Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Here is my code :

char *name, name_log="log-";

------getting 'name' from user-----

strcat(name_log, name);
char ext[] = ".log";
strcat(name_log, ext);

What i need to end up with is name_log = "log-'name'.log" but Im getting a segmentation fault error :((. What am I doing wrong and how can I fix it ? Thx

share|improve this question

5 Answers 5

up vote 1 down vote accepted

For a start, if this is your code:

char *name, name_log="log-";

then name_log is a char, not a char pointer.

Assuming that's a typo, you cannot append to string literals like that. Modifications to string literals are undefined behaviour.

For a variable sized string, as user appears to be, probably the safest option is to allocate another string large enough to hold the result, something like:

char *name, *name_log = "log-", *ext = ".log";
// Do something to allocate and populate name
char *buffer = malloc (strlen (name_log) + strlen (name) + strlen (ext) + 1);
if (buffer == NULL) {
    // Out of memory.
} else {
    strcpy (buffer, name_log);
    strcat (buffer, name);
    strcat (buffer, ext);
    // Do something with buffer.
    free (buffer);
}

The malloc ensures you have enough space to do all the string operations safely, enough characters for the three components plus a null terminator.

share|improve this answer

string literals get allocated a fixed amount of memory, generally in a read only section, you instead need to use a buffer.

char buffer[64] = "log-";
strncat(buffer,".log",32);

On a side note, strcat is generally unsafe, you need to use something that that checks the size of the buffer it uses or with limits on what it can concatenate, like strncat.

share|improve this answer
2  
Bah! Wimp! strcat is only unsafe if you don't know the buffers are big enough. Real C programmers will point and laugh derisively at such a comment :-) –  paxdiablo Nov 25 '11 at 12:48
    
@paxdiablo: true, but he is a beginner, not a real C programmer :P –  Necrolis Nov 25 '11 at 12:55
    
strncat() is broken anyway, better to use strlcat() –  JeremyP Nov 25 '11 at 15:09
    
@JeremyP: is that a standard function? cause tbh I never seen it before –  Necrolis Nov 25 '11 at 16:13
    
@Necrolis: I thought it was Posix standard, but it appears it is not. It is available on most Unixes though. –  JeremyP Nov 28 '11 at 9:05

A completely different solution would be this:

const char *prefix = "log-";
const char *suffix = ".log";
// There's a "char *name" somewhere
int size_needed;
char *result;

size_needed = snprintf(NULL, 0, "%s%s%s", prefix, name, suffix);
result = malloc(size_needed + 1);
snprintf(result, size_needed + 1, "%s%s%s", prefix, name, suffix);

// "result" now contains the desired string.

The nice thing about snprintf is that it returns the number of characters it would write if there was enough space. This can be used by measuring upfront how much memory to allocate which makes complicated and error-prone calculations unnecessary.

If you happen to be on a system with asprintf, it's even easier:

char *result = NULL /* in case asprintf fails */;
asprintf(&result, "log-%s.log", name);
// "result" must be released with "free"
share|improve this answer
    
+1 for not using strcat() at all. –  unwind Nov 25 '11 at 12:58

you need to allcocate memory. You cannot add to a string in this way as the string added goes to memory which hasnt been allocated.

you can do

char[20] strarray;

strcat(strarray, "log-");
strcat(strarray, "abcd");
share|improve this answer
2  
This, and in addition, name_log is of type char when declared like this. This should not even compile. –  Simon Richter Nov 25 '11 at 12:37
1  
@Simon : actually i think its correct. I am eating my own words now. But the type is char* so i think it should be ok. –  Sid Malani Nov 25 '11 at 12:38
1  
Please please please initialize the strarray to be an empty string (strarray[0] = '\0' or similar) before using it with strcat. (Or use strncpy instead of the first strcat). Also please use strncat instead of strcat. –  SoapBox Nov 25 '11 at 12:43
1  
char[20] strarray? Don't you mean char strarray[20]? –  paxdiablo Nov 25 '11 at 12:44
1  
This is the reason why people write char *a rather than char* a. –  Simon Richter Nov 25 '11 at 13:15

the name_log is pointed at a static place: "log-", which means is could not be modified, while as the first parameter in strcat(), it must be modifiable.

try changing name_log's type char* into char[], e.g.

char[20] name_log = "log-";
share|improve this answer
1  
Why is everyone posting char[20] str; instead of char str[20];? Is this some new feature in C1x I haven't been made aware of? Or are your minds so rotted by Java that you don't know better? :-) –  paxdiablo Nov 25 '11 at 12:52
    
yes i use too much java lately and make mistakes. thanks for unvoting...... –  xorange Nov 25 '11 at 12:55

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.