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Jay-gap

  • 不用说的好

    不用说的好,我们室主任开发的Photonics cyrestal band gap计算Fortran代码。注意不要忘了input文本。

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    上传时间: 2014-01-23

    上传用户:jcljkh

  • 最后的战役

    最后的战役,(jay的)非常好听,

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    上传时间: 2016-08-10

    上传用户:bruce5996

  • Liferea is an abbreviation for Linux Feed Reader. It is a news aggregator for online news feeds. It

    Liferea is an abbreviation for Linux Feed Reader. It is a news aggregator for online news feeds. It supports a number of different feed formats including RSS/RDF, CDF and Atom. There are many other news readers available, but these others are not available for Linux or require many extra libraries to be installed. Liferea tries to fill this gap by creating a fast, easy to use, easy to install news aggregator for GTK/GNOME. It was last updated for Liferea version 1.4.

    标签: news abbreviation aggregator for

    上传时间: 2016-12-05

    上传用户:luopoguixiong

  • In the last decade the processing of polygonal meshes has emerged as an active and very productive

    In the last decade the processing of polygonal meshes has emerged as an active and very productive research area. This can basically be attributed to two developments:  Modern geometry acquisition devices, like laser scanners and MRT, easily produce raw polygonal meshes of ever growing complexity  Downstream applications like analysis tools (medical imaging), computer aided manufacturing, or numerical simulations all require high quality polygonal meshes as input. The need to bridge the gap between raw triangle soup data and high-quality polygon meshes has driven the research on ecient data structures and algorithms that directly operate on polygonal meshes rather than on a (most often not feasible) intermediate CAD representation.

    标签: processing productive the polygonal

    上传时间: 2017-06-03

    上传用户:TF2015

  • JqMobi+PhoneGap项目实战

    主要介绍了phone gap 月jquery 相结合的至少

    标签: phonegap

    上传时间: 2015-05-30

    上传用户:hanyuchenxi

  • 12345

    /****************temic*********t5557***********************************/    #include   <at892051.h>     #include   <string.h>    #include   <intrins.h>     #include   <stdio.h>     #define    uchar    unsigned char     #define    uint     unsigned int     #define    ulong    unsigned long     //STC12C2051AD的SFR定义     sfr  WDT_CONTR = 0xe1;//stc2051的看门狗??????     /**********全局常量************/    //写卡的命令     #define    write_command0       0//写密码     #define    write_command1       1//写配置字     #define    write_command2       2//密码写数据     #define    write_command3       3//唤醒     #define    write_command4       4//停止命令     #define    TRUE       1     #define    FALSE      0     #define    OK         0     #define    ERROR      255     //读卡的时间参数us     #define ts_min          250//270*11.0592/12=249//取近似的整数     #define ts_max          304//330*11.0592/12=304     #define t1_min          73//90*11.0592/12=83:-10调整     #define t1_max          156//180*11.0592/12=166     #define t2_min          184//210*11.0592/12=194     #define t2_max          267//300*11.0592/12=276     //***********不采用中断处理:采用查询的方法读卡时关所有中断****************/     sbit p_U2270B_Standby = P3^5;//p_U2270B_Standby PIN=13     sbit p_U2270B_CFE = P3^3;//p_U2270B_CFE     PIN=6     sbit p_U2270B_OutPut = P3^7;//p_U2270B_OutPut  PIN=2     sbit wtd_sck = P1^7;//SPI总线     sbit wtd_si = P1^3;    sbit wtd_so = P1^2;    sbit iic_data = P1^2;//lcd IIC     sbit iic_clk = P1^7;    sbit led_light = P1^6;//测试绿灯     sbit led_light1 = P1^5;//测试红灯     sbit led_light_ok  = P1^1;//读卡成功标志     sbit fengmingqi = P1^5;    /***********全局变量************************************/       uchar data Nkey_a[4] = {0xA0, 0xA1, 0xA2, 0xA3};//初始密码             //uchar idata card_snr[4];   //配置字     uchar data bankdata[28] = {1,2,3,4,5,6,7,1,2,3,4,5,6,7,1,2,3,4,5,6,7,1,2,3,4,5,6,7};     //存储卡上用户数据(1-7)7*4=28     uchar data cominceptbuff[6] = {1,2,3,4,5,6};//串口接收数组ram     uchar command; //第一个命令     uchar command1;//     //uint  temp;     uchar j,i;    uchar myaddr = 8;    //uchar ywqz_count,time_count;             //ywqz jishu:     uchar bdata DATA;    sbit BIT0 = DATA^0;    sbit BIT1 = DATA^1;    sbit BIT2 = DATA^2;    sbit BIT3 = DATA^3;    sbit BIT4 = DATA^4;    sbit BIT5 = DATA^5;    sbit BIT6 = DATA^6;    sbit BIT7 = DATA^7;    uchar bdata DATA1;    sbit BIT10 = DATA1^0;    sbit BIT11 = DATA1^1;    sbit BIT12 = DATA1^2;    sbit BIT13 = DATA1^3;    sbit BIT14 = DATA1^4;    sbit BIT15 = DATA1^5;    sbit BIT16 = DATA1^6;    sbit BIT17 = DATA1^7;    bit i_CurrentLevel;//i_CurrentLevel  BIT 00H(Saves current level of OutPut pin of U2270B)     bit timer1_end;    bit read_ok = 0;    //缓存定时值,因用同一个定时器     union HLint { uint W;    struct   {    uchar H;uchar L;   }   B; };//union HLint idata a     union HLint data a;    //缓存定时值,因用同一个定时器     union HLint0 { uint W;    struct {   uchar H;   uchar L; } B; };//union HLint idata a     union HLint0 data b;    /**********************函数原型*****************/    //读写操作     void f_readcard(void);//全部读出1~7 AOR唤醒     void f_writecard(uchar x);//根据命令写不同的内容和操作     void f_clearpassword(void);//清除密码     void f_changepassword(void);//修改密码     //功能子函数     void write_password(uchar data *data p);//写初始密码或数据     void write_block(uchar x,uchar data *data p);//不能用通用指针     void write_bit(bit x);//写位     /*子函数区*****************************************************/    void delay_2(uint x)    //延时,时间x*10us@12mhz,最小20us@12mhz     {    x--; x--;    while(x)    {      _nop_();      _nop_();      x--;    }    _nop_();//WDT_CONTR=0X3C;不能频繁的复位     _nop_();    }    /////////////////////////////////////////////////////////////////////     void initial(void)    {    SCON = 0x50; //串口方式1,允许接收     //SCON  =0x50;     //01010000B:10位异步收发,波特率可变,SM2=0不用接收到有效停止位才RI=1,     //REN=1允许接收     TMOD = 0x21; //定时器1 定时方式2(8位),定时器0 定时方式1(16位)     TCON = 0x40; //设定时器1 允许开始计时(IT1=1)     TH1 = 0xfD;  //FB 18.432MHz 9600 波特率     TL1 = 0xfD;  //fd 11.0592 9600     IE = 0X90;     //EA=ES=1     TR1 = 1;     //启动定时器     WDT_CONTR = 0x3c;//使能看门狗     p_U2270B_Standby = 0;//单电源     PCON = 0x00;    IP = 0x10;//uart you xian XXXPS PT1 PX1 PT0 PX0     led_light1 = 1;    led_light = 0;    p_U2270B_OutPut = 1;    }    /************************************************/    void f_readcard()//读卡     {    EA = 0;//全关,防止影响跳变的定时器计时     WDT_CONTR = 0X3C;//喂狗     p_U2270B_CFE = 1;//      delay_2(232);  //>2.5ms            /*   //   aor    用唤醒功能来防碰撞   p_U2270B_CFE = 0; delay_2(18);//start gap>150us   write_bit(1);//10=操作码读0页   write_bit(0);       write_password(&bankdata[24]);//密码block7   p_U2270B_CFE =1 ;//    delay_2(516);//编程及确认时间5.6ms   */    WDT_CONTR = 0X3C;//喂狗     led_light = 0;    b.W = 0;    while(!(read_ok == 1))    {             //while(p_U2270B_OutPut);//等一个稳定的低电平?超时判断?              while(!p_U2270B_OutPut);//等待上升沿的到来同步信号检测1       TR0 = 1;      //deng xia jiang       while(p_U2270B_OutPut);//等待下降沿       TR0 = 0;   a.B.H = TH0;   a.B.L = TL0;   TH0 = TL0 = 0;   TR0 = 1;//定时器晚启动10个周期       //同步头       if((324 < a.W) && (a.W < 353)) ;//检测同步信号1                  else     {     TR0 = 0;     TH0 = TL0 = 0;     goto read_error;    }      //等待上升沿        while(!p_U2270B_OutPut);   TR0 = 0;   a.B.H = TH0;   a.B.L = TL0;   TH0 = TL0 = 0;   TR0 = 1;//b.N1<<=8;            if(a.B.L < 195);//0.5p       else     {     TR0 = 0;     TH0 = TL0 = 0;     goto read_error;    }      //读0~7块的数据       for(j = 0;j < 28;j++)      {       //uchar i;                  for(i = 0;i < 16;i++)//8个位        {        //等待下降沿的到来         while(p_U2270B_OutPut);                TR0 = 0;     a.B.H = TH0;     a.B.L = TL0;     TH0 = TL0 = 0;     TR0 = 1;              if(t2_max < a.W/*)&&(a.W < t2_max)*/)//1P          {         b.W >>= 2;//先左移再赋值          b.B.L += 0xc0;                             i++;        }        else if(t1_min < a.B.L/*)&&(a.B.L < t1_max)*/)//0.5p         {         b.W >>= 1;         b.B.L += 0x80;                           }        else      {      TR0 = 0;      TH0 = TL0 = 0;      goto read_error;     }        i++;        while(!p_U2270B_OutPut);//上升                   TR0 = 0;     a.B.H = TH0;     a.B.L = TL0;     TH0 = TL0 = 0;     TR0 = 1;                      if(t2_min < a.W/*)&&(a.W < t2_max)*/)//1P          {         b.W >>= 2;         i++;        }        else if(t1_min < a.B.L/*a.W)&&(a.B.L < t1_max)*/)//0.5P         //else if(!(a.W==0))         {         b.W >>= 1;         //temp+=0x00;          //led_light1=0;led_light=1;delay_2(40000);         }        else      {      TR0 = 0;      TH0 = TL0 = 0;      goto read_error;     }        i++;       }       //取出奇位        DATA = b.B.L;       BIT13 = BIT7;    BIT12 = BIT5;    BIT11 = BIT3;    BIT10 = BIT1;       DATA = b.B.H;       BIT17 = BIT7;    BIT16 = BIT5;    BIT15 = BIT3;    BIT14 = BIT1;       bankdata[j] = DATA1;      }              read_ok = 1;//读卡完成了     read_error:    _nop_();    }       }    /***************************************************/    void f_writecard(uchar x)//写卡     {    p_U2270B_CFE = 1;    delay_2(232);  //>2.5ms            //psw=0 standard write     if (x == write_command0)//写密码:初始化密码     {      uchar i;      uchar data *data p;      p = cominceptbuff;      p_U2270B_CFE = 0;   delay_2(31);//start gap>330us       write_bit(1);//写操作码1:10       write_bit(0);//写操作码0       write_bit(0);//写锁定位0       for(i = 0;i < 35;i++)      {       write_bit(1);//写数据位1       }      p_U2270B_CFE = 1;      led_light1 = 0;   led_light = 1;   delay_2(40000);//测试使用       //write_block(cominceptbuff[4],p);       p_U2270B_CFE = 1;      bankdata[20] = cominceptbuff[0];//密码存入       bankdata[21] = cominceptbuff[1];      bankdata[22] = cominceptbuff[2];      bankdata[23] = cominceptbuff[3];    }    else if (x == write_command1)//配置卡参数:初始化     {      uchar data *data p;      p = cominceptbuff;      write_bit(1);//写操作码1:10       write_bit(0);//写操作码0       write_bit(0);//写锁定位0               write_block(cominceptbuff[4],p);      p_U2270B_CFE=  1;    }    //psw=1  pssword mode     else if(x == write_command2)  //密码写数据    {      uchar data*data p;      p = &bankdata[24];      write_bit(1);//写操作码1:10       write_bit(0);//写操作码0       write_password(p);//发口令       write_bit(0);//写锁定位0       p = cominceptbuff;      write_block(cominceptbuff[4],p);//写数据            }    else if(x == write_command3)//aor    //唤醒 {      //cominceptbuff[1]操作码10 X xxxxxB       uchar data *data p;      p = cominceptbuff;      write_bit(1);//10       write_bit(0);             write_password(p);//密码       p_U2270B_CFE = 1;//此时数据不停的循环传出     }    else //停止操作码     {      write_bit(1);//11       write_bit(1);             p_U2270B_CFE = 1;         }    p_U2270B_CFE = 1;    delay_2(560);//5.6ms     }    /************************************/    void f_clearpassword()//清除密码     {    uchar data *data p;    uchar i,x;          p = &bankdata[24];//原密码     p_U2270B_CFE = 0; delay_2(18);//start gap>150us     //操作码10:10xxxxxxB     write_bit(1);    write_bit(0);              for(x = 0;x < 4;x++)//发原密码     {             DATA = *(p++);      for(i = 0;i < 8;i++)      {       write_bit(BIT0);       DATA >>= 1;      }    }    write_bit(0);//锁定位0:0     p = &cominceptbuff[0];    write_block(0x00,p);//写新配置参数:pwd=0             //密码无效:即清除密码     DATA = 0x00;//停止操作码00000000B     for(i = 0;i < 2;i++)    {    write_bit(BIT7);    DATA <<= 1;    }    p_U2270B_CFE = 1;       delay_2(560);//5.6ms     }    /*********************************/    void f_changepassword()//修改密码            {       uchar data *data p;    uchar i,x,addr;    addr = 0x07;//block7     p = &Nkey_a[0];//原密码     DATA = 0x80;//操作码10:10xxxxxxB     for(i = 0;i < 2;i++)    {      write_bit(BIT7);      DATA <<= 1;    }    for(x = 0;x < 4;x++)//发原密码     {             DATA = *(p++);      for(i = 0;i < 8;i++)      {       write_bit(BIT7);       DATA >>= 1;      }    }    write_bit(0);//锁定位0:0     p = &cominceptbuff[0];    write_block(0x07,p);//写新密码     p_U2270B_CFE = 1;    bankdata[24] = cominceptbuff[0];//密码存入     bankdata[25] = cominceptbuff[1];    bankdata[26] = cominceptbuff[2];    bankdata[27] = cominceptbuff[3];    DATA = 0x00;//停止操作码00000000B     for(i = 0;i < 2;i++)    {      write_bit(BIT7);      DATA <<= 1;    }    p_U2270B_CFE = 1;       delay_2(560);//5.6ms     }    /***************************子函数***********************************/    void write_bit(bit x)//写一位     {    if(x)    {      p_U2270B_CFE = 1;   delay_2(32);//448*11.0592/120=42延时448us       p_U2270B_CFE = 0;   delay_2(28);//280*11.0592/120=26写1     }    else    {      p_U2270B_CFE = 1;   delay_2(92);//192*11.0592/120=18       p_U2270B_CFE = 0;   delay_2(28);//280*11.0592/120=26写0     }    }    /*******************写一个block*******************/    void write_block(uchar addr,uchar data *data p)    {    uchar i,j;        for(i = 0;i < 4;i++)//block0数据     {             DATA = *(p++);      for(j = 0;j < 8;j++)      {       write_bit(BIT0);       DATA >>= 1;      }    }    DATA = addr <<= 5;//0地址     for(i = 0;i < 3;i++)    {      write_bit(BIT7);      DATA <<= 1;    }                   }    /*************************************************/    void write_password(uchar data *data p)    {    uchar i,j;        for(i = 0;i < 4;i++)//     {             DATA = *(p++);      for(j = 0;j < 8;j++)      {       write_bit(BIT0);       DATA >>= 1;      }    }        }   /*************************************************/   void main()    {    initial();    TI = RI = 0;    ES = 1;    EA = 1;  delay_2(28);   //f_readcard();     while(1) {   f_readcard();      //读卡   f_writecard(command1);  //写卡    f_clearpassword();   //清除密码     f_changepassword();    //修改密码 } }

    标签: 12345

    上传时间: 2017-10-20

    上传用户:my_lcs

  • Numerical Techniques in Electromagnetics

    Theartofcomputationofelectromagnetic(EM)problemshasgrownexponentially for three decades due to the availability of powerful computer resources. In spite of this, the EM community has suffered without a suitable text on the computational techniques commonly used in solving EM-related problems. Although there have been monographs on one particular technique or another, the monographs are written for the experts rather than students. Only a few texts cover the major techniques and dothatinamannersuitableforclassroomuse.Itseemsexpertsinthisareaarefamiliar with one or a few techniques but not many seem to be familiar with all the common techniques. This text attempts to fill that gap.

    标签: Electromagnetics Techniques Numerical in

    上传时间: 2020-05-31

    上传用户:shancjb

  • CMOS MEMS_ A KEY TECHNOLOGY

    The mature CMOS fabrication processes are available in many IC foundries. It is cost-effective to leverage the existing CMOS fabrication technologies to implement MEMS devices. On the other hand, the MEMS devices could also add values to the IC industry as the Moore’s law reaching its limit. The CMOS MEMS could play a key role to bridge the gap between the CMOS and MEMS technologies. The CMOS MEMS also offers the advantage of monolithic integration of ICs and micro mechanical components. 

    标签: TECHNOLOGY CMOS MEMS KEY

    上传时间: 2020-06-06

    上传用户:shancjb

  • GaN-on-Si+Displace+Si+and+SiC

    GaN is an already well implanted semiconductor technology, widely diffused in the LED optoelectronics industry. For about 10 years, GaN devices have also been developed for RF wireless applications where they can replace Silicon transistors in some selected systems. That incursion in the RF field has open the door to the power switching capability in the lower frequency range and thus to the power electronic applications. Compared to Silicon, GaN exhibits largely better figures for most of the key specifications: Electric field, energy gap, electron mobility and melting point. Intrinsically, GaN could offer better performance than Silicon in terms of: breakdown voltage, switching frequency and Overall systems efficiency.

    标签: GaN-on-Si Displace and SiC Si

    上传时间: 2020-06-07

    上传用户:shancjb

  • Linux内核驱动模块编程指南

    《Linux内核驱动模块编程指南》最初是由 Ori Pomerantz为22版本的内核编写的,后来,ori将文档维护的任务交给了 Peter Jay Salzman,Peter完成了24内核版本文档的編写,毕竟Lnux内核驱动模块是一个更新很快的内容。现在,Peter也无法腾出足够的时间来完成2.6内核版本文档的编写,目前该2.6内核版本的文档由合作者 Michael Burian完成版本和注意Linux内核模块是一块不断更新进步的内容,在 LKMPG上总有关于是否保留还是历史版本的争论。Michae和我最终是决定为每个新的稳定版本内核建立一个新的文档分支。也就是说LKMPG24x专注于24的内核,而 LKMPG2.6X将专注于26的内核。我们不会在一篇文档中提供对旧版本内核的支持,对此感兴趣的读者应该寻找相关版本的文档分支在文档中的绝大部分源代码和讨论都应该适用于其它平台,但我无法提供任何保证。其中的一个例外就是 Chapter12,中断处理该章的源代码和讨论就只适用于x86平台。什么是内核模块?内核模块是如何被调入内核工作的?什么是内核模块?现在,你是不是想编写内核模块。你应该懂得C语言,写过一些用户程序,那么现在你将要见识一些真实的东西。在这里,你会看到一个野蛮的指针是如何毁掉你的文件系统的次内核崩溃意味着重启动。什么是内核模块?内核模块是一些可以让操作系统内核在需要时载入和执行的代码,这同样意味着它可以在不需要时有操作系统卸载。它们扩展了操作系统内核的功能却不需要重新启动系统。举例子来说,其中一种内核模块时设备驱动程序模块,它们用来让操作系统正确识別,使用安装在系统上的硬件设备。如果没有内核模块,我们不得不一次又一次重新编译生成单内核操作系统的内核镜像来加入新的功能。这还意味着一个臃肿的内核。内核模块是如何被调入内核工作的?你可以通过执行 Ismo命令来査看内核已经加载了哪些内核模块,该命令通过读取/proc/modules文件的内容来获得所需信息这些内核模块是如何被调入内核的?当操作系统内核需要的扩展功能不存在时,内核模块管理守护进程kmod1]执行 modprobe去加载内核模块。两种类型的参数被传递给 modprobe

    标签: linux

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