• 1023 Have Fun with Numbers (20)(20 point(s))


    problem

    Notice that the number 123456789 is a 9-digit number consisting exactly the numbers from 1 to 9, with no duplication. Double it we will obtain 246913578, which happens to be another 9-digit number consisting exactly the numbers from 1 to 9, only in a different permutation. Check to see the result if we double it again!
    
    Now you are suppose to check if there are more numbers with this property. That is, double a given number with k digits, you are to tell if the resulting number consists of only a permutation of the digits in the original number.
    
    Input Specification:
    
    Each input file contains one test case. Each case contains one positive integer with no more than 20 digits.
    
    Output Specification:
    
    For each test case, first print in a line "Yes" if doubling the input number gives a number that consists of only a permutation of the digits in the original number, or "No" if not. Then in the next line, print the doubled number.
    
    Sample Input:
    
    1234567899
    Sample Output:
    
    Yes
    2469135798
    

    tip

    answer

    
    #include<iostream>
    #include<set>
    #include<cstring>
    #include<algorithm>
    
    #define LL long long
    using namespace std;
    
    string a, da;
    int na[22], nda[22];
    
    void GetNum(string t, int *n){
    	if(t == "0") {
    		n[0]++;
    		return ;
    	}
    	for(int i = 0; i < t.size(); i++){
    //		s.insert(t[i]-'0');
    		n[t[i]-'0']++;
    	}
    	return ;
    }
    
    string Double(string t){
    	string tt = "";
    	reverse(t.begin(), t.end());
    	int last = 0, th = 0;
    	for(int i = 0; i < t.size(); i++){
    		th = 2*(t[i]-'0') + last;
    		tt.push_back(th%10 + '0');
    		last = th/10;
    	}
    	if(last != 0) tt.push_back(last+'0');
    //	cout<<tt<<endl;
    	return tt;
    }
    
    void PrintStatus(int *a){
    	for(int i = 0; i < 10; i++){
    		printf("%d ", a[i]);
    	}
    	printf("
    ");
    }
    
    int main(){
    //	freopen("test.txt", "r", stdin);
    	cin>>a;
    	da = Double(a);
    	memset(na, 0, sizeof(na));
    	memset(nda, 0, sizeof(nda));
    	
    	GetNum(a, na);
    	GetNum(da, nda);
    	
    //	PrintStatus(na);
    //	PrintStatus(nda);
    	
    	bool flag = true;
    	for(int i = 0; i < 10; i++){
    		if(na[i] != nda[i]) flag = false;
    	}
    	
    	if(flag) puts("Yes");
    	else puts("No");
    	reverse(da.begin(), da.end());
    	cout<<da;
    	return 0;
    }
    

    exprience

    • 英语单词
      • permutation 排列
    • puts 与cout<<endl 差别
      • Cout是istream类的预定义对象,puts是预定义函数(库函数)。
      • cout是一个对象,它使用重载插入(<<)运算符函数来打印数据。 但是put是完整的函数,它不使用重载的概念。
      • cout可以打印数字和字符串。 而puts只能打印字符串。
      • cout在内部使用flush而puts并没有,为了刷新stdout,我们必须明确地使用fflush函数。
      • 要使用puts,我们需要包含stdio.h头文件。 在使用cout时我们需要包含iostream.h头文件。
      • puts函数会在结尾增加' '。
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  • 原文地址:https://www.cnblogs.com/yoyo-sincerely/p/9326425.html
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