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IF-else-end

  • 介紹C16x系列微控制器的輸入信號升降時序圖及特性

    All inputs of the C16x family have Schmitt-Trigger input characteristics. These Schmitt-Triggers are intended to always provide proper internal low and high levels, even if anundefined voltage level (between TTL-VIL and TTL-VIH) is externally applied to the pin.The hysteresis of these inputs, however, is very small, and can not be properly used in anapplication to suppress signal noise, and to shape slow rising/falling input transitions.Thus, it must be taken care that rising/falling input signals pass the undefined area of theTTL-specification between VIL and VIH with a sufficient rise/fall time, as generally usualand specified for TTL components (e.g. 74LS series: gates 1V/us, clock inputs 20V/us).The effect of the implemented Schmitt-Trigger is that even if the input signal remains inthe undefined area, well defined low/high levels are generated internally. Note that allinput signals are evaluated at specific sample points (depending on the input and theperipheral function connected to it), at that signal transitions are detected if twoconsecutive samples show different levels. Thus, only the current level of an input signalat these sample points is relevant, that means, the necessary rise/fall times of the inputsignal is only dependant on the sample rate, that is the distance in time between twoconsecutive evaluation time points. If an input signal, for instance, is sampled throughsoftware every 10us, it is irrelevant, which input level would be seen between thesamples. Thus, it would be allowable for the signal to take 10us to pass through theundefined area. Due to the sample rate of 10us, it is assured that only one sample canoccur while the signal is within the undefined area, and no incorrect transition will bedetected. For inputs which are connected to a peripheral function, e.g. capture inputs, thesample rate is determined by the clock cycle of the peripheral unit. In the case of theCAPCOM unit this means a sample rate of 400ns @ 20MHz CPU clock. This requiresinput signals to pass through the undefined area within these 400ns in order to avoidmultiple capture events.

    標簽: C16x 微控制器 輸入信號 時序圖

    上傳時間: 2014-04-02

    上傳用戶:han_zh

  • Reading and Writing iButtons v

    Abstract: This application note explains the hardware of different types of 1-Wire® interfaces and software examples adapted to this hardware with a focus on serial ports. Depending on the types of iButtons required for a project and the type of computer to be used, the most economical interface is easily found. The hardware examples shown are basically two different types: 5V general interface and 12V RS-232 interface. Within the 5V group a common printed circuit board could be used for all circuits described. The variations can be achieved by different populations of components. The same principal is used for the 12V RS-232 interface. The population determines if it is a Read all or a Read/Write all type of interface. There are other possible circuit implementations to create a 1-Wire interface. The circuits described in this application note cover many different configurations. For a custom application, one of the described options can be adapted to meet individual needs.

    標簽: iButtons Reading Writing and

    上傳時間: 2013-10-29

    上傳用戶:long14578

  • I2C slave routines for the 87L

    The 87LPC76X Microcontroller combines in a small package thebenefits of a high-performance microcontroller with on-boardhardware supporting the Inter-Integrated Circuit (I2C) bus interface.The 87LPC76X can be programmed both as an I2C bus master, aslave, or both. An overview of the I2C bus and description of the bussupport hardware in the 87LPC76X microcontrollers appears inapplication note AN464, Using the 87LPC76X Microcontroller as anI2C Bus Master. That application note includes a programmingexample, demonstrating a bus-master code. Here we show anexample of programming the microcontroller as an I2C slave.The code listing demonstrates communications routines for the87LPC76X as a slave on the I2C bus. It compliments the program inAN464 which demonstrates the 87LPC76X as an I2C bus master.One may demonstrate two 87LPC76X devices communicating witheach other on the I2C bus, using the AN464 code in one, and theprogram presented here in the other. The examples presented hereand in AN464 allow the 87LPC76X to be either a master or a slave,but not both. Switching between master and slave roles in amultimaster environment is described in application note AN435.The software for a slave on the bus is relatively simple, as theprocessor plays a relatively passive role. It does not initiate bustransfers on its own, but responds to a master initiating thecommunications. This is true whether the slave receives or transmitsdata—transmission takes place only as a response to a busmaster’s request. The slave does not have to worry about arbitrationor about devices which do not acknowledge their address. As theslave is not supposed to take control of the bus, we do not demandit to resolve bus exceptions or “hangups”. If the bus becomesinactive the processor simply withdraws, not interfering with themaster (or masters) on the bus which should (hopefully) try toresolve the situation.

    標簽: routines slave I2C 87L

    上傳時間: 2013-11-19

    上傳用戶:shirleyYim

  • Using the 87LPC76X microcontro

    I2C interface, is a very powerful tool for system designers. Theintegrated protocols allow systems to be completely software defined.Software development time of different products can be reduced byassembling a library of reusable software modules. In addition, themultimaster capability allows rapid testing and alignment ofend-products via external connections to an assembly-line computer.The mask programmable 87LPC76X and its EPROM version, the87LPC76X, can operate as a master or a slave device on the I2Csmall area network. In addition to the efficient interface to thededicated function ICs in the I2C family, the on-board interfacefacilities I/O and RAM expansion, access to EEPROM andprocessor-to-processor communications.

    標簽: microcontro Using 76X LPC

    上傳時間: 2013-12-30

    上傳用戶:Artemis

  • 中斷技術.ppt

    5.1  中斷基本概念5.1.1 中斷基本概念定義:CPU暫停現行程序,轉而處理隨機到來的事件,待處理完后再回到被暫停的程序繼續執行,這個過程就是中斷。中斷過程:中斷處理的隱操作:程序狀態及程序斷點地址的進棧及出棧。  中斷系統其他功能:    支持多中斷源和多種中斷源。    支持中斷屏蔽處理。    支持中斷嵌套處理。    支持中斷優先級修改。    支持中斷結束方式選擇。5.1.2 中斷類型1.外部硬件(如鍵盤、鼠標,串口,并口打印機等)中斷屬性:硬件、可屏蔽、向量。 中斷請求:多個中斷請求的排隊和判優由中斷控制器完成,產生的有無中斷請求的信號送到CPU的INTR引腳。  中斷類型號:通過數據總線送到CPU中。EFLAGS寄存器的IF位影響CPU對中斷請求的響應。處理器在當前指令執行結束的時候啟動中斷識別INTA總線周期。

    標簽: 中斷技術

    上傳時間: 2013-11-09

    上傳用戶:黃婷婷思密達

  • 串行編程器源程序(Keil C語言)

    串行編程器源程序(Keil C語言)//FID=01:AT89C2051系列編程器//實現編程的讀,寫,擦等細節//AT89C2051的特殊處:給XTAL一個脈沖,地址計數加1;P1的引腳排列與AT89C51相反,需要用函數轉換#include <e51pro.h> #define C2051_P3_7 P1_0#define C2051_P1 P0//注意引腳排列相反#define C2051_P3_0  P1_1#define C2051_P3_1 P1_2#define C2051_XTAL P1_4#define C2051_P3_2 P1_5#define C2051_P3_3 P1_6#define C2051_P3_4 P1_7#define C2051_P3_5 P3_5 void InitPro01()//編程前的準備工作{ SetVpp0V(); P0=0xff; P1=0xff; C2051_P3_5=1; C2051_XTAL=0; Delay_ms(20); nAddress=0x0000; SetVpp5V();} void ProOver01()//編程結束后的工作,設置合適的引腳電平{ SetVpp5V(); P0=0xff; P1=0xff; C2051_P3_5=1; C2051_XTAL=1;} BYTE GetData()//從P0口獲得數據{ B_0=P0_7; B_1=P0_6; B_2=P0_5; B_3=P0_4; B_4=P0_3; B_5=P0_2; B_6=P0_1; B_7=P0_0; return B;} void SetData(BYTE DataByte)//轉換并設置P0口的數據{ B=DataByte; P0_0=B_7; P0_1=B_6; P0_2=B_5; P0_3=B_4; P0_4=B_3; P0_5=B_2; P0_6=B_1; P0_7=B_0;} void ReadSign01()//讀特征字{ InitPro01(); Delay_ms(1);//----------------------------------------------------------------------------- //根據器件的DataSheet,設置相應的編程控制信號 C2051_P3_3=0; C2051_P3_4=0; C2051_P3_5=0; C2051_P3_7=0; Delay_ms(20); ComBuf[2]=GetData(); C2051_XTAL=1; C2051_XTAL=0; Delay_us(20); ComBuf[3]=GetData(); ComBuf[4]=0xff;//----------------------------------------------------------------------------- ProOver01();} void Erase01()//擦除器件{ InitPro01();//----------------------------------------------------------------------------- //根據器件的DataSheet,設置相應的編程控制信號 C2051_P3_3=1; C2051_P3_4=0; C2051_P3_5=0; C2051_P3_7=0; Delay_ms(1); SetVpp12V(); Delay_ms(1); C2051_P3_2=0; Delay_ms(10); C2051_P3_2=1; Delay_ms(1);//----------------------------------------------------------------------------- ProOver01();} BOOL Write01(BYTE Data)//寫器件{//----------------------------------------------------------------------------- //根據器件的DataSheet,設置相應的編程控制信號 //寫一個單元 C2051_P3_3=0; C2051_P3_4=1; C2051_P3_5=1; C2051_P3_7=1; SetData(Data); SetVpp12V(); Delay_us(20); C2051_P3_2=0; Delay_us(20); C2051_P3_2=1; Delay_us(20); SetVpp5V(); Delay_us(20); C2051_P3_4=0; Delay_ms(2); nTimeOut=0; P0=0xff; nTimeOut=0; while(!GetData()==Data)//效驗:循環讀,直到讀出與寫入的數相同 {  nTimeOut++;  if(nTimeOut>1000)//超時了  {   return 0;  } } C2051_XTAL=1; C2051_XTAL=0;//一個脈沖指向下一個單元//----------------------------------------------------------------------------- return 1;} BYTE Read01()//讀器件{ BYTE Data;//----------------------------------------------------------------------------- //根據器件的DataSheet,設置相應的編程控制信號 //讀一個單元 C2051_P3_3=0; C2051_P3_4=0; C2051_P3_5=1; C2051_P3_7=1; Data=GetData(); C2051_XTAL=1; C2051_XTAL=0;//一個脈沖指向下一個單元//----------------------------------------------------------------------------- return Data;} void Lock01()//寫鎖定位{ InitPro01();//先設置成編程狀態//----------------------------------------------------------------------------- //根據器件的DataSheet,設置相應的編程控制信號 if(ComBuf[2]>=1)//ComBuf[2]為鎖定位 {  C2051_P3_3=1;  C2051_P3_4=1;  C2051_P3_5=1;  C2051_P3_7=1;  Delay_us(20);  SetVpp12V();  Delay_us(20);  C2051_P3_2=0;  Delay_us(20);  C2051_P3_2=1;  Delay_us(20);  SetVpp5V(); } if(ComBuf[2]>=2) {  C2051_P3_3=1;  C2051_P3_4=1;  C2051_P3_5=0;  C2051_P3_7=0;  Delay_us(20);  SetVpp12V();  Delay_us(20);  C2051_P3_2=0;  Delay_us(20);  C2051_P3_2=1;  Delay_us(20);  SetVpp5V(); }//----------------------------------------------------------------------------- ProOver01();} void PreparePro01()//設置pw中的函數指針,讓主程序可以調用上面的函數{ pw.fpInitPro=InitPro01; pw.fpReadSign=ReadSign01; pw.fpErase=Erase01; pw.fpWrite=Write01; pw.fpRead=Read01; pw.fpLock=Lock01; pw.fpProOver=ProOver01;}

    標簽: Keil 串行 C語言 編程器

    上傳時間: 2013-11-12

    上傳用戶:gut1234567

  • 24c01a的讀寫程序

    #include <at24c01a.h>/*************************************************向24C01A寫入一個字節輸入:E2ROM地址,字節數據******************************************************/void write24c01a(uchar uadd_1,uchar udata_1){sendbyte=0xa0;start();send(sendbyte);if (!ack())continue;send(uadd_1);if (!ack())continue;send(udata_1)if (!ack())continue;stop();}/**********************************發送開始*****************************************/void start(void){a_scl=1;a_sda=1;a_sda=0;a_scl=0;a_scl=1;}/********************************************發送停止*******************************************/void stop(void){a_scl=0;a_sda=0;a_scl=1;a_sda=1;} /*********************************************發送反饋************************************************/bit ack(void){int a_acka_scl=0;a_scl=0;a_scl=0;a_scl=1;a_ack=a_sda;a_scl=0;return(a_ack)}/**************************************發送無反饋********************************************/bit noack(void){int a_ack;a_scl=1;a_scl=1;a_scl=0;}/*******************************************發送****************************************************/void send(uchar  undata){uchar i;sendbyte=undatafor(i=8;i>0;i--){a_sda=sendbyte7;a_scl=0;a_scl=1;sendbyte=sendbyte<<1}}/********************************************接受****************************************************/ void   receive(void){int i;uchar data;for(i=8;i>0;i--){ a_scl=1;receivebyte7=a_sda;a_scl=0;receivebyte=receivebyte>>1}receivedata=receivebyte;}/********************************************向 24c01a讀一個字節;輸入:EEROM地址;輸出:EEROM數據;********************************************/void read24c01a(uchar  counter){receivebyte=0xa1;start();send(receivebyte);if (!ack())continue;send(counter);if (!ack())continue;receive()noack();stop();}

    標簽: 24c01a 讀寫程序

    上傳時間: 2013-12-23

    上傳用戶:wxhwjf

  • PIC單片機程序設計基礎

    1、程序的基本格式先介紹二條偽指令:EQU ——標號賦值偽指令ORG ——地址定義偽指令PIC16C5X在RESET后指令計算器PC被置為全“1”,所以PIC16C5X幾種型號芯片的復位地址為:PIC16C54/55:1FFHPIC16C56:3FFHPIC16C57/58:7FFH一般來說,PIC的源程序并沒有要求統一的格式,大家可以根據自己的風格來編寫。但這里我們推薦一種清晰明了的格式TITLE This is ⋯⋯ ;程序標題;--------------------------------------;名稱定義和變量定義;--------------------------------------F0 EQU 0RTCC EQU 1PC EQU 2STATUS EQU 3FSR EQU 4RA EQU 5RB EQU 6RC EQU 7┋PIC16C54 EQU 1FFH ;芯片復位地址PIC16C56 EQU 3FFHPIC16C57 EQU 7FFH;-----------------------------------------ORG PIC16C54 GOTO MAIN ;在復位地址處轉入主程序ORG 0 ;在0000H開始存放程序;-----------------------------------------;子程序區;-----------------------------------------DELAY MOVLW 255┋RETLW 0;------------------------------------------;主程序區;------------------------------------------MAINMOVLW B‘00000000’TRIS RB ;RB已由偽指令定義為6,即B口┋LOOPBSF RB,7 CALL DELAYBCF RB,7 CALL DELAY┋GOTO LOOP;-------------------------------------------END ;程序結束注:MAIN標號一定要處在0頁面內。2、程序設計基礎

    標簽: PIC 單片機程序設計

    上傳時間: 2013-11-14

    上傳用戶:cjf0304

  • 3.3v看門狗芯片

    The STWD100 watchdog timer circuits are self-contained devices which prevent systemfailures that are caused by certain types of hardware errors (non-responding peripherals,bus contention, etc.) or software errors (bad code jump, code stuck in loop, etc.).The STWD100 watchdog timer has an input, WDI, and an output, WDO (see Figure 2). Theinput is used to clear the internal watchdog timer periodically within the specified timeoutperiod, twd (see Section 3: Watchdog timing). While the system is operating correctly, itperiodically toggles the watchdog input, WDI. If the system fails, the watchdog timer is notreset, a system alert is generated and the watchdog output, WDO, is asserted (seeSection 3: Watchdog timing).The STWD100 circuit also has an enable pin, EN (see Figure 2), which can enable ordisable the watchdog functionality. The EN pin is connected to the internal pull-downresistor. The device is enabled if the EN pin is left floating.

    標簽: 3.3 看門狗 芯片

    上傳時間: 2013-10-22

    上傳用戶:taiyang250072

  • 微型打印機的C語言源程序

    微型打印機的C語言源程序:微型打印機的C51源程序#define uchar unsigned char#define uint unsigned int#include <reg52.h>#include <stdio.h>#include <absacc.h>#include <math.h>#include <string.h>#include <ctype.h>#include <stdlib.h>#define PIN XBYTE[0x8000]#define POUT XBYTE[0x9000]sbit PRINTSTB =P1^6;sbit DOG=P1^7;bdata char pin&#118alue;sbit PRINTBUSY=pin&#118alue^7;sbit PRINTSEL =pin&#118alue^6;sbit PRINTERR =pin&#118alue^5;sbit PRINTACK =pin&#118alue^4;  void PrintString(uchar *String1,uchar *String2);void initprint(void);void print(uchar a);  void initprint(void) //打印機初始化子程序 {  pin&#118alue=PIN;  if((PRINTSEL==1)&&(PRINTERR==1))  {    print(0x1b); print(0x40); print(0x1b); print(0x38); print(0x4);  }}void print(uchar a) //打印字符a{  pin&#118alue=PIN;  if((PRINTSEL==0)||(PRINTERR==0)) return;  for(;;) {    DOG=~DOG;    pin&#118alue=PIN;    if(PRINTBUSY==0) break;  }  DOG=~DOG;  POUT=a;  PRINTSTB=1;  PRINTSTB=1;  PRINTSTB=1;  PRINTSTB=1;  PRINTSTB=0;  PRINTSTB=0;  PRINTSTB=0;  PRINTSTB=0;  PRINTSTB=1;}void PrintString(uchar *String) //打印字符串后回車{  uchar CH;  for (;;) {   DOG=~DOG;   CH=*String;   if (CH==0) { print(0x0d); break; }   print(CH);   String++;  }  initprint();}

    標簽: 微型打印機 C語言 源程序

    上傳時間: 2013-10-18

    上傳用戶:hasan2015

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