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Datei
rtmp_def.h
802_11 24 #define LENGTH_802_11_WITH_ADDR4 30 #define LENGTH_802_11_AND_H 30 #define LENGTH_802_11_CRC_H 34 #define LENGTH_802_11_CRC 28 #define LENGTH_802_3 14 #define LENGTH_802_3_TYPE 2 #define LENGTH_802_1_H 8 #define LENGTH_EAPOL_H 4 #define LENGTH_CRC 4 #define MAX_SEQ_NUMBER 0x0fff #define TX_RESULT_SUCCESS
in „Pollin MOTOROLA VIP1710“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ETM0430G0DH6.pdf
-------------------------------16 12. CAPACITIVE TOUCH PANEL SPECIFICATION ----------------------- 17 ~ 20 13. INSPECTION CRITERION -------------------------------------------1 ~ 30 02101300-01-02 MODEL NO. VERSION PAGE E M E R G I N G D I S P L A Y TECHNOLOGIES CORPORATION E T M 0 4 3 0 G 0 D H 6 2
in „LCD-Display an Raspberry PI“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
s3esk_authentication.pdf
64-bit constant to the 64-bit serial number is an ‘algorithm’ but not very difficult to break. The CRC computation I have used is a reasonable demonstration but really something better should be used in a real design. CRC details It is left as an exercise for you to discover the fully details of the
in „Reverse Engineering verhindern/erschweren“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
AT90CAN128.pdf
DataFrame BusIdle SOF 11-bitbaseidentifiSRR IDE 18-bitidentifierextensioRTR r1 r0 4-bitDLC 0-8bytes 15-bitCRC CRC ACK ACK 7bits Intermission BusIdle IDT28..18 ID17..0 DLC4..0 del. del. 3bits (Indefinite) Interframe Arbitration Control Data CRC ACK Endof Interframe Space Field Field Field Field Field Frame Space RemoteFrame BusIdle 11-bitbaseidentifier 18-bitidentifierextension 4-bitDLC CRC ACK Intermission BusIdle SOF IDT28..18 SRR IDE ID17..0 RTR r1 r0 DLC4..0 15-bitCRC del.ACK del. 7bits 3bits (Indefinite) Interframe Arbitration Control CRC ACK Endof Interframe Space Field Field Field
in „uC + 3 Schieberegister + 7-Segmentanzeige“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GD32F103xx_Datasheet_V2.5.pdf
of up to 18 MHz Support both master and slave mode Hardware CRC calculation and transmit automatic CRC error checking The SPI interface uses 4 pins, among which are the serial data input and output lines (MISO & MOSI), the clock line (SCK) and the slave select line
in „Unterschiede CS32F103C8T6 und STM32F103C8T6“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mmc_lib.c
loop_until_bit_is_set(SPSR, SPIF); // wait for byte transmitted... *buffer++ = SPDR; //read 2 bytes CRC (not used); mmc_send_byte(0xFF); mmc_send_byte(0xFF); sbi(MMC_PORT, MMC_CS); //MMC Chip Select -> High (deactivate); return(0); } unsigned char mmc_read_sector(unsigned long sector, char *buffer) { char cmd[] = {0x51, 0x00, 0x00, 0x00, 0x00, 0xFF}; //CMD17 sector = sector << 9; cmd[1] = (sector & 0xFF000000) >> 0x18; cmd[2] = (sector & 0x00FF0000) >> 0x10; cmd[3] = (sector & 0x0000FF00) >> 0x08; return(mmc_read_block(cmd, buffer, 512)); } unsigned char
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stm32f030f4-956260.pdf
DocID024849 Rev 3 STM32F030x4/x6/x8/xC Functional overview 3.4 Cyclic redundancy check calculation unit (CRC) The CRC (cyclic redundancy check) calculation unit is used to get a CRC code using a configurable generator polynomial value and size. Among other applications, CRC-based techniques are used to verify
in „STM32F030 interne REF ausreichend für 12Bit?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
en.DM00088500.pdf
DocID024849 Rev 3 STM32F030x4/x6/x8/xC Functional overview 3.4 Cyclic redundancy check calculation unit (CRC) The CRC (cyclic redundancy check) calculation unit is used to get a CRC code using a configurable generator polynomial value and size. Among other applications, CRC-based techniques are used to verify
in „Controller IC für digitale RGBW LED-Streifen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.txt
#include "LPC17xx.h" #include "GPIO_LPC17xx.h" #include "GPDMA_LPC17xx.h" #include "Global.h" #include <stdio.h> //*****************************************// // //*** Define fuer Eingabe von Binary // //***********
in „LPC1769 USB einschalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
panasonic_tx-p50u20b_e_tx-pr50u20_chassis_gpf13de_sm.pdf
A5 6 u u 3 OHZ1 SC_CRC1 Y3 Z PD_OC2 2 2 5 0 OC2 8 TP9086 SC_OC1 16 9 A A4 5 0 0 C9069 4 GND 5 8 SCNRST B PD_CRC1 9 G 50V FB CRC1 9 TP9087 Y2 C J 3 V 3 V D P 560p 17 I 0 A3 4 9 6 9 6 J 10 SC_OC1 Y1 C PD_SCNRST C C B SCNRST
in „Panasonic TX-P50U20E“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Release_Notes.html
span></li> </ul> <li class="MsoNormal"><span style="font-size: 10pt; font-family: Verdana;">stm32f10x_crc.h/.c</span></li> <ul> <li class="MsoNormal" style=""><span style="font-size: 10pt; font-family: Verdana;"><span style="font-style: italic;">Delete CRC registers definition from stm32f10x_crc.c and use
in „STM32F10x Std Peripherals Lib V3.5.0 vs. V3.6.1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
adxl380.pdf
TRIPLE_TA DOUBLE_T SINGLE_TA 0x00 R GE_STICKY GE P AP P 0x13 STATUS2 [7:0] NVM_ECC_ RESERVED NVM_ECC_ NVM_CRC_ NVM_CRC_ RESERVED UV_FLAG_ UV_FLAG 0x04 R DONE DET DONE ERR STICKY 0x14 STATUS3 [7:0] RESERVED DATA_REA 0x00 R DY 0x15 XDATA_H [7:0] XDATA_H 0x00 R 0x16 XDATA_L [7:0] XDATA_L 0x00 R 0x17 YDATA_H [7
in „ADXL380 mit SPI auslesen“ · Mikrocontroller und Digitale Elektronik ·
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msp430f5529.pdf
REGISTER OFFSET Flash control 1 FCTL1 00h Flash control 3 FCTL3 04h Flash control 4 FCTL4 06h Table 22. CRC16 Registers (Base Address: 0150h) REGISTER DESCRIPTION REGISTER OFFSET CRC data input CRC16DI 00h CRC data input reverse byte CRCDIRB 02h CRC initialization and result CRCINIRES 04h CRC result reverse
in „Fragen zu ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DB_EA_ediptft32-a.pdf
BEFEHLE / FUNKTIONEN INTABELLENFORM.............................................................. 13 - 17 TOUCH PANEL ..........................................................................................................................18 RÜCKANTWORTEN DES BEDIENPANELS................................
in „Ausgabe eines Wertes beim EA TFT 32 Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
msp430fr5969.pdf
analog-to-digital conversions, battery voltage supervision, and monitoring of external analog signals. CRC16 The CRC16 module produces a signature based on a sequence of entered data values and can be used for data checking purposes. The CRC16 module signature is based on the CRC-CCITT standard. AES256 Accelerator
in „Probleme mit Konfiguration der SPI-Schnittstelle am MSP430“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SW017_ISO_tag_DS.pdf
future use. Ł Bit 16 is a flag for additional data block “1” or no additional data block “0”. Ł Bits 17-26 ISO 3166 is the Numeric country code. Ł Bits 27-64 is the National identification code. Ł The next two 8 bits blocks contain the 16 CRC-CCITT error detection bits. LSB is transmitted first, and the
in „Kontaklose Chipkarten????“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS18S20.asm
"m8def.inc" .def befehl = r0 ;enthält den auszugebenden 8bit-befehl .def temp1 = r16 .def temp2 = r17 .def temp3 = r18 .def d1 = r19 .def d2 = r20 .def pos = r21 .equ temperature_lsb = 0x060 ;speicherstellen definieren .equ temperature_msb = 0x061 .equ TH_register = 0x062 .equ TL_register = 0x063 .equ res_byte4 = 0x064 .equ res_byte5 = 0x065 .equ count_remain = 0x066 .equ count_per_c = 0x067 .equ crc = 0x068 .org 0x00 rjmp reset reset: ldi r16, LOW(RAMEND) out spl, r16 ldi r16, HIGH(RAMEND) out sph, r16 ldi temp1, 0 ;register und speicherstellen auf 0 ldi temp2, 0 ldi temp3, 0 ldi d1, 0 ldi d2,
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Datei
PLC-LOX.ino
sensor unsupported: "),dbgln(oneWireAddressToString(sensors,i)); j++; } else e++, dbg("1-wire sensor crc-error: "),dbg(oneWireAddressToString(sensors,i)),dbgln(OneWire::crc8(sensors, 7),HEX); } ow_count[i] = m<<8|k; dbg("1-wire sensors found "); dbg(i+1); dbg(": "); dbgln(j); } if(j) dbg("1-wire sensors: "); dbgln(j); if(e) dbg("1-wire crc-errors: "); dbgln(e); return e; } void dssetresolution(OneWire ow, byte addr[8], byte resolution) { byte resbyte = 0x1F; if (resolution == 12){ resbyte = 0x7F; } else if (resolution == 11) { resbyte
in „1 Wire auf 2 GPIO pins“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Arduino_Compiler_error.txt
onewire_demo.cpp.o: In function `setup': /Arduino/onewire_demo.ino:109: undefined reference to `onewire_crc(unsigned char const*, unsigned char)' /Arduino/onewire_demo.ino:114: undefined reference to `onewire_read_rom(unsigned char*)' /Arduino/onewire_demo.ino:127: undefined reference to `onewire_crc(unsigned
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Datei
stm32_eval_sdio_sd.c
return(SD_ILLEGAL_CMD); } if (response_r1 & SD_R6_COM_CRC_FAILED) { return(SD_COM_CRC_FAILED); } return(errorstatus); } /** * @brief Enables or disables the SDIO wide bus mode. * @param NewState: new state of the SDIO wide bus mode. * This parameter can be
in „STM3210E EVAL SD-Controller SDIO + HiTOP“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FR5050_1.2_complete.pdf
ADDRESS byte Write Command 0 x x x x x x x 0 x x x x x x x 0 x x x x x x x 1th DATA byte 2th DATA byte CRC byte 0 x x x x x x x Controller CRC/Accept byte CRC error/ Accept Every ADDRESS byte MSB bit must be "1" any other which is not an ADDRESS byte must be "0". For robust and errorless communication CRC
in „suche Poti mit Rechts- und Linkslauf“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ATTiny1624.pdf
voltage references • 1.024V • 2.048V • 2.500V • 4.096V • VDD – Automated Cyclic Redundancy Check (CRC) flash memory scan – Watchdog Timer (WDT) with Window Mode, with a separate on-chip oscillator – External interrupt on all general purpose pins • I/O and Packages – Up to 22 programmable I/O pins –
in „Neues Produkt AtTiny1624“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STA310.pdf
Name Value (decimal) (decimal) BSI_ERR_REV 12 MPEG_BITRATE_ERROR 58 BSI_ERR_CHANS 13 MP3 Decoding CRC_NOT_VALID 14 CRC_ERROR 01 Packet Synchronization DATA_AVAILABLE_ERROR 02 SYNCHRO_PACKET_NOT_FOUND 16 ANC_PARTIAL_READ_ERROR 03 BAD_MPEGI_RESERVED_WORD 17 ANC_NOT_READ_ERROR 04 BAD_MPEG2_RESERVED_WORD
in „Sammelbestellung STA310 Dolby Digital Decoder“ · Markt ·
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Datei
ok2_hynix1.TXT
cs=14 Probe cs=6 Probe cs=3 Probe cs=-1 AT91F_SpiWrite : Error Timeout U-Boot 1.1.4 (Feb 11 2011 - 17:11:07) DRAM: 64 MB NAND:NAND device: Manufacturer ID: 0xad, Chip ID: 0x76 ( å 0àã`À åd0 å < â NAND 64MiB 3,3V 8-bit) NAND bus width 16 instead 8 bit 0 MiB Probe cs=14 Probe cs=6 Probe cs=3 Probe cs=0
in „embedded Linux startet nicht mit bad-blocks (NAND)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_E_DIP_TFT_32-A.pdf
BEFEHLE / FUNKTIONEN IN TABELLENFORM ......................................................... 13 - 17 TOUCH PANEL..................................................................................................................... 18 RÜCKANTWORTEN DES BEDIENPANELS ....................................
in „Probleme mit übertragung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_E_DIP_TFT_32-A.pdf
BEFEHLE / FUNKTIONEN IN TABELLENFORM ......................................................... 13 - 17 TOUCH PANEL..................................................................................................................... 18 RÜCKANTWORTEN DES BEDIENPANELS ....................................
in „Display am Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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Datei
logfile_startup.txt
(~ 2403 MHz) RF Data Rate = 250 KBPS RF Power Amplifier = PA_MAX RF Low Noise Amplifier = Enabled CRC Length = Disabled Address Length = 5 bytes Static Payload Length = 32 bytes Auto Retry Delay = 250 microseconds Auto Retry Attempts = 0 maximum Packets lost on current channel = 0 Retry attempts made
in „Wechselrichter Hoymiles HM-xxxx 2,4 GhZ Nordic Protokoll?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
buildroot-2011.02-Mini2440-linux-2.6.39.patch
is not set + +# +# Library routines +# +CONFIG_BITREVERSE=y +CONFIG_GENERIC_FIND_LAST_BIT=y +CONFIG_CRC_CCITT=m +CONFIG_CRC16=m +CONFIG_CRC_T10DIF=y +CONFIG_CRC_ITU_T=y +CONFIG_CRC32=y +CONFIG_CRC7=y +CONFIG_LIBCRC32C=m +CONFIG_ZLIB_INFLATE=y +CONFIG_ZLIB_DEFLATE=y +CONFIG_LZO_COMPRESS=m +CONFIG_LZO_DECOMPRESS
in „mini2440 Odyssee“ · Mikrocontroller und Digitale Elektronik ·
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Datei
buildroot-2011.02-Mini2440-linux-2.6.39.patch
is not set + +# +# Library routines +# +CONFIG_BITREVERSE=y +CONFIG_GENERIC_FIND_LAST_BIT=y +CONFIG_CRC_CCITT=m +CONFIG_CRC16=m +CONFIG_CRC_T10DIF=y +CONFIG_CRC_ITU_T=y +CONFIG_CRC32=y +CONFIG_CRC7=y +CONFIG_LIBCRC32C=m +CONFIG_ZLIB_INFLATE=y +CONFIG_ZLIB_DEFLATE=y +CONFIG_LZO_COMPRESS=m +CONFIG_LZO_DECOMPRESS
in „mini2440 Odyssee“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EP2C5T144_CN.pdf
PIN136 17 18 PIN137 VCC1.2 17 18 VCC1.2 N IO, LVDS27n 115 PIN115 PIN139 19 20 PIN141 PIN30 19 20 PIN28 A IO, LVDS27p 118 PIN118 PIN142 21 22 PIN143 PIN32 21 22 PIN31 B IO, LVDS25n 23 24 23 24 IO, LVDS25p, (DPCLK8
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PDF
EP2C5T144_CN.pdf
PIN136 17 18 PIN137 VCC1.2 17 18 VCC1.2 N IO, LVDS27n 115 PIN115 PIN139 19 20 PIN141 PIN30 19 20 PIN28 A IO, LVDS27p 118 PIN118 PIN142 21 22 PIN143 PIN32 21 22 PIN31 B IO, LVDS25n 23 24 23 24 IO, LVDS25p, (DPCLK8
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Datei
rfm70.cpp
static PROGMEM uint8_t set0[][2]={ {0,0x3F}, //mask RX_DR\TX_DS\MAX_RT (we do not use IRQ!),Enable CRC ,2byte,POWER UP,PRX {1,0x01}, //Enable AACK only in pipe 0! Was:{1,0x3F}, //Enable auto acknowledgement data pipe5\4\3\2\1\0 {2,0x01}, //Enable only RX pipe 0 //Enable RX Addresses pipe5\4\3\2\1\0 {
in „Arduino RFM70“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datasheet_DM00039193-490390.pdf
Functional overview STM32F051x4 STM32F051x6 STM32F051x8 3.4 Cyclic redundancy check calculation unit (CRC) The CRC (cyclic redundancy check) calculation unit is used to get a CRC code from a 32-bit data word and a CRC-32 (Ethernet) polynomial. Among other applications, CRC-based techniques are used to verify
in „STM32F05 SPI 3 Wire Verbindung mit Accelerometer“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm70.c
commands const uint8_t PROGMEM RFM70_bank0Init[][2] = { // address data { (0x20|0x00), 0x0F }, //Disable CRC ,CRC=1byte, POWER UP, TX { (0x20|0x01), 0x3F }, //Enable auto acknowledgement data pipe0-5 { (0x20|0x02), 0x3F }, //Enable RX Addresses pipe0-5 { (0x20|0x03), 0x03 }, //RX/TX address field width 5byte { (0x20|0x04), 0x08 }, //x = 250 ms = 4000ms, y = 15 tries { (0x20|0x05), 0x17 }, //channel = 0x17 { (0x20|0x06), 0x3F }, //air data rate-2M,out power 5dbm,setup LNA gain high (0dBM), wenn man 0x37 110111 vorgibt, ist es 1MBit { (0x20|0x07), 0x07 }, // { (0x20|0x08), 0x00 }, //
in „Referenzparameter richtig übergeben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmel-8393-mcu_wireless-atmega256rfr2-atmega128rfr2-atmega64rfr2_datasheet.pdf
valid until the next TRX24_RX_END interrupt is issued, caused by a new frame reception. Table 9-43 RX_CRC_VALID Register Bits Register Bits Value Description RX_CRC_VALID 0 CRC (FCS) not valid 1 CRC (FCS) valid • Bit 6:5 – RND_VALUE1:0 - Random Value A 2-bit random value can be retrieved by reading register
in „AVR-Verlustleistung maximieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PLC-LOX.txt
sensor unsupported: "),dbgln(oneWireAddressToString(sensors,i)); j++; } else e++, dbg("1-wire sensor crc-error: "),dbg(oneWireAddressToString(sensors,i)),dbgln(OneWire::crc8(sensors, 7),HEX); } ow_count[i] = m<<8|k; dbg("1-wire sensors found "); dbg(i+1); dbg(": "); dbgln(j); } if(j) dbg("1-wire sensors: "); dbgln(j); if(e) dbg("1-wire crc-errors: "); dbgln(e); return e; } void dssetresolution(OneWire ow, byte addr[8], byte resolution) { byte resbyte = 0x1F; if (resolution == 12){ resbyte = 0x7F; } else if (resolution == 11) { resbyte
in „1 Wire auf 2 GPIO pins“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Protokoll.pdf
Sendeleistung beträgt je nach verwendetem Modul zwischen 0dBm und 5dBm. Die Datenrate ist 1MBit/s. CRC ist 1Byte lang. Es gibt keine automatische Bestätigung. Alle 4ms wird ein Paket ausgesendet, jedes Paket wird einmal wiederholt. Dann wird die Frequenz gewechselt. Jedes Paket besteht aus dem vom Modul
in „Hackbarer(?) 21 EUR Quadcopter“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tester2.asm
Speicherregister für Status des Hauptprogr. .def temp0 = r16 ;da ein Verknüpfung mit .def temp1 = r17 ;dem Infodisplay geplant ist. .def temp2 = r18 .def temp3 = r19 ;Registerbezeichnung bleibt, .def temp4 = r20 .def cnt = r21 .def sek = r22 .def WorkH = r23 ; Arbeitsregister für das Hauptprogramm .def
in „ds1820 befehle“ · Mikrocontroller und Digitale Elektronik ·
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Datei
simpelrec.c
address #define RX_PW_P5 0x16 // 'RX payload width, pipe5' register address #define FIFO_STATUS 0x17 // 'FIFO Status Register' register address //********************************************************************************************************************// // SPI(nRF24L01) commands #define READ_REG
in „funken mit Nordic“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm70_rx.h
address #define RX_PW_P5 0x16 // 'RX payload width, pipe5' register address #define FIFO_STATUS 0x17 // 'FIFO Status Register' register address #define PAYLOAD_WIDTH 0x1f // 'payload length of 256 bytes modes register address #define DYNPD 0x1C // Enable dynamic payload length #define FEATURE 0x1D /
in „Hat jemand Erfahrung mit dem 2,4GHz-Transceiver RFM70?“ · HF, Funk und Felder ·
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Datei
rfm70_tx.h
address #define RX_PW_P5 0x16 // 'RX payload width, pipe5' register address #define FIFO_STATUS 0x17 // 'FIFO Status Register' register address #define PAYLOAD_WIDTH 0x1f // 'payload length of 256 bytes modes register address #define DYNPD 0x1C // Enable dynamic payload length #define FEATURE 0x1D /
in „Hat jemand Erfahrung mit dem 2,4GHz-Transceiver RFM70?“ · HF, Funk und Felder ·
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PDF
DRF1278DM.pdf
parameters. The work mechanism is the same as in PC. Sync word ID code Header Command Length Data CRC End code 0xAF 0xAF 0x00 0x00 0XAF XX YY LEN XXXX CS 0X0D 0X0A Table 5: DRF1278DM Command Structure Notes: 1. The ID code is 0x00 0x00 in command. 2. In command code, XX in sending command is 0x80 and
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PDF
MCU.pdf
, PWM or one-pulse mode output. The TIM15, TIM16 and TIM17 timers can work together, and TIM15 can also operate with TIM1 via the Timer Link feature for synchronization or event chaining. TIM15 can be synchronized with TIM16 and TIM17. TIM15, TIM16, and TIM17
in „suche die pins für flash speicher“ · Mikrocontroller und Digitale Elektronik ·
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Datei
nrf24l01_drv.c
NRF24L01_MASK_RX_DR) | (1 << NRF24L01_MASK_TX_DS) | (1 << NRF24L01_MASK_MAX_RT) \ | (1 << NRF24L01_EN_CRC) | (1 << NRF24L01_CRCO)) #define PAYLOAD_SIZE 32 // Hängt von Groesse des Structs ab #define TX_CHANNEL 50 // Kanal 50 für uns #define RX_CHANNEL 60 /* --------------------- Typen Deklarationen ----
in „NRFL24L01+ - Immer Ärger mit den Paarungen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mmc.h
MMC_CMD_12_STOP 12 #define MMC_CMD_13_SEND_STATUS 13 #define MMC_CMD_16_BLOCKLEN 16 #define MMC_CMD_17_READ_SINGLE 17 #define MMC_CMD_18_READ_MULTIPLE 18 #define MMC_CMD_24_WRITE_SINGLE 24 // bit definitions for R1 #define MMC_R1_IN_IDLE 0x01 #define MMC_R1B_BUSY_BYTE 0x00 // different defines for tokens
in „SD Karte initialisieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GD32E230xx_Datasheet_Rev1.5.pdf
.................................................................................................. 17 2.6.1 GD32E230Cx LQFP48 pin definitions.................................................................................. 17 2.6.2 GD32E230Kx LQFP32 pin definitions ..................................
in „Wechselrichter Hoymiles HM-xxxx 2,4 GhZ Nordic Protokoll?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm70.cpp
initialization commands uint8_t bank0Init[][2]= { // address data { (0x20|0x00), 0x72 }, //Disable CRC ,CRC=1byte, POWER UP, TX { (0x20|0x01), 0x01 }, //Enable auto acknowledgement data pipe0 { (0x20|0x02), 0x01 }, //Enable RX Addresses pipe0 { (0x20|0x03), 0x03 }, //RX/TX address field width 5byte {
in „RFM70-Funkmodul funkt nicht!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm70.cpp
initialization commands uint8_t bank0Init[][2]= { // address data { (0x20|0x00), 0x72 }, //Disable CRC ,CRC=1byte, POWER UP, TX { (0x20|0x01), 0x01 }, //Enable auto acknowledgement data pipe0 { (0x20|0x02), 0x01 }, //Enable RX Addresses pipe0 { (0x20|0x03), 0x03 }, //RX/TX address field width 5byte {
in „RFM70-Funkmodul funkt nicht!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN_ESD_Latch-up_and_EMC_E.pdf
integration and digital interface, electromagnetic compatible (EMC) design with the supported by a CRC checksum, SHTxx sensors benefit sensor is given. from superior functional immunity against electro ESD Protection Electrostatic discharge (ESD) may damage SHTxx The sensors are tested using Human Body
in „SHT11 liefert sporadisch verschiedene Werte“ · Mikrocontroller und Digitale Elektronik ·
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Datei
p24FJ64GB004.h
extension__ typedef struct tagRPOR8BITS { union { struct { unsigned RP16R:5; unsigned :3; unsigned RP17R:5; }; struct { unsigned RP16R0:1; unsigned RP16R1:1; unsigned RP16R2:1; unsigned RP16R3:1; unsigned RP16R4:1; unsigned :3; unsigned RP17R0:1; unsigned RP17R1:1; unsigned RP17R2:1; unsigned RP17R3:1;
in „PIC24FJ64GB004 eclipse“ · Mikrocontroller und Digitale Elektronik ·