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I have written a program that i want to input for example "11:12" to and then get "11" and "12" back. This is my code:

#include<stdio.h>
#include <string.h>
#include <conio.h>
int main(void)
{
char s[] = "";
char seperator[] = ":";
char *ch;
while (1)
{
scanf("%s", &s); //scanf("%s", &s);
if (s == -1) break;
char *result = NULL;
result = strtok(s, seperator);
while( result != NULL ) {
    printf( "result is \"%s\"\n", result );
    result = strtok( NULL, seperator );
}
fflush(stdout);

}
return 0;
}

but when i input "11:12", this is my output:

result is "11"
result is "12→ ("

How can i get rid of the last "→ ("?

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Start by cranking up the warning level on your compiler and fixing all of the warnings. I see at least two real problems that would cause warnings, and a third real problem that results in undefined behavior at runtime (which the compiler probably won't catch, but it might if it's smart enough). –  Adam Rosenfield Oct 30 '12 at 18:10

3 Answers 3

up vote 6 down vote accepted

You are not allocating any memory for your "s" array. Try it out like this:

char s[128] = "";

Plus, you are doing a double indirection on scanf with parameter &s, it is not necessary since "s" will be decayed to a pointer as a parameter to the function. Try it like this:

  scanf("%s", s);
share|improve this answer
2  
Thanks! It works –  Niek Oct 30 '12 at 18:14
1  
@user1690980: If it worked, please accept the answer! –  Goz Oct 30 '12 at 21:05
    
Sure! Thanks again! –  Niek Oct 31 '12 at 16:10

You are defining s to be a string of length 0

char s[] = "";

So when you're reading into a string of length 0 with your scanf(), bad things will happen. Assign it some memory:

char s[100];

Also, you don't need the & in your scanf(). Just scanf("%s", s) will do.

And while we're at it, what is this trying to do?

if (s == -1) break;

Because that doesn't work... if you want to check if a "-1" was entered you need to use something like strcmp:

if (strcmp(s,"-1") == 0) break;
share|improve this answer

Your code has undefined behaviour.

char s[] = "";

With this line, you are declaring an array of chars with length 1 which means effectively you can store only null. So when you read input, you are overflowing s thus invoking UB.

You can also get rid of &s in the scanf as array name is same as its address.

Another issue is:

if (s == -1) break;

s is an array and hence it's address can't be -1. This comparison doesn't make sense.

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