Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

What I have:

char cmd[50] = "some text here";
char v[] = {'a','s','d','c','b'};

So I want to concatenate cmd by adding a letter from v.


strcat(cmd, v[3]);

doesn't work because strcat doesn't accept the v[n] parameter n = int.

share|improve this question

7 Answers 7

up vote 5 down vote accepted

Problems with your approach.

  • C strings must end in 0 byte, in other words '\0' character. Using "" adds that automatically, but otherwise you have to add it yourself, and all string functions depend on that 0 being there.

  • Your v array contains characters, not strings, and strcat takes strings.

One solution:

char cmd[50] = "some text here";
char *v[] = {"a","s","d","c","b"};

This turns your char array into array of pointers to C strings.

Also, it's your responsibility to take care that, cmd[] contains enough space to hold whatever you add to it with strcat (here it does). It's usually best to use snprintf to do string concatenation, as it takes total size of the target array including terminating null, and adds that null there always, so it's harder to mess up. Example with your original char array:

char cmd[50] = "some text here";
char buf[50];
char v[] = {'a','s','d','c','b'};
snprintf(buf, sizeof buf, "%s%c", cmd, v[3]);

Notes: sizeof like this works only when buf really is an array, declared with [] like here. Also with snprintf, using same buffer both as destination and format argument may yield unexpected results, so I added a new destination buffer variable.

One more snprintf example, with your original two arrays only, appending to end of current contents of cmd:

snprintf(cmd + strlen(cmd), (sizeof cmd) - strlen(cmd), "%c", v[3]);

So clearly, in this particular case, the strncat(cmd, &v[3], 1) suggested in other answers to add 1 character is much nicer, but benefit of snprintf is, you can add all datatype supported by printf, not chars.

share|improve this answer
Thank you! If I can take care that cmd[] contains enough space, which one you think is the FASTEST method? –  redgiun Nov 5 '12 at 9:39
strncat is probably the fastest of these, but fastest is int len=strlen(cmd); cmd[len] = v[3]; cmd[len+1] = 0;. Note how array indexing starts from 0, so some_cstring[strlen(some_cstring)] is always 0. –  hyde Nov 5 '12 at 9:42
thank you. this was useful –  redgiun Nov 5 '12 at 9:50
Unexpected in-depth answer - thanks for providing value! –  OxenBoxen Apr 29 at 3:22

Hmm. As far as I understand you want to add a single char from the second array? so you have to use

  strncat (cmd, &v[3], 1);


share|improve this answer
I chose another way to do it but this also works ad it's very simple. Thank you :) –  redgiun Nov 5 '12 at 10:01

Do not use this:


&v[3] is not a pointer to a null terminated string! instead use

strncat(cmd, &v[3], 1);
share|improve this answer

how about

share|improve this answer
This will add more than one char, and it'll look beyond the end of the array to be copied from since there's no null termination. –  Benj Nov 5 '12 at 9:28
you're right, very careful –  user1203650 Nov 5 '12 at 9:31

the problem is that you don't use strcat as well:

char *strcat (char *dest, const char *src);

because you do

char *strcat (char *dest, char src);

So you must declared a char * as your char.

share|improve this answer

First, make sure the variable 'cmd' has enough memory allocated.

Second, the mention to 'v[3]' is the value which is a signed byte. You have to use the following call to strncat (not strcat):

share|improve this answer
may be you mean strncat –  MOHAMED Nov 5 '12 at 9:31
char buf[2];

sprintf(buf,"%c", V[3]);
strcat(cmd, buf);


strncat (cmd, &v[3],1);

you can not do it with


this will coppy the V array from cell 3 to the end of array and not copy only V[3]

I can suggest another solution

int len = strlen(cmd);
cmd[len+1] = '\0';
share|improve this answer

Your Answer


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.