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marantz-sr8200-9200-service-manual.pdf
5 OE Output Enable N.C. 10 DQ 12 39 WE Write Enable WE 11 38 DQ 4 RESET 12 MBM29LV400TC/MBM29LV400BC 37 VCC RY/BY Ready/Busy Output N.C. 13 Standard Pinout 36 DQ 11 N.C. 14 DQ 3 35 RESET Hardware Reset Pin/Temporary Sector RY/BY 15 34 DQ 10 Unprotection N.C. 16 33 DQ 2 A17 17 32 DQ 9 BYTE Selects 8-
in „MARANZ RC3200 datenkabel belegung gesucht“ · Mikrocontroller und Digitale Elektronik ·
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MC9S08MM128RM.pdf
– INC ,X M (M) + $01 IX 7C 4 rfwp INC oprx8,SP M (M) + $01 SP1 9E 6C ff 6 prfwpp JMP opr8a DIR BC dd 3 ppp JMP opr16a Jump EXT CC hh ll 4 pppp JMP oprx16,X IX2 DC ee ff 4 pppp – 1 1 – – – – – JMP oprx8,X PC Jump Address IX1 EC ff 3 ppp JMP ,X IX FC 3 ppp JSR opr8a Jump to Subroutine DIR BD dd 5
in „Freescale s08mm128 und USB“ · Mikrocontroller und Digitale Elektronik ·
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SAM3X.pdf
0x69000000 13 0x400E1400 43 Reserved 0x400B8000 PIOD CAN1 0x70000000 14 0x400E1600 44 CS SDRAMC 0x400BC000 PIOE TRNG 0x80000000 15 0x400E1800 41 Reserved 0x400C0000 PIOF ADC 0x9FFFFFFF 16 0x400E1A00 37 0x400C4000 RSTC DMAC 1 0x400E1A10 39 0x400C8000 SUPC DACC 0x400E1A30 38 0x400D0000 RTT 3 0x400E1A50 Reserved
in „ARM SAM3x Zähleingang“ · Mikrocontroller und Digitale Elektronik ·
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SAM3X.pdf
0x69000000 13 0x400E1400 43 Reserved 0x400B8000 PIOD CAN1 0x70000000 14 0x400E1600 44 CS SDRAMC 0x400BC000 PIOE TRNG 0x80000000 15 0x400E1800 41 Reserved 0x400C0000 PIOF ADC 0x9FFFFFFF 16 0x400E1A00 37 0x400C4000 RSTC DMAC 1 0x400E1A10 39 0x400C8000 SUPC DACC 0x400E1A30 38 0x400D0000 RTT 3 0x400E1A50 Reserved
in „Arduino Due: Programmierung ohne 16U2“ · Mikrocontroller und Digitale Elektronik ·
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PIC32MX3XX_Data_Sheet.pdf
value BF88_10B8 IPC2SET 31:0 Write sets the selected bits in IPC2, read yields undefined value BF88_10BC IPC2INV 31:0 Write inverts the selected bits in IPC2, read yields undefined value © 2008 Microchip Technology Inc. Preliminary DS61143E-page 127 PIC32MX3XX/4XX TABLE 8-1: INTERRUPT SFR SUMMARY (CONTINUED
in „PIC32 und Assembler“ · Mikrocontroller und Digitale Elektronik ·
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STC12C2052AD-english.pdf
with flexible ISP/IAP capability • On-chip 256 byte RAM U • Pexternal interrupts).de(can be wakeM up bC any interrupt) and power-down mode(can be waked up by • Code protection for flash memory access • Four 16-bit timer/counter, be compatible with Timer0/Timer1 of standard 8051, 2-channel PCA can be available
in „Uhrzenbausatz mit At89C2051 funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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HCS12COREUG.pdf
. . 223 Figure 13-1 Breakpoint Block Diagram. . . . . . . . . . . . . . . . . . . . . . . . . . . 237 Figure 13-2 Breakpoint Register Summary. . . . . . . . . . . . . . . . . . . . . . . . 238 Figure 13-3 Breakpoint Control Register 0 (BKPCT0) . . . . . . . . . . . . . . . 239 Figure 13-4 Breakpoint
in „HCS12 CPU Disassembler“ · Mikrocontroller und Digitale Elektronik ·
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STC15-English.pdf
Watch-Dog-Timer Reset....................................................................................237 2.2.7 Reset Caused by Illegal use of ProgramAddress..............................................241 2.2.8 Warm Boot and Cold Boot Reset..............................................................
in „Testbericht Elektronische Last“ · Analoge Elektronik und Schaltungstechnik ·
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CPU12RM.pdf
Object Code HCS12 M68HC12 CPD #opr16i IMM 8C jj kk PO OP CPD opr8a DIR 9C dd RPf RfP CPD opr16a EXT BC hh ll RPO ROP CPD oprx0_xysp IDX AC xb RPf RfP CPD oprx9,xysp IDX1 AC xb ff RPO RPO CPD oprx16,xysp IDX2 AC xb ee ff fRPP fRPP CPD [D,xysp] [D,IDX] AC xb fIfRRf fIfRfP CPD [oprx16,xysp] [IDX2] AC xb
in „HCS12 CPU Disassembler“ · Mikrocontroller und Digitale Elektronik ·
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atmega2560_2561.pdf
assembly and one C function that are equal in functionality. The examples assume polling (no interrupts 237 2549I–AVR–07/06 enabled). The baud rate is given as a function parameter. For the assembly code, the baud rate parameter is assumed to be stored in the r17:r16 registers. Assembly Code Example (1) USART_Init
in „Ethernet Buchse“ · Mikrocontroller und Digitale Elektronik ·
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ATMega164_324_644_1284pa.pdf
” on page 216 for calculating bit rates. 21.9.2 TWCR – TWI Control Register Bit 7 6 5 4 3 2 1 0 (0xBC) TWINT TWEA TWSTA TWSTO TWWC TWEN – TWIE TWCR Read/Write R/W R/W R/W R/W R R/W R R/W Initial Value 0 0 0 0 0 0 0 0 The TWCR is used to control the operation of the TWI. It is used to enable the TWI,
in „Hilfe bei AD-Wandler!“ · Mikrocontroller und Digitale Elektronik ·
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MEGA48V_88V_168V.pdf
” on page 216 for calculating bit rates. 22.9.2 TWCR – TWI control register Bit 7 6 5 4 3 2 1 0 (0xBC) TWINT TWEA TWSTA TWSTO TWWC TWEN – TWIE TWCR Read/write R/W R/W R/W R/W R R/W R R/W Initial value 0 0 0 0 0 0 0 0 The TWCR is used to control the operation of the TWI. It is used to enable the TWI,
in „analog comparator interrupt probleme mit atmegas“ · Mikrocontroller und Digitale Elektronik ·
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AtMega644P_Datasheet.pdf
” on page 206 for calculating bit rates. 19.9.2 TWCR – TWI Control Register Bit 7 6 5 4 3 2 1 0 (0xBC) TWINT TWEA TWSTA TWSTO TWWC TWEN – TWIE TWCR Read/Write R/W R/W R/W R/W R R/W R R/W Initial Value 0 0 0 0 0 0 0 0 The TWCR is used to control the operation of the TWI. It is used to enable the TWI,
in „Alkoholmessgerät programmieren“ · Mikrocontroller und Digitale Elektronik ·
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Datasheet_ATmega1281_doc2549.pdf
MSPI mode is identical to normal USART operation. See “UDRn – USART I/O Data Register n” on page 223. 237 2549L–AVR–08/07 23.6.2 UCSRnA – USART MSPIM Control and Status Register n A Bit 7 6 5 4 3 2 1 0 RXCn TXCn UDREn - - - - - UCSRnA Read/Write R/W R/W R/W R R R R R Initial Value 0 0 0 0 0 1 1 0 Bit 7
in „LM73 über TWI/I2C mit Atmega1281 auslesen“ · Mikrocontroller und Digitale Elektronik ·
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atmega644.pdf
” on page 206 for calculating bit rates. 19.9.2 TWCR – TWI Control Register Bit 7 6 5 4 3 2 1 0 (0xBC) TWINT TWEA TWSTA TWSTO TWWC TWEN – TWIE TWCR Read/Write R/W R/W R/W R/W R R/W R R/W Initial Value 0 0 0 0 0 0 0 0 The TWCR is used to control the operation of the TWI. It is used to enable the TWI,
in „SPI-Kommunikation Atmega644 - ADS1118“ · Mikrocontroller und Digitale Elektronik ·
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MC9S12XF512.pdf
2 of 4) Vector Address 1 XGATE 2 Interrupt Source CCR Local Enable Channel ID Mask Vector base + $BC $5E Reserved Vector base + $BA $5D FLASH Fault Detect I bit FCNFG2 (FDIE) Vector base + $B8 $5C FLASH I bit FCNFG (CCIE, CBEIE) Vector base + $B6 $5B CAN wake-up I bit CANRIER (WUPIE) Vector base + $
in „Wie oft kann ein µC programmiert werden?“ · Mikrocontroller und Digitale Elektronik ·
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MC9S12XF512.pdf
2 of 4) Vector Address 1 XGATE 2 Interrupt Source CCR Local Enable Channel ID Mask Vector base + $BC $5E Reserved Vector base + $BA $5D FLASH Fault Detect I bit FCNFG2 (FDIE) Vector base + $B8 $5C FLASH I bit FCNFG (CCIE, CBEIE) Vector base + $B6 $5B CAN wake-up I bit CANRIER (WUPIE) Vector base + $
in „Probleme beim Ansteuern eines EEPROM über SPI“ · Mikrocontroller und Digitale Elektronik ·
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TC1797_UM_v1.1.pdf
. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 12-4 [1] 12.3.7 Byte Controls, BC[3:0] . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 12-4 [1] 12.3.8 Burst Flash Clock Output/Input, BFCLKO/BFCLKI . . . . . . . . . . . . 12-5 [1] 12.3.9 Wait Input, WAIT . . . .
in „TC1797 - keine Datenblätter?“ · Mikrocontroller und Digitale Elektronik ·
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HBD855-D_Thyristor_Theory.pdf
MAGNITUDE (I TM) V C106F DC 26 26 Of the parameters that were investigated, forward−cur- DX 2N6240 BC 26.2 26 rent magnitude and the di/dt rate have the strongest effect MCR100−6 FG 14.4 14.4 on tq. Varying theTM magnitude over a realistic range of 2N5064 DG 31 31.7 I conditions can change the measured
in „Ansteuerschaltung Thyristor und Triac“ · Analoge Elektronik und Schaltungstechnik ·
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ATmega1284P_128KByte.pdf
” on page 217 for calculating bit rates. 21.9.2 TWCR – TWI Control Register Bit 7 6 5 4 3 2 1 0 (0xBC) TWINT TWEA TWSTA TWSTO TWWC TWEN – TWIE TWCR Read/Write R/W R/W R/W R/W R R/W R R/W Initial Value 0 0 0 0 0 0 0 0 The TWCR is used to control the operation of the TWI. It is used to enable the TWI,
in „ATmega1284P versus ohne P“ · Mikrocontroller und Digitale Elektronik ·