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.

Case 1:

1 + 2 = 3

Case 2:

112233445566778899 + 998877665544332211 = 1111111111111111110

#include<iostream>

#include<string>

#include<cstdio>

using namespace std;

string a,b;

int sum[],q;//q为相加之后的位数

void add2(string a,string b) {

        /*两个大数相加求和*/

    int m,n,t=,i=,int_a,int_b;

    //t为进位数

    m=a.length()-;

    n=b.length()-;

    while(m>=&&n>=){

        int_a=a[m]-'';//将输入的每一位数先转换成int型

        int_b=b[n]-'';

        sum[i]=(int_a+int_b+t)%;//相加后第i位的数字

        t=(int_a+int_b+t)/;//相加后向上一位进的位数

        i++;

        m--;

        n--;

    }

    if(m>n){

        while(m>=){

            int_a=a[m]-'';

            sum[i]=(int_a+t)%;

            t=(int_a+t)/;

            m--;

            i++;

        }

    }

    if(m<n){

        while(n>=){

            int_b=b[n]-'';

            sum[i]=(int_b+t)%;

            t=(int_b+t)/;

            n--;

            i++;

        }

    }

    q=i-;

    if(t>=)//最后一次相加存在进位时

        {

            sum[i]=t;

            q=i;

        }

}

void output() {

    /*输出函数*/

    int i=q;

    cout<<a<<" + "<<b<<" = ";

    for(;i>=;i--){

        cout<<sum[i];

    }

    cout<<endl; 

}

int main() {

    int n;//测试用例数

    cin>>n;

    int i=;

    for(; i<n; i++) {

        cin>>a>>b;

        add2(a,b);

        printf("Case %d:\n",i+);//测试样例格式

        output();

        if(i<n-)

        cout<<endl;

    }

    return ;

}