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Datei
usbStefan_Aenderung.c
COM Port betreiben */ #include "usb.h" /* For devices with 2 x 16 bits / word access schema (e.g. STM32L0, STM32F303xD and xE) */ //#define UMEM_SHIFT 0 //#define UMEM_FAKEWIDTH word /* For devices with 1 x 16 bits / word access schema (e.g. STM32F103, STM32F302, STM32F303xB and xC) */ #define UMEM_SHIFT 1 #define UMEM_FAKEWIDTH dword /* The name of the IRQ handler must match startup_stm32.s */ #define NAME_OF_USB_IRQ_HANDLER USB_LP_CAN_RX0_IRQHandler /* Take the number from the reference manual of your µC. */ #define USB_IRQ_NUMBER 20 // Enable trace messages #define ENABLE_TRACING
in „USB CDC von Stefan Frings und WS“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
/h2> */ /* Includes ------------------------------------------------------------------*/ #include "stm32f10x.h" #include "platform_config.h" /** @addtogroup STM32F10x_StdPeriph_Examples * @{ */ /** @addtogroup CAN_Normal * @{ */ /* Private typedef -----------------------------------------------------
in „CAN mit STM32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
STM32F10x_512k_64.ld
/* include the common STM32F103RE sub-script */ /* Common part of the linker scripts for STM32 devices*/ /* default stack sizes. These are used by the startup in order to allocate stacks for the different modes. */ __Stack_Size
in „STM32: Linkerscript löst Debugging-Problem aus?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
adc_test.c
/* ------------------------------------------------------- adc_test.c MCU : STM8S103F3 Takt : interner Takt 16 MHz 19.05.2016 R. Seelig ------------------------------------------------------ */ #include "stm8s.h" #define u_ref 331ul // gemessene Betriebsspg.: 3.31 V ( * 100 ) #
in „STM8 und ADC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
-----------------------------------------------*/ #include <stdlib.h> #include <stdio.h> #include "stm32f1xx_hal.h" #include "bme280.h" #include "u8g.h" #include "u8g_com_arm_stm32.h" /* USER CODE BEGIN Includes */ /* USER CODE END Includes */ /* Private variables ------------------------------------
in „STM32 F103 - I2C Probleme“ · Mikrocontroller und Digitale Elektronik ·
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Datei
irmpconfig.h
--------------------------------------------------------------- * Change hardware pin here for ARM STM32 *--------------------------------------------------------------------------------------------------------------------------------------------------- */ #elif defined (ARM_STM32) // use C13 as IR input on STM32 # define IRMP_PORT_LETTER C # define IRMP_BIT_NUMBER 13 /*------------------------------------------------------------------------------------------------------------------------------------------
in „IRMP-Problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
false 0 /* Includes ------------------------------------------------------------------*/ #include "stm32l4xx_hal.h" //#include "usb_device.h" TIM_HandleTypeDef htim2; uint8_t IN_BYTE, led_status, fft_status; volatile uint16_t timer_led, fft_timer; void SystemClock_Config(void); static void MX_GPIO_Init
in „STM32L4 Disco-Board CPU arbeitet nicht korrekt?!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
simple_server.c
fill_tcp_data_p(buf, plen, "</table>"); plen = fill_tcp_data_p(buf, plen, PSTR("<a style=color:red><h1>STM32F103 WEBSERVER<h1></a>")); plen = fill_tcp_data_p(buf, plen, "<table border>" ); plen = fill_tcp_data_p(buf, plen, "<thead>"); plen = fill_tcp_data_p(buf, plen, "<tr>"); plen = fill_tcp_data_p(buf,
in „Webpage Webserver“ · Mikrocontroller und Digitale Elektronik ·
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Ausschnitt aus einem STM32 Datenblatt mit Tabelle
STM32F303CBT6, Table 44. HSI oscillator characteristics, fHSI Frequency, TRIM HSI user trimming step, DuCY(HSI) Duty cycle, ACC_HSI Accuracy of the HSI oscillator, tsu(HSI) HSI oscillator startup time,
in „Müll in serieller Übertragung wenn Kondensator am Quarz berührt wird“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Olimex Development Board und Verpackung
OLIMEX DEVELOPMENT BOARDS ARM AVR MSP430 PIC OLIMEX www.olimex.com
in „[V] Evalboard Olimex STM32-P407“ · Markt · · Platinenfotos
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Schaltplan STM8Sx003 mit TM1637 und DS18B20
STM8Sx003 : 7-Segment Digitaluhr mit TM1637 Treiber und DS18B20 Temperatursensorauswertung DIG3 DIG2 DIG1 DIG0 com3 com2 com1 com0 a b c d e f g DP TM1637 key-scan 1 clk 18 dio 17 DS18B20 USB-mini connector
in „Uhr mit STM8Sxx3 und TM1637“ · Projekte & Code · · Schaltpläne
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PCB-Layout eines STM8S-Uhr-Controllers
DX1 b a DX2 dig1 8. dig2 dp e d dp c g G1 SEL + - TM1637 2.2k 2.2k swim /rst GND Vcc TxD RxD 4,7µ STM8S-Uhr NPN C LS GND PI - 0 0 4,7µ gnd dat vcc STM8
in „Uhr mit STM8Sxx3 und TM1637“ · Projekte & Code · · Layouts
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STM32F407 Discovery Board Leiterplatte
ST STM32F407 ARM Cortex-M4 stm32.st.com SWD PWR GND VDD PA0 bis PD15
in „[V] Diverse Evaluation-Boards - ca. 2014-2016“ · Markt · · Platinenfotos
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Rauschen oder Signalverlauf
STM_Ergebnisse_Gold_02.jpg
in „atomic force microscope (AFM) für Arme mit Arduino“ · Mikrocontroller und Digitale Elektronik · · Oszi-Bilder
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Software-Übersicht von MX Packs und Komponenten
Component Status Version Selection ITTIA_DB.I-CUBE-ITTIADB 8.8.0 Install Infineon_AIROC-Wi-Fi-Bluetooth-STM32 1.5.1 Wireless Connectivity 1.5.1 Bluetooth Wifi network-interface 1.5.1 LWIP wcm 1.5.1 WCM wifi-host-driver 1.5.1 wpa3-external-supplicant 1.5.1 whd-bsp-integration 1.5.1 connectivity-utilities 1.5.1
in „STM32 + Infineon WLAN Modul: Durchsatz?“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Ausschnitt einer Tabelle aus einem Datenblatt
USBPHYC Kernel hse_ker_ck 0(4) USBPHYCSEL 32 A hse_ker_ck / 2 1 pll3_q_ck 2 VREFBUF Bus pclk4 FMAX / 4 WWDG1 Bus pclk1 FMAX / 4 1. FMAX value depends on the device reference and can be found on the datasheet of the product.
in „STM32H7Sx: Maximale Frequenz?“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Vergleichstabelle der SPI-Features auf STM32-Geräten
Table 1. Main SPI features on STM32 devices Feature/Version 1.2.x 1.3.x 2.x(1) 3.x(1) STM32 series F1, F2, F4, L0, L1 C0, F0, F3, F7, G0, G4, L4+, L5, U0, WB, WL H7, MP1 H5, MP2, U3, U5, WBA Data size 8- or 16-bit 4- to 16-bit 4- to
in „Multichannel DAC mit SPi-DMA beschreiben“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Diagramm der Stabilitätscharakteristik bei kapazitiven Lasten
Figure 21. Stability behavior with capacitive loads 100 80 60 40 20 0 Cathode current (mA) 1E-10 1E-9 1E-8 1E-7 1E-6 1E-5 Capacitive load (Farad) VA=VREF VKA=5 V Instable Area VKA=12 V VKA=24 V
in „Transistor als Z-Dioden Ersatz“ · Analoge Elektronik und Schaltungstechnik · · Screenshots
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Datei
STM32_SEC_FLASH.ld
/* Common part of the linker scripts for STR71x devices in FLASH mode (that is, the FLASH is seen at 0) Copyright RAISONANCE 2005 You can use, modify and distribute thisfile freely, but without any waranty. */ /* Sections Definitions */ SECTIONS { /* for Cortex devices, the beginning of the startup code is stored in the .isr_vector section, which goes to FLASH */ .isr_vector : { . = ALIGN(4); KEEP(*(.isr_vector)) /* Startup code */ . = ALIGN(4); } >FLASH /* for some STRx devices, the beginning of the startup code is stored in the .flashtext section, which goes to FLASH */ .flashtext : { . = ALIGN
in „J-Link EDU + Eclipse + STM32-H103 Board debugging problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main_example_stm32.c
#include "irmp.h" #include "stdlib.h" #include <stdio.h> #define F_CPU 24000000 #ifndef F_CPU #error F_CPU unkown #endif void timer2ini(void); void TIM2_IRQHandler(void){ TIM_ClearITPendingBit(TIM2, TIM_IT_Update); irmp_ISR(); // call irmp ISR } int main(void) { timer2ini(); SystemInit(); irmp_init(); // initialize irmp IRMP_DATA irmp_data; while(1){ if(irmp_get_data (&irmp_data)){ //.... } } } void timer2ini(void){ TIM_TimeBaseInitTypeDef TIM_TimeBase_InitStructure; NVIC_InitTypeDef NVIC_InitStructure; RCC_APB1PeriphClockCmd(RCC_APB1Periph_TIM2, ENABLE); //Set Timer TIM2 TIM_TimeBase_InitStructure.TIM_ClockDivision
in „IRMP - Infrared Multi Protocol Decoder“ · Projekte & Code ·
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Datei
STM32F4.ld
OUTPUT_FORMAT ("elf32-littlearm", "elf32-bigarm", "elf32-littlearm") /* Internal Memory Map*/ MEMORY { rom (rx) : ORIGIN = 0x08000000, LENGTH = 0x00100000 ram (rwx) : ORIGIN = 0x20000000, LENGTH = 0x00020000 ccm (rwx) : ORIGIN = 0x10000000, LENGTH = 0x00010000 } _eram = 0x20000000 + 0x00020000; SECTIONS { .text : { KEEP(*(.isr_vector)) *(.text*) *(.rodata*) } > rom __etext = .; /* _sidata is used in coide startup code */ _sidata = __etext; .data : AT (__etext) { __data_start__ = .; /* _sdata is used in coide startup code */ _sdata = __data_start__; *(vtable) *(.data*) . = ALIGN(4); /* All data end
in „GCC STM32F4 -> Wie Variablen auf RAM bereiche verteilen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
STM32F100.ld
ENTRY(_reset) MEMORY { /* memory map of STM32F100 */ Flash (rx): ORIGIN = 0x08000000, LENGTH = 256K SRAM0 (rwx): ORIGIN = 0x20000000, LENGTH = 64K } _stack_end = ORIGIN(SRAM0) + LENGTH(SRAM0); SECTIONS { .text : { _text_section_start = .; KEEP
in „uint64_t auf STM32F103“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32_ub_uart.c
//-------------------------------------------------------------- // File : stm32_ub_uart.c // Datum : 28.07.2015 // Version : 1.5 // Autor : UB // EMail : mc-4u(@)t-online.de // Web : www.mikrocontroller-4u.de // CPU : STM32F4 // IDE : CooCox CoIDE 1.7.8 // GCC : 4.9 2015q2 //
in „STM32F4 USART“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOS4093STM_3_.pdf
HCF4093B QUAD 2 INPUT NAND SCHMITT TRIGGER ■ SCHMITT TRIGGER ACTION ON EACH INPUT WITH NO EXTERNAL COMPONENTS ■ HYSTERESIS VOLTAGE TYPICALLY 0.9V at V = 5V AND 2.3V at V = 10V DD DD ■ NOISE IMMUNITY GREATER THAN 50%OF VDD (Typ.) ■ NO LIMIT ON INPUT RISE AND FALL TIMES DIP SOP ■ QUIESCENT CURRENT SPECIFIED UP TO 20V ■ STANDARDIZED SYMMETRICAL OUTPUT ORDER CODES CHARACTERISTICS PACKAGE TUBE T & R ■ 5V, 10V AND 15V PARAMETRIC RATINGS ■ INPUT LEAKAGE CURRENT DIP HCF4093BEY I = 100nA (MAX) AT V = 18V T = 25°C SOP HCF4093BM1 HCF4093M013TR I DD A ■ 100% TESTED FOR QUIESCENT CURRENT ■ MEETS ALL REQUIREMENTS
in „Frequenz Spannungswandler“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
stm32f103.h
typedef enum {CAN_50KBPS, CAN_100KBPS, CAN_125KBPS, CAN_250KBPS, CAN_500KBPS, CAN_1000KBPS} BITRATE; #pragma once typedef enum {STANDARD_FORMAT = 0, EXTENDED_FORMAT} CAN_FORMAT; typedef enum {DATA_FRAME = 0, REMOTE_FRAME} CAN_FRAME; typedef struct { uint32_t id; /* 29 bit identifier */ uint8_t data[8]; /* Data field */ uint8_t len; /* Length of data field in bytes */ uint8_t ch; /* Object channel(Not use) */ uint8_t format; /* 0 - STANDARD, 1- EXTENDED IDENTIFIER */ uint8_t type; /* 0 - DATA FRAME, 1 - REMOTE FRAME */ } CAN_msg_t; bool CANInit(BITRATE bitrate, int remap); void CANReceive(CAN_msg_t
in „Arduino Blue Pill CAN bibliothek“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32_spi_eigen.c
// Programm zur initialisierung der SPI-Schnittstelle + Schreibvorgang #include "stm32_spi_eigen.h" GPIO_InitTypeDef GPIO_InitStructure; SPI_InitTypeDef SPI_InitStructure; void initNSS() { //RCC_AHBPeriphClockCmd(RCC_AHBPeriph_GPIOA,ENABLE); GPIO_InitStructure.GPIO_Pin = GPIO_Pin_6;
in „AD9833 mittels STM32F072 per SPI ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm12B_STM.c
/* Includes ------------------------------------------------------------------*/ #include "stm32f10x.h" #include "rfm12B.h" #include "systick.h" #include <stdint.h> #include <stdio.h> #include "Param.h" /* Private variables ---------------------------------------------------------*/ /* Private
in „ST32F103 ---> AVR RFM12B“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm12B_STM.h
RFM12_H_ /* Includes ------------------------------------------------------------------*/ #include "stm32f10x.h" extern unsigned char rxbuf[]; // Puffer für empfangene Daten extern unsigned char txbuf[]; // Puffer für zu sendende Daten /* Private typedef -----------------------------------------------
in „ST32F103 ---> AVR RFM12B“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm8s_spi.c
/** ****************************************************************************** * @file stm8s_spi.c * @author MCD Application Team * @version V2.2.0 * @date 30-September-2014 * @brief This file contains all the functions for the SPI peripheral. *********************************************
in „STM8 Standard Peripheral Library mit ST Visual Develop benutzen - Linker error“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f446.c
#include <stdlib.h> #include <stdint.h> #include "stm32f4_regs.h" #include "usart.h" #include "gpio.h" #define CONFIG_HSE_HZ 16000000 #define CONFIG_PLL_M 16 #define CONFIG_PLL_N 336 #define CONFIG_PLL_P 2 #define CONFIG_PLL_Q 7 #define PLLCLK_HZ (((CONFIG_HSE_HZ
in „Linux auf dem STM32 externes RAM“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32_ub_uart.c
//-------------------------------------------------------------- // File : stm32_ub_uart.c // Datum : 28.11.2013 // Version : 1.3 // Autor : UB // EMail : mc-4u(@)t-online.de // Web : www.mikrocontroller-4u.de // CPU : STM32F4 // IDE : CooCox CoIDE 1.7.0 // Module : GPIO, USART
in „STM32F030F4P6 und USART1“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f103.h
typedef enum {CAN_50KBPS, CAN_100KBPS, CAN_125KBPS, CAN_125KBPS32MHZ, CAN_125P1KBPS31P9MHZ,CAN_250KBPS, CAN_500KBPS, CAN_1000KBPS} BITRATE; typedef enum {STANDARD_FORMAT = 0, EXTENDED_FORMAT} CAN_FORMAT; typedef enum {DATA_FRAME = 0, REMOTE_FRAME} CAN_FRAME; typedef struct { uint32_t id; /* 29 bit identifier */ uint8_t data[8]; /* Data field */ uint8_t len; /* Length of data field in bytes */ uint8_t ch; /* Object channel(Not use) */ uint8_t format; /* 0 - STANDARD, 1- EXTENDED IDENTIFIER */ uint8_t type; /* 0 - DATA FRAME, 1 - REMOTE FRAME */ } CAN_msg_t; bool CANInit(BITRATE bitrate, int remap); void
in „Arduino Blue Pill & CAN mit SN65HVD230“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f103.h
#pragma once typedef enum {CAN_50KBPS, CAN_100KBPS, CAN_125KBPS, CAN_250KBPS, CAN_500KBPS, CAN_1000KBPS} BITRATE; typedef enum {STANDARD_FORMAT = 0, EXTENDED_FORMAT} CAN_FORMAT; typedef enum {DATA_FRAME = 0, REMOTE_FRAME} CAN_FRAME; typedef struct { uint32_t id; /* 29 bit identifier */ uint8_t data[8]; /* Data field */ uint8_t len; /* Length of data field in bytes */ uint8_t ch; /* Object channel(Not use) */ uint8_t format; /* 0 - STANDARD, 1- EXTENDED IDENTIFIER */ uint8_t type; /* 0 - DATA FRAME, 1 - REMOTE FRAME */ } CAN_msg_t; bool CANInit(BITRATE bitrate, int remap); void CANReceive(CAN_msg_t
in „Arduino Blue Pill & CAN mit SN65HVD230“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f103.h
typedef enum {CAN_50KBPS, CAN_100KBPS, CAN_125KBPS, CAN_250KBPS, CAN_500KBPS, CAN_1000KBPS} BITRATE; #pragma once typedef enum {STANDARD_FORMAT = 0, EXTENDED_FORMAT} CAN_FORMAT; typedef enum {DATA_FRAME = 0, REMOTE_FRAME} CAN_FRAME; typedef struct { uint32_t id; /* 29 bit identifier */ uint8_t data[8]; /* Data field */ uint8_t len; /* Length of data field in bytes */ uint8_t ch; /* Object channel(Not use) */ uint8_t format; /* 0 - STANDARD, 1- EXTENDED IDENTIFIER */ uint8_t type; /* 0 - DATA FRAME, 1 - REMOTE FRAME */ } CAN_msg_t; bool CANInit(BITRATE bitrate, int remap); void CANReceive(CAN_msg_t
in „Arduino Blue Pill & CAN mit SN65HVD230“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f103.h
typedef enum {CAN_50KBPS, CAN_100KBPS, CAN_125KBPS, CAN_125KBPS32MHZ, CAN_125P1KBPS31P9MHZ,CAN_250KBPS, CAN_500KBPS, CAN_1000KBPS} BITRATE; typedef enum {STANDARD_FORMAT = 0, EXTENDED_FORMAT} CAN_FORMAT; typedef enum {DATA_FRAME = 0, REMOTE_FRAME} CAN_FRAME; typedef struct { uint32_t id; /* 29 bit identifier */ uint8_t data[8]; /* Data field */ uint8_t len; /* Length of data field in bytes */ uint8_t ch; /* Object channel(Not use) */ uint8_t format; /* 0 - STANDARD, 1- EXTENDED IDENTIFIER */ uint8_t type; /* 0 - DATA FRAME, 1 - REMOTE FRAME */ } CAN_msg_t; bool CANInit(BITRATE bitrate, int remap); void
in „Arduino Blue Pill & CAN mit SN65HVD230“ · Mikrocontroller und Digitale Elektronik ·
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STM32_DS1307.pdf
on the left side: GND, SDA, SCL, VCC (U = 3,3V). For I2C and USB communication we use a Black Pill (STM32F103C8T6) We only write and read the seven yellow timekeeper registers 0x00 up to 0x06. “When you power up the module the clock halt (CH) bit in the seconds register will be set to a 1.” That means
in „I2C STM32F103“ · Mikrocontroller und Digitale Elektronik ·
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hy-stm32_schematic.pdf
PB12/SPI2_NSS/I2S2_WS/I2C2_SMBA/USART3_CK/TIM1_BKIN 51 PB12 1 C27 1 C28 0.1uF U3 22P 22P PL2303HX STM32F10xVxT6 PA4 1 8 3V3 2 2 PA6 2 CS VCC 7 3V3 GND 3V3 3 Q HOLD 6 PA5 所有 IO均已引出 4 W C 5 PA7 1 2 1 2 4 1 9 1 2 3 D IO GND D USB 接口 V E A C E E E B B D C B B D C A A A V N GND M25Pxx 3 P P P P P P P P P
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74HC164_STM.pdf
M54HC164 M74HC164 8 BIT SIPO SHIFT REGISTER . HIGH SPEED PD = 15 ns(TYP.) AT VCC= 5 V . LOWPOWER DISSIPATION CC = 4 A(MAX.) AT T A 25 ⋅C . OUTPUT DRIVE CAPABILITY 10 LSTTL LOADS . BALANCEDPROPAGATION DELAYS B1R F1R PLH = PHL (Plastic Package) (CeramicPackage) . SYMMETRICAL OUTPUT IMPEDANCE OL = IOH = 4 mA(MIN.) . VIGH= VISE= 28 % VY (MIN.) . WIDE OPERATING VOLTAGE RANGE M1R C1R VCC (OPR) = 2 V TO6 V (MicroPackage) (Chip Carrier) . PIN ANDFUNCTION COMPATIBLE WITH 54/74LS164 M54HC164F1RDER CODM74HC164M1R M74HC164B1R M74HC164C1R PIN CONNECTIONS(top view) DESCRIPTION The M54/74HC164 is a high speed
in „11110000 im Schieberegister rotieren lassen“ · Mikrocontroller und Digitale Elektronik ·
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stm32g4.pdf
stm32g4.pdf
in „stm32g431 st-link swclk swdio“ · Mikrocontroller und Digitale Elektronik ·
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PDF
stm32g4.pdf
stm32g4.pdf
in „stm32g431 st-link swclk swdio“ · Mikrocontroller und Digitale Elektronik ·
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PDF
stm32g4.pdf
stm32g4.pdf
in „stm32g431 st-link swclk swdio“ · Mikrocontroller und Digitale Elektronik ·
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Datei
stm32f7xx_hal_ltdc.c
**** */ /* Includes ------------------------------------------------------------------*/ #include "stm32f7xx_hal.h" /** @addtogroup STM32F7xx_HAL_Driver * @{ */ #if defined(STM32F756xx) || defined(STM32F746xx) /** @defgroup LTDC LTDC * @brief LTDC HAL module driver * @{ */ #ifdef HAL_LTDC_MODULE_ENABLED
in „STM32F7 Disco und das Display-->hard fault error“ · Mikrocontroller und Digitale Elektronik ·
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en.DM00428288.pdf
Getting started with the STEVAL-SPIN3202 evaluation board, advanced BLDC controller with embedded STM32 MCU Introduction The STEVAL-SPIN3202 3-phase brushless DC motor driver board is based on the STSPIN32F0A 3- phase controller with integrated STM32 MCU. It implements a single shunt resistor current
in „Problem mit ST-Board zur BLDC-Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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Werbebanner für STM32WBA6 Mikrocontroller
ST STM32WBA6 STM32 High performance and highly integrable wireless platform ST
in „STM32U3 / STM32WBA6 vorgestellt, neue Raspberry Pi Compute Modules und Steuerrechtliches“ · Mikrocontroller und Digitale Elektronik · · Sonstiges
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Werbebanner für STM32U3 Mikrocontroller
ST STM32U3 STM32 Best-in-class ultra-low-power MCUs increase energy efficiency and security
in „STM32U3 / STM32WBA6 vorgestellt, neue Raspberry Pi Compute Modules und Steuerrechtliches“ · Mikrocontroller und Digitale Elektronik · · Sonstiges
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Messestand mit STM32 Post-quantum crypto Display
Cybersecurity electronics Post-quantum crypto Software libraries Hash hardware accelerators STM32Trust framework STM32 onsemi ANALOG DEVICES
in „EmbeddedWorld 2025, Tag 1 – im Namen des Mikrocontrollers“ · Mikrocontroller und Digitale Elektronik · · Fotos
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STMicroelectronics Evaluation Boards in Kunststoffboxen
STMicroelectronics STM32G0B1 Memory expansion board for STM32 Nucleo X-NUCLEO-PGEEZ1 Evaluation Boards
in „EmbeddedWorld 2026, Tag 1 – AI fressen Elektronik auf“ · Mikrocontroller und Digitale Elektronik · · Fotos
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STM32F429I-DISC1 Discovery Board
ST MB1075C www.st.com/stm32f4-discovery STM32F429I-DISC1 USER RESET
in „[V] STM32F4 Discovery Board“ · Markt · · Platinenfotos
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Schaltplan eines STM32F030RE Mikrocontrollers
STM32F030RE_Power_supply, LP5912-3.50RV, USB_Micro, STM32F030RE, Scale_Circuit, HCP600IR, WAAGE
in „Bootloader Mode STM32F303“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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ST-LINK V2 Debugger mit Anschlusskabel
ST-LINK V2 STM8 & STM32 RST SWCLK SWDIO GND 3.3V SWIM GND 3.3V 5V 5V
in „NRF51 firmware flash mit ST-Link und openocd“ · Mikrocontroller und Digitale Elektronik · · Fotos