match, 3.3 V, 25 °C Using switched current match within TX RF Output Steps P RF_OUT 6 dB of max power using CLE match — 0.25 0.4 dB within 6 dB of max power TX RF Output Level P RF_TEMP –40 to +85 C — 2.3 3 dB Variation vs. Temperature TX RF Output Level
in „Transceiver Si4467 SPI Transfer PIC24“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LS4000_Routing_Report.pdf
_1231 ROUTE 2 0.000 R30C13C.WADO2 to R30C13B.WAD2 uart2/regs/transmitter/fifo_tx/tfifo/ram_ram/WAD2_INT (to uart2/regs/transmitter/fifo_tx/tfifo/ram_ram/WCK_INT) -------- 0.232 (40.1% logic, 59.9% route), 2 logic
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PDF
LS4000_Routing_Report.pdf
_1231 ROUTE 2 0.000 R30C13C.WADO2 to R30C13B.WAD2 uart2/regs/transmitter/fifo_tx/tfifo/ram_ram/WAD2_INT (to uart2/regs/transmitter/fifo_tx/tfifo/ram_ram/WCK_INT) -------- 0.232 (40.1% logic, 59.9% route), 2 logic
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PDF
doc5131.pdf
power range of the transmitter is 20 dB. 9.2.3 Register Description Register 0x05 (PHY_TX_PWR) The PHY_TX_PWR register sets the transmit power and controls the FCS algorithm for TX operation. Bit 7 6 5 4 0x05 TX_AUTO_CRC_ON Reserved PHY_TX_PWR
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Datei
main.c
void chip_select(int RAM_bank) { // GPIOA->BSRR = (GPIOA->BSRR & ~(0x07)) | RAM_bank; // pins PA0-2 // GPIOA->BRR = ((GPIOA->BRR & ~(0x07)) & ~(RAM_bank)); switch (RAM_bank) { case 0: // 0b000 GPIOA->BRR |= (GPIO_Pin_2 | GPIO_Pin_1 | GPIO_Pin_0); break; case 1: // 0b001 GPIOA->BRR |= (GPIO_Pin_2 | GPIO_Pin_1); GPIOA->BSRR |= (GPIO_Pin_0); break; case 2: // 0b010 GPIOA->BRR |= (GPIO_Pin_2 | GPIO_Pin_0); GPIOA->BSRR |= (GPIO_Pin_1); break; case 3: // 0b011 GPIOA->BRR |= (GPIO_Pin_2); GPIOA->BSRR |= (GPIO_Pin_1 | GPIO_Pin_0); break; case 4: // 0b100 GPIOA
in „SPI-RAM-Bank an STM32F0-Discovery - write, kein read“ · Mikrocontroller und Digitale Elektronik ·
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PDF
clrc632.pdf
TimeSlotPeriod TimeSlotPeriod 0x25, bits 7:0 TimeSlotPeriodMSB MFOUTSelect 0x26, bit 4 TpreScaler TimerClock 0x2A, bits 4:0 TReloadValue TimerReload 0x2C, bits 7:0 TRunning SecondaryStatus 0x05, bit 7 TstartTxBegin TimerControl 0x2B, bit 0 TstartTxEnd TimerControl 0x2B, bit 1 TstartNow Control 0x09, bit 1 TstopRxBegin
in „SPI master/slave - schreib/lese befehle ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
a power of 2 #endif #if ( UART_TX_BUFFER_SIZE & UART_TX_BUFFER_MASK ) #error TX buffer size is not a power of 2 #endif #if defined(__AVR_AT90S2313__) \ || defined(__AVR_AT90S4414__) || defined(__AVR_AT90S4434__)
in „SHT11 misst Mist“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CAN18XX8.h
***********************************************/ enum CAN_TX_MSG_FLAGS { CAN_TX_PRIORITY_BITS= 0b00000011, CAN_TX_PRIORITY_0 = 0b11111100, // XXXXXX00 CAN_TX_PRIORITY_1 = 0b11111101, // XXXXXX01 CAN_TX_PRIORITY_2 = 0b11111110, // XXXXXX10 CAN_TX_PRIORITY_3 = 0b11111111, // XXXXXX11 CAN_TX_FRAME_BIT = 0b00001000, CAN_TX_STD_FRAME = 0b11111111, // XXXXX1XX CAN_TX_XTD_FRAME = 0b11110111, // XXXXX0XX CAN_TX_RTR_BIT = 0b01000000, CAN_TX_NO_RTR_FRAME = 0b11111111, // X1XXXXXX CAN_TX_RTR_FRAME
in „CAN auf PIC18F6680“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ft2232h_fifo.v
= PENDING; tx_wr = 1'b0; fifo_rd = 1'b0; tx_nextdata = 1'b0; end else /*if(empty && !ft_full)*/ begin next_state = ARMED; tx_wr = 1'b0; fifo_rd = 1'b0; tx_nextdata = 1'b0; end PENDING: /**/ if(!empty && !ft_full) begin next_state = ACTIVE; tx_wr = 1'b1; fifo_rd = 1'b0; tx_nextdata = 1'b0; end else begin next_state = PENDING; tx_wr = 1'b0; fifo_rd = 1'b0; tx_nextdata = 1'b0; end default: begin next_state = IDLE; tx_wr = 1'b0; fifo_rd = 1'b0
in „FT2232H in FT245 FIFO Mode - kein Burst möglich“ · FPGA, VHDL & Co. ·
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PDF
Place_Route_Trace_Report.pdf
R22C30B.Q0 to R21C30C.C0 uart1/regs/transmitter/fifo_tx/top[2] ZERO_DEL --- 0.000 R21C30C.C0 to R21C30C.WADO2 uart1/regs/transmitter/fifo_tx/tfifo/ram_ram_0/SLICE_1243 ROUTE 2 0.000 R21C30C.WADO2 to R21C30B.WAD2
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RF12B-IC-2.pdf
FIFO Read Command RX FIFO can be read with this command 9 Synchron Pattern Command Synchron pattern b7 to b0 a1 to a0, rl1 to rl0, st, fi, 10 AFC Command AFC parameters oe, en 11 TX Configuration Control Command Modulation parameters, output power, ea mp, m3 to m0, p2 to p0 12 PLL Setting Command CLK
in „Funk SI4420 kein Empfang“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rs485.c
_1 == Port_B) // Port B auslesen und schicken { uint8_t P_B = 0; P_B = PINB; // momentan low-aktiv -> 0 = betätigt, 1 = n.B für high-aktiv -> P_B^=... tx_block(0x80); // HK_ID tx_block(0x2C); // read_ACK tx_block
in „tiny4313 uart sendet erst nach reset“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MFRC530-NXP.pdf
0 2Bh TStartTxEnd TimerControl 1 2Bh TStopNow Control 2 09h TStopRxBegin TimerControl 2 2Bh TStopRxEnd TimerControl 3 2Bh MFRC530 All information provided in this document is subject to l© NXP B.V. 2014.
in „[V] 3St. RFID (Mifare) Lese ICs NXP MFRC530 SO32 (4€)“ · Markt ·
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PDF
cc1100.pdf
26 (0x1A) Reserved – used for test. PA_PD. Note: PA_PD will have the same signal level in SLEEP and TX states. To control an external PA or RX/TX switch 27 (0x1B) in applications where the SLEEP state is used it is recommended to use GDOx_CFGx=0x2F instead. LNA_PD. Note: LNA_PD will have the same signal
in „Scrambler für Funkstrecke“ · Mikrocontroller und Digitale Elektronik ·
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PDF
176141-da-01-en-DS_1621_1621S.pdf
D L 6 D 5 D D P D 7 P T 6 D D S D 2 K 1 7 A 1 C A 6 K 1 D 1 d S A S A 2K 2 K R D R D A 1C A 1 C 0 0 SA 0 S A A A D D D D 1 1 1 A S A S D D 2 S S E 2 E 2 A R T A E T D Y D T D B D B 3 B 3 Y 1 A 1 D D A D S A 4 A 4 M 0 0 D D D E D 5 5 0 T T 0 E P D D E R AT P T 6 6 1 P T 1 ER S D D R R S R ET 7 7 RS 1 D 1 D 2 1 A 6 K A 6K A 6C ) A 2 A 6K S A SA SA E 1 C 1C 0 D 0 D 0 D T 0 S A 0 DA C C C U C D C 1 1 1 O 1 1 C E C E C E C C E C E 2 Y 2 Y 2 Y E 2 Y 2 Y C B C B C B P C B C B P ) 3 D 3 D 3 D L 3 D ) 3 D P T T
in „Temperatursensor DS1621 über I²C ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart.c
addieren (z.B. 3B,3C,3D,3E,3F,40,41=A) USART_Tx(high); // schicke erst High-Byte, dann Low-Byte USART_Tx(low); } /***************************************************************************** * Function name : USART_Tx_Byte
in „ADC in C unter WinAVR ärgert“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
("1"); } else if(Zahl == 2) { TX_String("2"); } else if(Zahl == 3) { TX_String("3"); } else if(Zahl == 4) { TX_String("4"); } else if(Zahl == 5) { TX_String("5"); } else if(Zahl == 6) { TX_String("6"); } else if(Zahl == 7) { TX_String
in „MSP430 F5529 Wobbel-Generator“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS2450_ADU.pdf
first and 8Ch for the second byte of each channel. MEMORY MAP PAGE 1, CONTROL/STATUS DATA Figure 5b Address bit 7 bit 6 bit 5 bit 4 bit 3 bit 2 bit 1 bit 0 08 OE-A OC-A 0 0 RC3-A RC2-A RC1-A RC0-A 09 POR 0 AFH-A AFL-A AEH-A AEL-A 0 IR-A 0A OE-B OC-B 0 0 RC3-B RC2-B RC1-B RC0-B 0B POR 0 AFH-B AFL-B
in „1-Wire Quad ADC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
("1"); } else if(Zahl == 2) { TX_String("2"); } else if(Zahl == 3) { TX_String("3"); } else if(Zahl == 4) { TX_String("4"); } else if(Zahl == 5) { TX_String("5"); } else if(Zahl == 6) { TX_String("6"); } else if(Zahl == 7) { TX_String
in „MSP430 F5529 Wobbel-Generator“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart.c
a power of 2 #endif #if ( UART_TX_BUFFER_SIZE & UART_TX_BUFFER_MASK ) #error TX buffer size is not a power of 2 #endif #if defined(__AVR_AT90S2313__) \ || defined(__AVR_AT90S4414__) || defined(__AVR_AT90S4434__)
in „AVR Bootloader in C, geht mit mega8 nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Qtouch.c
Ports initialization // Port A initialization // Func7=In Func6=In Func5=In Func4=In Func3=In Func2=In Func1=In Func0=In // State7=T State6=T State5=T State4=T State3=T State2=T State1=T State0=T PORTA=0x00; DDRA=0x00; // Port B initialization // Func7=In Func6=In Func5=In Func4=In Func3=In Func2=In
in „qtouch - sekt oder selters“ · Mikrocontroller und Digitale Elektronik ·