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GM76C256CLLFW.pdf
/CS and a low /WE. A write begins at the latest transition among /CS going low and /WE going low: A write ends at the earliest transition among /CS going high and /WE going high. t WP is measured from the begi nning
in „[S] mind. 64kx8 70ns static SRAM 5V/3V(Battery Backup) in SODIP“ · Markt ·
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Datei
decoder11n.ino
to have some durations on high and low // //////////////////////////////////////////////////////////// if (filteredstate != filteredstatebefore){ if (filteredstate == HIGH){// Low-->High starttimehigh = millis(); lowduration = starttimehigh
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PDF
DOGM162_DOGM163_4Bit_SPI_3V3_5V0_Initialize.pdf
--> High = DOGM162 Low = DOGM163 ; | ; |------------------------> Low = Parameter selection by hardware ; High = Parameters by file "Select.inc" in R16 , PINC cpi R16 , 0b00111110 ; DOGM162 4Bit 3.3V breq Par0001
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Datei
i2c_slave.asm
r16 ;.def i2c_state = r17 ;.def i2c_SREG = r8 .equ i2c_slaveAddr = 0x52 ;macros .macro i2c_waitSCL_low i2c_waitSCL_low0: sbic i2c_pin, i2c_bitSCL rjmp i2c_waitSCL_low0 .endm .macro i2c_waitSCL_high i2c_waitSCL_high0: sbis i2c_pin, i2c_bitSCL rjmp i2c_waitSCL_high0 .endm .macro i2c_readAddress ; reads
in „ATTiny12 mit 3xPWM und Slave I2C machbar?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCA8574-rev03.pdf
Semiconductors PCA8574; PCA8574A 2 Remote 8-bit I/O expander for I C-bus with interrupt V DD input HIGH weak 100 µA pull-up with current source (inactive when output HIGH resistor tDDVor output LOW) external drive HIGH accelerator P port pull-up P7 - P0 pull-down with resistor tSSVor output LOW external
in „NXP PCA8574 hat Phänomen mit 2 Adressen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Code_Alarmanlage.txt
); //pinMode(com2, OUTPUT); delay(1000); pinMode(SchalterPin, INPUT); // digitalWrite(SchalterPin, LOW); // pinMode(SchalterSIM, OUTPUT); pinMode(ledPin, OUTPUT); digitalWrite(ledPin, HIGH); delay (1000); digitalWrite(ledPin, LOW); delay (1000); digitalWrite(ledPin, HIGH); delay (10000); // Zeit die benötigt wird um die Garage zu verschließen digitalWrite(ledPin, LOW); pinMode(interruptPin,INPUT);// //digitalWrite(interruptPin, HIGH);Hardware PullUP auf Platine; Ein Hochsetzen auf HIGH ist nicht notwendig delay (1000); // Serial.println("Gehe Schlafen"); delay (
in „Atmega328P SIM900 Spannungsversorgung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet.pdf
Note: This location stores the number of counts of the internal clock per revolution. 2Bh CPUVCORE High Limit 2Ch CPUVCORE Low Limit 2Dh VIN0 High Limit 2Eh VIN0 Low Limit 2Fh AVCC High Limit 30h AVCC Low Limit 31h 3VCC High Limit 32h 3VCC Low Limit 33h VIN1 High Limit 34h VIN1 Low Limit 35h VIN2 High
in „(Windows/Winbond) CPU Temperatur auslesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
MODULE_ON() PORTD |= (1<<MODULE_POWER) #define MODULE_OFF() PORTD &= ~(1<<MODULE_POWER) #define nSEL_HIGH() PORTD |= (1<<nSEL) #define nSEL_LOW() PORTD &= ~(1<<nSEL) #define nIRQ_HIGH() PINB&(1<<nIRQ) #define nIRQ_LOW() !(PINB&(1<<nIRQ)) #define nFFS_HIGH() PORTD |= (1<<nFFS) #define nFFS_LOW() PORTD &=
in „RF01 und RF02 433 MHz Funkmodul“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Stepper.cpp
digitalWrite(motor_pin_2, LOW); digitalWrite(motor_pin_3, HIGH); digitalWrite(motor_pin_4, LOW); break; case 1: // 0110 digitalWrite(motor_pin_1, LOW); digitalWrite(motor_pin_2, HIGH); digitalWrite(motor_pin_3, HIGH); digitalWrite(motor_pin_4, LOW); break; case 2: //0101 digitalWrite(motor_pin_1, LOW); digitalWrite(motor_pin_2, HIGH); digitalWrite(motor_pin_3, LOW); digitalWrite(motor_pin_4, HIGH); break; case 3: //1001 digitalWrite(motor_pin
in „Frage zu Arduino Library?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mc.ino
raspiPwrState = digitalRead(raspiPwr); // check if the pushbutton is pressed. // if it is, the buttonState is LOW : if (buttonState == LOW) { delay(500); // turn raspi on: if (raspiPwrState == LOW) { digitalWrite(ledPin1, LOW); digitalWrite(ledPin2, HIGH); digitalWrite(raspi, HIGH); digitalWrite(raspiPwr, HIGH); } // turn Raspi off: if (raspiPwrState == HIGH) { digitalWrite(ledPin1, HIGH); digitalWrite(ledPin2, LOW); digitalWrite(raspi, LOW); delay(20000); // time to shutdown the raspberrypi digitalWrite(raspi, HIGH); digitalWrite(raspiPwr, LOW); } } //
in „Raspberry Pi 3 Schalter“ · Mikrocontroller und Digitale Elektronik ·
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Datei
year_transform.asm
Subtraktion ohne Bereichsunterschreitung, wird r16, die "1000er" erhöht year_transform_02: subi r18, Low(1000) ; ziehe den Low-Teil von 1000 vom Low-Teil des Eingangswertes ab sbci r19, High(1000) ; ziehe den High-Teil von 1000 inkl. Übertrag vom High-Teil des Eingangswertes ab brcc year_transform_01 subi r18, Low(-1000) ; addiere zum Low-Teil den zu viel abgezogenen Low-Teil von 1000 sbci r19, High(-1000) ; addiere zum High-Teil den zu viel abgezogenen High-Teil von 1000 rjmp year_transform_04 ; Die Hunderterstelle
in „Subroutine 4stellige Zahl in 2 2stelligen Zahlen wandeln. was ist falsch?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
year_transform.asm
Subtraktion ohne Bereichsunterschreitung, wird r16, die "1000er" erhöht year_transform_02: subi r18, Low(1000) ; ziehe den Low-Teil von 1000 vom Low-Teil des Eingangswertes ab sbci r19, High(1000) ; ziehe den High-Teil von 1000 inkl. Übertrag vom High-Teil des Eingangswertes ab brcc year_transform_01 subi r18, Low(-1000) ; addiere zum Low-Teil den zu viel abgezogenen Low-Teil von 1000 sbci r19, High(-1000) ; addiere zum High-Teil den zu viel abgezogenen High-Teil von 1000 rjmp year_transform_04 ; Die Hunderterstelle
in „Subroutine 4stellige Zahl in 2 2stelligen Zahlen wandeln. was ist falsch?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
******************************************************************/ bool output(volatile uint8_t *high_port, volatile uint8_t *low_port, uint16_t value) { uint8_t low_bit_cnt;010101 uint8_t high_bit_cnt; low_bit_cnt = bit_cnt(LOW_PORT_MASK); high_bit_cnt = bit_cnt(HIGH_PORT_MASK); if (bit_cnt(value) > (low_bit_cnt + high_bit_cnt)) return false; value_to_led(low_port, (value & 0xFF)); value = (value >> low_bit_cnt); value_to_led(high_port, (value & 0xFF)); return true; } /******************************
in „Bitweise Darstellung mit 10 LEDs“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT25080A.pdf
0V to CC –3.0 3.0 µA IOL Output Leakage VIN 0V to V CC, TAC= 0°C to 70°C –3.0 3.0 µA V IL1) Input Low-voltage –0.6 VCC x 0.3 V V IH1) Input High-voltage VCC x 0.7 VCC + 0.5 V V OL1 Output Low-voltage IOL= 3.0 mA 0.4 V 4.5V ≤ VCC ≤ 5.5V V OH1 Output High-voltage IOH = −1.6 mA VCC - 0.8 V V OL2 Output
in „Atmel 25080A - SPI - AT89C51RB2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tmp275.pdf
the state of the SDA line, the TMP275 latches the status of the address pins and from HIGH to LOW, while the SCL line is HIGH, defines a START condition. Each data transfer is initiated with a resets the internal registers to the power-up values. START condition. HIGH-SPEED MODE In order
in „Abmessungen Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCF51QE128-1.pdf
— 1 — Series resistor — 2 Low range, low power (RANGE = 0, HGO = 0) — — — Low range, high gain (RANGE = 0, HGO = 1) — 0 — High range, low power (RANGE = 1, HGO = 0) — 100 — 4 D High range, high gain (RANGE = 1, HGO = 1) RS kΩ ≥ 8 MHz — 0 0 4 MHz — 0 10 1 MHz — 0 20 4 Crystal start-up time Low range, low power CSTL — 200 — 5 C Low range, high power — 400 — t ms High range, low power CSTH — 5 — High range, high power — 15 — Square wave input clock frequency (EREFS = 0, ERCLKEN = 1) 6 D FEE
in „Eingangsspannungsbereich ADC Coldfire“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MT8880.pdf
except for the performance of the receiver section, Description which is enhanced to accept and reject lower signal levels. The MT8880C/C-1 is a monolithic DTMF transceiver with call progress filter. It is fabricated in Mitel’s ISO -CMOS technology, which provides low power dissipation and high reliability
in „Ansteuerung µC->MT8880“ · Mikrocontroller und Digitale Elektronik ·
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Datei
sprintf_cast_lcd.txt
wegen sprintf const unsigned long int RCAL_Value = 200000; . . . int main(void) { unsigned char RealHigh; unsigned char RealLow; unsigned char ImagHigh; unsigned char ImagLow; unsigned int I=0; unsigned int R=0; float Imp; float Mag; float Gain; char a[20]; // used in LCD-ROutine RealHigh = i2c_readNak(); // Read Real Data Highbyte from 0x95 . RealLow = i2c_readNak(); // Read Real Data Lowbyte from 0x95 . ImagHigh = i2c_readNak(); // Read Imag Data Highbyte from 0x95 . ImagLow = i2c_readNak(); // Read Imag Data Lowbyte from 0x95 R = (uint16_t)RealHigh
in „mega8, sprintf LCD und kein durchblick bei datentypen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS1820-DS1820S.pdf
the bus high. To generate a Write 0 time slot, after pulling the 1-wire bus low, the bus master must continue to hold the bus low for the duration of the time slot (at least 60 µs). The DS18S20 samples the 1-wire
in „1-Wire & Pull-UP“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ds1820.pdf
the bus high. To generate a Write 0 time slot, after pulling the 1-Wire bus low, the bus master must continue to hold the bus low for the duration of the time slot (at least 60ms). The DS18S20 samples the 1-Wire
in „Thermometer mit ds18s20 und LED Annzeige“ · Projekte & Code ·
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PDF
UCC27210.pdf
UCC27210 UCC27211 www.ti.com SLUSAT7 –NOVEMBER 2011 120-V Boot, 4-A Peak, High Frequency High-Side/Low-Side Driver Check for Samples: UCC27210, UCC27211 FEATURES APPLICATIONS • Drives Two N-Channel MOSFETs in • Power Supplies for Telecom, Datacom, and High-Side/Low-Side Configuration
in „"Pseudo-CMOS Input" oder "TTL Input"“ · Mikrocontroller und Digitale Elektronik ·
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Datei
FT800_commands.c
(CMD_MEDIAFIFO); spi_transmit((uint8_t)(ptr)); // Send data low byte spi_transmit((uint8_t)(ptr >> 8)); spi_transmit((uint8_t)(ptr >> 16)); spi_transmit((uint8_t)(ptr >> 24)); // Send data high byte spi_transmit((uint8_t)(size)); // Send data low byte spi_transmit
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Datei
CH552.H
bit timer using TF1 and controlled by TR1, timer1 run enable if it is not mode 3 sfr TL0 = 0x8A; // low byte of timer 0 count sfr TL1 = 0x8B; // low byte of timer 1 count sfr TH0 = 0x8C; // high byte of timer 0 count sfr TH1 = 0x8D; // high byte of timer 1 count /* UART0 Registers */ sfr SCON = 0x98;
in „uC für 0,20€ CH552 / CH554 von WCH Billig Micro mit USB Funktion, Chip vorstellung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UM3758-120A.pdf
Conditions Operating voltage VDD 3.0 12 V Operating current - lop 1.2 mA Schmitt Trigger input Vsh 6 - V HIGH level - - Vsl 2 V LOW Other pins input Vih 8.5 9 V HIGH level Vil - 0 0.5 v LOW Output pin logic Voh 8.5 9 V HIGH level Vol 0 1 v LOW DATA output current V DD = 12V HIGH level lohd 9 mA Voh = 6V LOW
in „Funksteuerung/Fernsteuerung Bitte um Hilfe“ · HF, Funk und Felder ·
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Datei
vga.asm
ldi tmp0, 0x04 out ADMUX, tmp0 ldi tmp0, 0x86 out ADCSRA, tmp0 ldi XL, low(SRAM_START+13*columns) ldi XH, high(SRAM_START+13*columns) ldi ZL, low(table1*2) ldi ZH, high(table1*2) adc0: lpm tmp0, Z+ st X+, tmp0 and tmp0, tmp0 brne adc0 ldi YL, low(sram) ldi YH, high(sram) clr ctr0 ; clear counter clr ctr1 ldi tmp1, high(hscan) ldi tmp0, low(hscan) out ICR1H, tmp1 out ICR1L, tmp0 ldi tmp1, high(hsync) ldi tmp0, low(hsync) out OCR1AH, tmp1 out OCR1AL, tmp0 ldi tmp1, high(hsync+hbporch-tisr) ldi tmp0, low(hsync+hbporch-tisr
in „Atmega8 VGA - SPI mit 16 statt 18 Takten pro Zeichen“ · Projekte & Code ·
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PDF
LM2595.pdf
is suddenly applied, and of course, ratings may be needed to provide the low ESR values re- higher input voltages produce higher inrush currents. Sev- quired for low output ripple voltage. eral capacitor manufacturers do a 100 % surge current test- The output capacitor for many
in „Schaltregler LM2595“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Synth.asm
include "tn2313def.inc" ; Define device ATtiny2313 .list .macro WriteSram ; (register, const) ldi XL, low(SRAM_START) ldi XH, high(SRAM_START) ldi rmp, 0 j0: cpi rmp, @1 breq j1 st X+, @0 inc rmp rjmp j0 j1: ldi XL, low(SRAM_START) ldi XH, high(SRAM_START) .endmacro .macro LongJump ; (rstate, const ,label
in „Attiny2313 Timer16 Bit, Normal Mode, unsauber“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX471-MAX472.pdf
0.3V 0.1 mA Shutdown Supply Current IRS+(SHDN) V SHDN = 2.4V; CC = 3V to 20V 1.5 18.0 µA SHDN Input Low Voltage VIL 0.3 V SHDN Input Low Current IIL V SHDN = 0V 1.0 µA SHDN Input High Voltage VIH 2.4 V SHDN Input High Current I V = 2.4V 1.0 µA IH SHDN OUT Output Voltage Range VOUT 0 V RS+ - 1.5 V OUT
in „strommeßung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX471-MAX472.pdf
0.3V 0.1 mA Shutdown Supply Current IRS+(SHDN) V SHDN = 2.4V; CC = 3V to 20V 1.5 18.0 µA SHDN Input Low Voltage VIL 0.3 V SHDN Input Low Current IIL V SHDN = 0V 1.0 µA SHDN Input High Voltage VIH 2.4 V SHDN Input High Current I V = 2.4V 1.0 µA IH SHDN OUT Output Voltage Range VOUT 0 V RS+ - 1.5 V OUT
in „wie Stromrichtung erkennen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EEPROM_s_93Cxx.pdf
DIS Data In Set-up Time 100 100 ns tCHDX DIH Data In Hold Time 100 100 ns tCHQL PD0 Delay to Output Low 400 400 ns tCHQV PD1 Delay to Output Valid 400 400 ns tCLSL tCSH Chip Select Hold Time 0 0 ns tSLCH Chip Select Low to Clock High 250 250 ns tSLSH(1) tCS Chip Select Low to Chip Select High 250 250
in „EEPROM 93C86 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
brts_brtc.asm
schalten ldi temp, 0xFF out DDRB, temp ldi temp2,200 Test7: bst temp2,7 ; Speichere bit 7 im T-Flag brts high; Verzwiege wenn TFlag gesetzt brtc low; verzweige wenn TFlag nicht gesetzt Test6: bst temp2,6 brts high brtc low Test5: bst temp2,5 brts high brtc low Test4: bst temp2,4 brts high brtc low Test3: bst temp2,3 brts high brtc low Test2: bst temp2,2 brts high brtc low Test1: bst temp2,1 brts high brtc low Test0: bst temp2,0 brts high brtc low loop: rjmp loop high: ldi Schleife1, 10 ser temp out portb, temp starthigh:
in „Rückkehr nach Befehl BRTS o. BRTC?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2003161835_ZILLTEK-ZTP7192MS_C481285.pdf
0.776 0.8 0.824 V Feedback Over-voltage Threshold 0.96 V Error Amplifier Voltage Gain * A EA 1000 V/V High-Side Switch-On Resistance * RDS(ON)1 80 mΩ Low-side Switch-On Resistance * RDS(ON)2 45 mΩ VEN 0V, V SW= 0V, High-Side Switch Leakage Current 10 µA TA= +125°C Upper Switch Current Limit Minimum Duty
in „Ruhe-Stromaufnahme MP2315 Ali-Board zu hoch“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Butler_OT_XO.pdf
the above pull, set the imaginary part of the above impedance equation to zero un- der the unknown high and low varactor capactinace conditions. Guesses Cv_low :=10⋅10 −12 Cv_high:= 30⋅10 −12 Given Im ( F(_low,Cv_high = )) Im ( F(_high,Cv_low = )) Var_cap_low := Find(Cv_low,Cv_high ) Var_cap_high −11 Var_cap_low 1.555426 10 ⇐ Maximum varactor low value Var_cap_low = 2.800364 10 −11⇐ Minimum high value In this example, the varactor is centered at 20 pF, and at minimum con- trol voltage, the varactor capacitance
in „3rd-OT-Oszillator mit NE602 (an Pin 6 und 7)“ · HF, Funk und Felder ·
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Datei
flexlcd.c
----- // Read a byte from the LCD and return it. #ifdef USE_LCD_RW int8 lcd_read_byte(void) { int8 low; int8 high; output_high(LCD_RW); delay_cycles(1); high = lcd_read_nibble(); low = lcd_read_nibble(); return( (high<<4) | low); } #endif //---------------------------------------- // Send a byte to the LCD. void lcd_send_byte(int8 address, int8 n) { output_low(LCD_RS); #ifdef USE_LCD_RW while(bit_test(lcd_read_byte(),7)) ; #else delay_us(60); #endif if(address) output_high(LCD_RS); else output_low(LCD_RS); delay_cycles(1); #ifdef USE_LCD_RW output_low(LCD_RW
in „[PIC] PIC 16F887 + I2C + Philips TEA5768HL RADIO“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TXB0108APPNOTE.pdf
color the active circuitry involved in a low-to-high transition and a high-to-low transition. The weak buffer is shown in blue, and the active O.S. circuit is shown in green. VCCB= 3.3 V V CCB 3.3 V One T 1 One T1 shot shot Output Output 4 k B
in „TXS0108E schafft SPI Signal nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd_ord_1.c
;j++); } void LCDClock(void) { wait(15); P6OUT|=0x04; // clock-bit erst mal sicherheitshalber auf high wait(15); P6OUT&=~0x04; // und jetzt auf low wait(15); } void LCDClear(void) { row=0; // zeilen- und zeichencounter resetten chars=0; P5OUT=0x01; // clear display P6OUT=0x04; // RS und R/W low, E high
in „LCD Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
spi.c
); //setzt Clock Impuls wieder auf (High) nop(); #else SPI_Write |= (1<<SPI_Clock); //erzeugt ein Clock Impuls (High) nop(); SPI_Write &= ~(1<<SPI_Clock); //setzt Clock Impuls wieder auf (LOW) nop(); #endif // CLOCKPOL #if (CLOCKPHA==1) if
in „8 Bits parallel in serial out schiebe register SN74LS165AN“ · Mikrocontroller und Digitale Elektronik ·
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PDF
75176A.pdf
= 5 V, C =L15 pF, T = 25AC PARAMETER TEST CONDITIONS MIN TYP MAX UNIT tPLH Propagation delay time, low-to-high-level output 21 35 ns VID = –1.5 V to 1.5 V,See Figure 6 tPHL Propagation delay time, high-to-low-level output 23 35 ns tPZH Output enable time to high level See Figure 7 10 30 ns tPZL Output
in „sn75179 <-> sn75176 Unterschied?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
square_wave_testbench.vhd
work.square_wave(Behavioral) -- uut: unit under test port map( clk_neu=>clk_neu_t, wave=>wave_t , reset_high_temp=>reset_high_temp_t, reset_low_temp=>reset_low_temp_t, tick_high_temp=>tick_high_temp_t, tick_low_temp=>tick_high_temp_t, raus_temp=>raus_temp_t ); --, M=>M_t, N=>N_t); -- test vector generator process -- sequential statement begin -- test vector 1 clk_neu_t <= '0'; reset_low_temp_t <= '1'; reset_high_temp_t <= '1'; wait for 50 ns; -- test vector 2 clk_neu_t <= '1'; reset_low_temp_t <= '0'; reset_high_temp_t <= '0'; wait for 50 ns; -- test vector 3 clk_neu_t <= '0'; wait
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PDF
LPC3130_31.pdf
LPC3130/3131 Low-cost, low-power ARM926EJ-S MCUs with high-speed USB 2.0 OTG, SD/MMC, and NAND flash controller Rev. 2 — 29 May 2012 Product data sheet 1. General description The NXP LPC3130/3131 combine an 180 MHz
in „LCD-Interface LPC3131“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CODE_DISPLAY.txt
GPIO_PIN_8, GPIO_PIN_RESET); //LSB HAL_GPIO_WritePin(GPIOA, GPIO_PIN_9, GPIO_PIN_SET); //Enable set High HAL_Delay(0.05); HAL_GPIO_WritePin(GPIOA, GPIO_PIN_9, GPIO_PIN_RESET); //Enable set Low HAL_Delay(0.05); //DD RAM Adress Set HAL_GPIO_WritePin(GPIOA, GPIO_PIN_10, GPIO_PIN_RESET); //RS set Low HAL_GPIO_WritePin
in „LCD-Ansteurung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Training_TC1796_2007-04-23_PWM.pdf
by an local event or copy the previous cell action to set the output to high on a compare match. The high side and the low side of phase U are configured. Close the LTC3 to LTC6 dialogs. Release 04/2007 Copyright © Infineon Technologies 2007. All rights reserved. Page 7-17 Exercise
in „Raumzeigermodulation auf Tricore“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DSAIH000309343.pdf
clock HIGH A0 D0 to D7 RD, WR - LOW A0 SI (D7) Write only SCL (D6) When P/S = LOW, D0 to D5 high impedance. ___to D5 can___ HIG__ LOW or open. RD (E) and WR (R/W) are locked to HIGH or LOW. Fix C86 to LOW. The
in „Pollin Display VL-FS-COG-VLGEM1277-01“ · Mikrocontroller und Digitale Elektronik ·
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Datei
k9s1208.c
Latch Cycle S2410_SetPin(DATA0_7_CON ,LOW); //D[7:0]=output S2410_SetPin(nFCE,LOW); S2410_SetPin(nFRE,HIGH); S2410_SetPin(nFWE,LOW); //Because tCLS=0, CLE & nFWE can be changed simultaneously. S2410_SetPin(ALE,LOW); S2410_SetPin(CLE,HIGH);
in „Nand Flash auslesen Atmega 328[Arduino]“ · Mikrocontroller und Digitale Elektronik ·
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Datei
os_cpu_a.S
R0, #:upper16:OSPrioCur MOVW R1, #:lower16:OSPrioHighRdy MOVT R1, #:upper16:OSPrioHighRdy LDRB R2, [R1] STRB R2, [R0] MOVW R5, #:lower16:OSTCBCurPtr MOVT R5, #:upper16:OSTCBCurPtr MOVW R1, #:lower16:OSTCBHighRdyPtr @ OSTCBCurPtr = OSTCBHighRdyPtr
in „DAVE3/Eclipse compile error, das muss doch gehen!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0073.pdf
enable bit BE = "High", makes user font of CGRAM and segment of SEGRAM blinking. The q uantity of blink is assigned the highest 2 bit of CGRAM/SEGRAM. LP : Low power consumption mode enable bit When EXT input is "Low"(without
in „Eigene Zeichen bei LCD mit KS0073 für blöde“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADSP-2181_Datenblatt.pdf
Max Unit Clock Signals and Reset Timing Requirements: tCKI CLKIN Period 50 150 ns tCKIL CLKIN Width Low 20 ns tCKIH CLKIN Width High 20 ns Switching Characteristics: tCKL CLKOUT Width Low 0.5tCK – 7 ns tCKH CLKOUT Width High 0.5tCK – 7 ns t CLKIN High to CLKOUT High 0 20 ns CKOH Control Signals Timing
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PDF
an-937_gateDrive.pdf
concentrations. This has the following effects on the input characteristics: • Gate Threshold voltage is lower. • Transconductance is higher. • Input capacitance is higher. • Gate-source breakdown voltage is lower. While input characteristics are different, reverse transfer capacitance, on-resistance, drain-source
in „Gatekapazität (FET)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DOC1619.PDF
system cost and production volume. For a low-volume system, the best way out may be to use expensive compo- nents and system solutions to reduce design time. For a high-volume, low-cost application, it may be better to spend more time and resources
in „Spannungsstabilisierung/Entstörung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DOC1619_EMC_Design_Considerations.PDF
system cost and production volume. For a low-volume system, the best way out may be to use expensive compo- nents and system solutions to reduce design time. For a high-volume, low-cost application, it may be better to spend more time and resources
in „[Atmega8] Überempfindliche störanfälle Schaltung“ · Mikrocontroller und Digitale Elektronik ·