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LCD-Controller_ST7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „DOG-M mit ATmega8 in Assembler ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „Initialisierungsfolge fuer EA DOGM 163 SPI 3.3V“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „DOG-M Display über SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „LCD " ° " Zeichen aus Zeichensatz anzeigen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „Controller ST7036“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST7036-V1.7.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „Newbie Probleme bei LCD DOGM Initialisierung in Assembler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
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st7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „STK500 und LCD (ST7036) Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST7036.pdf
1927 -378 108 SEG[47] -218 -378 148 SEG[87] 1982 -378 109 SEG[48] -163 -378 149 SEG[88] 2037 -378 110 SEG[49] -108 -378 150 SEG[89] 2092 -378 111 SEG[50] -53 -378 151 SEG[90] 2147 -378 112 SEG[51] 2 -378 152 SEG[91] 2202 -378 113 SEG[52] 57 -378 153 SEG[92] 2518 -350 114 SEG[53] 112 -378 154 SEG[93]
in „i2C TWI Modus - ST7036 - DOGM DOGM162 DOGM081 EA DOGM163, ist das Möglich ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Sinuswechselrichter.pdf
Hardwareanalyse 3.5.2 Watchdog und Brown-Out-Detection +5V R111 R109 100k 100k +12V +12V R114 R113 R110 100k 5 8 IC11 10k 20k GND +5V GND u 7 +5V 6 . 6 C 0 4 LM393 2N2907 C57 GND R120 GND R121 0.022uF C77 F 2N2907 1.0uF 1 4 2M 10k RESET R115 0 C Q3 8-BIT-SINE-REF7 2N2222 47k D34 1N4148 GND Abbildung 15
in „Wechselrichter Spannung und Frequenz steuerbar für Teichpumpe“ · Haus & Smart Home ·
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haupt.pdf
aufweisen. Die Autokorrelationsfunktion ’ (m) ergibt sic˜ fur eine periodische Folge s(n) wenn nur ss die Grundperiode betrachtet wird, siehe z.B. [199]: 5.3 Verwendete Codes 81 NX1 ’ssm) = s(n) s(n + m) (5.1) n=0 Die zugeh˜rige Kreuzkorrelationsfunktion zweier Folgen s(n) und g(n) ergibt sich zu, z.B
in „Verstaerker mit inverser charakteristik“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ZBook_G8_Service_Manual.pdf
Peripheral Component Interconnect Express (PCIe)-3×4, Non-Volatile Memory Express (NVMe), Secure Seal (SS) solid-state drive with three-layer cell (TLC) ● 256 GB, M.2 2280, PCIe, NVMe, self-encrypted (SED) solid-state drive with TLC OPAL2 Solid-state drive: ● 2 TB, 2280, PCIe-3×4, NVMe, SS solid-state drive
in „Z-Book G8 -> Thunderbold Anschluss führt immer Spannung“ · PC Hard- und Software ·
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PDF
vig_2008.pdf
80 th 2/ e ( .04 ra n D -90 d o S m P v i ) -100 b ra c tio 5 300 1K 2K B n F req u e n cy (H z) d -110 s h ( o w ) -120 L ( n ( f) w Typical aircraft th 45 dB L -130 o u random vibration t v ib r envelope -140 at io n -150 -160 5 300 1K 2K 4-74 Acceleration Sensitivity vs. Vibration Frequency 10-8 g
in „Was ist drin im Quarzoszillator?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AD5415.pdf
–80 –100 –90 2 2 –100 0 - 0 0.5 1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 6 –120 1 4 50 60 70 80 90 100 110 120 130 140 150 4 FREQUENCY (MHz) 0 FREQUENCY (MHz) 0 Figure25.WidebandSFDR,f OUT=500kHz,Clock=10MHz Figure28.Narrow-BandSFDR,f OUT=100kHz,MCLK=25MHz 0 0 TA= 25°C TA 25°C VDD = 5V –10 VDD = 3V –10 AMP
in „D/A mit Stromausgang“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RFM24W.PDF
Sensitivity P (BER < 0.1%) — –126 — dBm RX-_2 (500 bps, GFSK, 2T =.5, Δf =±250Hz) P (BER < 0.1%) — –110 — dBm RX-_40 (40 kbps, GFSK, 2T =.5, Δf = ±20Hz) P (BER < 0.1%) — –106 — dBm RX-_100 (100 kbps, GFSK, BT =5, Δf = ±50Hz)2 PRX-_125 (BER < 0.1%) — –103 — dBm (125 kbps, GFSK, BT = 0.5, Δf = ±62.5 kHz
in „Small Antenna Design bei 433 MHz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
90000897.pdf
Wi-ME 9210HardwareReferenceManual 40 Modulespecifications Data rates(bps) Data rates (bps) 50, 75, 110, 134, 150, 200, 300, 600, 1200, 1800, 2400, 4800, 9600, 14400,19200, 28800, 38400, 57600, 115200, 230400, 460800 (Digi Connect ME 9210 only), 921600 (Digi Connect ME 9210 only) Flow control options
in „[V] WEITERE gebrauchte DIGI-Connect-ME LAN-Seriell Module (10€/St.)“ · Markt ·
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PDF
asus-p701-unlocked.pdf
O For Keyboard interface 109 GPXID0 BATSEL_2P# O Lo:2P~3P 53 KSO14 KSO14 O For Keyboard interface 110 GPXID1 N.C O Reserved 54 KSO15 KSO15 O For Keyboard interface 112 GPXID2 THRO_CPU O Active if Battery over specre is 55 KSI0 KSI0 I For Keyboard interface 114 GPXID3 SUSB# I Pull Down 100K ohm to GND
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datasheet.pdf
..........................................................153 12.3.7 TFIFO (Test FIFO Mode) Mode = 110.................................................................................154 12.3.8 CNFGA (Configuration Register A) Mode = 111................................................................
in „(Windows/Winbond) CPU Temperatur auslesen“ · Mikrocontroller und Digitale Elektronik ·
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ds1308.pdf
1, 8 140 1 1 OUT = 0mA 1 D 350 D D ) ) 700 A 130 +85°C n +85°C n ( T 300 T N 120 E E 600 +85°C E U 110 U 250 U C Y Y 500 L E E +25°C P 100 +25°C T T S B 200 B 400 90 +25°C -40°C -40°C 150 300 -40°C 80 70 100 200 3.0 3.5 4.0 4.5 5.0 5.5 1.5 2.5 3.5 4.5 5.5 1.5 2.5 3.5 4.5 5.5 SUPPLY VOLTAGE (V) BATTERY
in „[V] kleines Konvolut ältere DIL / DIP ICs (8€)“ · Markt ·
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PDF
Seiten_aus_IRFD_FINAL_de.pdf
with the identity sin2 <f+ cos2 <f= 1. The final steady state current is I t - Vsin (wt+ <f» (2.1-18) ss() - (w2£2 + R2)1/2 These results are interpreted by allowing individual components to become small. As L vanishes, Issbecomes the ratio of the ac voltage to the resistance, Ohm's law. Current is in phase
in „Ist ein Filter immer ein Delay dass mit Phasenauslöschung funktioniert ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AVR-ASM-Tutorial_16_05_08_v3.pdf
SPI-Master Modus immer ein Eingang ist! Es kann aber als allgemeiner Eingang verwendet werden. Der AVR-Pin SS wird sinnvollerweise als RCK benutzt, da er sowieso als Ausgang geschaltet werden muss, sonst gibt es böse Überaschungen (siehe Datenblatt "SS Pin Functionality"). Dieser sollte mit einem Widerstand
in „AVR-ASM-Tutorial: PDF 16.5.08“ · www.mikrocontroller.net ·
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PDF
m_mops386a_p389m115.pdf
47 Appendix B: BIOS Operation Kontron 21.3 Main Menu Feature Option Description System Time HH:MM:SS Set system time. Press <Enter> to move to MM or SS. System Date MM/DD/YYYY Set system date. Press <Enter> to move to DD or YYYY. Legacy Diskette A 360 kB, 5 … Select type of installed floppy disk drive
in „Kontron PC-104 MOPS386A board from Bender Unimet 1000 ST“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bq2085.pdf
SS (see Note 1) . . . . . . . . . . . . . . . . . . . DD.+ 0.3VV to V Operating free-air temperature range, T .A. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
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MC9S12DG128.pdf
PERP/ Disabledort P I/O, Interrupt, PPSP Channel 4 of PWM Port P I/O, Interrupt, PERP/ PP3 KWP3 PWM3 SS1 — VDDX PPSP Disabled Channel 3 of PWM, SS of SPI1 Port P I/O, Interrupt, PERP/ PP2 KWP2 PWM2 SCK1 — VDDX PPSP Disabled Channel 2 of PWM, SCK of SPI1 Port P I/O, Interrupt, PERP/ PP1 KWP1 PWM1 MOSI1
in „HCS12 CPU Disassembler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lt32a1.pdf
1M 1/10W 5% YAGEO ▯ R253 061G0603109 JW RST CHIP 1R 1/10W 5% WALSIN ▯ R203 061G06031100FT RST CHIP 110R 1/10W 1% ▯ R110 061G06031200FY RST CHIPR 120 OHM +-1% 1/10W YAGEO ▯ R151 061G06031200FY RST CHIPR 120 OHM +-1% 1/10W YAGEO ▯ R154 061G06031200FY RST CHIPR 120 OHM +-1% 1/10W YAGEO ▯ R774 061G06031201FY
in „Philips LCD TV kein Bild aber Ton [46PFL7655K/02]“ · Haus & Smart Home ·
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PDF
Datenblatt_Baseband_Processeor_for_Multiband_GSM-GPRS_Application_Skyworks_CX805-30.pdf
GND GND 108 VDD P PWR +3.3V 45 SR4IN I Itk NC 109 HINT (PB7) O It/Ot8 HB: HINT 46 PD7 I/O It/Ot2 NC 110 TESTP I Itpu NC 3-6 Conexant 102199B CX81801-7x/8x SmartV.XX Modem Data Sheet Table 3-1. CX81801 Modem 128-Pin TQFP Pin Signals for Parallel Interface (PARIF = High) (Continued) Pin Signal Label I/O
in „GSM-Modul (SIM908) nur analoge Ausgänge für Anruf?“ · HF, Funk und Felder ·
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PDF
TDA9983.pdf
brightness value for the G/Y channel 83h MAT_OI2_MSB 7 to 3 x W 0000 0* undefined 2 to 0 OFFSET_IN2[10:8] W 110* offset input 2: compensates the brightness value for the R/Cannel[1] 84h MAT_OI2_LSB 7 to 0 OFFSET_IN2[7:0] W 00h* 85h MAT_OI3_MSB 7 to 3 x W 0000 0* undefined 2 to 0 OFFSET_IN3[10:8] W 110* offset
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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PDF
364-57379-TDA9983B.pdf
brightness value for the G/Y channel 83h MAT_OI2_MSB 7 to 3 x W 0000 0* undefined 2 to 0 OFFSET_IN2[10:8] W 110* offset input 2: compensates the brightness value for the R/Cannel[1] 84h MAT_OI2_LSB 7 to 0 OFFSET_IN2[7:0] W 00h* 85h MAT_OI3_MSB 7 to 3 x W 0000 0* undefined 2 to 0 OFFSET_IN3[10:8] W 110* offset
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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PDF
fla-203.pdf
is in good working order. Display on FLA remote control and monitor P200 f (Hz) v (km/h) settings U ss (V) f (Hz) Required min max Required min max 4 200 200 195 205 7.2 7.0 7.4 8 400 400 393 407 14.4 14.1 14.7 16 1600 1600 1581 1619 57.6 56.9 58.3 32 6400 6400 6333 6467 230.4 227.9 232.8 Adapter cable
in „Kommunikation mit Leistungsprüfstand BOSCH FLA203“ · PC Hard- und Software ·
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PDF
MT6223C.pdf
001 one wait state 010 two wait state 011 three wait state 100 four wait state 101 five wait state 110 six wait state 111 seven wait state PSIZE Page/Burst Size for Page/Burst Mode Operation These bit positions describe the page/burst size that the Page/Burst Mode enabled device will behave. 0 8 byte
in „GSM-Modul (SIM908) nur analoge Ausgänge für Anruf?“ · HF, Funk und Felder ·
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PDF
W83627HF_datasheet.pdf
KDAT OVT# 105 62 KCLK VID4 106 61 VSB VID3 107 60 KBRST VID2 108 59 A20GATE VID1 109 58 KBLOCK# VID0 110 57 RIA# FANIO3 111 56 DCDA# FANIO2 112 54 SOUTA FANIO1 113 53 SINA FANPWM2C 115 W83627HF 52 DTRA# FANPWM1 116 51 RTSA# VSS 117 50 DSRA# BEEP 118 49 CTSA# MSI/GP20 119 48 VCC MSO/IRQIN0 120 47 STB# GPSA2
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PDF
AVR-ASM_Tutorial.pdf
SPI-Master Modus immer ein Eingang ist! Es kann aber als allgemeiner Eingang verwendet werden. Der AVR-Pin SS wird sinnvollerweise als RCK benutzt, da er sowieso als Ausgang geschaltet werden muss, sonst gibt es böse Überaschungen (siehe Datenblatt "SS Pin Functionality"). Dieser sollte mit einem Widerstand
in „AVR-Tutorial als PDF“ · Offtopic ·
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PDF
Assemblerbefehlavr.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
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PDF
AVR-Instuction-Set_doc0856.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „Registerdarstellung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DOC0856_INSTRUCTIONSET.PDF
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „Geschwindigkeit“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR-Instuction-Set_doc0856.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „AVR Studio Prgrammadressen merkwürdig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc0856.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd x Rr (UU) Z,C 2(1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd x Rr (SS) Z,C 2(1) (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd x Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← Rd x Rr<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← Rd x Rr<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with Unsigned R1:R0 ← Rd x Rr<<1 (SU) Z,C 2(1) DES K Data Encryption if (H = 0) then R15:R0← Encrypt(R15:R0, K) 1/2 else if (H = 1) then R15:R← Decrypt
in „Wie schnell ist euer uC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
instruction-set.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2(1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2(1) FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „LED Multiplex ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Befehlssatz_der_AVRs.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2(1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2(1) FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „Bascom: Config Com1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr_at90_befehlsatz.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2(1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2(1) FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „Rd Rr im indirekten Adressierungsmodus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INSTR_SET.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd x Rr (UU) Z,C 2(1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd x Rr (SS) Z,C 2(1) (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd x Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← Rd x Rr<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← Rd x Rr<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with Unsigned R1:R0 ← Rd x Rr<<1 (SU) Z,C 2(1) DES K Data Encryption if (H = 0) then R15:R0← Encrypt(R15:R0, K) 1/2 else if (H = 1) then R15:R← Decrypt
in „Schritt für Schritt zum Programierer!“ · Mikrocontroller und Digitale Elektronik ·
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INSTR_SET.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd x Rr (UU) Z,C 2(1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd x Rr (SS) Z,C 2(1) (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd x Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← Rd x Rr<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← Rd x Rr<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with Unsigned R1:R0 ← Rd x Rr<<1 (SU) Z,C 2(1) DES K Data Encryption if (H = 0) then R15:R0← Encrypt(R15:R0, K) 1/2 else if (H = 1) then R15:R← Decrypt
in „Maschinensprache für ATMEL“ · Mikrocontroller und Digitale Elektronik ·
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DOC0856_INSTRUCTIONSET.PDF
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „erstes ASM Programm.wo ist der Fehler?“ · Mikrocontroller und Digitale Elektronik ·
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AVR_Instruction_Set.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „AVR, Assemblerbefehle“ · Mikrocontroller und Digitale Elektronik ·
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AVR_Instruction_Set__doc0856.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd x Rr (UU) Z,C 2(1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd x Rr (SS) Z,C 2(1) (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd x Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← Rd x Rr<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← Rd x Rr<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with Unsigned R1:R0 ← Rd x Rr<<1 (SU) Z,C 2(1) DES K Data Encryption if (H = 0) then R15:R0← Encrypt(R15:R0, K) 1/2 else if (H = 1) then R15:R← Decrypt
in „Benötigte Taktzyklen“ · Mikrocontroller und Digitale Elektronik ·
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avr_instruction_set.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd x Rr (UU) Z,C 2(1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd x Rr (SS) Z,C 2(1) (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd x Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← Rd x Rr<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← Rd x Rr<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with Unsigned R1:R0 ← Rd x Rr<<1 (SU) Z,C 2(1) DES K Data Encryption if (H = 0) then R15:R0← Encrypt(R15:R0, K) 1/2 else if (H = 1) then R15:R← Decrypt
in „HEX Code Tabelle“ · Mikrocontroller und Digitale Elektronik ·
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AVR_Instruction_Set_doc0856.pdf
Rd,Rr Multiply Unsigned R1:R0 ← Rd × Rr (UU) Z,C 2 (1) MULS Rd,Rr Multiply Signed R1:R0 ← Rd × Rr (SS) Z,C 2 (1) MULSU Rd,Rr Multiply Signed with Unsigned R1:R0 ← Rd × Rr (SU) Z,C 2 (1) FMUL Rd,Rr Fractional Multiply Unsigned R1:R0 ← (Rd × Rr)<<1 (UU) Z,C 2 FMULS Rd,Rr Fractional Multiply Signed R1:R0 ← (Rd × Rr)<<1 (SS) Z,C 2(1) FMULSU Rd,Rr Fractional Multiply Signed with R1:R0 ← (Rd × Rr)<<1 (SU) Z,C 2(1) Unsigned Branch Instructions RJMP k Relative Jump PC ← PC + k + 1 None 2 IJMP Indirect Jump to (Z) PC(15:0) ←
in „rechnen in Assembler mit AVR“ · Mikrocontroller und Digitale Elektronik ·
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AIO486.PDF
Modular BIOS POST 109 6.2.1 POST-Signalton 109 6.2.2 POST-Meldungen 109 6.2.3 POST-Fehlermeldungen 110 6.2.4 POST-Codes 113 6.3 Award PowerBIOS POST 116 6.3.1 Fehlermeldungen durch Signaltöne 116 6.3.2 Fehlermeldungen auf dem Bildschirm 117 6.3.3 POST-Codes 120 6.4 SVGA-BIOS Aufrufe (INT 10h) 122 6.4.1
in „AIO486 CPU-Board“ · Offtopic ·
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AIO486.PDF
Modular BIOS POST 109 6.2.1 POST-Signalton 109 6.2.2 POST-Meldungen 109 6.2.3 POST-Fehlermeldungen 110 6.2.4 POST-Codes 113 6.3 Award PowerBIOS POST 116 6.3.1 Fehlermeldungen durch Signaltöne 116 6.3.2 Fehlermeldungen auf dem Bildschirm 117 6.3.3 POST-Codes 120 6.4 SVGA-BIOS Aufrufe (INT 10h) 122 6.4.1
in „AIO486 CPU-Board“ · Offtopic ·
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S1D13504_MF1072-04.pdf
Pin # Driver Description F00A, F01A F02A COREV DD P 33, 97 39, 111 P Core VDD IOV DD P 14, 46, 83, 110 16, 52, 93, 1P4 IO VDD V SS P 15, 32, 51, 617, 34, 57, 78 P Common V SS 74, 87, 96 10484, 97, 106 109 118, 123 S1D13504 SERIES HARDWARE FUNCTIONAL EPSON 1-15 SPECIFICATION (X19A-A-002-17) 5: PIN OUT
in „[V] Displaycontroller Epson SED1354 (800*600)“ · Markt ·