uj5u.com熱心網友回復:
分別寫三個函式各做各的就行,不用你自己寫代碼判斷型別,都由人腦判斷,然后去呼叫各自的處理函式。庫里還有abs和fabs這種呢,沒啥丟人的。
uj5u.com熱心網友回復:
C++模板了解一下。uj5u.com熱心網友回復:
c++剛上了一節課??我去了解一下
uj5u.com熱心網友回復:
不過題目說了“撰寫C程式……”,那就用if或switch判斷具體資料型別吧。uj5u.com熱心網友回復:
僅供參考:#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <locale.h>
int main() {
int i,v;
char bs[33];
char b[33];
char hs[9];
char h[9];
char s[4];
char *e;
// 十進制整數轉二進制串;
i=1024;
ltoa(i,b,2);
sprintf(bs,"%032s",b);
printf("i=%d,bs=%s\n",i,bs);
// 十進制整數轉十六進制串;
i=1024;
ltoa(i,h,16);
sprintf(hs,"%08s",h);
printf("i=%d,hs=%s\n",i,hs);
// 十六進制字串轉成十進制數
strcpy(hs,"00000400");
sscanf(hs,"%x",&i);
printf("hs=%s,i=%d\n",hs,i);
// 二進制字串轉化為十六進制字串;
strcpy(bs,"00000000000000000000010000000000");
i=strtol(bs,&e,2);
ltoa(i,h,16);
sprintf(hs,"%08s",h);
printf("bs=%s,hs=%s\n",bs,hs);
// 二進制字串轉化為十進制數;
strcpy(bs,"00000000000000000000010000000000");
i=strtol(bs,&e,2);
printf("bs=%s,i=%d\n",bs,i);
// 十六進制字串轉成二進制串
strcpy(hs,"00000400");
sscanf(hs,"%x",&i);
ltoa(i,b,2);
sprintf(bs,"%032s",b);
printf("hs=%s,bs=%s\n",hs,bs);
// ASC\GBK字串轉十六進制串
strcpy(s,"a漢");
i=0;
while (1) {
if (0==s[i]) break;
sprintf(hs+i*2,"%02X",(unsigned char)s[i]);
i++;
}
setlocale(LC_ALL,"chs");
printf("s=%s,hs=%s\n",s,hs);
// 十六進制字串轉成漢字(GBK)及字符(ASC)
strcpy(hs,"61BABA");
i=0;
while (1) {
if (1!=sscanf(hs+i*2,"%2x",&v)) break;
s[i]=(char)v;
i++;
}
s[i]=0;
printf("hs=%s,s=%s\n",hs,s);
return 0;
}
//i=1024,bs=00000000000000000000010000000000
//i=1024,hs=00000400
//hs=00000400,i=1024
//bs=00000000000000000000010000000000,hs=00000400
//bs=00000000000000000000010000000000,i=1024
//hs=00000400,bs=00000000000000000000010000000000
//s=a漢,hs=61BABA
//hs=61BABA,s=a漢
uj5u.com熱心網友回復:
#include <stdio.h>
char *
bits(char type, int value, char *buf)
{
unsigned int bit;
unsigned int u;
int len;
int i;
if ('c' == type) {
bit = 0x80;
len = 8;
} else if ('s' == type) {
bit = 0x8000;
len = 16;
} else if ('i' == type) {
bit = 0x80000000;
len = 32;
}
u = (unsigned int)value;
for (i = 0; i < len; i++) {
if (u & bit) {
buf[i] = '1';
} else {
buf[i] = '0';
}
bit >>= 1;
}
buf[len] = '\0';
return buf;
}
int
main(int argc, char *argv[])
{
char buf[32 + 1];
char c = 20;
short s = 40;
int i = 100;
printf("%12d : %s\n", c, bits('c', c, buf));
printf("%12d : %s\n", s, bits('s', s, buf));
printf("%12d : %s\n", i, bits('i', i, buf));
i = -100;
printf("%12d : %s\n", i, bits('i', i, buf));
return 0;
}
uj5u.com熱心網友回復:
/* 輸出 */
/*
20 : 00010100
40 : 0000000000101000
100 : 00000000000000000000000001100100
-100 : 11111111111111111111111110011100
*/
uj5u.com熱心網友回復:
不是直接輸出答案啊
用程式算出答案
uj5u.com熱心網友回復:
#include <stdio.h>
#include <stdlib.h>
int main() {
int i;
char b[33];
char ln[80];
char c;
while (1) {
rewind(stdin);
fgets(ln,80,stdin);
if (ln[0]=='\n') break;
if (2==sscanf(ln,"c=%d%c",&i,&c) && c=='\n' && -128<=c && c<=127) {
ltoa(i,b,2);
printf("%0*s\n", 8,b);
} else
if (2==sscanf(ln,"s=%d%c",&i,&c) && c=='\n' && -32768 && c<=32767) {
ltoa(i,b,2);
printf("%0*s\n",16,b);
} else
if (2==sscanf(ln,"i=%d%c",&i,&c) && c=='\n' ) {
ltoa(i,b,2);
printf("%0*s\n",32,b);
} else
if (2==sscanf(ln,"j=%d%c",&i,&c) && c=='\n' ) {
ltoa(i,b,2);
printf("%0*s\n",32,b);
} else {
printf("Format Error!\n");
}
}
return 0;
}
//輸入c=20
//輸出00010100
//輸入s=40
//輸出0000000000101000
//輸入i=100
//輸出00000000000000000000000001100100
//輸入j=-100
//輸出11111111111111111111111110011100
//輸入回車
//退出程式
uj5u.com熱心網友回復:
感覺這題出的有問題,明明加了記憶體中存盤的字樣,卻只給出了大端示例,但一般平時用的機器,小端居多。2種都給你吧。#include<stdio.h>
#include<stdlib.h>
#include<string.h>
typedef unsigned char UChar;
int main()
{
int a;
scanf("%d",&a);
//按照實際記憶體序
UChar* pa=(UChar*)&a;
for(int i=0;i<sizeof(a);i++)
{
UChar s = *pa;
for(int i=7;i>=0;i--)
printf("%d",(s>>i)&1);
pa++;
}
printf("\n");
//按照題目示例的意思
char binS[33];
ltoa(a,binS,2);
for(int i=0;i<32-strlen(binS);i++)
printf("%c",'0');
printf("%s",binS);
return 0;
}
uj5u.com熱心網友回復:
大小端就扯遠了!重點是2進制數,所以能顯示從高位低位就可以了
uj5u.com熱心網友回復:
都是比我厲害的大佬,有些代碼還沒學過,有的學了
uj5u.com熱心網友回復:
審題!審題!審題!
uj5u.com熱心網友回復:
6樓是程式,這里是6樓的程式的輸出
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標籤:C語言
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