题目链接。
分析:
简单的大数乘法。
#include <stdio.h> #include <string.h> #include <stdlib.h> void multiply_big(char *a, char *b, char *c){//大数乘法 int len1 = strlen(a), len2 = strlen(b), *s; int i, j; s = (int *)malloc(sizeof(int)*len1*len2); for(i=0; i<len1+len2; i++) s[i] = 0; for(i=0; i<len1; i++){ for(j=0; j<len2; j++){ s[i+j+1] += (a[i]-'0')*(b[j]-'0'); } } for(i=len1+len2-1; i>=1; i--){ if(s[i] >= 10){ s[i-1] += s[i] / 10; s[i] %= 10; } } i=0; while(s[i] == 0) i++; for(j=0; i<len1+len2; i++, j++) c[j] = s[i] + '0'; c[j] = '\0'; free(s); } int dividor_big(char *a, int b, char *c){ //大数除法,这里除数并非大数,返回余数 char *s; int tmp, i, j, len = strlen(a); s = (char *)malloc(sizeof(char)*(len+1)); tmp = 0; for(i=0; i<len; i++){ tmp = tmp*10+a[i]-'0'; s[i] = tmp / b + '0'; tmp %= b; } s[i] = '\0'; for(i=0; s[i] == '0' && s[i] != '\0'; i++); if(s[i] == '\0'){ c[0] = '0'; c[1] = '\0'; } else{ for(j=0; i<len; i++, j++) c[j] = s[i]; c[j] = '\0'; } free(s); return tmp; } int main(){ char a[1000], b[1000], c[1000]; scanf("%s %s", a, b); multiply_big(a, b, c); printf("%s\n", c); return 0; }