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Datei
tfrec-d-dump.txt
2aa6 0 554c 0 aa98 0 5530 0 aa60 0 54c0 0 a980 0 5300 0 a600 0 4c00 0 9800 0 3000 0 6000 0 c000 0 8000 0 0000 1 d156 0 a2ad 0 455a 0 8ab4 0 1568 0 2ad0 0 55a0 0 ab40 0 5680 0 ad00 0 5a00 0 b400 0 6800 0 d000 0 a000 0 4000 0 8000 0 0000 1 0000 0 0001 1 0000 1 0002 0 0005 1 0001 0 0003 1 000a 1 0006 0
in „SDR-Dekoder für TFA KlimaLogg Pro/IT+ Temperatursensoren“ · Projekte & Code ·
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Datei
file1.TXT
100E3000830E0FD0870E0DD0860E0BD0850E09D0F5 :100E4000840E07D0800E05D0810E03D0880E01D00D :100E5000890E096E26D00950800AD8B4E3D7010A5A :100E6000D8B4E2D7030AD8B4E1D7010AD8B4E0D79E :100E7000070AD8B4DFD7010AD8B4DED7030AD8B43A :100E8000DDD7010AD8B4DCD70F0AD8B4DBD7010A02 :100E9000D8B4DAD7030AD8B4D9D7010AD8B4D8D786 :100EA00000D009C003F00BC004F00AC005F0400EEA
in „Trying to understand .hex files obtained after compiling a XC8 MPLAB X project.“ · Mikrocontroller und Digitale Elektronik ·
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Datei
asm.txt
HAL_RCC_GET_SYSCLK_SOURCE() == RCC_CFGR_SWS_PLL) && (__HAL_RCC_GET_PLL_OSCSOURCE() == RCC_PLLSOURCE_HSE))) 8000ad0: 4b2f ldr r3, [pc, #188] ; (8000b90 <HAL_RCC_OscConfig+0x2a8>) 8000ad2: 689b ldr r3, [r3, #8] 8000ad4: f003 030c and.w r3, r3, #12 { /* Check the parameters */ assert_param(IS_RCC_HSE(RCC_OscInitStruct
in „NUCLEO-L432KC Blinky Projekt mit 11kB Speicherverbrauch“ · Mikrocontroller und Digitale Elektronik ·
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Datei
backtrace_prj-mgr.txt
7f5736a77000 Deferred comdlg32<elf> \-PE 7f5736790000- 7f5736a77000 \ comdlg32 ELF 7f5736a77000- 7f5736da8000 Deferred comctl32<elf> \-PE 7f5736a80000- 7f5736da8000 \ comctl32 ELF 7f5736da8000- 7f5736ff5000 Deferred usp10<elf> \-PE 7f5736db0000- 7f5736ff5000 \ usp10 ELF 7f5736ff5000- 7f57372a8000 Deferred gdiplus
in „Horizon EDA [War: Neues, halbfertiges Elektronik-CAD-Programm]“ · Projekte & Code ·
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Datei
file2.TXT
103640003ABE02D0F6D700D0D8903D363E363F364F :1036500040363750335C38503458395035583A502A :103660003658D8A00AD03750335E3850345A3950C3 :10367000355A3A50365A3D8000D0D8903A323932D5 :10368000383237323B2EE0D700D03C50D8B409D086 :10369000401E3F1E3E1E3D6C000E3E223F22402239 :1036A00000D03DC033F03EC034F03FC035F040C0E4
in „Trying to understand .hex files obtained after compiling a XC8 MPLAB X project.“ · Mikrocontroller und Digitale Elektronik ·
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Datei
objdump.txt
8000ac2: 4619 mov r1, r3 8000ac4: f008 fb6e bl 80091a4 <__aeabi_d2f> 8000ac8: 4603 mov r3, r0 } 8000aca: 4618 mov r0, r3 8000acc: f107 0708 add.w r7, r7, #8 8000ad0: 46bd mov sp, r7 8000ad2: bd80 pop {r7, pc} 8000ad4: f3af 8000 nop.w 8000ad8: 66666666 .word 0x66666666 8000adc: 40396666 .word 0x40396666 08000ae0 <gc_execute_line>: // Executes one line of 0-terminated G-Code. The line is assumed to contain only
in „STM32F4 HardFault Interrupt bei stdlib Funktionen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Artikel_Flashboard.PDF
11 TXD P0.4 35 AD4 AD4 6 15 A4 A4 6 A4 D1 12 AD1 R1 P3.2 12 34 AD5 AD5 7 14 A5 A5 5 13 AD2 INT0 P0.5 A5 D2 R6 27k D1 P3.3 13 INT1 P0.6 33 AD6 AD6 8 13 A6 A6 4 A6 RAM D3 15 AD3 k P3.4 14 T0 IC1 32 AD7 AD7 9 12 A7 A7 3
in „AT89C51AC2 ISP aber wie?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
SMY202.HEX.txt
206B40009102A6C800EFDA33C9F401EF8A3371FDA6C800EFCC33C9C800EF7C331725D7DBE7 :206B60002006C9D007EF70339102C79104C7F0A0A624C90100C9319DEFEF34C800C9289DE4 :206B8000EFE734C800C93C9DEFDF34C90100C93C9DEFD634BDFFA6C800EF8633C9A00FEFE1 :206BA0003633A024A6C800EF7833C800C95D9DEFB834C90100C95D9DEFAF34B1FFC7F0CCA8 :206BC0001CCC1EC42C1EC81CC90100C91C9CEF9934C90200C9289CEF9034B1EB24A3015AED
in „[V] Rohde und Schwarz SMY02 9kHz-2.080Gh Signal Generator“ · Markt ·
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Datei
terminal.txt
7e2a4000-7e395000 Deferred libx11.so.6 ELF 7e395000-7e3a3000 Deferred libxext.so.6 ELF 7e3a3000-7e3a8000 Deferred libxxf86vm.so.1 ELF 7e3a8000-7e3c0000 Deferred libice.so.6 ELF 7e3c0000-7e3c8000 Deferred libsm.so.6 ELF 7e3c9000-7e3d2000 Deferred libxcursor.so.1 ELF 7e3d2000-7e3d8000 Deferred libxrandr.so
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PDF
WLAN_Firmware_Spec_v5_1.pdf
period for the new IBSS (802.11h only) REPONSE Field Name Type Description CmdCode UINT16 CMD_802_11_AD_HOC_JOIN | 0x8000 Size UINT16 Number of bytes in command body SeqNum UINT16 Command sequence number, sent by the host Result UINT16 Result code To connect to an Ad-Hoc network: 1. Send a SNMP MIB command
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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Datei
adc.s
/ ADC .equ IOCON_PIO1_10, 0x4004406C .equ SYSAHBCLKCTRL, 0x40048080 .equ PDRUNCFG, 0x40048238 .equ AD0CR, 0x4001C000 .equ AD0GDR, 0x4001C004 .global main .align 2 .thumb_func main: // Diese Unterroutine macht die Lichter an // // zuerst die Richtung // GP IO 1 DIR (5001 8000) // 255 = Bits 0-7 LDR r0, =GPIO1DIR MOV r1, #0 STR r1, [r0] // GP IO 2 DIR (5002 8000) // 240 = Bits 4-7 LDR r0, =GPIO2DIR MOV r1, #240 STR r1, [r0] // GP IO 3 DIR (5003 8000) // 15 = Bits 0-3 auf OUTPUT LDR r0, =GPIO3DIR MOV r1, #15 STR r1, [r0] // Jetzt den ADC-Kram // evtl Schlafmodus
in „ADC bei LPC1343 auslesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
adc.s
/ ADC .equ IOCON_PIO1_10, 0x4004406C .equ SYSAHBCLKCTRL, 0x40048080 .equ PDRUNCFG, 0x40048238 .equ AD0CR, 0x4001C000 .equ AD0GDR, 0x4001C004 .global main .align 2 .thumb_func main: // Diese Unterroutine macht die Lichter an // // zuerst die Richtung // GP IO 1 DIR (5001 8000) // 255 = Bits 0-7 LDR r0, =GPIO1DIR MOV r1, #0 STR r1, [r0] // GP IO 2 DIR (5002 8000) // 240 = Bits 4-7 LDR r0, =GPIO2DIR MOV r1, #240 STR r1, [r0] // GP IO 3 DIR (5003 8000) // 15 = Bits 0-3 auf OUTPUT LDR r0, =GPIO3DIR MOV r1, #15 STR r1, [r0] // Jetzt den ADC-Kram // evtl Schlafmodus
in „ADC bei LPC1343 auslesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
robot-mit-cplusplus-anteilen-noheap-trotzdem-grosz.objdump.txt
0001 movt r0, #16385 ; 0x4001 8000ac4: f44f 4100 mov.w r1, #32768 ; 0x8000 8000ac8: f002 f850 bl 8002b6c <GPIO_ResetBits> 8000acc: f04f 0008 mov.w r0, #8 8000ad0: f44f 6140 mov.w r1, #3072 ; 0xc00 8000ad4: f2c4 0101 movt r1, #16385 ; 0x4001 8000ad8: f44f 7200 mov.w r2, #512 ; 0x200 8000adc: f000 f9de bl 8000e9c <GPIO_set_to_pushpull_output> 8000ae0: f44f 6040 mov.w r0, #3072 ; 0xc00 8000ae4: f2c4 0001 movt r0, #16385 ; 0x4001 8000ae8: f44f
in „ROM-Auslastung von C++-Programm reduzieren“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Lime_Gen_3_Motor_Controller_Readout_20kmh.c
--------------------------------- // Data declarations _UNKNOWN loc_800035A; // weak _UNKNOWN unk_8000AD8; // weak _UNKNOWN loc_8000B36; // weak _UNKNOWN locret_8000B52; // weak int dword_8000DA4 = 4294966115; // weak _UNKNOWN sub_8000DC8; // weak _WORD word_8002AD8[26] = { 61768, 59572, 56471, 52401
in „BLDC Controller mit STM32F103C8T6 Geschwindigkeitsbegrenzer in der .hex“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CN0276.pdf
temperature range. THIRD ORDER BUTTERWORTH LOW PASS FILTER 3.3V 5V 5V 5V V CC v(t) = A sinωt VDRIVEDV DD AV 1AD8692 1AD8397 DD 2 2 R1 RESOLVER S2 EXC θ v(t) 1AD8692 1AD8397 EXC 2 2 R2 S4 AD2S1210 VREF S1 S3 VREFOUT 2.5V 5V 5V 1 1 4AD8694 4AD8694 SIN SIN 1AD8694 1AD8694 SINLO 4 4 1 1 4AD8694 4AD8694 COS COS 1AD8694
in „Resolver converter Amplitude“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Fehlerhaft1.TXT
Bad eraseblock 2045 at 0x01ff4000 Bad eraseblock 2046 at 0x01ff8000 Creating 2 MTD partitions on "NAND 64MiB 3,3V 8-bit": 0x00000000-0x02000000 : "ROOT" 0x02000000-0x04000000 : "RESERVE" atmel_spi atmel_spi.0: Atmel SPI Controller at 0xfffc8000 (irq 12) mtd_dataflash
in „embedded Linux startet nicht mit bad-blocks (NAND)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mmb.vhd
RD\ -> AVR.RD\ -- A0-A7 -> CPLD.AL -- A8-A14 -> AVR.A8-A14 -- A15-A18 -> CPLD.AH -- IO0-IO7 -> AVR.AD0-AD7 -- AVR pinning -- WR\ -> CPLD.AVR_WR\ -- RD\ -> CPLD.AVR_RD\ -- ALE -> CPLD.AVR_ALE -- AD0-AD7 -> CPLD.AVR_AD -- A8-A15 -> CPLD.AVR_AH -- zwei memory mapped devices -- CPLD.CS(0) oder CPLD.CS(1)
in „AVR Ethernet Platine“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Firmware.txt
:100AD000FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF26 :100AE000FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF16 :100AF000FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF06 :100B0000FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF5 :100B1000FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFFE5
in „PPS5330 Labor-Netzteil hack“ · Mikrocontroller und Digitale Elektronik ·
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Datei
divtest.lst
8aa8: 30 41 ret 00008aaa <__divmodhi4>: 8aaa: 0d 43 clr r13 ; 8aac: 3c b0 00 80 bit #-32768,r12 ;#0x8000 8ab0: 03 28 jnc $+8 ;abs 0x8ab8 8ab2: 3c e3 inv r12 ; 8ab4: 1c 53 inc r12 ; 8ab6: 2d d2 bis #4, r13 ;r2 As==10 8ab8: 3a b0 00 80 bit #-32768,r10 ;#0x8000 8abc: 03 28 jnc $+8 ;abs 0x8ac4 8abe: 3a e3
in „MSPGCC baut dint ein“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HBIS51V120.pdf
a r a t i o n 0006 0000 OPLA1 EQU 0F36h ;de r Unte r p r o g r a mm- 0007 0000 CLRAUTO EQU 135Fh ;Ad r e s s e n 0008 0000 0009 0000 org 8000h 0010 8000 02 8100 l jmp START ;Au t o s t a r t - Kennun g 0011 8003 0012 8003 ;* ke i n e In t e r r u p t s 0013 8003 0014 8003 org 8100h ;An f a n g s a dAnwende
in „8051 - Programm und Daten in einem 128kB Chip ohne Overlap“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BK8000L_-_ElectroDragon.pdf
BK8000L - ElectroDragon https://web.archive.org/w/BK8000L BK8000L From ElectroDragon Share Contents 1 Introduction 2 Pin definitions, Dimension 3 Circuite Design 4 AT Commands 4.1 Basic Controll 4.2 Inquiry
in „bluetooth Modul BK8000L AT commands“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dtmf-decoding-encoding.txt
different * frequencies in an N point DFT. * * ftone/fsample = k/N * k and N are integers. fsample is 8000 (8khz) * this means the *maximum* frequency resolution * is fsample/N (each step in k corresponds to a * step of fsample/N hz in ftone) * * N was chosen to minimize the sum of the K errors for * all
in „CTCSS decoder / encoder“ · Mikrocontroller und Digitale Elektronik ·
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PDF
semicon.pdf
6 TB SOT23 3000 FMG2 digital tranzisztor SOT23 3000 Félvezetık / Integrált á.k. IC Analog Devices AD8052 OPA SO8 7500 IC Analog Devices AD8055 OPA SO8 988 IC ST LM324DT OPA SO14 1250 IC LM567CMX SMD SO8 3160 IC LMC660CMX OPA SO14 450 IC TLC2272CDR OPA SO8 846 IC Signetics LM358D T OPA SO8 2137 IC uPC2771
in „4" TFT für 7,97€“ · Markt ·
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PDF
20071229232211734.pdf
determine external character generator RAM area. T6963C has 16 bits address lines as follow: MSB LSB Ad15 Ad14 Ad13 Ad12 Ad11 Ad10 Ad9 Ad8 Ad7 Ad6 Ad5 Ad4 Ad3 Ad2 Ad1 Ad0 The upper 5 bits (ad15 - ad11) are determined by offset register. The Middle 8 bits (ad10 - ad3) are determined by character code. The Lower 3 bit (ad2 - ad10) are determined by vertical counter. The Lower 5 bit of D1(data) are valid. The data format of external character Generator RAM. 10 PDF 文件使用 "pdfFactory Pro" 试用版本创建 ÿ www.fineprint.com.cn (3)
in „T6963c Display Problem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Code.txt
; -- step 2 -- wait maximum conversion time (7.5 µs (max)) -- => 7,5µs ^= 7500ns ^= READ_AD_COUNTER = 15 -- step 3 -- activate SCLK for a minimum of 11 clock cycles. -- 8000ns elsif (READ_AD_COUNTER = 16) then SCLK_OUT_EXT <= '1'; -- 8500ns until 18500ns elsif (READ_AD_COUNTER >= 17 and READ_AD_COUNTER
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PDF
AD8206.pdf
.........................9 REVISION HISTORY 7/05—Revision 0: Initial Version Rev. 0 | Page 2 of 12 AD8206 SPECIFICATIONS TA= operating temperature range, S = 5 V, unless otherwise noted. Table 1. AD8206SOIC AD8206DIE Parameter Conditions Min Typ Max Min Typ Max Unit GAIN Initial 20 20 V/V Accuracy VO
in „Super-guter Instrumentenverstärker gesucht!“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
dumprom_output.txt
L00000004 unknown 09 00 00 00 8080ac4c - 8080ac94 L00000048 o32 struct iphlpapi.dll 8080ac94 - 8080ad00 L0000006c e32 struct 3 objs, img=212e entrypt=000012b0 base=03b80000 v5.0 tp0 mbridge.dll 8080ad00 - 8080ad04 L00000004 unknown 09 00 00 00 8080ad04 - 8080ad4c L00000048 o32 struct mbridge.dll 8080ad4c
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UNI-T_210E_Modding_Part1.pdf
What values I should change/use to get the 8000 count setting? I'm a "little" confused with those 10- 13 location values... Btw. I used a cheap CH341A programmer and test clips from eBay, programming worked just fine. Only needed to turn meter's
in „UT210E Zangenmultimeter hacken“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
crc16.c
{ 0x0000,0x1021,0x2042,0x3063,0x4084,0x50a5,0x60c6,0x70e7, 0x8108,0x9129,0xa14a,0xb16b,0xc18c,0xd1ad,0xe1ce,0xf1ef, 0x1231,0x0210,0x3273,0x2252,0x52b5,0x4294,0x72f7,0x62d6, 0x9339,0x8318,0xb37b,0xa35a,0xd3bd,0xc39c,0xf3ff,0xe3de, 0x2462,0x3443,0x0420,0x1401,0x64e6,0x74c7,0x44a4,0x5485, 0xa56a,0xb54b
in „Checksumme "reversen"“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lpc111x.h
REGISTER_32(TMR32B1_BASE + 0x070) #define TMR32B1PWMC REGISTER_32(TMR32B1_BASE + 0x074) // ADC #define AD0CR REGISTER_32(ADC_BASE + 0x000) #define AD0GDR REGISTER_32(ADC_BASE + 0x004) #define AD0INTEN REGISTER_32(ADC_BASE + 0x00c) #define AD0DR0 REGISTER_32(ADC_BASE + 0x010) #define AD0DR1 REGISTER_32(ADC_BASE + 0x014) #define AD0DR2 REGISTER_32(ADC_BASE + 0x018) #define AD0DR3 REGISTER_32(ADC_BASE + 0x01c) #define AD0DR4 REGISTER_32(ADC_BASE + 0x020) #define AD0DR5 REGISTER_32(ADC_BASE + 0x024) #define AD0DR6 REGISTER_32(ADC_BASE
in „LPC1114FN28 und GPIO“ · Mikrocontroller und Digitale Elektronik ·
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Datei
HWP_EX16_MRF24WB_C30.h
wSetMacro & 0x2000) LATDbits.LATD13 = 1; if(_wSetMacro & 0x4000) LATDbits.LATD6 = 1; if(_wSetMacro & 0x8000) LATDbits.LATD7 = 1;}while(0) // #define ENC100_SET_AD_IOL(data) (((volatile unsigned char*)&LATE)[0] = (unsigned char)(data)) // #else // All ENC624J600 address pins A0-A13 connected // #if defined
in „Microchip Wifi Demo APP portieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
S29WS064J.pdf
390000h-397FFFh SA122 32 Kwords 398000h-39FFFFh SA123 32 Kwords 3A0000h-3A7FFFh SA124 32 Kwords 3A8000h-3AFFFFh SA125 32 Kwords 3B0000h-3B7FFFh SA126 32 Kwords 3B8000h-3BFFFFh SA127 32 Kwords 3C0000h-3C7FFFh SA128 32 Kwords 3C8000h-3CFFFFh SA129 32 Kwords 3D0000h-3D7FFFh SA130 32 Kwords 3D8000h-3DFFFFh
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD7607.pdf
parallel/serial interface Resolution Inputs SamplingChannels SPI/QSPI™/MICROWIRE™/DSP compatible 18 Bits AD7608 8 Pin-compatiblesolutionsfrom14 bitsto18 bits 16 Bits AD7606 8 Performance AD7606-6 6 7 kV ESDrating on analog input channels AD7606-4 4 Fast throughput rate: 200 kSPS for all channels 14 Bits AD7607
in „Unterschiedliches Verhalten innerhalb der gleichen IC-Reihe“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Blinky.c
Setup TIM3 prescaler */ TIM3->CR2 |= 0x2000; /* TIM3 timer overflow intrupt en */ TIM3->CR1 |= 0x8000; /* TIM3 counter enable */ CAN_Com_LoopBack(); while (1) { /* Loop forever */ for (n = 0x01; n <= 0xFF; n <<= 1) { GPIO7->DR[0x3FC] = n; /* Turn on LED */ wait(); /* Delay */ /* AD_value = AD_last; // Read AD_last value if (AD_value != AD_last) // Make sure that AD interrupt did AD_value = AD_last; // not interfere with value reading AD_value /= 13; // Scale to AD_Value to 0 - 78 if (AD_old != AD_value) {
in „Problem mit CAN Kommunikation beim STR912FA“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
/* * AD9835.c * * Created: 11.06.2016 10:00:00 * Author : Klaus */ #define F_CPU 32000000UL // 32 MHz #include <avr/io.h> #include <util/delay.h> #include "../../../libs/avr_compiler.h" #define DDSPORT PORTD
in „Atmel XMEGA128A1 und DDS AD9835“ · Mikrocontroller und Digitale Elektronik ·
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PDF
am29dl323db.pdf
1C8000h–1CFFFFh SA58 111010xxx 64/32 3A0000h–3AFFFFh 1D0000h–1D7FFFh k k n n SA59 111011xxx 64/32 3B0000h–3BFFFFh 1D8000h–1DFFFFh B B SA60 111100xxx 64/32 3C0000h–3CFFFFh 1E0000h–1E7FFFh SA61 111101xxx 64/
in „55 Stk. Flashbausteine 32Mbit, TSSOP48, 3,3V AM29DL323DB-90“ · Markt ·
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Datei
source.c
///////////////////////////////////////////////////////////////////// /* Funktion : List von einem AD-Wandlungs-IC den Digital Wert ein und konvertiert ihn Übergabeparameter: - Rückgabeparamter: den Digitalen Wert; wird von einem externen AD-Wandler geliefert */ float adc(void) { unsigned result; //
in „UART Daten empfangen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test_O1.asm
libc_init_array+0x3c>) 80002d8: 4d0e ldr r5, [pc, #56] ; (8000314 <__libc_init_array+0x40>) 80002da: 1aed subs r5, r5, r3 80002dc: 10ad asrs r5, r5, #2 80002de: 2400 movs r4, #0 80002e0: 461e mov r6, r3 80002e2: 42ac cmp r4, r5 80002e4: d004 beq.n 80002f0 <__libc_init_array+0x1c> 80002e6: f856 2024 ldr.w
in „C++ Exceptions mit gcc-arm-none-eabi“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test_O2.asm
libc_init_array+0x3c>) 80002d8: 4d0e ldr r5, [pc, #56] ; (8000314 <__libc_init_array+0x40>) 80002da: 1aed subs r5, r5, r3 80002dc: 10ad asrs r5, r5, #2 80002de: 2400 movs r4, #0 80002e0: 461e mov r6, r3 80002e2: 42ac cmp r4, r5 80002e4: d004 beq.n 80002f0 <__libc_init_array+0x1c> 80002e6: f856 2024 ldr.w
in „C++ Exceptions mit gcc-arm-none-eabi“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DDS.c
wWord = (dwCodeWord & 0xFFFC000) >> 14; //msb wWord |= 0x4000; //set bit 15 DDS_WriteWord(wWord); } /* AD9833 to 80C51/80L51 Interface Figure 12 shows the serial interface between the AD9833 and the 80C51/80L51 microcontroller. The microcontroller is operated in mode 0 so that TXD of the 80C51/80L51 drives SCLK of the AD9833, while RXD drives the serial data line SDATA. The FSYNC signal is again derived from a bit programmable pin on the port (P3.3 being used in the diagram). When data is to be transmitted to the AD9833
in „Daten zum AD9833 in C übertragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MN-RBXEB-01.pdf
D 106 PGNT#0 148 VCC 107 PREQ#0 149 VCC 108 GND 150 PCLK1 109 PCLK2 151 GND 110 GND 152 PGNT#1 111 AD30 153 GND 112 NC 154 PREQ#1 113 NC 155 AD31 114 AD28 156 AD29 115 AD26 157 NC 116 AD24 158 NC 117 AD22 159 AD27 118 AD20 160 AD25 119 AD18 161 C/BE#3 120 NC 162 AD23 54 Appendix A: Technical Specifications Pin# Description Pin# Description 163 AD21 176 GND 164 AD19 177 GND 165 NC 178 AD10 166 NC 179 AD8 167 AD17 180 AD7 168 IRDY# 181 AD5 169 DEVSEL# 182 AD3 170 PLOCK# 183 AD1 171 PERR# 184 AD0 172 SERR# 185 VCC 173 AD15 186 VCCrd 174 AD14 187
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Datei
DDS.c
= (dwCodeWord & 0x0FFFC000) >> 14; //msb wWord |= 0x4000; //set bit 15 DDS_WriteWord(wWord); } /* AD9833 to 80C51/80L51 Interface Figure 12 shows the serial interface between the AD9833 and the 80C51/80L51 microcontroller. The microcontroller is operated in mode 0 so that TXD of the 80C51/80L51 drives SCLK of the AD9833, while RXD drives the serial data line SDATA. The FSYNC signal is again derived from a bit programmable pin on the port (P3.3 being used in the diagram). When data is to be transmitted to the AD9833
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PDF
DisAsm-MI6311.pdf
EXT_0692 EQU $109CAE EXT_0693 EQU $109CC2 EXT_0694 EQU $109CD6 EXT_0695 EQU $10A8A2 EXT_0696 EQU $10AD66 EXT_0697 EQU $10AD68 EXT_0698 EQU $10AD6C EXT_0699 EQU $10AD6D EXT_069A EQU $10AD6E EXT_069B EQU $10AD74 EXT_069C EQU $10AD76 EXT_069D EQU $10AD7A EXT_069E EQU $10AD7C EXT_069F EQU $10AD90 EXT_06A0
in „Suche Simulator für Motorola 68k“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GA-5486AL.pdf
GND NC B14 A14 NC GND B15 A15 RST# CLK B16 A16 VCC GND B17 A17 GNT# REQ# B18 A18 GND VCC B19 A19 NC AD_31 B20 A20 AD_30 AD_29 B21 A21 NC GND B22 A22 AD_28 AD_27 B23 A23 AD_26 AD_25 B24 A24 GND NC B25 A25 AD_24 CBE#3 B26 A26 IDSEL AD_23 B27 A27 NC GND B28 A28 AD_22 AD_21 B29 A29 AD_20 AD_19 B30 A30 GND
in „Sucher 486er bis DX4 100“ · Markt ·
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AD-PCB-Chapter4_Print_A.pdf
decoupling caps were removed. Other than that everything remained the same. In this case the device was an AD8000, a 1.5GHz high speed current feedback op amp, but the effect will occur in most any high speed circuit. 4.50 PC Board Layout and Design Tools AD8000 Power Supply Rejection Ratio (PSRR) This figure shows the PSRR of the AD8000 as a function of frequency. Note that the PSRR falls to a relatively low value in its working frequency range. This means that signals on the power line will propagate easily to the output. As a
in „ADCs: Digitale Masse und Oszillator an Analogmasse?“ · Analoge Elektronik und Schaltungstechnik ·
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TMC4671-LA_datasheet.pdf
TMC4671 Datasheet • IC Version V1.3 | Document Revision V2.08 • 2022-July-26 123 / 153 FOC_UB 0x0h -0x8000h 0x7FFFh FOC_UUX 0x0h -0x8000h 0x7FFFh FOC_UWY 0x0h -0x8000h 0x7FFFh FOC_UV 0x0h -0x8000h 0x7FFFh PWM_UX 0x0h -0x8000h 0x7FFFh PWM_WY 0x0 -0x8000 0x7FFF h h h PWM_V 0x0 -0x8000 0x7FFF h h h ADC_I_0
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PowerLog6s_V110_bearbeitet.asm
,#0x60] B loc_8000AD8 ; --------------------------------------------------------------------------- loc_8000A28 ; CODE XREF: sub_80007EE+21E j ADDS R0, R0, #1 STRB R0, [R6] MOVS R1, #0xA STRH R1, [R7,#4] B loc_8000AD8
in „Datenlogger Jun-si PowerLog 6S verbessern“ · Mikrocontroller und Digitale Elektronik ·
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00643b.pdf
data rate of the speech samples is 8.0 kHz.The minimum operating frequency is calculated as follows: 8000 x # of Total Instruction Cycles x 4. For example, the ADPCM encoding using the PIC16CXXX family would require an 8000 x ( 225 + 80 ) x 4 = 9.760 MHz external crystal. TABLE 4: PERFORMANCE COMPARISON
in „Messdaten Kompression“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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pic24h_1.s
digital output mov #0xFF00, w0 and LATA ;clear output latches bset LATA,#0 mov #0x0000,w0 and ODCB setm AD1PCFGL mov #0x0000, w0 and TRISB clr LATB ;bclr OSCCON,#6 ;unlock ;mov #0b0000000000010010,w10 ;pwm zu pr0 legen ;mov w10,RPOR0 goto main .org(0x200) sinus_table: .word 0x8000 , 0x8320 , 0x8640 , 0x8960
in „DSPic33 Einführung“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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test.txt
); #elif defined(TCCR2B) && defined(CS22) sbi(TCCR2B, CS22); 208: 80 91 b1 00 lds r24, 0x00B1 ; 0x8000b1 <__TEXT_REGION_LENGTH__+0x7000b1> 20c: 84 60 ori r24, 0x04 ; 4 20e: 80 93 b1 00 sts 0x00B1, r24 ; 0x8000b1 <__TEXT_REGION_LENGTH__+0x7000b1> // configure timer 2 for phase correct pwm (8-bit) #if
in „Arduino Compiler Speicherverwaltung“ · Mikrocontroller und Digitale Elektronik ·