FZU 2102 Solve equation（水，进制转化）&& FZU 2111（贪心，交换使数字最小）

Time Limit:1000MS Memory Limit:32768KB 64bit IO Format:%I64d & %I64u

Description

You are given two positive integers A and B in Base C. For the equation:

A=k*B+d

We know there always existing many non-negative pairs (k, d) that satisfy the equation above. Now in this problem, we want to maximize k.

For example, A="123" and B="100", C=10. So both A and B are in Base 10. Then we have:

(1) A=0*B+123

(2) A=1*B+23

As we want to maximize k, we finally get one solution: (1, 23)

The range of C is between 2 and 16, and we use 'a', 'b', 'c', 'd', 'e', 'f' to represent 10, 11, 12, 13, 14, 15, respectively.

Input

The first line of the input contains an integer T (T≤10), indicating the number of test cases.

Then T cases, for any case, only 3 positive integers A, B and C (2≤C≤16) in a single line. You can assume that in Base 10, both A and B is less than 2^31.

Output

For each test case, output the solution “(k,d)” to the equation in Base 10.

Sample Input

3

2bc 33f 16

123 100 10

1 1 2

Sample Output

(0,700)

(1,23)

(1,0)

题解：

A=k*B+d找到k,d使等式成立，并且k最大，A,B是C进制的；很简单， k = (A - d)/B;

k最大， k = floor(A/B);进制转化成10进制就好了

代码：

#include<iostream>
#include<algorithm>
#include<cstdio>
#include<cmath>
using namespace std;
bool is_digit(char c){
    if(c >= '0' && c <= '9')
        return true;
    return false;
}
int cj(char *s, int C){
    int x = 0;
//    cout << s << " " << C << endl;
    for(int i = 0; s[i]; i++){
        int t = is_digit(s[i]) ? s[i] - '0':s[i] - 'a' + 10;
        x = x * C + t;
    }
//    cout << "x = " << x << endl;
    return x;
}
int main(){
    int T;
    scanf("%d", &T);
    char s[110], s1[110];
    while(T--){
        int A, B, C;
        scanf("%s%s%d", s, s1, &C);
        A = cj(s, C);
        B = cj(s1, C);
        int r;
        r = A/B;
        int l = A - r * B;
        printf("(%d,%d)
", r,l);
    }
    return 0;
}
H
Time Limit:1000MS     Memory Limit:32768KB     64bit IO Format:%I64d & %I64uSubmit Status Practice FZU 2111
Description
Now you are given one non-negative integer n in 10-base notation, it will only contain digits ('0'-'9'). You are allowed to choose 2 integers i and j, such that: i!=j, 1≤i<j≤|n|, here |n| means the length of n’s 10-base notation. Then we can swap n[i] and n[j].
For example, n=9012, we choose i=1, j=3, then we swap n[1] and n[3], then we get 1092, which is smaller than the original n.
Now you are allowed to operate at most M times, so what is the smallest number you can get after the operation(s)?
Please note that in this problem, leading zero is not allowed!
Input
The first line of the input contains an integer T (T≤100), indicating the number of test cases.
Then T cases, for any case, only 2 integers n and M (0≤n<10^1000, 0≤M≤100) in a single line.
Output
For each test case, output the minimum number we can get after no more than M operations.
Sample Input
3 9012 0 9012 1 9012 2
Sample Output
9012 1092 1029
题解：
水贪心，交换不能出现前缀0；
代码：

#include<iostream>
#include<algorithm>
#include<cstdio>
#include<cmath>
#include<cstring>
using namespace std;
const int MAXN = 1010;
char s[MAXN];
int main(){
    int T, M;
    scanf("%d", &T);
    while(T--){
        scanf("%s%d", s, &M);
            for(int i = 0; s[i]; i++){
                for(int j = i + 1; s[j]; j++){
                    char pos = i;
                    if(M <= 0)break;
                    if(i == 0){
                        if(s[j] != '0' && s[j] < s[pos]){
                            pos = j;
                        }
                    }
                    else{
                        if(s[j] < s[pos]){
                            pos = j;
                        }
                    }
                    if(pos != i){
                        swap(s[pos], s[i]);
                        M--;
                    }
                }
            }
            printf("%s
", s);
    }
    return 0;
}