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I'm a newbie on this. Can anyone help me to create this program? I got no idea how to make this program. Here's the description of the program.

created a program with the following features.

■ Function

enter the reference character string first.

Then, check if they match the criteria string

Counts the number of times if a match is found, and display

Display an error if it does not find a match.

And when we input string "end" the program will be closed.

■ Notes · use the function strlen First, and use function strcmp next.

■ run example (reference)

Please type the reference string: call

Please type [end] when you are finished.

call

Matched. Once

call

Matched. Twice

ccccccccccc

Input error

call

Matched. Three times

end

To exit

I have tried to make one and I made it like this

#include <stdio.h>
#include <string.h>
#include <conio.h>

int main ()
{
    while(1000)
  {
  char call[]="call";
  char word[80];

     printf ("please type call: ");
     gets (word);

  if(strcmp(word,"call")==0)
  puts("matched!\n");
  else
  puts("error\n");
  }
  getch();
  return 0;
}
share|improve this question
    
strcmp doesn't return NULL but an integer, so you if you want to check whether two strings are the same you should check if it returns 0 e.g. if(strcmp("a", "a") == 0) { printf("The strings are the same\n"); } –  Nobilis Jul 5 '13 at 8:07
1  
what doesn't work with your program? What is your question? SO is not a cite for code review. –  Jens Gustedt Jul 5 '13 at 8:08
    
you aren't doing what is requested at all. look at the requirements and the example, and then look at your code –  Tom Tanner Jul 5 '13 at 8:40

2 Answers 2

up vote 0 down vote accepted
#include <stdio.h>
#include <string.h>

int main (void){
    char criteria[] = "call";
    char *mes[] = { "Many times", "Once", "Twice", "Three times" };
    char word[80];
    int match_count =0, not_end=1;

    do{
        printf(
            "Please type the reference string.\n"
            "Please type [end] when you are finished.\n"
            ">");
        fgets(word, sizeof(word), stdin);
        int len = strlen(word);
        if(word[len-1]=='\n')
            word[--len]='\0';
        if(strcmp(word, criteria)==0){
            if(++match_count > 3)
                printf("Matched. %s(%d)\n", *mes, match_count);
            else
                printf("Matched. %s\n", mes[match_count]);
        } else if(not_end=strcmp(word, "end"))
            printf("Input error\n");
    }while(not_end);
    printf("Bye!\n");
    return 0;
}
share|improve this answer
    
int len = strlen(word); if(word[len-1]=='\n') word[--len]='\0'; @BLUEPIXY can you explain this code for me? thanks :) 英語がだめだったら日本語でもいい。よろしく~ –  Rudy Jul 8 '13 at 3:28
    
@Rudy fgetsは(getsと違って)基本改行を含めて読み込む(指定した文字数-1に達した場合は別)ので、まず改行の有無を確認し改行が存在する場合はEOS('\0')‌​文字列終端文字に置き換える。 –  BLUEPIXY Jul 8 '13 at 8:26
    
分かりました~ありがとうございました!! –  Rudy Jul 9 '13 at 2:05
    
あの、すいません。やっぱりword[len-1]とword[--len]ってどう言うことか分からないんです。 –  Rudy Jul 10 '13 at 7:26
    
@Rudy 仮に(wordに)読み込んだ文字列が"abcd\n"だったとすると、この文字列の長さ(len)は5になりますね。配列のインデックスは0から始まるのでword[0‌​]:'a',..,word[3]:'d'のようになり、その時最後の文字である改行は文字列の長さ-1のインデックスの文字になります(0からはじまるので-1)。それで‌​word[len-1]はword[4]で、この時len が5で--len することはlen を4にすることですが、word[4]='\0'することは配列wordの内容を"abcd\0"にすることになります。word[--len]とせずにword[len‌​-1]='\0'しても同じですが文字列の終端を一つ繰り上げたことで文字列の長さも1つ減るので--len すれば文字列の長さを表している変数lenの整合性が取れることになります。 –  BLUEPIXY Jul 10 '13 at 8:02

Your first error is using strcmp() wrong. strcmp() has nothing to do with NULL. It returns a negative number, a positive one, or zero.

Also, your test for "wrong, please try again" makes no sense.

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