PAT 甲級 1001 A+B Format
阿新 • • 發佈:2018-08-03
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https://pintia.cn/problem-sets/994805342720868352/problems/994805528788582400
Calculate a + b and output the sum in standard format -- that is, the digits must be separated into groups of three by commas (unless there are less than four digits).
Input
Each input file contains one test case. Each case contains a pair of integers a and b where -1000000 <= a, b <= 1000000. The numbers are separated by a space.
Output
For each test case, you should output the sum of a and b in one line. The sum must be written in the standard format.
Sample Input
-1000000 9
Sample Output
-999,991
代碼:
#include <bits/stdc++.h> using namespace std; const int maxn = 1e5 + 10; char s[maxn], out[maxn]; int a[maxn]; void zlr_itoa(int x) { if(x == 0) { s[0] = ‘0‘; s[1] = 0; return ; } int top = 0; while(x) { a[top ++] = x % 10; x = x / 10; } int sz = 0; while(top != 0) { s[sz++] = (char)(a[-- top] + ‘0‘); s[sz] = 0; } } int main() { int a, b; scanf("%d%d", &a, &b); int sum = a + b; if(sum == 0) { printf("0\n"); return 0; } if(sum < 0) { printf("-"); sum = sum * (-1); } zlr_itoa(sum); int len = strlen(s); if(len < 3) { printf("%s\n", s); return 0; } if(len % 3 == 0) { for(int i = 0; i < len - 3; i += 3) { for(int j = i; j < i + 3; j ++) printf("%c", s[j]); printf(","); } printf("%c%c%c", s[len-3], s[len - 2], s[len - 1]); } else if(len % 3 == 1) { printf("%c,", s[0]); for(int i = 1; i < len - 4; i += 3) { for(int j = i; j < i + 3; j ++) printf("%c", s[j]); printf(","); } printf("%c%c%c", s[len-3], s[len - 2], s[len - 1]); } else if(len % 3 == 2) { printf("%c%c,", s[0], s[1]); for(int i = 2; i < len - 5; i += 3) { for(int j = i; j < i + 3; j ++) printf("%c", s[j]); printf(","); } printf("%c%c%c", s[len-3], s[len - 2], s[len - 1]); } printf("\n"); return 0; }
PAT 甲級 1001 A+B Format