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Datei
UART_STM32F10x.c
(__PCLK, __BAUD) ((__PCLK*25)/(4*__BAUD)) #define __DIVMANT(__PCLK, __BAUD) (__DIV(__PCLK, __BAUD)/100) #define __DIVFRAQ(__PCLK, __BAUD) (((__DIV(__PCLK, __BAUD) - (__DIVMANT(__PCLK, __BAUD) * 100)) * 16 + 50) / 100) #define __USART_BRR(__PCLK, __BAUD) ((__DIVMANT(__PCLK, __BAUD) << 4)|(__DIVFRAQ(__
in „Einbindung einer .c ohne .h“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PMBFJ620_1.pdf
Rev. 01 Ñ 11 May 2004 8 of 13 Philips Semiconductors PMBFJ620 Dual N-channel field-effect transistor 100 mcd228 mcd227 100 gis is (mS) g −b fs, fs (mS) b is 10 gfs 10 g 1 is −b fs 0.1 1 10 100 1000 10 100 1000 f (MHz) f (MHz) V DS= 10 V; D = 10 mA; T amb = 25 °C. VDS = 10 V; D = 10 mA; Tamb = 25 °C. Fig
in „Doppelfet für Vorstufe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AP3429_A-766309.pdf
0 -60 -40 -20 0 20 40 60 80 100 120 140 W 1 10 100 1000 o I (mA) Temperature ( C) E OUT N PFET Drain-Source On-State Resistance vs. Temperature NFET Drain-Source On-State Resistance vs. Temperature 200 120 190 110 180 170 ) 100 )
in „Trafo-Treiber für DC/DC-Wandler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tms320lf2407a.pdf
ACTIVE TQFP PAG 64 160 Green (RoHS & CU NIPDAU Level-3-260C-168HR no Sb/Br) TMS320LF2406APZA ACTIVE LQFP PZ 100 90 Green (RoHS & CU NIPDAU Level-2-260C-1YR no Sb/Br) TMS320LF2406APZAR ACTIVE LQFP PZ 100 1000 Green (RoHS & CU NIPDAU Level-2-260C-1YR no Sb/Br) TMS320LF2406APZS ACTIVE LQFP PZ 100 90 Green (RoHS & CU NIPDAU Level-2-260C-1YR no Sb/Br) TMS320LF2407APGEA ACTIVE LQFP PGE 144 60 Green (RoHS & CU NIPDAU Level-1-260C-UNLIM no Sb/Br) TMS320LF2407APGES ACTIVE LQFP PGE 144 60 Green (RoHS
in „TMS320LF2407 ???“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
diff.config.txt
< # CONFIG_PCIE_CADENCE_HOST is not set < # CONFIG_PCIE_CADENCE_EP is not set < # CONFIG_PCI_FTPCI100 is not set < CONFIG_PCI_HOST_COMMON=y < CONFIG_PCI_HOST_GENERIC=y < # CONFIG_PCIE_XILINX is not set < # CONFIG_PCI_V3_SEMI is not set < # CONFIG_PCIE_ALTERA is not set < CONFIG_PCIE_MEDIATEK=y < < #
in „Linux Kernel 5.1.1. auf dem BPi-R2“ · PC Hard- und Software ·
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PDF
DabrowskiBuschStelzer-Radar.pdf
establish compatibility between an autonomous surface vessel control system and a Navico Broadband Radar BR24. The solution obtains radar imagery and control of the antenna unit over its standard Ethernet interface, making the proprietary controller unit optional. It presents devices, software and methods
in „Platinenfotos: Navico 3G Schiffsradar“ · HF, Funk und Felder ·
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PDF
BUK100-50GL_1.pdf
= f(V ); parameter V ; t = 250 s & t < t DS IS p p d sc 100 ID & IDM / A BUK100-50GL ID / A BUK100-50GL 40 DS/I tp = VIS / V = 6 )V 35 S(ON 10 us 5.5 RD 30 10 5 100 us 25 4.5 1 ms 20 DC 10 ms 15 4 1 100 ms 3.5 10 3 Overload protection characteristics not shown
in „12V/2,5 A Sicher schalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Ferroxcube_Data_Handbook.pdf
100 kHz; ≤1500 × 10−6 −6 −1 0.25 mT α F 25 to 55 °C ≈ 15 × 10 K T 140 °C Br from 25 × 10 A/m ≈ 250 mT max H from 25 × 10 A/m ≈ 2000 A/m C Material grade specification - 2P90 B H = 25 × 103A/m ≈ 950 mT −
in „Maximale Magnetflussdichte im Ferritkern Temperaturangabe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOSFET_N_Dual_DMT3020LSD_LowRDS_SOIC8.pdf
E O A V = 10V, I = 9.0A A 1 R 0.01 GS D G M , H R N ( 0.8 O S G W R V E 0 0.6 N -50 -25 0 25 50 75 100 125 150 -50 -25 0 25 50 75 100 125 150 N TJ, JUNCTION TEMPERATURE (℃) TJ, JUNCTION TEMPERATURE (℃) D Figure 7. On-Resistance Variation with Temperature Figure 8. Gate Threshold Variation vs. E JunctionTemperature
in „Unerwünschter Peak beim Ausschalten eines Kleinsignal-MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Yaskawa-SGDB-xxADx-x-TSE-S800-16E.pdf
Oil Co. C° Co., Ltd. Co., Ltd. Ltd. 0 to 35°C Kosmo Gear Co., Ltd.Bonokku General SP Gear Roll SE M 100, 150 100, 150 100, 150 Approximate amounts of oil are shown in the following table. (Unit: 1 [liters]) Frame No. 4130 4145 4155 4160 4170 4180 4190 4135 4165 4175 4185 5 Horizontal Type 0.7 0.7 0.7
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PDF
sct2080ke-e.pdf
a= 25°C) Values Parameter Symbol Conditions Unit Min. Typ. Max. Drain - Source breakdown voltage V(BR)DSS VGS= 0V, ID= 1mA 1200 - - V VDS= 1200V, V GS = 0V Zero gate voltage DSS Tj= 25°C - 1 10 A drain current Tj= 150°C - 2 - Gate - Source leakage current I V = 22V, V = 0V - - 100 nA GSS GS DS Gate
in „Datenblatt fraglich?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Diode.pdf
=25 °C j 100.0 10.0 8/20 µs 10/1000 µs 1.0 0 A A A A A 5 2 2 0 5 8 J J J J J 1 10 ms A A A A A A S M S M M M S S S S VCL (V) 0.1 1 10 100 1000 4/10 Doc ID 5544 Rev 12 SMAJ Characteristics Figure 6. Junction capacitance
in „Überspannungsschutz ADC“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
code.c
uart0 8000000Hz 114942bps */ //UBR00=0x22; UBR10=0x00; UMCTL0=0xDD; /* uart0 8000000Hz 230547bps */ U0BR1 = 0x00; U0CTL &= ~SWRST; //USART freigeben } void sio0_isr(void) { if(n_send < 4) { U0TXBUF = Ziffern[n_send]; n_send++; } else { n_send = 0; } } void write_DAC0(unsigned int val_DAC) { DAC12_0DAT =
in „[MSP430] Variablenuebergabe an ISR“ · Mikrocontroller und Digitale Elektronik ·
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Datei
code_funzt.c
uart0 8000000Hz 114942bps */ //UBR00=0x22; UBR10=0x00; UMCTL0=0xDD; /* uart0 8000000Hz 230547bps */ U0BR1 = 0x00; U0CTL &= ~SWRST; //USART freigeben } void sio0_isr(void) { if(n_send < 4) { U0TXBUF = Ziffern[n_send]; n_send++; } else { n_send = 0; } } void write_DAC0(unsigned int val_DAC) { DAC12_0DAT =
in „[MSP430] Variablenuebergabe an ISR“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myPicFWWLAN.c
SR<Adr>< Value[x2] SR1234 alles Hex // Setze Port-Bit BW<Port><Bit><Value> - BWA21 // Lese Port-Bit BR<Port><Bit> '0'/'1' BRA2 // Setze Port-LEDs L<Value:1><Value:2> - L5A // Lese DIP-Switch D Value[2] // Lese ADC-Port A<Channel> Value[4] A0 // Lese Temperatur T Value[2] T // // Wlan-Module // Init WI
in „Handy/Mikrocontroller und Wlan Anbindung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Neues_Textdokument.txt
XRADIO_INTERNAL_CODEC] Route(play): lineout Disable<\n> ----avi fr 25 375<\n> /record/2021/07_2/01/00/001004_100_00.avi<\n> [bl ERR] main():642, white led off<\n> [FD I]: mode: 0x4, freq: 48000000Hz, drv: 0<\n> <\r><\n> Password:PMA: mode select:e<\n> <\n> wlan information =====================================
in „Hab eine 10 eur security cam gekauft. Läuft nicht. Bootlog experten?“ · Haus & Smart Home ·
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PDF
MPT2P50E.pdf
Current and Temperature and Gate Voltage 2 1000 C VGS = 0 V A VGS = 10 V I D = 1 A TJ= 125⋅C S R 1.5 A100 C D ( R I G 100⋅C O A K ▯ M E ▯ O , I ( 1 S 10 R D , I 25⋅C n S D R 0.5 1 -50 -25 0 25 50 75 100 125 150 0 50 100 150 200 250 300 350 400 450 500 TJ, JUNCTION TEMPERATURE (⋅C) VDS , DRAIN-TO-SOURCE
in „Ersatztypen für Diode“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ntc_probe_ass_m2020-2.pdf
Temperature measurement B57020M2 Probe assemblies M2020 R/T characteristics 2003 R/T No. T (°C) B25/100 3980 K T (°C) B 25/1003980 K T (°C) B25/100 3980 K RT/R25 α (%/K) R TR 25 α (%/K) R TR25 α (%/K) ▯55.0 97.578 7.5 20.0 1.2492 4.5 95.0 0.079225 3.0 ▯50.0 67.65 7.2 25.0 1.0000 4.4 100.0 0.068356 2.9
in „Liebherr Kühl-/Gefrier Kombi CP4056 Premium von Aug. 2006“ · Haus & Smart Home ·
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PDF
NTC_Probe_ass_M2020.pdf
Temperature measurement B57020M2 Probe assemblies M2020 R/T characteristics 2003 R/T No. T (°C) B25/100 3980 K T (°C) B 25/1003980 K T (°C) B25/100 3980 K RT/R25 α (%/K) R TR 25 α (%/K) R TR25 α (%/K) ▯55.0 97.578 7.5 20.0 1.2492 4.5 95.0 0.079225 3.0 ▯50.0 67.65 7.2 25.0 1.0000 4.4 100.0 0.068356 2.9
in „Gefrierschrank defekt - kühlt nicht zuverlässig“ · Haus & Smart Home ·
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PDF
MRF175GV.pdf
Figure 1) Common Source Power Gain G ps 12 14 — dB (VDD = 28 Vdc, out = 200 W, f = 225 MHzDQI = 2.0 x 100 mA) Drain Efficiency η 55 65 — % (VDD = 28 Vdc, out = 200 W, f = 225 MHzDQI = 2.0 x 100 mA) Electrical Ruggedness ψ (V = 28 Vdc, P = 200 W, f = 225 MHz, I = 2.0 x 100 mA, No Degradation in Output Power
in „Dimensionierung eines Kühlkörpers für HF-Modul“ · HF, Funk und Felder ·
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PDF
sct2750ny-e.pdf
- 100 nA Gate - Source leakage current IGSS- VGS= 6V, V DS= 0V - - -100 nA Gate threshold voltage V GS (th) VDS= V GSI D 0.63mA 1.6 2.8 4.0 V *1 Limited only by maximum temperature allowed. *2 PW 10s,
in „"Leiterbahn-Sicherung" erstezen - was würdet ihr tun?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DT60-6111B.pdf
: 12 bit Multifunktionseingang: 1x Laser aus 1) 2) Schaltausgang (max. Ausgangsstrom) : : 1 x NPN (100 mA) 1) 2) Ausgang Q kurzschlussgeschützt NPN: HIGH = ≤ 2 ∕ LOW = U V Mechanik/Elektrik 1) Versorgungsspann2)g Uv : DC 11 V ... 30 V Restwelligkeit : ≤ 5 Vss 3) Leistungsaufnahme : ≤ 3 W Aufwärmzeit:
in „Laser Distanzsensor mit digitalem Ausgang“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BFR93.pdf
Parameter Test condition Symbol Min Typ. Max Unit Collector-emitter cut-off currCEt= 20 V, BE = 0 CES 100 µA Collector-base cut-off currentCB = 10 V,EI = 0 CBO 100 nA Emitter-base cut-off current V = 2 V, I = 0 I 10 µA EB C EBO Collector-emitter breakdown IC= 1 mA, B = 0 V(BR)CEO 12 V voltage Collector-emitter
in „Suche Vergleichstyp für 2SC9018 in SMD“ · HF, Funk und Felder ·
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PDF
fs18hd.pdf
value registered by the external Pt100 sensor (T Pt100 instead of the temperature from the circulator (T ). T • Determine the difference temperature and store the value as correcting factor for Atc2. (example: ΔT = T - T Pt100= -1.2 °C)
in „Kältekreislauf, komischer Regeleffekt?“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
MRF89XAM8A.pdf
used L6 10 nH Inductor, Ceramic, ±5%, SMT 0402 Johanson Technology L-07C10NJV6T R1 1 Ω Resistor, 1%, ±100 ppm/ C, SMT 0402 Vishay/Dale CRCW04021R00FKE D 0 R2 100K Ω Resistor, 5%, ±100 ppm/ C, SMT 0402 Yageo RC0402JR-07100KL R3 6.8K Ω Resistor, 1%, ±100 ppm/ C, SMT 0402 Yageo RC0402FR-076K8L U1 MRF89XA Transceiver
in „Was darf man von einer PCB-Antenne erwarten?“ · HF, Funk und Felder ·
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PDF
samsung_bn44-00264c.pdf
1KV 100pF BM802 BAS3550TO M 0 0 3 M 2 0.1uF 50V 0.1uF 50V F 5 B CN802S VCC 5 3 7 8 1 1 R ) 30 NC GND 6 JR818 DM803 DM804 RM823 2 + 2 + 2 +N 2 F CM809 29 GND FB 2 5 5 C RM816 NC 28 GND ! C V V 47KRF GND 0 0
in „Samsung LE40B579 einschalten nicht möglich“ · Mikrocontroller und Digitale Elektronik ·
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PDF
samsung_bn44-00264c.pdf
1KV 100pF BM802 BAS3550TO M 0 0 3 M 2 0.1uF 50V 0.1uF 50V F 5 B CN802S VCC 5 3 7 8 1 1 R ) 30 NC GND 6 JR818 DM803 DM804 RM823 2 + 2 + 2 +N 2 F CM809 29 GND FB 2 5 5 C RM816 NC 28 GND ! C V V 47KRF GND 0 0
in „Samsung Schaltnetzteil Defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
bq25504.pdf
VSTOR voltage = 1.8V, 3.0V or 5.5V; VBAT_OV = 5.5V and measurement taken between MPPT measurements 100 100 I = 10µA I = 100µA 90 IN 90 IN 80 80 70 ) ) 70 ( 60 ( 60 y 50 y n n 50 c 40 c f 30 f 40 E E 20 30 VSTOR = 1.8V 20 VSTOR = 3.3 V 10 0 VSTOR = 3V 10 VSTOR = 1.8 V VSTOR = 5.5V VSTOR = 5.5 V −10 0
in „CJMCU-25504 Jumper setzen“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
par.txt
; J4;6;1;1;1;0;0;0;Auto Reset GSM;Auto Reset NEIN;Auto Reset JA; K1;2;30;5;100;5;%;30;0;0;0;Kessel Leistungsbrand min. Leistung; K2;2;40;1;100;1;\'b0C;40;0;0;0;Kessel Mindesttemperatur; K3;2;70;1;100;1;\'b0C;70;0;0;0;Kessel Maximaltemperatur; K4;2;70;1;100;1;\'b0C;70;0;0;0;Kessel
in „Hargassner Pelletheizung Betriebsdatenerfassung“ · Haus & Smart Home ·
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PDF
TPS4H000.pdf
µm Cu. 600 mm thermal pad copper area. 7.2 ESD Ratings VALUE UNIT Human-body model (HBM), per AEC Q100-002(1) All pins ±4000 V(ESD) Electrostatic discharge All pins ±750 V Charged-device model (CDM), per AEC Q100-011 Corner pins (1, 8, 9, and ±750 16) (1) AEC Q100-002 indicates that HBM stressing shall
in „Highside-Switch gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
RFM22_Config.c
; //My_ID; //RFM22_Register._0x45_Header_Enable1 = 0xFF; // 0x47r // 0x48r // 0x49r // 0x4Ar // 0x4Br recieved packet length // 0x4C reserved // 0x4D reserved // 0x4E reserved // 0x4F reserved RFM22_Register._0x56_Modem_Test = 0x01; // ?? RFM22_Register._0x5A_VCO_Current_Trimm = 0x7F; // see Errata #9
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Datei
u8x8_d_uc1601.c
sck_clock_hz = */ 2000000UL, /* */ /* spi_mode = */ 0, /* active high, rising edge */ /* i2c_bus_clock_100kHz = */ 1, /* data_setup_time_ns = */ 60, /* uc1601 datasheet, page 43 */ /* write_pulse_width_ns = */ 80, /* uc1601 datasheet, page 43 */ /* tile_width = */ 17, /* tile_hight = */ 3, /* default_x_offset
in „Pollin LCD SANBUM LBL-11337“ · Mikrocontroller und Digitale Elektronik ·
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Datei
kk_sd_cmd25_write.h
&Fil, fileheader_offset);//start pixel 54+12 for(i=0;i<240;i++){ res = f_read(&Fil, buffer, 2560, &br); // Read a chunk of src file lcd_streamwrite_px4(buffer, 2560); } lcd_streamwrite_stop(); res = f_close(&Fil); } void zl_Dateiname_plus1(void){ u8 offset=0,zl; zl=100*(Dateiname[5]-48)+10*(Dateiname[6]-48)+(Dateiname[7]-48+1); if (zl<100)offset++; if (zl<10)offset++; uitoa(zl,Dateiname+5+offset,10); Dateiname[8]='.'; } void write_Bmpheader_to_buffer(int16_t px,int16_t py) { //nur RGB565 + no padding: px%4==0 //problem mit offset, ausgleich
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PDF
131-ripe2-2.pdf
R2-A E 0G E 10 0 L2 device: per customer queues: 10 MSAN,OLT,Eth Swtch g best-effort t i audio per 100GE: o 10GE h video R c (250VLANs) a reserved Max250cust. per10GbElink t 10 best-effort 0G audio E video 100 ServiceGuaranteeArchitecture GE reserved Configureperqueue: R2-B -Delay -Drop • IPtraffic shaped
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Datei
main.c
detector, wake-up timer, crystal oscillator load capacitance, baseband filter bandwidth, clock output // 100 (CMD) 01 (433 MHz) 00 (Low Batteery Det Off) 1 (Crystal On During Sleep Mode) 1000 (x3-x0 Crystal Load Cap) 101 (Baseband Bandwidth) 0 (dc) uint16_t configSetCmd = 0b1000100110001010; // 2: Frequency
in „RF01 und RF02 433 MHz Funkmodul“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „Zwei Soft-I2C parallel, Code von P.Fleury“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „TLC59116 ansteuern mit C“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „Wii Nunchuk + I2C + AtMega88“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „[erledigt] Frage zur TWI libary von Peter Fleury i2c_start_wait()“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „fleurys I2C + UART lib halten in Kombination die Hauptschleife an!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „I2C, Mega32, Pollin-LCD“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „Wer könnte mir helfen (I2C)?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Drehzahl.bas
benötig werden $regfile = "attiny85.dat" $crystal = 8000000 $hwstack = 50 $swstack = 50 $framesize = 100 Dim Dataregister(18) As Byte At &HA0 Overlay Dim Takt As Word At &H68 Overlay Dim Pulse As Word At &H66 Overlay Dim Timer_ovf As Byte At &H65 Overlay Dim D As Word At &H6A Overlay Dim Drehzahl As Integer
in „Drehzahlmesser für Modellmotor“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „LCD an Arduino Nano via I2C“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „I2C (TWI) : Wie lang wartezeit zwischen lese- und schreibzyklus?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
twimaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „I2C Übertragungsproblem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
i2c_readNak(); // read one byte from EEPROM i2c_stop(); for(;;); } @endcode */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „Timerberechnung die hunderste“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „Taster Entprellung am Attiny 841 und Auswertung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
endcode */ #endif /* DOXYGEN */ /**@{*/ #ifndef F_CPU #define F_CPU 16000000 #endif #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „Probleme mit meinem LCD-Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2cmaster.h
one byte from EEPROM i2c_stop(); for(;;); } @endcode */ #endif /* DOXYGEN */ /**@{*/ #if (__GNUC__ * 100 + __GNUC_MINOR__) < 304 #error "This library requires AVR-GCC 3.4 or later, update to newer AVR-GCC compiler !" #endif #include <avr/io.h> /** defines the data direction (reading from I2C device) in
in „Software I2C -> Frequenz ändern“ · Mikrocontroller und Digitale Elektronik ·