• HDU1002 A + B Problem II 大数问题


    题目链接:

    http://acm.hdu.edu.cn/showproblem.php?pid=1002

    A + B Problem II

    Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
    Total Submission(s): 409136    Accepted Submission(s): 79277


    Problem Description
    I have a very simple problem for you. Given two integers A and B, your job is to calculate the Sum of A + B.
     
    Input
    The first line of the input contains an integer T(1<=T<=20) which means the number of test cases. Then T lines follow, each line consists of two positive integers, A and B. Notice that the integers are very large, that means you should not process them by using 32-bit integer. You may assume the length of each integer will not exceed 1000.
     
    Output
    For each test case, you should output two lines. The first line is "Case #:", # means the number of the test case. The second line is the an equation "A + B = Sum", Sum means the result of A + B. Note there are some spaces int the equation. Output a blank line between two test cases.
     
    Sample Input
    2 1 2 112233445566778899 998877665544332211
     
    Sample Output
    Case 1: 1 + 2 = 3 Case 2: 112233445566778899 + 998877665544332211 = 1111111111111111110
     
    思路:
    采用字符数组储存两个加数,模拟小学的加法竖式计算
    注意点:
    1.俩个加数长度不等的时候,长度短的加数前面加0,0的个数为二者长度相减的绝对值
    2.输出格式问题,只有输出最后一组数据的结果的时候,一个回车,其余都是两个回车
    代码如下:
    #include<bits/stdc++.h>
    int main()
    {
        int n;
        scanf("%d",&n);
        int y=1;
        while(y<=n)
        {
            char a[1005]= {'0'},b[1005]= {'0'},C[1005],A[1005],B[1005];
            getchar();
            scanf("%s %s",a,b);
            int l1=strlen(a);
            int l2=strlen(b);
            if(l1>l2)
            {
                int k=l1-l2;
                char d[k];
                for(int i=0; i<k; i++)
                    d[i]='0';
                d[k]='';
                B[0]='';
                strcat(B,d);
                strcat(B,b);
                A[0]='';
                strcat(A,a);
            }
            else if(l1<l2)
            {
                int k=l2-l1;
                char d[k];
                for(int i=0; i<k; i++)
                    d[i]='0';
                d[k]='';
                A[0]='';
                strcat(A,d);
                strcat(A,a);
                B[0]='';
                strcat(B,b);
            }
            else if(l2==l1)
            {
                A[0]='';
                B[0]='';
                strcat(A,a);
                strcat(B,b);
            }
            l1=strlen(A);
            l2=strlen(B);
            int k=0,cc=0;
            for(int i=l1-1,j=l2-1; i>=0&&j>=0; i--,j--)
            {
                int t=A[i]-'0'+B[j]-'0'+cc;
                if(t>=10)
                {
                    cc=1;
                    t=t-10;
                }
                else
                {
                    cc=0;
                }
                C[k]=t+'0';
                k++;
            }
            if(cc==1)
            {
                C[k]='1';
                C[k+1]='';
            }
            else
            {
                C[k]='';
            }
            int l3=strlen(C);
            printf("Case %d:
    ",y);
            printf("%s + %s = ",a,b);
            for(int i=l3-1; i>=0; i--)
            {
                printf("%c",C[i]);
            }
            printf("
    ");
            if(y!=n)
                printf("
    ");
            y++;
        }
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/yinbiao/p/8728486.html
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