PAT 甲级 1060 Are They Equal

时间:2023-03-10 08:13:18
PAT 甲级 1060 Are They Equal

1060. Are They Equal (25)

时间限制
50 ms
内存限制
65536 kB
代码长度限制
16000 B
判题程序
Standard
作者
CHEN, Yue

If a machine can save only 3 significant digits, the float numbers 12300 and 12358.9 are considered equal since they are both saved as 0.123*105 with simple chopping. Now given the number of significant digits on a machine and
two float numbers, you are supposed to tell if they are treated equal in that machine.

Input Specification:

Each input file contains one test case which gives three numbers N, A and B, where N (<100) is the number of significant digits, and A and B are the two float numbers to be compared. Each float number is non-negative, no greater than 10100,
and that its total digit number is less than 100.

Output Specification:

For each test case, print in a line "YES" if the two numbers are treated equal, and then the number in the standard form "0.d1...dN*10^k" (d1>0 unless the number
is 0); or "NO" if they are not treated equal, and then the two numbers in their standard form. All the terms must be separated by a space, with no extra space at the end of a line.

Note: Simple chopping is assumed without rounding.

Sample Input 1:

3 12300 12358.9

Sample Output 1:

YES 0.123*10^5

Sample Input 2:

3 120 128

Sample Output 2:

NO 0.120*10^3 0.128*10^3
这道题目写的真窝火,所以刚AC,就跑来写博客,好鄙视一下题目。
题目的给定数字会有这样的情况
00234.34000
要把他转换成234.34
另外0.0001科学技术法应该是0.1*10^-3,而不是0.0001*10^0
当n大于数字的个数的时候,要补零
#include <iostream>

#include <string.h>

#include <stdlib.h>

#include <stdio.h>

#include <algorithm>

#include <math.h>

#include <string>

using namespace std;

pair<string,int> m;

string a,b;

string aa,bb;

int n;

pair<string,int> fun(string a)

{

    int len=a.length();

    int begin,end;

    int tag1=0,tag2=0;

    for(int i=0;i<len;i++)//去除前缀的0和后缀的0

    {

        if(!tag1&&(a[i]!='0'||(a[i]=='0'&&a[i+1]=='.')))

            begin=i,tag1=1;

        if(tag2==1&&a[i]!='0')

                end=i;

        if(tag2==0)

            end=i;

        if(a[i]=='.')

            tag2=1;

    }

    string c=a.substr(begin,end-begin+1);

    int i;

    for(i=0;c[i];i++)//找到小数点的位置

        if(c[i]=='.')

            break;

    int j;

    for(j=0;c[j];j++)//找到第一个不是0的数字位置,即科学技术法中小数点应该放在哪个位置之前,

    {

        if(c[j]!='0'&&c[j]!='.')

            break;

    }

    string d="0.";int num=0;

    for(int ii=j;c[ii];ii++)

    {

        if(c[ii]=='.') continue;

        d+=c[ii];

        num++;

        if(num>=n)

            break;

    }

    for(int i=0;i<n-num;i++)//补0

        d+='0';

    int k=i-j;//小数点位置的变化,就是指数

    if(k<0) k++;

    m.first=d;

    m.second=k;

    return m;

}

int main()

{

    cin>>n>>a>>b;

    pair<string,int> mm1,mm2;

    mm1=fun(a);

    mm2=fun(b);

    if(mm1==mm2)

        cout<<"YES "<<mm1.first<<"*10^"<<mm1.second<<endl;

    else

        cout<<"NO "<<mm1.first<<"*10^"<<mm1.second<<" "<<mm2.first<<"*10^"<<mm2.second<<endl;

    return 0;

}

相关文章