北京大学ACM比赛题目 Write a program to read four lines of upper case (i.e., all CAPITAL LETTERS) text input (no more than 72 characters per line) from the input file and print a vertical histogram that shows how many times each letter (but not blanks, digits, or punctuation) appears in the all-upper-case input. Format your output exactly as shown.
标签: CAPITAL LETTERS program Write
上传时间: 2014-01-17
上传用户:410805624
A design about 8051 (running at 12MHz) based system with 3 7-Seg displays and two buttons to implement the following functions. 1. When press the + button, the display C = A+B. 2. When press the button, the display C = A - B. “A” and “B” are 8-bit inputs when “C” is 9-bit output.
上传时间: 2015-05-05
上传用户:guoxiy
/****************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
#include<stdio.h> #include<windows.h> int xuanxiang; int studentcount; int banjihao[100]; int xueqihao[100][10]; char xm[100][100]; int xuehao[100][10]; int score[100][3]; int yuwen; int shuxue[000]; int yingyu[100]; int c[100]; int p; char x[1000][100]="",y[100][100]="";/*x学院 y专业 z班级*/ int z[100]; main() { void input(); void inputsc(); void alter(); void scbybannji(); printf("--------学生成绩管理-----\n"); printf("请按相应数字键来实现相应功能\n"); printf("1.录入学生信息 2.录入学生成绩 3.修改学生成绩\n"); printf("4.查询学生成绩 5.不及格科目及名单 6.按班级输出学生成绩单\n"); printf("请输入你要实现的功能所对应的数字:"); scanf("%d",&xuanxiang); system("cls"); getchar(); switch (xuanxiang) { case 1:input(); case 2:inputsc(); case 3:alter(); /*case 4:select score(); case 5:bujigekemujimingdan();*/ case 6:scbybanji; } } void input() { int i; printf("请输入你的学院名称:"); gets(x); printf("请输入你的专业名称:"); gets(y); printf("请输入你的班级号:"); scanf("%d",&z); printf("请输入你们一个班有几个人:"); scanf("%d",&p); system("cls"); for(i=0;i<p;i++) { printf("请输入第%d个学生的学号:",i+1); scanf("%d",xuehao[i]); getchar(); printf("请输入第%d个学生的姓名:",i+1); gets(xm[i]); system("cls"); } printf("您已经录入完毕您的班级所有学生的信息!\n"); printf("您的班级为%s%s%s\n",x,y,z); /*alter(p);*/ } void inputsc() { int i; for(i=0;i<p;i++) { printf("\n"); printf("--------------------------------------------------------------------------------\n\n"); printf("\t\t\t\t录入学生的成绩\n\n\n"); printf("--------------------------------------------------------------------------------\n\n"); printf("\t\t\t\t%s\n",xm[i]); printf("\n"); printf("\t\t\t\t数学:"); scanf("%d",&shuxue[i]); printf("\n"); getchar(); printf("\t\t\t\t英语:"); scanf("%d",&yingyu[i]); printf("\n"); getchar(); printf("\t\t\t\tc语言:"); scanf("%d",&c[i]); system("cls"); } } void alter() { int i;/*循环变量*/ int m[10000];/*要查询的学号*/ int b;/*修改后的成绩*/ char kemu[20]=""; printf("请输入你要修改的学生的学号"); scanf("%d",&m); for (i=0;i<p;i++) { if (m==xuehao[i]) { printf("%s的数学成绩为%d,英语成绩为%d,c语言成绩为%d,xm[i],shuxue[i],yingyu[i],c[i]"); printf("请输入你想修改的科目");} } gets(kemu); getchar(); if (kemu=="数学"); { scanf("%d",&b); shuxue[i]=b;} if (kemu=="英语"); { scanf("%d",&b); yingyu[i]=b;} if (kemu=="c语言"); { scanf("%d",&b); c[i]=b; } printf("%s的数学成绩为%d,英语成绩为%d,c语言成绩为%d,xm[i],shuxue[i],yingyu[i],c[i]"); } void scbybannji() { int i; char zyname[20]; int bjnumber; printf("请输入你的专业名称"); scanf("%s",&zyname); printf("请输入你的班级号"); scanf("%d",&bjnumber); for (i=0;i<p;i++) { if (zyname==y[i]); if (bjnumber==z[i]); printf("专业名称%s班级号%d数学成绩%d英语成绩%dc语言成绩%d,y[i],z[i],shuxue[i],yingyu[i],c[i]"); } }
标签: c语言
上传时间: 2018-06-08
上传用户:2369043090
This book is about multipoint cooperative communication, a key technology to overcome the long-standing problem of limited transmission rate caused by inter- point interference. However, the multipoint cooperative communication is not an isolated technology. Instead, it covers a vast range of research areas such as the multiple-input multiple-outputsystem, the relay network, channel state information issues, inter-point radio resource management operations, coordinated or joint transmissions, etc. We suppose that any attempt trying to thoroughly analyze the multipoint cooperative communication technology might end up working on a cyclopedia for modern communication systems and easily get lost in discussing all kinds of cooperative communication schemes as well as the associated models and their variations.
标签: Communication Multi-point Cooperative Systems
上传时间: 2020-05-31
上传用户:shancjb
近些年来,随着电力电子技术的发展,电力电子系统集成受到越来越多的关注,其中标准化模块的串并联技术成为研究热点之一。输入并联输出串联型(Input-Parallel and Output-Series,IPOS)组合变换器适用于大功率高输出电压的场合。 要保证IPOS组合变换器正常工作,必须保证其各模块的输出电压均衡。本文首先揭示了IPOS组合变换器中每个模块输入电流均分和输出电压均分之间的关系,在此基础上提出一种输出均压控制方案,该方案对系统输出电压调节没有影响。选择移相控制全桥(Full-Bridge,FB)变换器作为基本模块,对n个全桥模块组成的IPOS组合变换器建立小信号数学模型,推导出采用输出均压控制方案的IPOS-FB系统的数学模型,该模型证明各模块输出均压闭环不影响系统输出电压闭环的调节,给出了模块输出均压闭环和系统输出电压闭环的补偿网络参数设计。对于IPOS组合变换器,采用交错控制,由于电流纹波抵消效应,输入滤波电容容量可大大减小;由于电压纹波抵消作用,在相同的系统输出电压纹波下,各模块的输出滤波电容可大大减小,由此可以提高变换器的功率密度。 根据所提出的输出均压控制策略,在实验室研制了一台由两个1kW全桥模块组成的IPOS-FB原理样机,每个模块输入电压为270V,输出电压为180V。并进行了仿真和实验验证,结果均表明本控制方案是正确有效的。
上传时间: 2013-06-17
上传用户:cwyd0822
ASIC对产品成本和灵活性有一定的要求.基于MCU方式的ASIC具有较高的灵活性和较低的成本,然而抗干扰性和可靠性相对较低,运算速度也受到限制.常规ASIC的硬件具有速度优势和较高的可靠性及抗干扰能力,然而不是灵活性较差,就是成本较高.与传统硬件(CHW)相比,具有一定可配置特性的场可编程门阵列(FPGA)的出现,使建立在可再配置硬件基础上的进化硬件(EHW)成为智能硬件电路设计的一种新方法.作为进化算法和可编程器件技术相结合的产物,可重构FPGA的研究属于EHW的研究范畴,是研究EHW的一种具体的实现方法.论文认为面向分类的专用类可重构FPGA(ASR-FPGA)的研究,可使可重构电路粒度划分的针对性更强、设计更易实现.论文研究的可重构FPGA的BCH通讯纠错码进化电路是一类ASR-FPGA电路的具体方法,具有一定的实用价值.论文所做的工作主要包括:(1)BCH编译码电路的设计——求取实验用BCH码的生成多项式和校验多项式及其相应的矩阵并构造实验用BCH码;(2)建立基于可重构FPGA的基核——构造具有可重构特性的硬件功能单元,以此作为可重构BCH码电路的设计基础;(3)构造实现可重构BCH纠错码电路的方法——建立可重构纠错码硬件电路算法并进行实验验证;(4)在可重构纠错码电路基础上,构造进化硬件控制功能块的结构,完成各进化RLA控制模块的验证和实现.课题是将可重构BCH码的编译码电路的实现作为一类ASR-FPGA的研究目标,主要成果是根据可编程逻辑电路的特点,选择一种可编程树的电路模型,并将它作为可重构FPGA电路的基核T;通过对循环BCH纠错码的构造原理和电路结构的研究,将基核模型扩展为能满足纠错码电路需要的纠错码基本功能单元T;以T作为再划分的基本单元,对FPGA进行"格式化",使T规则排列在FPGA上,通过对T的控制端的不同配置来实现纠错码的各个功能单元;在可重构基核的基础上提出了纠错码重构电路的嵌套式GA理论模型,将嵌套式GA的染色体串作为进化硬件描述语言,通过转换为相应的VHDL语言描述以实现硬件电路;采用RLA模型的有限状态机FSM方式实现了可重构纠错码电路的EHW的各个控制功能块.在实验方面,利用Xilinx FPGA开发系统中的VHDL语言和电路图相结合的设计方法建立了循环纠错码基核单元的可重构模型,进行循环纠错BCH码的电路和功能仿真,在Xilinx公司的Virtex600E芯片进行了FPGA实现.课题在研究模型上选取的是比较基本的BCH纠错码电路,立足于解决基于可重构FPGA核的设计的基本问题.课题的研究成果及其总结的一套ASR-FPGA进化硬件电路的设计方法对实际的进化硬件设计具有一定的实际指导意义,提出的基于专用类基核FPGA电路结构的研究方法为新型进化硬件的器件结构的设计也可提供一种借鉴.
上传时间: 2013-07-01
上传用户:myworkpost
Abstract: This document details the Oceanside (MAXREFDES9#) subsystem reference design, a 3.3V to 15V input,±15V (±12V) output, isolated power supply. The Oceanside design includes a high-efficiency step-up controller, a36V H-bridge transformer driver for isolated supplies, a wide input range, and adjustable output low-dropout linearregulator (LDO). Test results and hardware files are included.
上传时间: 2013-10-12
上传用户:jinyao
Industrial remote monitoring systems and keep-alivecircuits spend most of their time in standby mode. Manyof these systems also depend on battery power, so powersupply effi ciency in standby state is very important tomaximize battery life. The LT®8410/-1 high effi ciencyboost converter is ideal for these systems, requiringonly 8.5μA of quiescent current in standby mode. Thedevice integrates high value (12.4M/0.4M) output feedbackresistors, signifi cantly reducing input current whenthe output is in regulation with no load. Other featuresinclude an integrated 40V switch and Schottky diode,output disconnect with current limit, built in soft-start,overvoltage protection and a wide input range, all in atiny 8-pin 2mm × 2mm DFN package.
上传时间: 2013-11-23
上传用户:新手无忧
a_bit equ 20h ;个位数存放处 b_bit equ 21h ;十位数存放处 temp equ 22h ;计数器寄存器 star: mov temp,#0 ;初始化计数器 stlop: acall display inc temp mov a,temp cjne a,#100,next ;=100重来 mov temp,#0 next: ljmp stlop ;显示子程序 display: mov a,temp ;将temp中的十六进制数转换成10进制 mov b,#10 ;10进制/10=10进制 div ab mov b_bit,a ;十位在a mov a_bit,b ;个位在b mov dptr,#numtab ;指定查表启始地址 mov r0,#4 dpl1: mov r1,#250 ;显示1000次 dplop: mov a,a_bit ;取个位数 MOVC A,@A+DPTR ;查个位数的7段代码 mov p0,a ;送出个位的7段代码
上传时间: 2013-11-06
上传用户:lx9076