HDUOJ-----A == B ?

A == B ?

Time Limit: 1000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others) Total Submission(s): 49403    Accepted Submission(s): 7593

Problem Description

Give you two numbers A and B, if A is equal to B, you should print "YES", or print "NO".

 

Input

each test case contains two numbers A and B.

 

Output

for each case, if A is equal to B, you should print "YES", or print "NO".

 

Sample Input

1 2

2 2

3 3

4 3

 

Sample Output

NO

YES YES NO

 

Author

8600 && xhd

 

Source

校庆杯Warm Up

 

此题解法：分整数和小数两部分来比较即可！！但要注意的事情还是比较多的

需要考虑：

+0.000    0.00

YES

+0.00 -0.00

YES

+0001.00 1

YES

+000.0000100  .00001

YES

代码如下：

#include<cstdio>
#include<cstring>
#define MAX 20000
char a[MAX],b[MAX];
char ra[MAX],apoint[MAX],
     rb[MAX],bpoint[MAX];
void func(char *a,char *ra,char *apoint)
{
    int i=0,k=0;
    bool flag=true;
    int len=strlen(a);
    if(*a=='+')i++;
    else if(a[0]=='-')
    {
        ra[k++]='-' ;
        i=k;
    }
    for( ; a[i]=='0'&&i<len ; i++ );

    for( ;a[i]!='.'&&i<len ; i++ )
    {  
        ra[k++] = a[i] ;
    }
    int j;
         a[i]=='.'? i++ : i ;
   for(j=len-1;a[j]=='0'&&j>=i;j--);
   
   for(k=0 ; i<=j ; i++)
    {
        apoint[k++]=a[i];
    }
}

int main( void )
{
    while(scanf("%s%s",a,b)!=EOF)
    {
        memset(ra,'',sizeof ra);
        memset(apoint,'',sizeof apoint);
        memset(rb,'',sizeof rb);
        memset(bpoint,'',sizeof bpoint);
        func(a,ra,apoint);
        func(b,rb,bpoint);
      if(strcmp(ra,rb)==0&&strcmp(apoint,bpoint)==0)
          puts("YES");
      else if((*rb=='-'&&*(rb+1)=='')&&strcmp(apoint,bpoint)==0)
          puts("YES");
     else if(*ra=='-'&&*(ra+1)==''&&strcmp(apoint,bpoint)==0)
               puts("YES");
     else
          puts("NO");
    }
    return 0;
}