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Datei
main.c
reagieren TimerControlEvent(TIMER0_BASE, TIMER_A, TIMER_EVENT_POS_EDGE); // Timer zählt abwärts, daher den Timer mit dem maximalen Wert (2^16 - 1) vorladen TimerLoadSet(TIMER0_BASE, TIMER_A, 0xFFFF); // Timer0A starten TimerEnable(TIMER0_
in „Probleme mit Goertzel Algorithmus und Festkommaarithmetik“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
core_cm3.h
Monitor Control Register */ } CoreDebug_Type; /* Memory mapping of Cortex-M3 Hardware */ #define SCS_BASE (0xE000E000) /*!< System Control Space Base Address */ #define ITM_BASE (0xE0000000) /*!< ITM Base Address */ #define CoreDebug_BASE (0xE000EDF0) /*!< Core Debug Base Address */ #define SysTick_BASE (SCS_BASE + 0x0010) /*!< SysTick Base Address */ #define NVIC_BASE (SCS_BASE + 0x0100) /*!< NVIC Base Address */ #define SCB_BASE (SCS_BASE + 0x0D00) /*!< System Control Block Base Address */ #define InterruptType
in „Welcher Cortex M3?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
enet_io.c
I2C1_MASTER_BASE)){ }; I2CMasterSlaveAddrSet(I2C1_MASTER_BASE, 0x60, false); I2CMasterDataPut(I2C1_MASTER_BASE,0x13); I2CMasterControl(I2C1_MASTER_BASE,I2C_MASTER_CMD_BURST_SEND_START); while(I2CMasterBusy(I2C1_MASTER_BASE
in „I2C Problem bei DK LM3S9b96 TI Cortex M3“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bluenrg-2.pdf
SMPS OFF OFF OFF ON ON ON ON ON LDO_DIG_1V2 OFF OFF OFF ON ON ON ON ON BOR OFF OFF OFF ON ON ON ON ON 16 MHz RO OFF OFF OFF ON OFF OFF OFF OFF 16 MHz XO OFF OFF OFF OFF ON ON ON ON 32 kHz RO or XO OFF OFF ON ON ON ON ON ON 3.4.3 System controller registers SYSTEM_CTRL peripheral base address (SYSTEM_CTRL_BASE_ADDR
in „DC/DC-Wandler im ST BlueNRG-2 - Wofür?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Micrel-Phy.pdf
KSZ8051MLL 10Base-T/100Base-TX Physical Layer Transceiver Data Sheet Rev. 1.0 General Description Features The KSZ8051MLL is a single-supply 10Base-T/100Base- • Single-chip 10Base-T/100Base-TX IEEE 802.3 TX Ethernet
in „Ethernet PHY für STM32F107“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst.s
, GPIOA_BASE + 0x20 .equ GPIOA_AFRH , GPIOA_BASE + 0x24 .equ HSERDY , BIT17 .equ HSEON , BIT16 @ USART1 on STM32F4 chips: pp. 1018 in RM0090 (dm00031020-stm*.pdf) (RM0090) .equ USART1_BASE , 0x40011000 .equ USART1
in „Assemblerprogramm zur Ausgabe eines Zeichens auf UART3“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Belegarbeit_DE0Nano_NiosII_ADXL345.pdf
die Registerwerte des ADXL345 geschrieben werden. Dies geschieht zu Beginn der main-Funktion. (16) I2C_init(I2C_BASE, i2c_clk, i2c_speed); Initialisiert die I²C-Verbindung mit den Angaben für clk und speed. (17) I2C_write_8b((XL345_RANGE_16G | XL345_FULL_RESOLUTION), ADXL345_REG_DATA_FORMAT); Setzt
in „Projektdokumentation DE0_Nano ADXL345 per I2C auslesen“ · FPGA, VHDL & Co. ·
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Datei
myfirst168.s
, GPIOA_BASE + 0x20 .equ GPIOA_AFRH , GPIOA_BASE + 0x24 .equ HSERDY , BIT17 .equ HSEON , BIT16 @ USART1 on STM32F4 chips: pp. 1018 in RM0090 (dm00031020-stm*.pdf) (RM0090) .equ USART1_BASE , 0x40011000 .equ USART1
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
OS_SerialTFT.cpp
SerialTFT::print(uint16_t n, uint8_t base) { char temp[5]; temp[0] = PRINT_INT_16; temp[1] = UNSIGNED; temp[2] = base;// temp[3] = n>>8; temp[4] = n; sendCommand(temp,5); while(checkFeedback()!=FEEDBACK_OK); } void SerialTFT
in „Arduino Softwareserial umarbeiten auf HardwareSerial?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
OS_SerialTFT.cpp
SerialTFT::print(uint16_t n, uint8_t base) { char temp[5]; temp[0] = PRINT_INT_16; temp[1] = UNSIGNED; temp[2] = base;// temp[3] = n>>8; temp[4] = n; sendCommand(temp,5); while(checkFeedback()!=FEEDBACK_OK); } void SerialTFT
in „Arduino Softwareserial umarbeiten auf HardwareSerial?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
W5500.h
size using @ref Sn_RXBUF_SIZE. The total sum of @ref Sn_RXBUF_SIZE can not be exceed 16Kbytes. * When exceeded, the data reception error is occurred. */ #define Sn_RXBUF_SIZE(N) (_W5500_IO_BASE_ + (0x001E << 8) + (WIZCHIP_SREG_BLOCK(N) << 3)) /** * @ingroup Socket_register_group * @brief
in „Mit ATmega328PB einen W5500 Ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SMD-PHILIPS_1999.pdf
BAS216 A6 SOD110 BAS16T A6 SC-75/SOT416 BAS221 JS SOD110 BAS16W A6 SC-70/SOT323 BAS316 A6 SC-76/SOD323 BAS17 A91 SOT23 BAS321 A7 SC-76/SOD323 BAS19 JPp; JPt SOT23 BAS516 6 SC-79/SOD523 BAS20 JRp; JRt SOT23
in „Datenbuch Valvo 1977 gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
***********************************************************/ void main_ccv10(void) { int i, j; uint16_t *rx_base = (uint16_t *)(&(RIN_CCLSLAVE->CCS_M3RMRX00_0F)); uint16_t *rwr_base = (uint16_t *)(&(RIN_CCLSLAVE->CCS_M3RMRWR0)); uint16_t *ry_base = (uint16_t *)(&(RIN_CCLSLAVE->CCS_M3MRRY00_0F)); uint16
in „R-IN32M3-CL (Cortex-M3): Wie funktioniert Senden/Empfangen auf dem Feldbus?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DM8203.pdf
Support 1 = 100BASE-TX full duplex is supported by the local device 0 = 100BASE-TX full duplex is not supported 7 TX_HDX 1, RW 100BASE-TX Support 1 = 100BASE-TX half duplex is supported by the local device 0 = 100BASE-TX
in „2 Port Switch IC wie in IP telefonen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DM8203.pdf
Support 1 = 100BASE-TX full duplex is supported by the local device 0 = 100BASE-TX full duplex is not supported 7 TX_HDX 1, RW 100BASE-TX Support 1 = 100BASE-TX half duplex is supported by the local device 0 = 100BASE-TX
in „[V] DM8203 & DM8603“ · Markt ·
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PDF
Driver_Library_user_guide.pdf
configuration. 30 October 30, 2008 Stellaris Peripheral Driver Library User’s Guide Returns: None. 4.2.2.16 ADCSequenceUnderflow Determines if a sample sequence underflow occurred. Prototype: long ADCSequenceUnderflow(unsigned long ulBase, unsigned long ulSequenceNum) Parameters: ulBase is the base address of
in „I2C Display Steuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst.s
.equ RCC_APB1ENR , RCC_BASE + 0x40 .equ RCC_APB2ENR , RCC_BASE + 0x44 .equ HSERDY , BIT17 .equ HSEON , BIT16 @ USART1 on STM32F4 chips: pp. 1018 in RM0090 (dm00031020-stm*.pdf) (RM0090) .equ USART1_BASE , 0x40011000 .equ USART1
in „Assemblerprogramm zur Ausgabe eines Zeichens auf UART3“ · Mikrocontroller und Digitale Elektronik ·
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Datei
display.txt
0x01); usleep(2000); } alt_u32 test_lcd() { int i; char message[16] = "Supergschmeidig "; char done[16] = "Done! "; /* Write a simple message on the first line. */ for(i = 0; i < 16; i++) { IOWR(LCD_0_BASE, LCD_WR_DATA_REG,message[i]); usleep(100); } /* Count along
in „standard QSYS Character LCD vs. 16x4 LCD-Modul“ · FPGA, VHDL & Co. ·
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Datei
compilerlauf-kicad-gcc7.txt
[ 16%] Building CXX object bitmaps_png/CMakeFiles/bitmaps.dir/cpp_26/layers_manager.cpp.o [ 16%] Building CXX object bitmaps_png/CMakeFiles/bitmaps.dir/cpp_26/leave_sheet.cpp.o [ 16%] Building CXX object
in „KiCad 5.0.2 - Absturz beim Footprint-Editor Aufruf“ · Platinen ·
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PDF
Vorlage_100x75.pdf
1 2 3 4 5 6 7 8 A A BAS16 +5V U$1 +12V 100nF U$2 C21 0 2 +5V BAS16 C22 1 R K 1 6 PKD3001D 100nF U$11 PMD3001D 1 R R 1 U$16 1 R18 10E PH20100S 10E BAS40 D R 1 U$5 N D D3 PH20100S BAS214 U$21 D6 G G 1 K 1 P1.28-MCOA2 3V6 U$20 R 1 BAS21 R P1.19-MCOA0 U$4 PMBF170 PMBF170 GND BAS16 +5V B GND B C 100nF K 7 U$3 - R 1 R O O C23 K 5 O O PMD3001D 1 R M U$15 M +5V PH20100S 10E BAS40 D PMD3001D G 9 2 0 BAS218 K 6 U$22 D9 1 0 R 1 U$12 1 R1.25
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PDF
History18opamp.pdf
alternatively, a current source), acts in concert with mas- ter Q19 and mirror slaves Q14, Q15 and Q16 to bias the whole circuit. Transistor Q17 is normally operated in saturation, so that the base potential of Q15 and Q16 is a diode drop above the voltage across Q18. If Q14 should pull down so far that it saturates, Q17 drops out of saturation, leaving largely unperturbed the voltage at the bases of Q15 and Q16. If Q14’s base were tied to that of Q15 and Q16, saturation of Q14 would result in the pulling down of those base voltages, upsetting the biasing for the entire amplifier. Recovery from
in „OPV ~ Bj. 1972“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
i<1500;i++); //while(!(AT91C_BASE_PIOA->PIO_PDSR & PA3)){ //} Eingelesen = 0x01; //I2C /*//Initialisierung AT91C_BASE_TWI->TWI_CWGR = (0x02 | (0x02 << 8) | (0x02 << 16)); AT91C_BASE_TWI->TWI_MMR = ((0x70 << 16) | (AT91C_TWI_MREAD));
in „TWI und AT91SAM7S“ · Mikrocontroller und Digitale Elektronik ·
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Datei
snapcast_stream.c
snapcast_stream_ringbuffer_node_t *read_rb; int read_len; int write_len; int wire_chunk_len; char *tcp_buffer; union{ uint16_t bits_buffer; snapcast_stream_ringbuffer_bits_t bits; }; } snapcast_stream_t; char mac_address[18]; unsigned char base_mac[6]; char base_message_serialized[BASE_MESSAGE_SIZE]; char time_message_serialized
in „ESP32 esp-idf tcp client empängt Daten Packet nicht immer vollständig“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst168.s
, GPIOA_BASE + 0x20 .equ GPIOA_AFRH , GPIOA_BASE + 0x24 .equ HSERDY , BIT17 .equ HSEON , BIT16 @ USART1 on STM32F4 chips: pp. 1018 in RM0090 (dm00031020-stm*.pdf) (RM0090) .equ USART1_BASE , 0x40011000 .equ USART1
in „Break auf 0xfffffffe in STM32CubeIDE“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst168.s
, GPIOA_BASE + 0x20 .equ GPIOA_AFRH , GPIOA_BASE + 0x24 .equ HSERDY , BIT17 .equ HSEON , BIT16 @ USART1 on STM32F4 chips: pp. 1018 in RM0090 (dm00031020-stm*.pdf) (RM0090) .equ USART1_BASE , 0x40011000 .equ USART1
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32_eeprom.c
with the new one if ((*(uint16_t*)(FEE_PAGE_BASE_ADDRESS + FEE_ADDR_OFFSET(Address))) == FEE_EMPTY_WORD) { FlashStatus = FLASH_ProgramHalfWord(FEE_PAGE_BASE_ADDRESS + FEE_ADDR_OFFSET(Address), (uint16_t)(0x00FF & DataByte)); } else
in „Daten ins Flash speichern mit dem STM32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32_eeprom.c
with the new one if ((*(uint16_t*)(FEE_PAGE_BASE_ADDRESS + FEE_ADDR_OFFSET(Address))) == FEE_EMPTY_WORD) { FlashStatus = FLASH_ProgramHalfWord(FEE_PAGE_BASE_ADDRESS + FEE_ADDR_OFFSET(Address), (uint16_t)(0x00FF & DataByte)); } else
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Datei
stm32f10x.h
0x3400) #define USART1_BASE (APB2PERIPH_BASE + 0x3800) #define ADC3_BASE (APB2PERIPH_BASE + 0x3C00) #define TIM15_BASE (APB2PERIPH_BASE + 0x4000) #define TIM16_BASE (APB2PERIPH_BASE + 0x4400) #define TIM17_BASE (APB2PERIPH_BASE
in „COIDE 2.7.0 und STMF103C8T6 (china board), startprobleme“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f10x.h
0x3400) #define USART1_BASE (APB2PERIPH_BASE + 0x3800) #define ADC3_BASE (APB2PERIPH_BASE + 0x3C00) #define TIM15_BASE (APB2PERIPH_BASE + 0x4000) #define TIM16_BASE (APB2PERIPH_BASE + 0x4400) #define TIM17_BASE (APB2PERIPH_BASE
in „STM32 - Eclipse, ARM GCC - Funktionsaufruf geht nicht :-(“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f10x.h
0x3400) #define USART1_BASE (APB2PERIPH_BASE + 0x3800) #define ADC3_BASE (APB2PERIPH_BASE + 0x3C00) #define TIM15_BASE (APB2PERIPH_BASE + 0x4000) #define TIM16_BASE (APB2PERIPH_BASE + 0x4400) #define TIM17_BASE (APB2PERIPH_BASE
in „C-Libs for USB and OLED-Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
========== void SPI_DvcConfg(volatile AT91PS_SPI pSPI, U32 Mode) { if (pSPI == NULL) pSPI = AT91C_BASE_SPI0; pSPI->SPI_IDR = 0xFFFFFFFF; // disable all interrupts pSPI->SPI_MR = ((SPI_0_REG_DLYBCS&0x00FF)<<24) | ((SPI_0_REG_PCSDEC&0x0001)<<2) | ((SPI_0_REG_PCS&0x000F)<<16) | ((SPI_0_REG_PS&0x0001)<<1
in „[AT91SAM7X256] SPI mit komischem Verhalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
redir.pdf
. If we select this Fuse Bit, it means that we configure CPU to ETT CO.,LTD -14- WWW.ETT.CO.TH ET-BASE AVR ATmega64/128 User’s Manual run with frequency 16MHz. If we do not select this Fuse Bit, we configure CPU to run with frequency not much than 8 MHz. If we use the standard ETT Board, we use XTAL
in „wie mit Pc verbinden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ds1879a.pdf
serial interconnection, is about 140 sec. 1 15:8 MIDI receive data if bit 7 of byte 0 is set. 2 23:16 XGPI input state GPI/O Registers 3 31:24 Low byte joystick timer A The GPI/O registers are as follows: 4 39:32 Low byte joystick timer B ▯ Configuration_Device_Base+2h 5 47:40 Low byte joystick timer
in „Informationen über ISA-Karten“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mc9s12ne64.h
Multicast Hash Table Index Bit 31 */ } Bits; } MCHASH1STR; extern volatile MCHASH1STR _MCHASH1 @(REG_BASE + 0x00000164); #define MCHASH1 _MCHASH1.Word #define MCHASH1_MCHASH_16 _MCHASH1.Bits.MCHASH_16 #define MCHASH1_MCHASH_17 _MCHASH1.Bits.MCHASH_17 #define MCHASH1_MCHASH_18 _MCHASH1.Bits.MCHASH_18 #define
in „Hilfe MC9S12NE64 interrupt programmierung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
SJA.c
//CAN Controller SJA1000 in Intel Mode mit 16MHz Quarz -> CLK OUT = 8MHz #include <stdlib.h> #include <avr/io.h> #include "lcd.h" #include <avr/delay.h> #define F_CPU 8000000UL /* ** SJA1000 CAN BASE */ #define CAN_BASE 0x4000 /* ** Some SJA1000
in „SJA1000 ATMega8515“ · Mikrocontroller und Digitale Elektronik ·
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PDF
apple_macbook_pro_a1286_mlb_d1_051-9216_13.3_retina_a1425_820-3462_sch.pdf
_ A L T _ I T E M 639-3697 PCBA,2.5G,HYNIX 8GB,MLB,D1 DEVEL_BOM,BASE_BOM,CPU_IVB_2C_2.5G,PCH_C1,EEEE:F16V,RAM_4G_HYNIX_1600_S 826-4393 1 LBL,P/N LABEL,PCB,28MM X 6 MM [EEEE:F16V] CRITICAL EEEE:F16V 197S0484 197S0485 ALL NDK alt to TXC TABLE_BOMGROUP_ITEM T A B L E _
in „Macbook Schaltpläne“ · Mikrocontroller und Digitale Elektronik ·
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PDF
xmega_a1.pdf
base 0x00C DMA_INT_base DMA Controller Interrupt base 0x014 RTC_INT_base Real Time Counter Interrupt base 0x018 TWIC_INT_base Two-Wire Interface on Port C Interrupt base 0x01C TCC0_INT_base Timer/Counter
in „Welchen Wert hat der Pull-up-Widerstand dieses XMega?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
RP6RobotBaseLib.h
***************************************/ // ADC extern uint8_t adc_conversion_complete; extern uint16_t adc_result; extern uint16_t adcBat; extern uint16_t adcMotorCurrentLeft; extern uint16_t adcMotorCurrentRight; extern uint16_t adcLSL; extern uint16_t adcLSR; extern uint16_t adc0; extern uint16_t
in „PIC < > AVR (mit IIC)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HT1621.pdf
time-out flag after: 1s Time base/WDT clock output:8Hz F8 1 0 0 101X-X011-X C The WDT time-out flag after: 1/2s Time base/WDT clock output:16Hz F16 1 0 0 101X-X100-X C The WDT time-out flag after: 1/4s Time base/WDT clock output:32Hz F32 1 0 0 101X-X101-X C The WDT time-out flag after: 1/8s Time base/WDT clock output:64Hz F64 1 0 0 101X-X110-X C The WDT time-out flag after: 1/16s F128 1 0 0 101X-X111-X C Time base/WDT clock output:128Hz Yes The WDT time-out flag after: 1/32s TEST 1 0 0 1110-0000
in „Picomite und LCD Display PC-6749-UUW von Densitron“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
); //Timer 16 konfigurieren TIM_TimeBaseInitTypeDef TIM_TimeBase_InitStructure; TIM_TimeBase_InitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBase_InitStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBase_InitStructure.TIM_Period = 100; //Vorteiler 100 => 48kHz TIM_TimeBase_InitStructure.TIM_Prescaler = 10; //Vorteiler 10 => 4,8MHz TIM_TimeBaseInit(TIM16, &TIM_TimeBase_InitStructure); TIM_ITConfig(TIM16, TIM_IT_Update, ENABLE); // Timer16 einschalten TIM_Cmd(TIM16, ENABLE
in „stm32 SysTickFunction wird nie ausgeführt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
la_register.vhd
Trigger Base Register -- S = Status Base Register -- C = Control Base Register -- O = Offsets constant TRIGGER0_BASE : addr_base_t := (7 => '1', others => '0'); constant TRIGGER1_BASE : addr_base_t := (6 => '1', others => '0'); constant EXT_TRIGGER_BASE : addr_base_t := (7|6 => '1', others => '0'); constant CONTROL_BASE : addr_base_t := (5 => '1', others => '0'); constant STATUS_BASE : addr_base_t := (4 => '1', others => '0'); ---------------------
in „Modelsim Problem- bidirektionaler Bus“ · FPGA, VHDL & Co. ·
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Datei
project1.c
(ADC0_BASE, 1, 0, ADC_CTL_TS); // ADC_CTL_TS -> int Temperature Sensor ROM_ADCSequenceStepConfigure(ADC0_BASE, 1, 1, ADC_CTL_TS); ROM_ADCSequenceStepConfigure(ADC0_BASE, 1, 2, ADC_CTL_TS); // set Int Flag, last
in „Stellaris ARM Launchpad, ADC, UART, DHT11, RFM12, LCD“ · Projekte & Code ·
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Datei
ds18b20.c
string.h> #include <stdio.h> #include <stdlib.h> #define in 1 #define out 0 void delay_us(vu32 nCount) { u16 TIMCounter = nCount; TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; RCC_APB1PeriphClockCmd(RCC_APB1Periph_TIM4, ENABLE); TIM_TimeBaseStructure.TIM_Period = 1; //×Ô¶¯×°ÔØ TIM_TimeBaseStructure.TIM_Prescaler
in „STM32 DS1820“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f446.c
FLASH_CR_LOCK; clock_setup(); gpio_set_usart('A', 9); gpio_set_usart('A', 10); usart_setup(usart_base, 84000000); usart_putch(usart_base, 's'); usart_putch(usart_base, 't'); usart_putch(usart_base, 'm'); usart_putch(usart_base, '3'); usart_putch(usart_base, '2'); usart_putch(usart_base, '-'); usart_putch(usart_base, 'b'); usart_putch(usart_base, 'o'); usart_putch(usart_base, 'o'); usart_putch(usart_base, 't'); start_kernel(); return 0; } static void noop(void) { usart_putch(usart_base, 'N'); while (1) { } } static
in „Linux auf dem STM32 externes RAM“ · Mikrocontroller und Digitale Elektronik ·
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Datei
OSRAM_Phototransistors_II.lib.txt
******************* **** F351 SENS=100 at 880nm *** SFH 3010, SENS = 100 at 860 nm, lens = 1 * NO BASE .subckt SFH3010 Opt_In+ Opt_In- Coll Emit +params: SENS=100 resp=3.16e-6 lens=1 G001 Emit Base Opt_In+ Opt_In- {SENS*resp*lens} Q001 Coll Base Emit F351 .MODEL F351 NPN (IS=21E-15 BF=898 NF=1.02 VAF
in „Fototransistor mit LTSpice simulieren“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
); while(1) { } return 0; } void SysTickFunction(void) { GPIO_SetBits(GPIOA,GPIO_Pin_4); } void TIM16_IRQHandler(void) { } void init_Timer(void) { //Takt für Timer 16 einschalten RCC_APB1PeriphClockCmd(RCC_APB2Periph_TIM16, ENABLE); //Timer 16 konfigurieren TIM_TimeBaseInitTypeDef TIM_TimeBase_InitStructure
in „stm32 SysTickFunction wird nie ausgeführt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
rtl8309sb.pdf
0: Not 100Base-TX half duplex capable 4.6 10Base-T-FD RW 1: 10Base-TX full duplex capable 1 0: Not 10Base-TX full duplex capable 4.5 10Base-T RW 1: 10Base-TX half duplex capable 1 0: Not 10Base-TX half duplex capable
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PDF
8019AS.pdf
m Supports UTP, AUI & BNC auto-detect (RTL8019AS only) m Supports auto polarity correction for 10BaseT m Support 8 IRQ lines m Supports 16 I/O base address options ― and extra I/O address fully decode mode (RTL8019AS only) m Supports 16K, 32K, 64K and 16K-page mode access to BROM (up to 256 pages with
in „Webserver mit ISA Netzwerkkarte“ · Mikrocontroller und Digitale Elektronik ·
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Datei
sysinit.c
10.000 TimerBaseInitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TimerBaseInitStructure.TIM_RepetitionCounter = 1; TIM_TimeBaseInit(TIM2, &TimerBaseInitStructure); // Timer 2 einstellen /* Interrupt Handler anbinden
in „Timer Interrupt STM32F103“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MCP23017.PAS
--- define the input/output roles of GPIOA and GPIOB } { GPIOA: all input } Port[I2C_BASE + _IODIRA] := $FF; { GPIOB: all output } Port[I2C_BASE + _IODIRB] := $00; GotoXY(1,1); Write('===== MCP23017 16-port GPIO ====='); GotoXY(2,3); Write('N'); GotoXY (10,3); Write ( ' GPIO A GPIO B' );
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·