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Datei
gps_to_pc.c
#include "AT91SAM7S256.h" #include "usart.h" AT91PS_PIO u_pPioA = AT91C_BASE_PIOA; AT91PS_PMC u_pPMC = AT91C_BASE_PMC; AT91PS_USART u_pUSART0 = AT91C_BASE_US0; AT91PS_USART u_pUSART1 = AT91C_BASE_US1; AT91PS_PDC u_pPDC0 = AT91C_BASE_PDC_US0; AT91PS_PDC u_pPDC1 = AT91C_BASE_PDC_US1; AT91PS_MC u_pMC = AT91C_BASE_MC; //AT91PS_AIC u_pAic = AT91C_BASE_AIC; void InitUSART0(void) { u_pPioA->PIO_PDR = BIT0 | BIT1; //Disables the PIO from controlling the corresponding pin (enables peripheral control of the pin). u_pPioA
in „Data aus USART vom SAM7-EX256 lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
activity_recognition_from_accelerometer_data.pdf
for different activities Correlation is calculated between each pair of axes as the than that of base-level classifiers, base-level-classifiers are ratio of the covariance and the product of the standard devia- known to outperform meta-level-classifiers on several data tions uorr)xGy* ¿ uτ xxyy*. Correlation
in „Menschliche Bewegung detektieren (laufen von gehen unterscheiden)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
D130858D.PDF
speed switching t = 0.15 sec (typ.) at f = 64 kHz f H • Isolated package TO–3PFM Outline TO–3PFM 1. Base 2. Collector 1 3. Emitter 2 3 2SC5449 Absolute Maximum Ratings (Ta = 25°C) Item Symbol Ratings Unit Collector to base voltage V CBO 1500 V Collector to emitter voltage V 700 V CEO Emitter to base voltage
in „Transistor am Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAT14.pdf
Figure8.SaturationVoltagevs.CollectorCurrent Figure10.TotalNoisevs.CollectorCurrent 100 20 ) F18 ( E C16 ) A H I14 √ C n P ( 10µA A12 T C S 10 S10 N A E - D O 8 I - O R 6 N T C 1mA L 4 L O 2 C 1 9 0 1 1 10 100 1k 10k - 0 1 2 3 4 5 6 7 8 9 10 - 4 0 FREQUENCY (Hz) 0 COLLECTOR-TO-BASE VOLTAGE (V) 0 Figure9.NoiseVoltageDensityvs.Frequency Figure11.Collector-to-BaseCapacitancevs.Collector-to-BaseVoltage Rev.A | Page 6of 12 MAT14 ) 40 10 F ( E 35 N A I 30 1 A P ) A n C 25 ( T N A E T 20 R 0.1 S U U C S 15 C O I - R 10 0.01 T C E 5 L O C 0 0.001 0 1 2 3 4 5 6 7 8
in „Transistorarray mit 3 differentiellen (NPN) Pärchen gesucht.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
R1610C.PDF
R1610C has four 16-bit segment registers: CS, DS, SS, and ES. The segment registers contain the base addresses (starting location) of these memory segments, and they are immediately addressable for code (CS), data (DS
in „Hilfe JTAG für IP Webcam ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
t6963c.h
******************** /* ----- Definitions concerning LCD internal memory ------ */ #define glcd_G_BASE 0x0200 // base address of graphics memory #define glcd_T_BASE 0x0000 // base address of text memory #define glcd_BYTES_PER_ROW 30 // how many bytes per row on screen #define glcd_wr_high() glcd_wr_PORT
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PDF
Cypress_Semiconductor-CY3649-datasheet.pdf
user to read grammer down to lock the Adapter Base in its position. Pin1 of the Adapter Base should be at the top left position the contents of the PROM in the chip. The Edit menu also on the socket as shown in Figure 1 enables the user to search or
in „Bauteil identifiziert und Frage zum CY7C64013“ · Mikrocontroller und Digitale Elektronik ·
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Datei
can.c
*/ /* unlock ID1 and ID2 and adapt address --> next row */ *((volatile uint32_t *)(LPC_CANAF_RAM_BASE + address)) = (Id11_lo_1 << 16) | Id11_hi_1; address += 4; /* unlock ID3 and ID4 and adapt address --> next row */ *((volatile uint32_t *)(LPC_CANAF_RAM_BASE + address)) = (Id11_lo_2 << 16) | Id11_hi
in „sprintf mehrfach“ · Mikrocontroller und Digitale Elektronik ·
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PDF
QingKeV2_Processor_Manual.PDF
l RV32: 32-bit architecture, general-purpose register bit width of 32 bits l E: RV32I subset, only 16 general-purpose registers supported l C: Supports 16-bit compression instruction l XW: 16-bit compression instruction for self-extending byte and half-word operations Note: To further improve code density
in „CH32V006 und CH32V007 von WCH“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IL74.pdf
3°–9° .115 (2.92) .022 (.56) .018 (.46) .030 (.76 ) .012 (.30) .100 (2.54) Typ. .008 (.20) Anode 1 16 Emitter Cathode 2 15 Collector Cathode 3 14 Collector pin one 8 7 6 5 4 3 2 1 ID. Anode 4 13 Emitter .240 (6.10) Anode 5 12 Emitter .260 (6.60) Cathode 6 11 Collector 9 10 11 12 13 14 15 16 Cathode 7
in „Hilfe für Schaltung gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IL74_ILD74_ILQ74_SIE.pdf
3°–9° .115 (2.92) .022 (.56) .018 (.46) .030 (.76 ) .012 (.30) .100 (2.54) Typ. .008 (.20) Anode 1 16 Emitter Cathode 2 15 Collector Cathode 3 14 Collector pin one 8 7 6 5 4 3 2 1 ID. Anode 4 13 Emitter .240 (6.10) Anode 5 12 Emitter .260 (6.60) Cathode 6 11 Collector 9 10 11 12 13 14 15 16 Cathode 7
in „Eingänge über Optokoppler abfragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lnix-s-a0001298418-1.pdf
Flow control: RTS (Request to Send) output driven by DSTni’s built-in UART which has 256 KB of SRAM, 16 KB of boot ROM, and for connection to CTS of attached a MAC with integrated 10/100BASE-TX PHY. The device. CP1 6 XPort module communicates to the edge device • Programmable input/output: CP1 can through
in „[V] 1Stück gebrauchtes XPORT-EDGE_Seriell- LAN Modul (12€)“ · Markt ·
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PDF
lnix-s-a0001298418-1.pdf
Flow control: RTS (Request to Send) output driven by DSTni’s built-in UART which has 256 KB of SRAM, 16 KB of boot ROM, and for connection to CTS of attached a MAC with integrated 10/100BASE-TX PHY. The device. CP1 6 XPort module communicates to the edge device • Programmable input/output: CP1 can through
in „[V] 1Stück neues Lantronix_XPORT_Seriell- LAN Modul (18€)“ · Markt ·
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PDF
AN-339JP.pdf
diode, ifb breakdown voltage is above 10V so this method is more un- current is injected into the base of Q2, this transistor turns common. In either case, once the SCR is turned on a large on, and a collector current beta times its base current flowsm current will flow froCCVto ground, causing the CMOS cir- into the base of Q1. Q1 in turn amplifies this current by beta cuit to malfunction and possibly damage itself. and feeds it back into the base of Q2, where the current is I CMOS SCR problems can be minimized by proper
in „Induktionsspannung bei bistabilen Relais (1 Spule) direkt an Prozessor“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
DmxArray[4]; OCR2B = DmxArray[5]; } } // UART RX complete interrupt ISR(USART_RX_vect) { static uint16_t dmx_channel=0, dmx_base=0; uint8_t status, data; int16_t index; // read UART data, also clears interrupt flag status = UCSR0A; data = UDR0; if (status & (1<<FE0)) { // frame error if (data==0) { // break -> DMX Reset dmx_channel=0; dmx_base = /*(~PINB & 0xFF)+1*/0; // read dip switches which define DMX base address //if (~PIND & (1<<PD6)) dmx_base +=256; flag=1; // trigger update } else // rx error dmx_channel++; } else { index = dmx_channel-dmx_base
in „PWM per DMX regeln Atmega48“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Main.java
System.out.println("addr:"+Integer.toHexString(i)+" data:"+Integer.toHexString(data)); } } */ for(int i = 0; i < 16; i++) // rot { write_dac(i, 0xff,0x00,0x00); } for(int i = 16; i < 24; i++) // grün { write_dac(i, 0x00,0xFF,0x00); } for(int i = 24; i < 32; i++) // blau { write_dac(i, 0x00,0x00,0xff); } for(int i
in „VGA Grafikkarte an uC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
GearMotor.c
(TIM1); TIM_TimeBase_InitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBase_InitStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBase_InitStructure.TIM_Period = 999; TIM_TimeBase_InitStructure.TIM_Prescaler = 1799; TIM_TimeBaseInit(TIM1, &TIM_TimeBase_InitStructure); // TIM2 ein 500 Hz Signal TIM_Cmd(TIM2, DISABLE); TIM_TimeBase_InitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBase_InitStructure.TIM_CounterMode = TIM_CounterMode_Up
in „STM32F103 USART1 affects TIM1? TIM1 interrupt frequenz varying“ · Mikrocontroller und Digitale Elektronik ·
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PDF
intelhex.pdf
byte 2-bytes 1-byte 2-bytes 1-byte The 32-bit Extended Linear Address Record is used to specify bits 16-31 of the Linear Base Address (LBA), where bits 0-15 of the LBA are zero. Bits 16-31 of the LBA are referred to as the Upper Linear Base Address (ULBA). The absolute memory address of a content byte
in „Frage zu Intel-Hex-File, RecordType 02“ · Mikrocontroller und Digitale Elektronik ·
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Datei
init.c
void); //void USART2_Configuration(void); void ADC_Configuration(void); uint8_t i8ErrCode; TIM_TimeBaseInitTypeDef TIM_TimeBaseStructure; TIM_OCInitTypeDef TIM_OCInitStructure; vu16 CCR1_Val = 32768; // vu16 CCR2_Val = 16384; vu16 CCR3_Val = 8192; vu16 CCR4_Val = 4096; ErrorStatus HSEStartUpStatus; void
in „STM32 ADC Fehler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Motorola_tech_info.pdf
TIL111 8 16 0.4 0.4 16 2 5/5 2 10 100 30 1.4 16 4N27 10 10 10 0.5 50 2 1.2/1.3 10 10 100 30 1.5 10 4N28 10 10 10 0.5 50 2 1.2/1.3 10 10 100 30 1.5 10 4N38,A 20 20 1 1 20 4 1.6/2.2 10 10 100 80 1.5 10 4N25 20 10
in „Isolationsspannung zwischen Doppel-FETs in einem SO8-Gehäuse“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
twi.h
Redefinition of IRQ for F0 & L0 family */ #if defined(STM32F0xx) || defined(STM32L0xx) #if defined(I2C1_BASE) #define I2C1_EV_IRQn I2C1_IRQn #define I2C1_EV_IRQHandler I2C1_IRQHandler #endif // defined(I2C1_BASE) #if defined(I2C2_BASE) #define I2C2_EV_IRQn I2C2_IRQn #define I2C2_EV_IRQHandler I2C2_IRQHandler #endif // defined(I2C2_BASE) #if defined(I2C3_BASE) #define I2C3_EV_IRQn I2C3_IRQn #define I2C3_EV_IRQHandler I2C3_IRQHandler #endif // defined(I2C3_BASE) #if defined(I2C4_BASE) #define I2C4_EV_IRQn I2C4_IRQn #define I2C4_EV_IRQHandler
in „Wer nutzt das Nucleo-64 und kann mir“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Druck.pdf
0xE000ED00 Access Read-only Reset value 0x410CC210 Figure 6.1 shows the bit assignments of the CPUID Base Register. Figure 6.1. CPUID Base Register bit assignments 31 24 23 20 19 16 15 4 3 0 IMPLEMENTER VARIANT Constant PARTNO REVISION Table 6.2 lists the bit assignments of the CPUID Base Register. Table 6.2. CPUID Base Register bit assignments Bits Field Function [31:24] IMPLEMENTER Implementer code: 0x41 = ARM [23:20] VARIANT Implementation defined variant number: 0x0for r0p1 [19:16] Constant Reads as 0xC [15:4]
in „STM32F103C8T6 - Fälschung von ST bestätigt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Startup.lst
line 85 in file Startup.s Uses At line 447 in file Startup.s At line 449 in file Startup.s __heap_base 00000000 Symbol: __heap_base Definitions At line 84 in file Startup.s Uses None Comment: __heap_base unused __heap_limit 00000000 Symbol: __heap_limit Definitions At line 86 in file Startup.s Uses None
in „LPC2294 Boot Loader Mode“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS_K4B4G1646D-BC_I_P_Rev102.pdf
size tFAW 40 - 37.5 - 30 - ns e Four activate window for 2KB page size tFAW 50 - 50 - 45 - ns e tIS(base) 200 - 125 - 65 - ps b,16 Command and Address setup time to CK, CK referenced to AC175 V (AC) / V (AC) levels IH IL tIS(base) 200+150 - 125+150 - 65+125 - ps b,16,27 AC150 Command and Address hold time
in „DDR3 RAM Datenleitung beliebig anschliessen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PicoMOD-Startintf_Hardware_eng_Rev100.pdf
......................26 4.16.2 J16 SDCard Voltage........................................................................................26 4.16.3 J30 Bootsel......................................................................
in „PicoMOD1 - 400 MHz 32MB Ram SBC für 9,95 von Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2222_2222A.pdf
(sat) Vdc ( I e '50 mAdc, IS = 15 mAde) All Types 0.4 (IC = 500 mAde, IS = 50 mAde) AllTypes 1.6 Base_Emitter Saturation Voltage· 13,16 V BE (sat) Vde (Ie.: 150 mAde, IS = 15 mAde) AllTypes 1.3 (Ie " 500 mAde, IS = 50 mAde) All Types 2.6 DC Forward Current Transfer Ratio hFE (Ic " 0.1 mAde, VCE " 10
in „Alternative/Vergleichstyp zu 2N5109“ · HF, Funk und Felder ·
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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 „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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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 „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Hexfrmt.pdf
byte 2-bytes 1-byte 2-bytes 1-byte The 32-bit Extended Linear Address Record is used to specify bits 16-31 of the Linear Base Address (LBA), where bits 0-15 of the LBA are zero. Bits 16-31 of the LBA are referred to as the Upper Linear Base Address (ULBA). The absolute memory address of a content byte
in „ARM SAM7 Flash Speicher“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Intel-Hexfrmt.pdf
byte 2-bytes 1-byte 2-bytes 1-byte The 32-bit Extended Linear Address Record is used to specify bits 16-31 of the Linear Base Address (LBA), where bits 0-15 of the LBA are zero. Bits 16-31 of the LBA are referred to as the Upper Linear Base Address (ULBA). The absolute memory address of a content byte
in „AVR Studio .eep Dateiformat“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Intel_Hex-Format.pdf
byte 2-bytes 1-byte 2-bytes 1-byte The 32-bit Extended Linear Address Record is used to specify bits 16-31 of the Linear Base Address (LBA), where bits 0-15 of the LBA are zero. Bits 16-31 of the LBA are referred to as the Upper Linear Base Address (ULBA). The absolute memory address of a content byte
in „Frage zu Intel-Hex-File, RecordType 02“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Hexfrmt.pdf
byte 2-bytes 1-byte 2-bytes 1-byte The 32-bit Extended Linear Address Record is used to specify bits 16-31 of the Linear Base Address (LBA), where bits 0-15 of the LBA are zero. Bits 16-31 of the LBA are referred to as the Upper Linear Base Address (ULBA). The absolute memory address of a content byte
in „Memory-Anzeige vor debugging auf 0 setzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Hexfrmt.pdf
byte 2-bytes 1-byte 2-bytes 1-byte The 32-bit Extended Linear Address Record is used to specify bits 16-31 of the Linear Base Address (LBA), where bits 0-15 of the LBA are zero. Bits 16-31 of the LBA are referred to as the Upper Linear Base Address (ULBA). The absolute memory address of a content byte
in „[Newbie] PonyProg-Rätsel bzgl. der Hex-Anzeige“ · Mikrocontroller und Digitale Elektronik ·
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Datei
start_session.php
at the end // Example (UNIX/Linux): "/part-db" // Example (Windows): "/part-db" if (isset($config['BASE_RELATIVE'])) define('BASE_RELATIVE', $config['BASE_RELATIVE']); elseif (mb_strpos(BASE, DOCUMENT_ROOT) === false) // workaround for STRATO servers, see german post on uC.net: define('BASE_RELATIVE', '.'); // http://www.mikrocontroller.net/topic/269289#3152928 else define('BASE_RELATIVE', str_replace(DOCUMENT_ROOT, '', BASE)); // for debugging uncomment these lines: //print 'BASE = "'.BASE.'"<br>'; //print 'DOCUMENT_ROOT = "'.DOCUMENT_ROOT.'"<br>'; //print 'BASE_RELATIVE =
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PDF
Transistor_Dual_PushPull_ZXTC2045E6.pdf
10mA, IB= 0 I Emitter-Base Breakdown Voltage BV EBO 7 8.3 V IE= 100µA, C = 0 T A Collector Cut-Off Current ICBO <1 20 nA V CB= 32V Collector Cut-Off Current ICES/R <1 20 nA V CE= 16V, R≤ 1kΩ M Emitter Cut-Off Current I
in „Push/Pull in spannungsgeregelter Stromquelle / Frage zur Auslegung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datasheet_FLEX003__v1_03.07.2008_.pdf
Pin 10 IC2/RD9 Pin 11 OC1/RD0 Pin 12 IC4/RD11 Pin 13 OC3/RD2 Pin 14 OC2/RD1 Pin 15 IC5/RD12 Pin 16 OC4/RD3 Pin 17 OC5/CN13/RD4 Pin 18 IC6/CN19/RD13 Figure 2: Piggybacking FLEX Boards Pin 19 OC7/CN15/RD6 Pin 20 OC6/CN14/RD5 Pin 21 C1RX/RF0 Pin 22 OC8/UPDNCN16/RD7 Pin 23 C2TX/RG1 Pin 24 C1TX/RF1 Pin
in „LED blinken lassen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
t6963c.txt
******************* /* ----- Definitions concerning LCD internal memory ------ */ #define glcd1_G_BASE 0x0200 // base address of graphics memory #define glcd1_T_BASE 0x0000 // base address of text memory #define glcd1_BYTES_PER_ROW 30 // how many bytes per row on screen #define glcd1_wr_high() glcd1_
in „Halbkreisformel verstehe ich nicht!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
t6963c.h
******************* /* ----- Definitions concerning LCD internal memory ------ */ #define glcd1_G_BASE 0x0200 // base address of graphics memory #define glcd1_T_BASE 0x0000 // base address of text memory #define glcd1_BYTES_PER_ROW 30 // how many bytes per row on screen #define glcd1_wr_high() glcd1_
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PDF
DS_K4B8G1646Q-MY_Rev10.pdf
37.5 - 30 - 30 - ns e Four activate window for 2KB page size tFAW 50 - 50 - 45 - 40 - ns e 1.35V tIS(base) 215 - 140 - 80 - 60 - ps b,16 AC160 tIS(base) 365 - 290 - 205 - 185 - ps b,16,27 Command and Address setup time to CK, CK refer- AC135 enced to V IHC) / V ILC) levels 1.5V tIS(base) 200 - 125 - 65 - 45 - ps b,16 AC175 tIS(base) AC150 350 - 275 - 190 - 170 - ps b,16,27 1.35V tIH(base) DC90 285 - 210 - 150 - 130 - ps b,16 Command and Address hold time from CK, CK refer- enced to V IHDC) / VILDC) levels 1.5V tIH
in „Orange Pi - 15$ Quadcore SBC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
K4B4G1646Q-Samsung.pdf
37.5 - 30 - 30 - ns e Four activate window for 2KB page size tFAW 50 - 50 - 45 - 40 - ns e 1.35V tIS(base) 215 - 140 - 80 - 60 - ps b,16 AC160 tIS(base) 365 - 290 - 205 - 185 - ps b,16,27 Command and Address setup time to CK, CK refer- AC135 enced to V IHAC) / VILAC) levels 1.5V tIS(base) 200 - 125 - 65 - 45 - ps b,16 AC175 tIS(base) AC150 350 - 275 - 190 - 170 - ps b,16,27 1.35V tIH(base) DC90 285 - 210 - 150 - 130 - ps b,16 Command and Address hold time from CK, CK refer- enced to V IHDC) / VILDC) levels 1.5V tIH
in „Orange Pi - 15$ Quadcore SBC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Build_started_28.10.2008_at_15_33_50.txt
DF_CPU=14745600UL -Os -funsigned-char -funsigned-bitfields -fpack-struct -fshort-enums -MD -MP -MT base64.o -MF dep/base64.o.d -c ../base64.c avr-gcc.exe -I"D:\www\atmel\webserver\Wil\avr-webserver101\avr-webserver\." -mmcu=atmega644p -Wall -gdwarf-2 -std=gnu99 -DF_CPU=14745600UL -Os -funsigned-char -
in „AVR Studio: plugin-Error“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Example_2802xEPwmDeadBand.c
defined end // Initialize all the handles needed for this application myClk = CLK_init((void *)CLK_BASE_ADDR, sizeof(CLK_Obj)); myCpu = CPU_init((void *)NULL, sizeof(CPU_Obj)); myFlash = FLASH_init((void *)FLASH_BASE_ADDR, sizeof(FLASH_Obj)); myGpio = GPIO_init((void *)GPIO_BASE_ADDR, sizeof(GPIO_Obj)); myPie = PIE_init((void *)PIE_BASE_ADDR, sizeof(PIE_Obj)); myPll = PLL_init((void *)PLL_BASE_ADDR, sizeof(PLL_Obj)); myPwm1 = PWM_init((void *)PWM_ePWM1_BASE_ADDR, sizeof(PWM_Obj)); myPwm2 = PWM_init((void *)PWM_ePWM2_BASE_ADDR, sizeof
in „Sine-Lookup Tabelle. Wie macht man es richtig?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
pollin-pnx8950_pci-and-network-support.diff
size code */ if (mem_size >= 128) @@ -84,45 +87,46 @@ pci_mem_code = IPA051_PCI_SETUP__BASExx_SIZ_16M; /* Set PCI_XIO registers */ - writel(PCIMEM_BASE, IPA051_PCI_BASE1_LO); - writel(PCIMEM_BASE + PCIMEM_SIZE + 1, IPA051_PCI_BASE1_HI); - writel(PCIIO_BASE, IPA051_PCI_BASE2_LO); - writel(PCIIO_BASE + PCIIO_SIZE + 1, IPA051_PCI_BASE2_HI); + writel(PCIMEM_BASE, IPA051 + IPA051_PCI_BASE1_LO); + writel(PCIMEM_BASE + PCIMEM_SIZE + 1, IPA051 + IPA051_PCI_BASE1_HI); + writel(PCIIO_BASE, IPA051 + IPA051_PCI_BASE2_LO); + writel(PCIIO_BASE
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mci.c
AT91F_MCI_CfgPIO(); AT91F_MCI_CfgPMC(); // Peripheral Clock Enable AT91F_PMC_EnablePeriphClock(AT91C_BASE_PMC, AT91C_ID_MCI); // Reset MCI AT91F_MCI_SW_Reset(AT91C_BASE_MCI); // Disable MCI AT91F_MCI_Disable(AT91C_BASE_MCI); // Alle Interrupt deaktivieren AT91C_BASE_MCI->MCI_IDR = 0xFFFFFFFF; // MCI konfigurieren
in „MMC/SD Karte geben kein Antwort von sich (ARM)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet.pdf
bytes are shown in the following table. Table 9.2 SPI Address Map ADDRESS BIT FUNCTION DESCRIPTION Base+0 7:0 CMD Commands or instructions of each SPI device 7:4 MODE Mode execution. Please see the Table 9.3 for the Base+1 details of each mode. 3:0 ADD2 Address [19:16] Base+2 7:0 ADD1 Address [15:8] Base
in „(Windows/Winbond) CPU Temperatur auslesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
HCT595.c
(GPIO_PartialRemap_TIM1,ENABLE); /* Der Timer clock'ed mit 36Mhz, einstellen auf 200Hz */ TIM_TimeBaseStructInit(&TimerBaseInitStructure); TimerBaseInitStructure.TIM_CounterMode = TIM_CounterMode_Up; TimerBaseInitStructure.TIM_Prescaler = tim_presc; TimerBaseInitStructure.TIM_Period = DCValue; TimerBaseInitStructure.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBaseInit(TIM1, &TimerBaseInitStructure); /* Compare Register 1 konfigurieren (Display) */ TimerOCInitStructure.TIM_OCMode = TIM_OCMode_PWM1; TimerOCInitStructure.TIM_OutputState = TIM_OutputState_Enable;
in „EmBitz Debugging Problem mit STM32F103“ · Mikrocontroller und Digitale Elektronik ·
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Datei
appkernel_rxe.ld
that they are on 8-byte boundaries. */ /* * Memory definitions. */ MEMORY { header : ORIGIN = 2M - 16, LENGTH = 16 vector_ram : ORIGIN = 2M, LENGTH = 64 ram : ORIGIN = 2M + 64, LENGTH = 64K - 64 + 21 } ROM_BASE = 1M; ROM_SIZE = 256k; RAM_BASE = 2M; RAM_SIZE = 64k; SECTIONS { /* The header */ .rxe_header : { KEEP(base/rxe_header.o (.rxe_header)); } > header /* * Interrupt vectors. These are loaded to the bottom of memory at * boot time. */ .vectors : { KEEP(base/vectors.o (*.text *.text.*)) } > vector_ram /* loader
in „How to generate debug symbols for custom linker file“ · µC & Digital Electronics ·
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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 „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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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 „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds18b20.h
GPIOC_IDR_OFFSET // GPIOC IDR offset #define GPIOx_PIN 0 #define DS18B20_PIN *(vu32 *)(PERIPH_BB_BASE + (GPIOx_ODR_OFFSET * 32) + (GPIOx_PIN * 4)) // PC 12 #define DS18B20_PIN_IN *(vu32 *)(PERIPH_BB_BASE + (GPIOx_IDR_OFFSET * 32) + (GPIOx_PIN * 4)) // PC 12 #define NOP() asm("nop"); void us_Delay(u16 us); void ms_Delay(u16 count); //????? u8 DS18B20_Reset(void); u8 DS18B20_Read_Byte(void); //???? void DS18B20_Write_Byte(u8 dat); //????? void Temperature_Convert(void); u16 Get_Temperature(void); u16 DS18B20_Read_ROM(void
in „STM32 DS1820“ · Mikrocontroller und Digitale Elektronik ·