本题的算法中涉及的三个函数: double bbp(int n,int k,int l) 其中n为十六进制位第n位,k取值范围为0到n+7,用来计算16nS1,16nS2,16nS3,16nS4小数部分的每一项。返回每一项的小数部分。 void pi(int m,int n,int p[]) 计算从n位开始的连续m位的十六进制数字。其中p为存储十六进制数字的数组。 void div(int p[]) void add(int a[],int b[]) 这两个函数都是为最后把十六进制数字转换为十进制数字服务的。 最后把1000个数字分别存储在整型数组r[]中,输出就是按顺序输出该数组。
上传时间: 2014-01-05
上传用户:xcy122677
编程题(15_01.c) 结构 struct student { long num char name[20] int score struct student *next } 链表练习: (1).编写函数struct student * creat(int n),创建一个按学号升序排列的新链表,每个链表中的结点中 的学号、成绩由键盘输入,一共n个节点。 (2).编写函数void print(struct student *head),输出链表,格式每行一个结点,包括学号,姓名,分数。 (3).编写函数struct student * merge(struct student *a,struct student *b), 将已知的a,b两个链表 按学号升序合并,若学号相同则保留成绩高的结点。 (4).编写函数struct student * del(struct student *a,struct student *b),从a链表中删除b链表中有 相同学号的那些结点。 (5).编写main函数,调用函数creat建立2个链表a,b,用print输出俩个链表;调用函数merge升序合并2个 链表,并输出结果;调用函数del实现a-b,并输出结果。 a: 20304,xxxx,75, 20311,yyyy,89 20303,zzzz,62 20307,aaaa,87 20320,bbbb,79 b: 20302,dddd,65 20301,cccc,99 20311,yyyy,87 20323,kkkk,88 20307,aaaa,92 20322,pppp,83
上传时间: 2016-04-13
上传用户:zxc23456789
TLC2543是TI公司的12位串行模数转换器,使用开关电容逐次逼近技术完成A/D转换过程。由于是串行输入结构,能够节省51系列单片机I/O资源;且价格适中,分辨率较高,因此在仪器仪表中有较为广泛的应用。 TLC2543的特点 (1)12位分辩率A/D转换器; (2)在工作温度范围内10μs转换时间; (3)11个模拟输入通道; (4)3路内置自测试方式; (5)采样率为66kbps; (6)线性误差±1LSBmax; (7)有转换结束输出EOC; (8)具有单、双极性输出; (9)可编程的MSB或LSB前导; (10)可编程输出数据长度。 TLC2543的引脚排列及说明 TLC2543有两种封装形式:DB、DW或N封装以及FN封装,这两种封装的引脚排列如图1,引脚说明见表1 TLC2543电路图和程序欣赏 #include<reg52.h> #include<intrins.h> #define uchar unsigned char #define uint unsigned int sbit clock=P1^0; sbit d_in=P1^1; sbit d_out=P1^2; sbit _cs=P1^3; uchar a1,b1,c1,d1; float sum,sum1; double sum_final1; double sum_final; uchar duan[]={0x3f,0x06,0x5b,0x4f,0x66,0x6d,0x7d,0x07,0x7f,0x6f}; uchar wei[]={0xf7,0xfb,0xfd,0xfe}; void delay(unsigned char b) //50us { unsigned char a; for(;b>0;b--) for(a=22;a>0;a--); } void display(uchar a,uchar b,uchar c,uchar d) { P0=duan[a]|0x80; P2=wei[0]; delay(5); P2=0xff; P0=duan[b]; P2=wei[1]; delay(5); P2=0xff; P0=duan[c]; P2=wei[2]; delay(5); P2=0xff; P0=duan[d]; P2=wei[3]; delay(5); P2=0xff; } uint read(uchar port) { uchar i,al=0,ah=0; unsigned long ad; clock=0; _cs=0; port<<=4; for(i=0;i<4;i++) { d_in=port&0x80; clock=1; clock=0; port<<=1; } d_in=0; for(i=0;i<8;i++) { clock=1; clock=0; } _cs=1; delay(5); _cs=0; for(i=0;i<4;i++) { clock=1; ah<<=1; if(d_out)ah|=0x01; clock=0; } for(i=0;i<8;i++) { clock=1; al<<=1; if(d_out) al|=0x01; clock=0; } _cs=1; ad=(uint)ah; ad<<=8; ad|=al; return(ad); } void main() { uchar j; sum=0;sum1=0; sum_final=0; sum_final1=0; while(1) { for(j=0;j<128;j++) { sum1+=read(1); display(a1,b1,c1,d1); } sum=sum1/128; sum1=0; sum_final1=(sum/4095)*5; sum_final=sum_final1*1000; a1=(int)sum_final/1000; b1=(int)sum_final%1000/100; c1=(int)sum_final%1000%100/10; d1=(int)sum_final%10; display(a1,b1,c1,d1); } }
上传时间: 2013-11-19
上传用户:shen1230
#include<iom16v.h> #include<macros.h> #define uint unsigned int #define uchar unsigned char uint a,b,c,d=0; void delay(c) { for for(a=0;a<c;a++) for(b=0;b<12;b++); }; uchar tab[]={ 0xc0,0xf9,0xa4,0xb0,0x99,0x92,0x82,0xf8,0x80,0x90,
上传时间: 2013-10-21
上传用户:13788529953
C++完美演绎 经典算法 如 /* 头文件:my_Include.h */ #include <stdio.h> /* 展开C语言的内建函数指令 */ #define PI 3.1415926 /* 宏常量,在稍后章节再详解 */ #define circle(radius) (PI*radius*radius) /* 宏函数,圆的面积 */ /* 将比较数值大小的函数写在自编include文件内 */ int show_big_or_small (int a,int b,int c) { int tmp if (a>b) { tmp = a a = b b = tmp } if (b>c) { tmp = b b = c c = tmp } if (a>b) { tmp = a a = b b = tmp } printf("由小至大排序之后的结果:%d %d %d\n", a, b, c) } 程序执行结果: 由小至大排序之后的结果:1 2 3 可将内建函数的include文件展开在自编的include文件中 圆圈的面积是=201.0619264
标签: my_Include include define 3.141
上传时间: 2014-01-17
上传用户:epson850
源代码\用动态规划算法计算序列关系个数 用关系"<"和"="将3个数a,b,c依次序排列时,有13种不同的序列关系: a=b=c,a=b<c,a<b=v,a<b<c,a<c<b a=c<b,b<a=c,b<a<c,b<c<a,b=c<a c<a=b,c<a<b,c<b<a 若要将n个数依序列,设计一个动态规划算法,计算出有多少种不同的序列关系, 要求算法只占用O(n),只耗时O(n*n).
上传时间: 2013-12-26
上传用户:siguazgb
The government of a small but important country has decided that the alphabet needs to be streamlined and reordered. Uppercase letters will be eliminated. They will issue a royal decree in the form of a String of B and A characters. The first character in the decree specifies whether a must come ( B )Before b in the new alphabet or ( A )After b . The second character determines the relative placement of b and c , etc. So, for example, "BAA" means that a must come Before b , b must come After c , and c must come After d . Any letters beyond these requirements are to be excluded, so if the decree specifies k comparisons then the new alphabet will contain the first k+1 lowercase letters of the current alphabet. Create a class Alphabet that contains the method choices that takes the decree as input and returns the number of possible new alphabets that conform to the decree. If more than 1,000,000,000 are possible, return -1. Definition
标签: government streamline important alphabet
上传时间: 2015-06-09
上传用户:weixiao99
[输入] 图的顶点个数N,图中顶点之间的关系及起点A和终点B [输出] 若A到B无路径,则输出“There is no path” 否则输出A到B路径上个顶点 [存储结构] 图采用邻接矩阵的方式存储。 [算法的基本思想] 采用广度优先搜索的方法,从顶点A开始,依次访问与A邻接的顶点VA1,VA2,...,VAK, 访问遍之后,若没有访问B,则继续访问与VA1邻接的顶点VA11,VA12,...,VA1M,再访问与VA2邻接顶点...,如此下去,直至找到B,最先到达B点的路径,一定是边数最少的路径。实现时采用队列记录被访问过的顶点。每次访问与队头顶点相邻接的顶点,然后将队头顶点从队列中删去。若队空,则说明到不存在通路。在访问顶点过程中,每次把当前顶点的序号作为与其邻接的未访问的顶点的前驱顶点记录下来,以便输出时回溯。 #include<stdio.h> int number //队列类型 typedef struct{ int q[20]
标签: 输入
上传时间: 2015-11-16
上传用户:ma1301115706
We have a group of N items (represented by integers from 1 to N), and we know that there is some total order defined for these items. You may assume that no two elements will be equal (for all a, b: a<b or b<a). However, it is expensive to compare two items. Your task is to make a number of comparisons, and then output the sorted order. The cost of determining if a < b is given by the bth integer of element a of costs (space delimited), which is the same as the ath integer of element b. Naturally, you will be judged on the total cost of the comparisons you make before outputting the sorted order. If your order is incorrect, you will receive a 0. Otherwise, your score will be opt/cost, where opt is the best cost anyone has achieved and cost is the total cost of the comparisons you make (so your score for a test case will be between 0 and 1). Your score for the problem will simply be the sum of your scores for the individual test cases.
标签: represented integers group items
上传时间: 2016-01-17
上传用户:jeffery
编写具有如下函数原型的递归与非递归两种函数equ,负责判断数组a与b的前n个元素值是否按下标对应完全相同,是则返回true,否则返回false。并编制主函数对它们进行调用,以验证其正确性。 bool equ(int a[], int b[], int n) 提示:递归函数中可按如下方式来分解并处理问题,先判断最后一个元素是否相同,不同则返false;相同则看n是否等于1,是则返回true,否则进行递归调用(传去实参a、b与 n-1,去判断前n-1个元素的相等性),并返回递归调用的结果(与前n-1个元素的是否相等性相同)。
上传时间: 2013-12-03
上传用户:梧桐
