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PDF
tsc2003.pdf
Into Power-Down Mode After Finishing Conversion (If PD0 = 0) Exit HS-Mode and Enter F/S Mode D11 D10 D9 D8 D7 D6 D5 D4 A D3 D2 D1 D0 0 0 0 0 N P 16 Bits + Ack S = START = Master Controls Bus Sr = REPEATED START P = STOP = Slave Controls Bus FIGURE 14. High-Speed I C Mode Conversion Cycle. 18 TSC2003
in „Touchscreen Controller“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MCP2551.pdf
<VDD < 5.5V O CANH )(reces)Recessive output current I CANL )(reces) -5V < V(ANL,CANH) < +40V, D9 -10 +10 mA 0V <VDD < 5.5V CANH Dominant D10 V O(CANH) output voltage 2.75 4.5 V VTXD = 0.8V D11 VO(CANL) CANL Dominant 0.5 2.25 V VTXD = 0.8V output voltage D12 VDIFF(r)(o) Recessive differential -500 +50
in „MCP2551 Standby Mode wenn AVR im Power down Modus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NUVOTON_M058_M0516.pdf
NuMicro M058/M0516 Product Brief 6 TYPICAL APPLICATION CIRCUIT DVDD DVDD L1 FB AVDD R1 DVDD DVDD L2 FB 10K CB1 CB2 nTICERST 0.1uF U1 0.1uF U2 0 74F373 0 74F373 C1 2 2 10uF/10V 3 2 3 2 AD0 D0 CQ0 AA0 AD8 D0 CQ0 AA8 TANT-A AD1 4 D1 VQ1 5 AA1 AD9 4 D1 VQ1 5 AA9 AD2 7 6 AA2 AD10 7 6 AA10 AD3 8 D2 Q2 9 AA3 AD11
in „ARM Cortex M0 NUVOTON M058ZBN auslesen / flashen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dmesgbeautified.txt
\_SB_.PCI0.P0P8._PRT] [ Sun Feb 27 12:16:13 2011 ] ACPI: PCI Interrupt Link [LNKA] (IRQs 3 4 5 6 7 10 *11 12 14 15) [ Sun Feb 27 12:16:13 2011 ] ACPI: PCI Interrupt Link [LNKB] (IRQs 3 4 5 6 7 *10 11 12 14 15) [ Sun Feb 27 12:16:13 2011 ] ACPI: PCI Interrupt Link [LNKC] (IRQs 3 4 5 6 7 10 11 12 14 *15) [ Sun Feb 27 12:16:13 2011 ] ACPI: PCI Interrupt Link [LNKD] (IRQs 3 *4 5 6 7 10 11 12 14 15) [ Sun Feb 27 12:16:13 2011 ] ACPI: PCI Interrupt Link [LNKE] (IRQs 3 4 5 6 7 10 11 12 14 15) *0, disabled. [ Sun Feb 27 12:16:13 2011 ] ACPI: PCI Interrupt Link [LNKF] (IRQs *3 4 5 6 7 10
in „Sporadische Gnome-Abbrüche auf Ubuntu 10.04“ · PC Hard- und Software ·
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PDF
THS4061-4062.PDF
FREQUENCY FREQUENCY 2 5 VCC = 〉 15 V 0 0 B –2 V = 〉 5 V B d CC d – – a –4 i G G –5 p p o –6 o - - e e –10 o –8 s C l C –10 VCC = 〉 15 V, 〉 5 V –15 Gain = –1 Gain = 1 –12 RF= 270 RF= 510 RL= 150 RL= 150 –14 –20 100k 1M 10M 100M 1G 100k 1M 10M 100M 1G f – Frequency – Hz f – Frequency – Hz Figure 10 Figure
in „Verstärker für DC bis hohe Frequenz“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
= 0x34; // P1.2, P1.4 und P1.5 als Ausgang setzen P1OUT = 0x20; // P1.5 auf High setzen P1SEL = 0x10; // P1.4 auf ausgabe der SMCLK setzen _BIS_SR(LPM0_bits + GIE); // in den Power Mode 0 schicken und auf interrupts warten } ///////////////////////////////////////////////////////////////////////////
in „MSP430 can't allocate stack“ · Mikrocontroller und Digitale Elektronik ·
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Datei
0167-iar-UART_DS04_V01.c
UCTL0 |= CHAR; // 8-bit character UTCTL0 |= SSEL0; // UCLK = ACLK UBR00 = 0x03; // 32k/9600 - 3.41 UBR10 = 0x00; // UMCTL0 = 0x4a; // Modulation UCTL0 &= ~SWRST; // Initialize USART state machine IE1 |= UTXIE0; // Enable USART0 RX/TX interrupt URXIE0 + // _BIS_SR(LPM3_bits + GIE); // Enter LPM3 w/ interrupt
in „MSP430 über UART Daten senden“ · Mikrocontroller und Digitale Elektronik ·
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Datei
0167-iar_V03-UART_DS04_16bit.c
UCTL0 |= CHAR; // 8-bit character UTCTL0 |= SSEL0; // UCLK = ACLK UBR00 = 0x03; // 32k/9600 - 3.41 UBR10 = 0x00; // UMCTL0 = 0x4a; // Modulation UCTL0 &= ~SWRST; // Initialize USART state machine // IE1 |= UTXIE0; // Enable USART0 RX/TX interrupt URXIE0 + // _BIS_SR(LPM3_bits + GIE); // Enter LPM3 w/ interrupt
in „MSP430 über UART Daten senden“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TFT_starfield.ino
adafruit/Adafruit-GFX-Library Recommended music while programming: https://www.youtube.com/watch?v=Sr3N4nFKw6Q */ //#include <TFT_ILI9341.h> // Hardware-specific library #include "Adafruit_GFX.h" #include "Adafruit_ILI9340.h" #include <SPI.h> #define TFT_GREY 0x5AEB #define TFT_BLACK 0x0000 #define TFT_RED
in „2.2'TFT ILI9340 und Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Improvement_of_AMR_Magnetometer_Precision.pdf
single pulse) with decreasing amplitude of the pulse. The noise was measured using Stanford Research SR770 FFT spectrum analyzer. For flipping pulse amplitude of 2.8 A, the noise PSD was 3.2nT/VHz@ 1 Hz. The noise rms value was about 8.6 nT in lie 100 mHz to 10 Hz frequency range and the noise peak to
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PDF
STM32_general-purpose_timer_cookbook_en.DM00236305.pdf
of STM32 general-purpose timers AN4776 /* Loop until the update event flag is set */ while (!(TIM6->SR & TIM_SR_UIF)); /* The required time delay has been elapsed */ /* User code can be executed */ 1.3.2 Timer channel-configuration in input mode /* Variable to store timestamp for last detected active
in „STM32 Timer Cookbook PWM - Beispiel 6.2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NL6448BC33-64__DOD-PP-0108_.pdf
the product, in the dark room. Also measurement methods are as follows. 50cm Photodetector (BM-5A or SR-3) Photodetector (EZ Contrast) 1° LCD module LCD module (Product) (Product) Note3: See "4.10.2 Definition of contrast ratio". Note4: See "4.10.3 Definition of luminance uniformity". Note5: These coordinates
in „Display ansteurern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
3219.htm
=CENTER>165 K</TD> <TD ALIGN=CENTER>10.94</TD> </TR> <TR> <TD><A HREF="pdf/mega1_05.pdf">Firmware Overview</A></TD> <TD ALIGN=CENTER>50 K</TD> <TD ALIGN=CENTER>10.94</TD> </TR> <TR> <TD><A HREF="pdf/mega1_06.pdf">M3L-Bus Registers</A></TD
in „Vollständiges Datenblatt über SDA 5273 gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TDA1029.pdf
adjacent inputs C typ. 0,5 pF D.C. input voltage range VI 3 to 19 V Supply voltage rejection ratio;SR≤ 10 k SVRR typ. 100 V/V Equivalent input noise voltage R = 0; f = 20 Hz to 20 kHz (r.m.s. value) V typ. 3,5 V S n(rms) Equivalent input noise current f = 20 Hz to 20 kHz (r.m.s. value) n(rms) typ. 0,05
in „Quellenwahl (Audioverstärker)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Jahresrundspruchplan_2018.pdf
DMØSZ DLR/DIS/LOK 439,325 FM via DBØLY DLR/DIS/LOK Salzgitter 438,825 FM via DBØTHS DLR/DIS/LOK So 10.30 Wolfsburg 145,550 FM via DLØVW DLR/DIS 439,400 FM via DBØNAU DLR/DIS/LOK So 10.00 DLØBN 145,600 FM via DBØSP DLR/DIS/LOK Wolfsburg 439,050 FM via DBØVW DLR/DIS 439,425 FM via DBØSP DLR/DIS/LOK Brocken
in „Junge Menschen für den Amateurfunk begeistern“ · HF, Funk und Felder ·
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PDF
TCND5000.pdf
20 ms VF 1.2 1.5 V Temperature coefficient ofFV F = 1 mA TKVF -1.3 mV/K Reverse current V = 5 V I 10 μA R R Junction capacitance VR= 0 V, f = 1 MHz, E = 0 lx Cj 40 pF Radiant intensity F = 20 mA, p = 20 ms Ie 11 15 mW/sr Angle of half intensity ± 12 deg Peak wavelength F = 100 mA P 930 940 nm Spectral
in „Datenlogger Pendeluhr“ · Mikrocontroller und Digitale Elektronik ·
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PDF
teXet_TF-127_Service_manual.pdf
. TYP SYMBOL PARAMETER CONDITIONS MIN (Note 4) MAX UNITS NOTES VDD SR- VDD Negative Slewrate 10 V/ms 3 Serial Interface Specifications Over the recommended operating conditions unless otherwise specified. TYP SYMBOL PARAMETER TEST CONDITIONS MIN (Note4) MAX UNITS NOTES
in „Photo-Rahmen als Farbdisplay“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at91rm9200.pdf
interrupt. 290 AT91RM9200 1768I–ATARM–09-Jul-09 AT91RM9200 23.6.15 PMC Status Register Register Name: PMC_SR Access Type: Read-only 31 30 29 28 27 26 25 24 – – – – – – – – 23 22 21 20 19 18 17 16 – – – – – – – – 15 14 13 12 11 10 9 8 – – – – PCK3RDY PCK2RDY PCK1RDY PCK0RDY 7 6 5 4 3 2 1 0 – – – – MCKRDY LOCKB
in „S1D113513 + AT91RM9200“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Display.pdf
4.5] (Backside PI) 0 0. A 2.0 (SL) 4.5 10.4 (SR) [2.5YP.(2.2 IN)] B –0.05 11.9 5 [7.0] [12.9] 0.4–0.02 5 [19.9] –0.02 1 7.8–0.5 0.6 H L UPILEX is a trademark of UBE INDUSTRIES, LTD.. 50 PACKAGES FOR LCD DRIVERS . l . . A o A i A i M T M c M
in „LC-Display Sharp M078CKA ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lh155.pdf
4.5] (Backside PI) 0 0. A 2.0 (SL) 4.5 10.4 (SR) [2.5YP.(2.2 IN)] B –0.05 11.9 5 [7.0] [12.9] 0.4–0.02 5 [19.9] –0.02 1 7.8–0.5 0.6 H L UPILEX is a trademark of UBE INDUSTRIES, LTD.. 50 PACKAGES FOR LCD DRIVERS . l . . A o A i A i M T M c M
in „Suche sehr dünnes Grafikdisplay“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lh155.pdf
4.5] (Backside PI) 0 0. A 2.0 (SL) 4.5 10.4 (SR) [2.5YP.(2.2 IN)] B –0.05 11.9 5 [7.0] [12.9] 0.4–0.02 5 [19.9] –0.02 1 7.8–0.5 0.6 H L UPILEX is a trademark of UBE INDUSTRIES, LTD.. 50 PACKAGES FOR LCD DRIVERS . l . . A o A i A i M T M c M
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PDF
pm2521ocr.pdf
and 2V; i.e. it is always positive. : I M P E DC O N V E R T O R (TRIGGER LEVEL RMS/CONV.) i INPUT +10V +10V+10V = C301 sr02 HOUSING V302Be0 70u ala a2 : aa!,==== - {> ” a e=350 aS uet : B26ACh) | , v EP 5R CK)ass 7 aos . Fig. 30. Impedance convertorV 811130 7 | 4 3 1.4.4.3, Active filter TheinputtothitrsvatheFETswitch603
in „Pjilips PM2519“ · Markt ·
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PDF
Applnote.pdf
of STM32 general-purpose timers AN4776 /* Loop until the update event flag is set */ while (!(TIM6->SR & TIM_SR_UIF)); /* The required time delay has been elapsed */ /* User code can be executed */ 1.3.2 Timer channel-configuration in input mode /* Variable to store timestamp for last detected active
in „PWM Signalerzeugung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MPR121.pdf
Electrode Filtered Data LSB EFD9LB 0x16 0x00 ELE9 Electrode Filtered Data MSB EFD9HB 0x17 0x00 Register ELE10 Electrode Filtered Data LSB EFD10LB 0x18 0x00 Address + 1 ELE10 Electrode Filtered Data MSB EFD10HB 0x19 0x00 ELE11 Electrode Filtered Data LSB EFD11LB 0x1A 0x00 ELE11 Electrode Filtered Data MSB EFD11HB
in „Probleme bei I2C-Verbindung mit MPR121 unter BASCOM“ · Mikrocontroller und Digitale Elektronik ·
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Datei
p16f887.inc
SPBRGH Bits ----------------------------------------------------- BRG8 EQU H'0000' BRG9 EQU H'0001' BRG10 EQU H'0002' BRG11 EQU H'0003' BRG12 EQU H'0004' BRG13 EQU H'0005' BRG14 EQU H'0006' BRG15 EQU H'0007' ;----- PWM1CON Bits ----------------------------------------------------- PRSEN EQU H'0007' PDC0
in „EEPROM auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ne25139.pdf
5 V, G2SR= 0 V, DS= 10 mA) (TA = 25°C) SYMBOLS PARAMETERS UNITS RATINGS FREQ. NFOPT GA Γ OPT V DS Drain to Source Voltage V 13 (GHz) (dB) (dB) MAG ANG Rn/50 VG1S Gate 1 to Source Voltage V -4.5 0.5 0.9 18.5 0.9
in „GaAs NE25139 ersetzen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HAMEG_HM1507-3_Oscilloscope_Service.pdf
S Instruments I L G N E r Oscilloscope HM1507-3 v 0 E 3 0 - 7 0 5 1 - S 4 & POW ER INTENS FOCUS 1=10q IA PTR. STOR.MODE REFERENCE SAVE RO Det RFR @]S-a SET 9 3 A : 500ms B:200us TR:CH1JAC D T r: JDC AUTOSET B TR HOLD ENV »AVJ SINGLE i\RECALL I SR5 RM ROUT o SONR. ROL BE 1 0 sPl a TRS Y-POS.I ANALOG
in „HM 1507-3 bootet nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
SM_4_Kanal_0_5s_ADC12.c
// an P1.5 P1.7 Interruptfreigabe P1IES = 0xA0; // auf H/L Flanke an P1.5 und P1.7 festlegen _BIS_SR(LPM4_bits + GIE); // Enter LPM4 w/interrupt schaltet auf letzte Stromsparstufe - nur mit Taste aufweckbar for(;;); //Warteschleife } void starten(void) { P1IFG&=~BIT5; // Tastenint P1.5 zurücksetzen
in „MSP430F149: digitalisierte Daten in das Flash M. speichern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
Instruments Inc. // February 2011 // Built with CCS Version 4.2.0 and IAR Embedded Workbench Version: 5.10 // P1OUT |= 0x01; //an // P1OUT &= ~0x40; //aus //****************************************************************************** #include "msp430g2553.h" unsigned char MST_Data, SLV_Data; void main(void
in „MSP430 G2553 mit DOGL128W-6 Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ep-1999-06-530-532.pdf
43/41 54/51 46/43 – – – – – 35/32 32/25 32/32 25/25 40/40 35/35 40/35 35/32 40/40 40/40 50/50 40/40 10 49/46 45/42 46/43 41/39 60/57 53/50 55/52 49/46 67/63 60/57 74/70 64/60 – – – – – 40/40 40/40 40/40 40/35 50/50 50/50 50/50 40/40 63/63 50/50 63/63 63/50 16 65/61 59/56 60/57 55/52 81/76 72/68 73/69
in „Eindraht oder Litze für Scheune aus Holz?“ · Haus & Smart Home ·
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PDF
LGT8FX8P_databook_v1.0.4.pdf
且 PSS3=0) ,TC1 独立使用一个 10 位的预分频器 CPS1,TC0 和 TC3 共用一个 10 位的预分频器 CPS310,但它们有不同的分频设置。 单用模式下(PSS1=0 且 PSS3=1) ,TC3 独立使用一个 10 位的预分频器 CPS3,TC0 和 TC1 共用一个 10 位的预分频器 CPS310,但它们有不同的分频设置。 独立模式下(PSS1=1 且 PSS3=1) ,TC0 独立使用一个 10 位的预分频器 CPS310
in „Spot Welder Firmware Update fehlerhaft“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LGT8FX8P_databook_v1.0.4.pdf
且 PSS3=0) ,TC1 独立使用一个 10 位的预分频器 CPS1,TC0 和 TC3 共用一个 10 位的预分频器 CPS310,但它们有不同的分频设置。 单用模式下(PSS1=0 且 PSS3=1) ,TC3 独立使用一个 10 位的预分频器 CPS3,TC0 和 TC1 共用一个 10 位的预分频器 CPS310,但它们有不同的分频设置。 独立模式下(PSS1=1 且 PSS3=1) ,TC0 独立使用一个 10 位的预分频器 CPS310
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Datei
index.php
meta name="viewport" content="width=device-width, initial-scale=1"> <title>Radiotechniek Dynacord WV10 Schematic</title> <meta name="author" content="Albert Zwaagstra"/> <meta name="description" content="Met meer dan 10000 schema's gratis online. Alles over oude radio en TV."/> <meta name="keywords" content
in „Dynacord WV10 restaurieren“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
dmesg.txt
] (IRQs 4 5 7 10 11 14 15) *0 [ 0.741983] ACPI: PCI Interrupt Link [LNKE] (IRQs 4 5 7 10 11 14 15) *0 [ 0.742012] ACPI: PCI Interrupt Link [LNKF] (IRQs 4 5 7 10 11 14 15) *0 [ 0.742040] ACPI: PCI Interrupt Link [LNKG
in „Rechner stürzt gelegentlich ab--> dmesg info“ · PC Hard- und Software ·
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Datei
main.c
0xCD, 0xCE, 0xCF}; // für Wertübergabe von der Funktion Keypressed() int z; int button; char buffer[10] = "0000000000"; char zeichen_kette[17]; double komma_zahl; /* Hauptprogramm */ void main (void) { /* uC Initialisierung */ WDTCTL = WDTPW + WDTHOLD; // Watchdog Timer aus SCFQCTL =~ SCFQ_M; // DCO Modulation
in „Problem mit Timer_A Overflow-Flag bei MSP430“ · Mikrocontroller und Digitale Elektronik ·
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PDF
B400_ALPS-RK09K.pdf
15 10 RK09K12C0A2S Without 20 50 10 Vertical type RK09K12C0A8G 30 Dual-unit Without 20 RK09K12C0D0U 25 ʢNotapplicable RK09K12C0A8K 280ʶ5˃ With 30 15A 12 toDCʣ 10 RK09K12A0A2K 15 Horizontal Without 9 type RK09K12A0A6R
in „Eagle Lib Alps RK09K“ · Platinen ·
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Datei
main.c
= 0x34; // P1.2, P1.4 und P1.5 als Ausgang setzen P1OUT = 0x20; // P1.5 auf High setzen P1SEL = 0x10; // P1.4 auf ausgabe der SMCLK setzen _BIS_SR(LPM0_bits + GIE); // in den Power Mode 0 schicken und auf interrupts warten return 0; } /////////////////////////////////////////////////////////////////
in „MSP430 can't allocate stack“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
Pull-Ups INTCON2bits.RBPU = 1; //IO-DIRECTION TRISC = 0xFF; //RELAIS TRISB = 0xFF; //0..1BUTTON 2..4 HC-SR501 6..7 ICSP //LCD /* 0..Enable 1 * 1..Enable 2 * 2..Register-Select * 3..Read/Write * 4..Data 4 * 5..Data 5 * 6..Data 6 * 7..Data 7 */ TRISA = 0x00; //Set system time default systemTime.sec = 0; systemTime.min
in „PIC18F26K22 Timer0 1sec Interrupt für Uhrzeit“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TFT_starfield.ino
adafruit/Adafruit-GFX-Library Recommended music while programming: https://www.youtube.com/watch?v=Sr3N4nFKw6Q */ //#include <TFT_ILI9341.h> // Hardware-specific library #include "Adafruit_GFX.h" #include "Adafruit_ILI9340.h" #include <SPI.h> #define TFT_GREY 0x5AEB #define TFT_BLACK 0x0000 #define TFT_RED
in „2.2'TFT ILI9340 und Arduino“ · Mikrocontroller und Digitale Elektronik ·
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Datei
m8535def.inc
equ COM1B1 =5 .equ COM1B0 =4 .equ FOC1A =3 .equ FOC1B =2 .equ PWM11 =1 ; OBSOLETE! Use WGM11 .equ PWM10 =0 ; OBSOLETE! Use WGM10 .equ WGM11 =1 .equ WGM10 =0 ;TCCR1B .equ ICNC1 =7 .equ ICES1 =6 .equ CTC1 =3 ; OBSOLETE! Use WGM12 .equ CTC11 =4 ; OBSOLETE! Use WGM13 .equ CTC10 =3 ; OBSOLETE! Use WGM12 .equ WGM13 =4 .equ WGM12 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ;TCCR2 .equ FOC2 =7 .equ PWM2 =6 ; OBSOLETE! Use WGM20 .equ WGM20 =6 .equ COM21 =5 .equ COM20 =4 .equ CTC2 =3 ; OBSOLETE! Use WGM21 .equ WGM21 =3 .equ CS22 =2 .equ CS21 =1 .equ CS20 =0 ;SFIOR .equ
in „include für AT Mega 8538“ · Mikrocontroller und Digitale Elektronik ·
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Datei
m16def.inc
equ ADTS2 =7 .equ ADTS1 =6 .equ ADTS0 =5 .equ ADHSM =4 .equ ACME =3 .equ PUD =2 .equ PSR2 =1 .equ PSR10 =0 ; TCCR1A .equ COM1A1 =7 .equ COM1A0 =6 .equ COM1B1 =5 .equ COM1B0 =4 .equ FOC1A =3 .equ FOC1B =2 .equ PWM11 =1 ; OBSOLETE! Use WGM11 .equ PWM10 =0 ; OBSOLETE! Use WGM10 .equ WGM11 =1 .equ WGM10 =0 ; TCCR1B .equ ICNC1 =7 .equ ICES1 =6 .equ CTC11 =4 ; OBSOLETE! Use WGM13 .equ CTC10 =3 ; OBSOLETE! Use WGM12 .equ CTC1 =3 ; OBSOLETE! Use WGM12 .equ WGM13 =4 .equ WGM12 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ; TCCR2 .equ FOC2 =7 .equ PWM2 =6 ; OBSOLETE! Use WGM20 .equ WGM20 =6 .equ
in „Datei für Mega16 für AVR Studio“ · Mikrocontroller und Digitale Elektronik ·
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Datei
m8535def.txt
equ COM1B1 =5 .equ COM1B0 =4 .equ FOC1A =3 .equ FOC1B =2 .equ PWM11 =1 ; OBSOLETE! Use WGM11 .equ PWM10 =0 ; OBSOLETE! Use WGM10 .equ WGM11 =1 .equ WGM10 =0 ;TCCR1B .equ ICNC1 =7 .equ ICES1 =6 .equ CTC1 =3 ; OBSOLETE! Use WGM12 .equ CTC11 =4 ; OBSOLETE! Use WGM13 .equ CTC10 =3 ; OBSOLETE! Use WGM12 .equ WGM13 =4 .equ WGM12 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ;TCCR2 .equ FOC2 =7 .equ PWM2 =6 ; OBSOLETE! Use WGM20 .equ WGM20 =6 .equ COM21 =5 .equ COM20 =4 .equ CTC2 =3 ; OBSOLETE! Use WGM21 .equ WGM21 =3 .equ CS22 =2 .equ CS21 =1 .equ CS20 =0 ;SFIOR .equ
in „Servomotor ansteuern, kein Interrupt!!!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
m16def.inc
equ ADTS2 =7 .equ ADTS1 =6 .equ ADTS0 =5 .equ ADHSM =4 .equ ACME =3 .equ PUD =2 .equ PSR2 =1 .equ PSR10 =0 ; TCCR1A .equ COM1A1 =7 .equ COM1A0 =6 .equ COM1B1 =5 .equ COM1B0 =4 .equ FOC1A =3 .equ FOC1B =2 .equ PWM11 =1 ; OBSOLETE! Use WGM11 .equ PWM10 =0 ; OBSOLETE! Use WGM10 .equ WGM11 =1 .equ WGM10 =0 ; TCCR1B .equ ICNC1 =7 .equ ICES1 =6 .equ CTC11 =4 ; OBSOLETE! Use WGM13 .equ CTC10 =3 ; OBSOLETE! Use WGM12 .equ CTC1 =3 ; OBSOLETE! Use WGM12 .equ WGM13 =4 .equ WGM12 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ; TCCR2 .equ FOC2 =7 .equ PWM2 =6 ; OBSOLETE! Use WGM20 .equ WGM20 =6 .equ
in „avra woher die ***def.inc dateien nehmen?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
m16def.inc
equ ADTS2 =7 .equ ADTS1 =6 .equ ADTS0 =5 .equ ADHSM =4 .equ ACME =3 .equ PUD =2 .equ PSR2 =1 .equ PSR10 =0 ; TCCR1A .equ COM1A1 =7 .equ COM1A0 =6 .equ COM1B1 =5 .equ COM1B0 =4 .equ FOC1A =3 .equ FOC1B =2 .equ PWM11 =1 ; OBSOLETE! Use WGM11 .equ PWM10 =0 ; OBSOLETE! Use WGM10 .equ WGM11 =1 .equ WGM10 =0 ; TCCR1B .equ ICNC1 =7 .equ ICES1 =6 .equ CTC11 =4 ; OBSOLETE! Use WGM13 .equ CTC10 =3 ; OBSOLETE! Use WGM12 .equ CTC1 =3 ; OBSOLETE! Use WGM12 .equ WGM13 =4 .equ WGM12 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ; TCCR2 .equ FOC2 =7 .equ PWM2 =6 ; OBSOLETE! Use WGM20 .equ WGM20 =6 .equ
in „ATMEGA16 Timer2 Assemblerproblem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
m16def.inc
equ ADTS2 =7 .equ ADTS1 =6 .equ ADTS0 =5 .equ ADHSM =4 .equ ACME =3 .equ PUD =2 .equ PSR2 =1 .equ PSR10 =0 ; TCCR1A .equ COM1A1 =7 .equ COM1A0 =6 .equ COM1B1 =5 .equ COM1B0 =4 .equ FOC1A =3 .equ FOC1B =2 .equ PWM11 =1 ; OBSOLETE! Use WGM11 .equ PWM10 =0 ; OBSOLETE! Use WGM10 .equ WGM11 =1 .equ WGM10 =0 ; TCCR1B .equ ICNC1 =7 .equ ICES1 =6 .equ CTC11 =4 ; OBSOLETE! Use WGM13 .equ CTC10 =3 ; OBSOLETE! Use WGM12 .equ CTC1 =3 ; OBSOLETE! Use WGM12 .equ WGM13 =4 .equ WGM12 =3 .equ CS12 =2 .equ CS11 =1 .equ CS10 =0 ; TCCR2 .equ FOC2 =7 .equ PWM2 =6 ; OBSOLETE! Use WGM20 .equ WGM20 =6 .equ
in „Assembler Include-Dateien“ · Mikrocontroller und Digitale Elektronik ·
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opa376.pdf
Differential 6.5 pF Common-Mode 13 pF OPEN-LOOP GAIN Open-Loop Voltage Gain A OL 50mV < V O (V+) – 50mV, RL= 10kΩ 120 134 dB 100mV < V < (V+) – 100mV, R = 2kΩ 120 126 dB O L FREQUENCY RESPONSE CL= 100pF, VS= 5.5V Gain-Bandwidth Product GBW 5.5 MHz Slew Rate SR G = +1 2 V/ms Settling Time 0.1% tS 2V Step , G =
in „technische anforderungen“ · Analoge Elektronik und Schaltungstechnik ·
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201911264653.pdf
Max Unit Horizontal SynchroHsyncion 20 - PCLK HorizontBack PorchHBP 20 - PCLK Horizontal Front PHFPh 10 - PCLK Horizontal AddressHAdr 720 - PCLK Vertical SynchroniVsyncn 10 - HSYNC VerticBack Porch VBP 10 - HSYNC VerticFront Porch VFP 10 - HSYNC Verticaldress VAdr 720 - HSYNC WWW.SHTDO.COM 9 / 17 Aug.
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DSPIC33EP512GM710_datasheet.pdf
TABLE 4-1: CPU CORE REGISTER MAP (CONTINUED) 1 - SFR Addr. Bit 15 Bit 14 Bit 13 Bit 12 Bit 11 Bit 10 Bit 9 Bit 8 Bit 7 Bit 6 Bit 5 Bit 4 Bit 3 Bit 2 Bit 1 Bit 0 All 0 Name Resets 4 M SR 0042 OA OB SA SB OAB SAB DA DC IPL2 IPL1 IPL0 RA N OV Z C 0000 r CORCON 0044 VAR — US1 US0 EDT DL1 DL2 DL0 SATA SATB
in „Probleme mit SRAM 23LCV1024“ · Mikrocontroller und Digitale Elektronik ·
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LM7372MR-NOPB-Texas-Instruments.pdf
the Sinusoidal Triangular Square 8-Pin PSOP package (e.g. “30V supply (2 amplifiers)” hori- 50.7 x 10−3 46.9 x 10 −3 62.5 x 10−3 zontal line) superimposed on top of it (with J limit of 140°C The table entries are normalized to V /R . These entries are when operated at 85°C ambient), so that the designer
in „Gleichspannungsquelle mit µC genau steuern“ · Analoge Elektronik und Schaltungstechnik ·
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en.DM00155929.pdf
. . . . . . . . . 24 2.9.1 Dummy read cycles inserted when reading synchronous memories . . . 24 2.10 SDIO peripheral limitations . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 25 2.10.1 Wrong CCRCFAIL status after a response without CRC is received . . . 25 2.10.2 No underrun
in „Wer nutzt das Nucleo-64 und kann mir“ · Mikrocontroller und Digitale Elektronik ·