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I need help, I'm just learning C, have no idea what is wrong:

Here I call set_opts function :

char * tmploc ;
tmploc=set_opts("windir","\\temp.rte");
printf(tmploc);

( I know , that printf is not formated, just used it for testing purposes)

function looks like this :

char * set_opts(char * env,char * path){
    char * opt;
    opt=malloc(strlen(env)+strlen(path)+1);
    strcpy(opt,getenv(env));
    strcat(opt,path);
    return opt;
}

Everything is ok, but when I try to call it again :

char * tmploc2 ;
tmploc2=set_opts("windir","\\temp.rte");
printf(tmploc2);

...program just terminates

Please tell me what I'm doing wrong

share|improve this question
    
Check if malloc returns NULL and don't forget to free the memory you're allocating. –  Maroun Maroun Mar 25 '13 at 20:25
    
Please tell me when should I use free, thx –  Jimmy Foo Mar 25 '13 at 20:28
    
Use free at the point at which you will never refer to tmploc2 in the future. –  David Heffernan Mar 25 '13 at 20:37
    
free (tmploc) solves this issue, however I need this in future, I have some parameters struct and I need to use set_opt few times –  Jimmy Foo Mar 25 '13 at 20:40
    
SOLVED, after first use , I did : free(set_opts); –  Jimmy Foo Mar 25 '13 at 20:48

5 Answers 5

You allocate the length of the string using env, but then populate it with getenv(env). If getenv(env) is longer than env then you have a good chance of a segfault. Did you mean to use strlen(getenv(env))?

You really ought to add some error checking to your code:

char *set_opts(char *env, char *path)
{
    char *opt;
    char *value;

    value = getenv(env);
    if (value == NULL)
      ... handle error
    opt = malloc(strlen(value)+strlen(path)+1);
    if (opt == NULL)
      ... handle error
    strcpy(opt,value);
    strcat(opt,path);
    return opt;
}
share|improve this answer
    
right, malloc(strlen(env)+strlen(path)+1); is wrong , thanks –  Jimmy Foo Mar 25 '13 at 20:35

Careful of what you're doing that with getenv(), this function:

The getenv() function returns a pointer to the value in the environment, or NULL if there is no match.

So if you pass something that's no an environment variable then you're going to get NULL and that's going to kill your strcpy(opt,getenv(env));

I recomend:

  1. check the return from malloc() (make sure that's non-null)
  2. check the return from getenv() (check for the same)
  3. As you pointed out, use a format string in your printf's and compile with -Wall
  4. Step your code with a debugger to make sure it's not just terminating before you see the output
share|improve this answer
    
I was your 10k upvote. –  AAA Mar 25 '13 at 20:27
    
I checked , these are env vars for sure. –  Jimmy Foo Mar 25 '13 at 20:27

Try getting rid of getenv(env). Just put strcpy(opt,env);. getenv() is probably returning NULL.

share|improve this answer
    
OK, but that returns "windir\\temp.rte" which is not what is desired –  David Heffernan Mar 25 '13 at 20:34

One possible reason: malloc returns NULL and you never check for it. Same for getenv(). And it must be

 malloc(strlen(getenv(env))+strlen(path)+1);

If the actual contents of getenv("windir") is longer than 6 characters, you write past the malloced buffer, which invokes undefined behavior.

share|improve this answer

Are you sure: getenv(env) will fit into "opt" ? I don't think so. And if it doesn't fit, then the strcpy could kill your program.

A correction: char * set_opts(char * env,char * path){ char * opt; char * value = getenv(env); opt=malloc(strlen(value)+strlen(path)+1); strcpy(opt,value); strcat(opt,path); return opt; }

This way, you're sure you have enough space.

share|improve this answer
    
opt=malloc(strlen(getenv(env))+strlen(path)+1); –  Jimmy Foo Mar 25 '13 at 20:43

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