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Datei
main.c
, 0x03, 0xA0); wr16(RAM_REG+REG_HOFFSET, 0x00, 0x58); wr16(RAM_REG+REG_HSYNC0, 0x00, 0x00); wr16(RAM_REG+REG_HSYNC1, 0x00, 0x30); wr16(RAM_REG+REG_VCYCLE, 0x02, 0x0D); wr16(RAM_REG+REG_VOFFSET, 0x00, 0x20); wr16(RAM_REG+REG_VSYNC0, 0x00, 0x00); wr16(RAM_REG+REG_VSYNC1, 0x00, 0x03); wr8(RAM_REG+REG_SWIZZLE, 0x00); wr8(RAM_REG+REG_PCLK_POL, 0x01); wr8(RAM_REG+REG_CSPREAD, 0x00); wr16(RAM_REG+REG_HSIZE, 0x03, 0x20); wr16(RAM_REG+REG_VSIZE, 0x01, 0xE0
in „STM32F407 DISCOVERY mit EVE3 50GTPC von MatrixOrbital“ · Mikrocontroller und Digitale Elektronik ·
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PDF
156346062-STi7105.pdf
request. [19:18] CONF_LMI_HP_EN_AP[1:0]: Enables read with autoprecharge on lmi0 high priority port. [17:16] CONF_LMI_LP_EN_AP[1:0]: Enables read with autoprecharge on lmi0 low priority port. s [15:8] RESERVED n t [7:0] CONF_LMI_MEM_BASE_ADDR[7:0]: LMI memory base address. i 29-bit LMI base address : 0x0C b r 32-bit LMI base address : 0x40 f e SYSTEM_CONFIG39 Reserved a t 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 a l e a RESERVED e t ( Address: SystemConfigBaseAddress + 0x019C
in „Motorola Vip19x0 (Big brother of Vip1710)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
sample_code_main.c.txt
NVIC_InitStructure.NVIC_IRQChannelSubPriority = 1; NVIC_InitStructure.NVIC_IRQChannelCmd = ENABLE; NVIC_Init(&NVIC_InitStructure); /* Time base configuration for timer - which generates the interrupts. */ TIM_TimeBaseStructure.TIM_Period = 1918; TIM_TimeBaseStructure.TIM_Prescaler = (RCC_ClocksStatus.PCLK1_Frequency / 1000000); TIM_TimeBaseStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBaseStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseInit( TIM3, &TIM_TimeBaseStructure ); TIM_ARRPreloadConfig( TIM3, ENABLE ); TIM_ITConfig( TIM3, TIM_IT_Update, ENABLE ); /* Finally, enable
in „STM32: Timer-ISR löst 2x aus - Fehler im Flag-Reset bei Optimierung O3“ · Mikrocontroller und Digitale Elektronik ·
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Datei
top_basic.v
hdoutn ), .msi (msi_request), .inta_n ( 1'b1 ), // This PCIe interface uses dynamic IDs. .vendor_id (16'h1204), .device_id (16'hec30), .rev_id (8'h00), .class_code (24'h078000), //070002 = 16550 Compatible .subsys_ven_id (16'h4000), .subsys_id (16'h0001), .load_id (1'b1), // Inputs .force_lsm_active (
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Datei
main.c
// // Programm fuer einen ATmega16 // #define F_CPU 8000000UL #include <avr/io.h> #include <avr/interrupt.h> #include <util/delay.h> // // Der Prescaler muss so gewählt werden, dass der Ausdruck // für MILLISEC_BASE einen Wert kleiner
in „Hexabot und Servoproblemchen.“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ws2812.c
---------------------------------------------------------------------- */ static volatile uint_fast16_t current_dma_buf_pos; static volatile uint_fast16_t current_led_offset; static volatile uint_fast16_t current_data_pause_len; static volatile uint_fast16_t current_leds; #define DATA_LEN(n) ((n) * WS2812
in „WS2812B mit Lib von Martin Hubáček auf F103“ · Mikrocontroller und Digitale Elektronik ·
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PDF
4N25.pdf
0.001 10 µA DETECTOR Collector-Emitter Breakdown Voltage (C = 1.0 mA,FI = 0) BVCEO 30 100 V Collector-Base Breakdown Voltage (C = 100 µA,FI = 0) BVCBO 70 120 V Emitter-Collector Breakdown Voltage (I = 100 µA, I = 0) BV 7 10 V E F ECO Collector-Emitter Dark Current (VCE= 10 V,FI = 0) CEO 1 50 nA Collector-Base
in „optocoupler beschaltung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mmc.c
#include "sd.h" AT91PS_SPI s_pSpi = AT91C_BASE_SPI0; AT91PS_PIO s_pPioA = AT91C_BASE_PIOA; AT91PS_PIO s_pPioB = AT91C_BASE_PIOB; AT91PS_PMC s_pPMC = AT91C_BASE_PMC; AT91PS_PDC s_pPDC = AT91C_BASE_PDC_SPI0; char mmcGetResponse(void); char mmcGetXXResponse
in „NMEA-Daten auf der SD-Karte im KML-Format speichern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart.c
DMA_InitStructure.DMA_Channel = DMA_Channel_1; // Stream 1 = USART3_Rx DMA_InitStructure.DMA_PeripheralBaseAddr = (uint32_t)&(USART3->DR); // Set Rx register adress DMA_InitStructure.DMA_Memory0BaseAddr = BaseAddr; // Memory adress DMA_InitStructure.DMA_DIR = DMA_DIR_PeripheralToMemory; // Send data from
in „STM32F4 - USART3 Rx und DMA will nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DIY_AVRICE__AVR_JTAG_ICE_.htm
com/JtagIce/bootice.rom">bootice.rom</A> see source <A href="http://www.case2000.com/JtagIce/bootice.bas">bootice.bas</A> (AVR Basic) use <A href="http://www.lancos.com/">PonyProg</A> (notice bootloader is for m163 only) <LI>Set Fuses: BOOTSZ, BOOTRST all programmed, Clock all non-programmed see PonyProg
in „programmer für avr studio 4.12 gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BC327.PDF
Collector-Emitter Voltage BC328 –VCES 30 V BC327 45 Collector-Emitter Voltage BC328 –V CEO 25 V Emitter-Base Voltage –VEBO 5 V Collector Current –IC 800 mA Peak Collector Current –ICM 1 A Base Current –IB 100 mA Power Dissipation at Tamb = 25°C Ptot 625 (1) mW (1) Thermal Resistance Junction to Ambient Air
in „Bitte, bitte einmal überprüfen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2861180.pdf
Voltage V(br)ceo Ic= 0.1mA, Ib = 0 40 - Collector-Base Breakdown Voltage V(br)cbo Ic= 100µA, Ie = 0 60 - V Emitter-Base Breakdown Voltage V(br)ebo Ie= 100µA, Ic = 0 5 - Emitter Cut-Off Current Iebo V be= 4V, c = 0 - 0.01 µA On Characteristics (Note 1) V
in „[V] NPN: 6 St. 2N3053 und 12St. 2N5334 / TO39“ · Markt ·
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Techniques_for_Robust_Touch_Sensing_Design_AN1334.pdf
between a press - RightTouch :: None required on one sensor or the other. This is illustrated in Figure 16. • Minimum sensor trace separation: 0.1 mm • Minimize via usage in sensor traces. This increases base capacitance. FIGURE 16: CONDUCTIVE OVERLAY Conductive • Unused RightTouch sensor and LED pins should
in „Wie realisiert man Sensortasten?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
tastenplex.c
rawtast = 0; volatile uint8_t taste = 0; volatile uint8_t tastdel = 0; uint8_t zeile = 0; uint8_t base = 0; volatile uint16_t timeout = 0; void init_tastenplex(void){ //Timer Init (222Hz) TCCR0 = (1<<CS02); //CLK/256 TIMSK |= (1<<TOIE0); //OVF ISR //Spalten auf in mit Pullup schalten DDR(SPALTENPORT)
in „3x4 Tastenmatrix“ · Mikrocontroller und Digitale Elektronik ·
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Datei
EEVBLOG_CMU200.txt
"IS1MV5.20" for the CMU200 versionmanager to find them. AND you need to install the corresponding base-package first. Greetings ======================================================================================== CMU200_BASE_5.21 CMU200_BASE_5.21 File Information Release Date: 02/09/2011 File size
in „Option B41 bei einer CMU200 nachrüsten.“ · HF, Funk und Felder ·
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PDF
SC18_CHAPTER_5_1.pdf
Ptot M Tjmax —T mb p P tot M max = - (8) t Zthj —mb when T mb > T mb K. That is, below a mounting-base Ptot M th j-mb = 0.01) temperature of T mb K, the maximum power dissipation has a fixed limit value; and above T mb K, the power dissipation Tmb t must be reduced linearly with increasing mounting-base
in „Wärmewiderstand Rthg - Rthgk“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
lcd.c
instruction: increment DD-RAM address, move cursor right (after read/write) // addresses of lines: W162B (2x16) // ----------------------------------------- #define LCD_ADR_2X16_L1 0x00 // base address line 1, character 1 #define LCD_ADR_2X16_L2 0x40 // base address line 2, character 1 // addresses of lines: W204B (4x20) // ----------------------------------------- #define LCD_ADR_4X20_L1 0x00 // base address line 1, character 1 #define LCD_ADR_4X20_L2 0x40 // base address line 2, character 1 #define LCD_ADR_4X20_L3 0x14 // base address line 3, character 1 #define LCD_ADR_4X20_L4 0x54 // base address
in „LCD funktioniert nur an Port D (ATmega644P)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
*/ /* Includes */ #include "stm32f4xx.h" #include "stm32f4xx_tim.h" #include "stm32f4xx_dma.h" uint16_t LED_PIN_SET[10] = { GPIO_Pin_5, 0x0000, GPIO_Pin_5, 0x0000, GPIO_Pin_5, 0x0000, GPIO_Pin_5, 0x0000, GPIO_Pin_5, 0x0000 }; void TIM3_Config() { TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; DMA_InitTypeDef
in „STM32F4 + Timer 3 + DMA1 schreibt nicht ins ODR => TEIF“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TXbuddy.asm
; 1.5ms : center of PWM data; actually: use centering data add wri, pwmchan ; calculate address of 16 bit centering data for respective channel ldi ZL,low(chcent) ; base address + 2 * channel add ZL,wri ; ld wri,Z+ ; fetch ... ld wri_,Z ; 2 bytes movw hi:li,wri_:wri ; save center position ldi wril,low
in „Anfängerfrage zu AVR Tiny12“ · Mikrocontroller und Digitale Elektronik ·
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Datei
simple_rx.c
we can configure the clock. // SysCtlPeripheralEnable(SYSCTL_PERIPH_UART0); // // Use the internal 16MHz oscillator as the UART clock source. // UARTClockSourceSet(UART0_BASE, UART_CLOCK_PIOSC); // // Select the alternate (UART) function for these pins. // TODO: change this to select the port/pin you
in „CAN-Bus mit TM4C123G und MCP2562“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ttester_eng104k.pdf
With the common Emitter circuit the tester has only two alternative to select the base current: 1. The 680 resistor results to a base current of about 6.1mA. This is too high for low level transistors with high ampli▯cation factor, because the base is saturated. Because the collector
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Datei
wdt_a.h
(slau208). * * $Id: wdt_a.h,v 1.6 2009/02/28 12:14:53 sb-sf Exp $ */ /* Switches: __MSP430_WDT_A_BASE__ - base address of WDT_A module */ #define WDTCTL_ __MSP430_WDT_A_BASE__ + 0x0C /* Watchdog timer control register */ sfrw(WDTCTL, WDTCTL_); /* WDTCTL */ #define WDTPW (0x5A<<8) /* Watchdog timer password
in „sfrw sfrb - Error: unknown opcode GCC4“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart.c
) { case 's': ptr = va_arg(ap,char *); while(*ptr) { usart_write_char(*ptr++); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); usart_write_char (format_flag++); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
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PDF
AT-64020.pdf
110mAC f=2.0GHz dB 7.0 f=4.0GHz 2 .0 P 1dB PowerOutput@1dBGainCompression f=2.0GHz dBm 2 6.5 2 7.5 VCE16V,I =11CmA f=4.0GHz 2 6.5 G 1dB 1dBCompressedGain;V =16VCE =110mA C f=2.0GHz dB 8.5 10.0 f=4.0GHz 6.5 η T TotalEfficiencyat1dBComp ession: f=4.0GHz % 35.0 VCE16V,I =11CmA h ForwardCurrentTransferRatio
in „[S] RF-Transistor AT-64020 oder einen adäquaten Ersatz“ · Markt ·
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PDF
BD139-16.pdf
Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT VCBO collector-base voltage open emitter BD135 − 45 V BD137 − 60 V BD139 − 100 V V collector-emitter voltage open base CEO BD135 − 45 V BD137 − 60 V BD139 − 80 V VEBO emitter-base voltage open collector − 5 V I collector
in „Transistor als Schalter (BD139) richtig auslegen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bd139.pdf
Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT VCBO collector-base voltage open emitter BD135 − 45 V BD137 − 60 V BD139 − 100 V V collector-emitter voltage open base CEO BD135 − 45 V BD137 − 60 V BD139 − 80 V VEBO emitter-base voltage open collector − 5 V I collector
in „Basisvorwiderstand Berechung beim BD139 richtig?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dmx-pwm24.c
uint8_t pwm_cnt_max=1; // count limit volatile uint8_t pwm_sync; // update now possible volatile uint16_t dmx_base; uint8_t dmx_data[DMX_SIZE]; PWM_t pwm_data[PWM_CHANNELS]; PWM_t pwm_setting_tmp[PWM_CHANNELS+1]; // PWM data, sorted pwm_data_t isr_data; pwm_data_t main_data; // PWM data pwm_data_t* volatile
in „C - Ersatz von switch case.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Digital_IO_Operating_Guide_100804_.pdf
control on PMIO_4D[4] 3 EPIA-PD’s Digital I/O Function Operation Guide VT8235 Power Management I/O Base – Offset 8B-88 31 - 16 Reserved………………………always reads 0 15 - 7 Power Management I/O Register BaseAddress PortAddress for the base of the 128-byte Power Management I/O Register Block, corresponding toAD
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BFG591.pdf
Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT VCBO collector-base voltage open emitter 20 V VCEO collector-emitter voltage open base 15 V VEBO emitter-base voltage open collector 3 V I collector current (DC) 200 mA C Ptot total power dissipation up to s =
in „UKW-Prüfsender: Diverse Fragen!“ · HF, Funk und Felder ·
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Datei
main.c
#include "stm32f4xx.h" TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; TIM_OCInitTypeDef TIM_OCInitStructure; uint16_t TimerPeriod = 0; void TIM_GPIO_Config(void); int main(void) { TIM_GPIO_Config(); TimerPeriod = ((SystemCoreClock / 168) / 50) - 1; RCC_APB2PeriphClockCmd(RCC_APB2Periph_TIM1 , ENABLE); TIM_TimeBaseStructure.TIM_Prescaler = 167; TIM_TimeBaseStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseStructure.TIM_Period = TimerPeriod; TIM_TimeBaseStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBaseStructure.TIM_RepetitionCounter
in „STM32F4 einfache PWM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
WM-G-MR-01-v27__01192006.pdf
Power GND 10.2.HOST INTERFACE The host interface is compatible with Compact Flash (PCMCIA) standard, 16 bit I/O bus. Signals not used will not be routed to the physical interface (connector). For the connector, high reliability connectors B2B connectors will be used base on assembly height. On Board connector
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MN-RBXEB-01.pdf
from the BIOS ROM to system RAM for faster execution. The setting is either Enabled or Disabled. C000,16K Shadow C400,16K Shadow These options specify how the 32 KB of video ROM at C0000h is treated. The settings are: Enabled (default), Disabled and Cached. C800,16K Shadow CC00,16K Shadow D000,16K Shadow
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Datei
lcd.c
switch (by) { case 's': ptr = va_arg(ap,char *); while(*ptr) {lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); lcd_write (format_flag++,1); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
in „LCD YL162-90 Pollin Initialisierung und Timing (16x2)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
GLCD.c
- EndY: Line End Coordinate * Output : None * Return : None * Attention : ͌ƬȡģžñʜΪˮƜɚÃ裬16λÑÕɫģʜ *******************************************************************************/ void LCD_DrawPicture(uint16_t StartX,uint16_t StartY,uint16_t EndX,uint16_t EndY,uint16_t *pic) { uint16_t i
in „STM32 24Bit Bmp nach 565RGB Format“ · Mikrocontroller und Digitale Elektronik ·
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Datei
GLCD.c
- EndY: Line End Coordinate * Output : None * Return : None * Attention : ͌ƬȡģžñʜΪˮƜɚÃ裬16λÑÕɫģʜ *******************************************************************************/ void LCD_DrawPicture(uint16_t StartX,uint16_t StartY,uint16_t EndX,uint16_t EndY,uint16_t *pic) { uint16_t i
in „STM32 24Bit Bmp nach 565RGB Format“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Parallel_Port_Driver.pdf
cfg="0x378 out" setp parport.0.reset-time 5000 loadrt stepgen step_type=0,0,0 addf parport.0.read base-thread addf stepgen.make-pulses base-thread addf parport.0.write base-thread addf parport.0.reset base-thread addf stepgen.capture-position servo-thread ... setp stepgen.0.steplen 1 setp stepgen.0.stepspace
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Datei
GLCD.c
- EndY: Line End Coordinate * Output : None * Return : None * Attention : ͌ƬȡģžñʜΪˮƜɚÃ裬16λÑÕɫģʜ *******************************************************************************/ void LCD_DrawPicture(uint16_t StartX,uint16_t StartY,uint16_t EndX,uint16_t EndY,const uint8_t *pic) { uint16
in „STM32 24Bit Bmp nach 565RGB Format“ · Mikrocontroller und Digitale Elektronik ·
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Datei
cmu_bat.txt
2002 11:25:20 thorsten rem now the logging is version dependend again rem rem Rev 1.3 18 Mar 2002 16:43:58 thorsten rem added SYS_BASE to get the CMU BASE directory rem needed for showing the fgroup versions rem rem Rev 1.2 14 Feb 2002 10:47:42 thorsten rem commented out KEYBCONT.SCR and DEBUG.SCR rem
in „Option B41 bei einer CMU200 nachrüsten.“ · HF, Funk und Felder ·
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Datei
DSO_Test.cpp
DMA_InitStructure.DMA_Priority = DMA_Priority_High; DMA_Init(DMA1_Channel1, &DMA_InitStructure); //Timer config TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; TIM_TimeBaseStructInit(&TIM_TimeBaseStructure); TIM_TimeBaseStructure.TIM_Period = TIM_MAX; TIM_TimeBaseStructure.TIM_Prescaler = 0; TIM_TimeBaseStructure.TIM_ClockDivision
in „STM32F103 ADCs mit externem Trigger langsamer?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Slave.cpp
(DAQPipe.rx_frame[1]) { case DAQ_PIPE_CMD_CONNECT: DMA2_Stream5->NDTR = (uint16_t)1; DMA2_Stream5->M0AR = (uint32_t)&DAQPipe.tx_con_buf; DMA2_Stream5->CR |= (uint32_t)DMA_SxCR_EN; break; case DAQ_PIPE_CMD_GETCONFIG: DMA2_Stream5->NDTR = (uint16_t)DAQ_PIPE_TX_BUFFERSIZE; DMA2_Stream5
in „2 STM32F4 SPI Master/Slave FullDuplex“ · Mikrocontroller und Digitale Elektronik ·
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Datei
fastadc.py
machine import ADC from array import array from time import ticks_us, ticks_diff class FastADC: _ADC_BASE = const(0x4004c000) # rp2040 # _ADC_BASE = const(0x400a0000) # rp2350 _ADC_CS = const(0x00 >> 2) _ADC_FCS = const(0x08 >> 2) _ADC_FIFO = const(0x0c >> 2) def __init__(self, adc_pin, length): self.adc
in „Micropython PiPico constant sampling ADC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart16receive4.bas
$regfile = "m16def.dat" $crystal = 8000000 $baud = 9600 $hwstack = 100 $framesize = 100 $swstack = 100 Led Alias Portd.5 Config Led = Output Dim I As Byte Do If Usr.rxc = 1 Then 'Wenn Byte empfangen... I = Udr 'Byte aus UART auslesen Select Case I Case "A" Print "AN" Led = 1 Case "B" Print "AUS" " Led = 0 Case Else Print "Unbekannter Befehl" End Select End If Loop End
in „Erster Test mit UART was mache ich falsch“ · Mikrocontroller und Digitale Elektronik ·
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Datei
uart16receive4.bas
$regfile = "m16def.dat" $crystal = 8000000 $baud = 9600 $hwstack = 100 $framesize = 100 $swstack = 100 Led Alias Portd.5 Config Led = Output Dim I As Byte If Usr.rxc = 1 Then 'Wenn Byte empfangen... I = Udr 'Byte aus UART auslesen Select Case I Case "A" Led = 1 Case "B" Led = 0 End Select End If Return
in „Erster Test mit UART was mache ich falsch“ · Mikrocontroller und Digitale Elektronik ·
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Datei
3_16bit_pwm.bas
'3 Kanal 16bit PWM ' 'Laesst drei LEDs an OC0A, OC1A und OC1B mit 16 bit ein- und ausfaden 'Der dritte 16-bit Kanal wird durch mehrfaches Aneinanderhaengen 'von Timer0 (8bit) nachgebildet ' 'Arne Groh '2011-07-07 ' 'Fusebits '1111 1111 '1111 1111 '1101 1111 '1110 0100 $regfile = "attiny2313.dat" $crystal = 8e6 Dim I As Byte Dim J As Integer Dim Ocr_0a As Word Dim Ocr0ah As Byte Dim Ocr0al As Byte Dim Ocr0count As Byte Dim Ocr1a As Word Dim Ocr1b As Word Dim Flags As Byte Lastrun Alias Flags.0 '------------ Timer konfigurieren -------- '-- Timer1 -- 'Fast PWM-Mode 14 einstellen (TOP in ICR1) Set Tccr1a.wgm11
in „3 Kanal 16 bit PWM mit Tiny2313 (Bascom)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
3_16bit_pwm.bas
'3 Kanal 16bit PWM ' 'Laesst drei LEDs an OC0A, OC1A und OC1B mit 16 bit ein- und ausfaden 'Der dritte 16-bit Kanal wird durch mehrfaches Aneinanderhaengen 'von Timer0 (8bit) nachgebildet ' 'Arne Groh '2011-06-20 ' 'Fusebits '1111 1111 '1111 1111 '1101 1111 '1110 0100 $regfile = "attiny2313.dat" $crystal = 8e6 Dim I As Byte Dim J As Integer Dim Ocr_0a As Word Dim Ocr0ah As Byte Dim Ocr0al As Byte Dim Ocr1a As Word Dim Ocr1b As Word Dim Flags As Byte Lastrun Alias Flags.0 '------------ Timer konfigurieren -------- '-- Timer1 -- 'Fast PWM-Mode 14 einstellen (TOP in ICR1) Set Tccr1a.wgm11 Set Tccr1b.wgm12
in „3 Kanal 16 bit PWM mit Tiny2313 (Bascom)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
adc_dma.c
stm32f0xx_rcc.h" #include "stm32f0xx_misc.h" #include "stm32f0xx_dma.h" #include "stm32f0xx_tim.h" volatile uint16_t ADCReadBuffer[6]; void HardwareInit() { GPIO_InitTypeDef GPIO_InitStructure; ADC_InitTypeDef ADC_InitStructure; DMA_InitTypeDef DMA_InitStructure; TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; /*
in „ATM32F030 + ADC + DMA“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DG506_507_508_509A.pdf
17 DG506A, DG507A, DG508A, DG509A Ceramic Dual-In-Line Frit Seal Packages (CERDIP) c1 LEAD FINISH F16.3 MIL-STD-1835 GDIP1-T16 (D-2, CONFIGURATION A) -A- -D- 16 LEAD CERAMIC DUAL-IN-LINE FRIT SEAL PACKAGE BASE (c) INCHES MILLIMETERS METAL SYMBOL MIN MAX MIN MAX NOTES E b1 A - 0.200 - 5.08 - M M -B- (
in „Bestimmtes Bauteil gesucht zur Signalverteilung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
simple_tx.c
we can configure the clock. // SysCtlPeripheralEnable(SYSCTL_PERIPH_UART0); // // Use the internal 16MHz oscillator as the UART clock source. // UARTClockSourceSet(UART0_BASE, UART_CLOCK_PIOSC); // // Select the alternate (UART) function for these pins. // TODO: change this to select the port/pin you
in „CAN-Bus mit TM4C123G und MCP2562“ · Mikrocontroller und Digitale Elektronik ·
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Datei
20110326_log.txt
offset value name 0x40010: 0x01DA0F83(PCI_SETUP) 0x40014: 0x00000047(PCI_CTRL) 0x40018: 0x18000000(PCI_BASE1_LO) 0x4001C: 0x1A000000(PCI_BASE1_HI) 0x40020: 0x1C000000(PCI_BASE2_LO) 0x40024: 0x1E000000(PCI_BASE2_HI) 0x40028: 0x00008000(PCI_RDLIFETIME) 0x4002C: 0x00000000(PCI_GPPM_ADDR) 0x40030: 0x00000000(
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KSZ8851SNL.pdf
• Ability to Transmit and Receive Frames up to 2000 Bytes • Supports Flexible Byte (8-bit), Word (16-bit) and Double Word (32-bit) Read/Write Access to Inter- Network Features nal Registers • 10BASE-T and 100BASE-TX Physical Layer Sup- • Larger Internal Memory with 12K Bytes for RX port FIFO and 6K
in „KSZ8851 Ethernet komplizierte Frage.“ · Mikrocontroller und Digitale Elektronik ·