ZOJ_1151_Word Reversal

Word Reversal

Time Limit: 2 Seconds       Memory Limit: 65536 KB

For each list of words, output a line with each word reversed without changing the order of the words.


This problem contains multiple test cases!

The first line of a multiple input is an integer N, then a blank line followed by N input blocks. Each input block is in the format indicated in the problem description. There is a blank line between input blocks.

The output format consists of N output blocks. There is a blank line between output blocks.


Input

You will be given a number of test cases. The first line contains a positive integer indicating the number of cases to follow. Each case is given on a line containing a list of words separated by one space, and each word contains only uppercase and lowercase letters.


Output

For each test case, print the output on one line.


Sample Input

1

3
I am happy today
To be or not to be
I want to win the practice contest


Sample Output

I ma yppah yadot
oT eb ro ton ot eb
I tnaw ot niw eht ecitcarp tsetnoc



题意和思路:这题折腾我了好久,其实不是道难题,可能太久没编程了 让我碰到很多细节问题,但是对自己的帮助还是很大,比如搞清了c和c++中string还有string.h还有gets和getline以及getchar和cin.ignore。现在说下题目意思,就是首先输入测试例数目,然后输入英文行数,然后让每个单词在原地翻转,一开始我是超时,用了STL的,后来全改用C来写并且没用任何STL,但是还是超时,后来才发现原来是题意理解不透彻,千万要注意比如测试cases为2 那么两组测试每次开始前都要输入n,可能没有人像我这么笨吧,就是cases和n要放在不同的循环中。


Sample Program Here

#include
#include
#define MAX 1000
int main(){
   int cases,n;
   scanf("%d",&cases);
   char str[MAX];
   char token[MAX];
   int i,j,k;

   while(cases--){
     scanf("%d",&n);
     getchar(); //不加参数则等价于cin.ignore(1,EOF);忽略结尾前的1个字符cin.ignore(1024,\n)也常用
     while(n--){
       gets(str);
       int len=strlen(str);
       k=0;
       for(i=0;i<=len;i++){  //此处要去=len否则没有检查最后个单词后是否为空格就结束最后个单词没法输出

          if(str[i]!=' '&&str[i]!=0){ //遇到空格说明一个单词结束进行反向输出,遇到回车表示一行结束
             token[k++]=str[i];
          }
          else{
             for(j=k-1;j>=0;j--)  printf("%c",token[j]);
             if(str[i]!=0)  printf(" "); //若是结尾则不需要再输入空格了
             k=0;
          }
       }

        printf("\n"); //一行单词结束换行
     }
     if(cases!=0)
    printf("\n");
   }

   return 0;
}


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