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poj 2572 Hard to Believe, but True!

时间:2015-02-10 01:48:50      阅读:116      评论:0      收藏:0      [点我收藏+]

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Hard to Believe, but True!
Time Limit: 1000MS   Memory Limit: 65536K
Total Submissions: 3537   Accepted: 2024

Description

The fight goes on, whether to store numbers starting with their most significant digit or their least significant digit. Sometimes this is also called the "Endian War". The battleground dates far back into the early days of computer science. Joe Stoy, in his (by the way excellent) book "Denotational Semantics", tells following story: 
      "The decision which way round the digits run is, of course, mathematically trivial. Indeed, one early British computer had numbers running from right to left (because the spot on an oscilloscope tube runs from left to right, but in serial logic the least significant digits are dealt with first). Turing used to mystify audiences at public lectures when, quite by accident, he would slip into this mode even for decimal arithmetic, and write things like 73+42=16. The next version of the machine was made more conventional simply by crossing the x-deflection wires: this, however, worried the engineers, whose waveforms were all backwards. That problem was in turn solved by providing a little window so that the engineers (who tended to be behind the computer anyway) could view the oscilloscope screen from the back. 

    [C. Strachey - private communication.]"

You will play the role of the audience and judge on the truth value of Turing‘s equations.

Input

The input contains several test cases. Each specifies on a single line a Turing equation. A Turing equation has the form "a+b=c", where a, b, c are numbers made up of the digits 0,...,9. Each number will consist of at most 7 digits. This includes possible leading or trailing zeros. The equation "0+0=0" will finish the input and has to be processed, too. The equations will not contain any spaces.

Output

For each test case generate a line containing the word "True" or the word "False", if the equation is true or false, respectively, in Turing‘s interpretation, i.e. the numbers being read backwards.

Sample Input

73+42=16
5+8=13
10+20=30
0001000+000200=00030
1234+5=1239
1+0=0
7000+8000=51
0+0=0

Sample Output

True
False
True
True
False
False
True
True

Source

 

分析:

思路比较简单

自己的做法:

 1 #include<string>
 2 #include<cstring>
 3 #include<iostream>
 4 using namespace std;
 5 int main(){//7
 6     string s;
 7     int a[8],b[8],c[8];
 8     while(cin>>s){
 9         if(s=="0+0=0"){         //注意
10            cout<<"True"<<endl;
11            break;    
12         }
13         int i=0;
14         int j=0;
15         memset(a,0,sizeof(a));
16         memset(b,0,sizeof(b));
17         memset(c,0,sizeof(c));
18         while(s[i]!=+){
19             a[j++]=s[i++]-0;
20         }
21         j=0;
22         i++;
23         while(s[i]!==){
24             b[j++]=s[i++]-0;
25         }
26         j=0;
27         i++;
28         while(s[i]){
29             c[j++]=s[i++]-0;
30             //cout<<c[j-1]<<endl;
31         }
32         for(i=0;i<=7;i++){
33             a[i+1]+=(a[i]+b[i])/10;
34             a[i]=(a[i]+b[i])%10;
35         }
36         for(i=0;i<7;i++){
37             if(a[i]!=c[i])
38                break;
39         }
40         if(i==7)
41         cout<<"True"<<endl;
42         else
43         cout<<"False"<<endl;
44     }
45     return 0;
46 }

网上的代码:

学习点:

1.string.find(char a):返回字符a在字符串中的位置(从0开始)

2.string.substr(a,b):返回字符串从a开始的b个字符的字符子串

 1 #include <iostream>
 2 #include <string>
 3 using namespace std;
 4 int trans(string s) {
 5     int a=0;
 6     for (int i=s.length()-1;i>=0;i--) 
 7         a=a*10+s[i]-0;
 8     return a;    
 9 }
10 int main() {
11     string s,s1,s2,s3;
12     while (cin >> s) {
13           if (s=="0+0=0") {
14                           cout << "True" << endl;
15                           break;
16           }
17           bool flag=true;
18           int p1=s.find("+");
19           int p2=s.find("=");
20           s1=s.substr(0,p1);
21           s2=s.substr(p1+1,p2-p1-1);
22           s3=s.substr(p2+1,s.length()-1-p2);
23           if (trans(s1)+trans(s2)!=trans(s3)) flag=false;
24           if (flag) cout << "True" << endl;
25           else cout << "False" << endl;
26     }27     return 0;
28 }

 

poj 2572 Hard to Believe, but True!

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原文地址:http://www.cnblogs.com/Deribs4/p/4282781.html

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