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I have been trying to tokenize a string using SPACE as delimiter but it doesn't work. Does any one have suggestion on why it doesn't work?

Edit: tokenizing using:

strtok(string, " ");

The code is like the following

pch = strtok (str," ");
while (pch != NULL)
  printf ("%s\n",pch);
  pch = strtok (NULL, " ");
share|improve this question
Are you using strtok or something you grew yourself? If you are using strtok are you trying to do it on a constant string? – Edward KMETT Nov 5 '08 at 19:48
your example will get the first token, look to either gbjbaanb's or my answers for proper usage. – Evan Teran Nov 5 '08 at 20:02
OK. Now we're getting somewhere. What behavior do you expect that you are not getting? – dmckee Nov 5 '08 at 20:08
Your code is correct, please let us know what your input string and result is. – Evan Teran Nov 5 '08 at 20:08
@dmckee: good point. Canonical x-ref: – Jonathan Leffler Nov 5 '08 at 22:46

7 Answers 7

Do it like this:

char s[256];
strcpy(s, "one two three");
char* token = strtok(s, " ");
while (token) {
    printf("token: %s\n", token);
    token = strtok(NULL, " ");

Note: strtok modifies the string its tokenising, so it cannot be a const char*.

share|improve this answer
heh, we posted nearly the same thing at the same exact time :-P – Evan Teran Nov 5 '08 at 19:58
I see, I hate that. Fortunately I hit Post seconds before you so nayanayayayaya :-) Have a vote though. – gbjbaanb Nov 5 '08 at 20:02
I'll return the favor ;) – Evan Teran Nov 5 '08 at 20:02

Here's an example of strtok usage, keep in mind that strtok is destructive of its input string (and therefore can't ever be used on a string constant

char *p = strtok(str, " ");
while(p != NULL) {
    printf("%s\n", p);
    p = strtok(NULL, " ");

Basically the thing to note is that passing a NULL as the first parameter to strtok tells it to get the next token from the string it was previously tokenizing.

share|improve this answer
How does strtok() know, when to get the next token from the string it was previously tokenizing? To me, it looks like strtok() should tokenize the NULL value. I'd expect an error. – polemon Feb 27 '12 at 9:25
strtok has an internal state variable tracking the string being tokenized. When you pass NULL to it, strtok will continue to use this state variable. When you pass a non-null value, the state variable is reset. So in other words: passing NULL means "continue tokenizing the same string". – Evan Teran Feb 27 '12 at 15:51
Thanks for clarifying. But it seems like a horrible design anyway. – polemon Feb 28 '12 at 5:52
you're right, that's why many implementations offer strtok_r which atr the very least offers a way to use it in a thread safe way. – Evan Teran Feb 28 '12 at 5:53
Shouldn't char *p be allocated some space first? Where does the pointer returned by strtok point to? Just a random place in memory? Oh... does it point to a place in the given string? – Gnuey Jul 18 '14 at 6:06

strtok can be very dangerous. It is not thread safe. Its intended use is to be called over and over in a loop, passing in the output from the previous call. The strtok function has an internal variable that stores the state of the strtok call. This state is not unique to each thread - it is global. If any other code uses strtok in another thread, you get problems. Not the kind of problems you want to track down either!

I'd recommend looking for a regex implementation, or using sscanf to pull apart the string.

Try this:

char strprint[256];
char text[256];
strcpy(text, "My string to test");
while ( sscanf( text, "%s %s", strprint, text) > 0 ) {
   printf("token: %s\n", strprint);

Note: The 'text' string is destroyed as it's separated. This may not be the preferred behaviour =)

share|improve this answer
In fact, if you look at modern strtok implementations, they tend to use thread-local storage (MSVC has certainly done this for years and years), so they are thread-safe. It's still an archaic function which I would avoid, though... – Will Dean Nov 5 '08 at 20:37
strtok_r is a thread-safe version of strtok – Massimo Fazzolari Sep 5 '12 at 18:47

You can simplify the code by introducing an extra variable.

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

int main()
    char str[100], *s = str, *t = NULL;

    strcpy(str, "a space delimited string");
    while ((t = strtok(s, " ")) != NULL) {
    	s = NULL;
    	printf(":%s:\n", t);
    return 0;
share|improve this answer

I've made some string functions in order to split values, by using less pointers as I could because this code is intended to run on PIC18F processors. Those processors does not handle really good with pointers when you have few free RAM available:

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

char POSTREQ[255] = "pwd=123456&apply=Apply&d1=88&d2=100&pwr=1&mpx=Internal&stmo=Stereo&proc=Processor&cmp=Compressor&ip1=192&ip2=168&ip3=10&ip4=131&gw1=192&gw2=168&gw3=10&gw4=192&pt=80&lic=&A=A";

int findchar(char *string, int Start, char C) {
    while((string[Start] != 0)) { Start++; if(string[Start] == C) return Start; }
    return -1;

int findcharn(char *string, int Times, char C) {
   int i = 0, pos = 0, fnd = 0;

    while(i < Times) {
       fnd = findchar(string, pos, C);
        if(fnd < 0) return -1;
        if(fnd > 0) pos = fnd;
   return fnd;

void mid(char *in, char *out, int start, int end) {
    int i = 0;
    int size = end - start;

    for(i = 0; i < size; i++){
        out[i] = in[start + i + 1];
    out[size] = 0;

void getvalue(char *out, int index) {
    mid(POSTREQ, out, findcharn(POSTREQ, index, '='), (findcharn(POSTREQ, index, '&') - 1));

void main() {
   char n_pwd[7];
   char n_d1[7];

   getvalue(n_d1, 1);

   printf("Value: %s\n", n_d1);
share|improve this answer

When reading the strtok documentation, I see you need to pass in a NULL pointer after the first "initializing" call. Maybe you didn't do that. Just a guess of course.

share|improve this answer
int not_in_delimiter(char c, char *delim){

    while(*delim != '\0'){
            if(c == *delim) return 0;
    return 1;

char *token_separater(char *source, char *delimiter, char **last){

char *begin, *next_token;
char *sbegin;

/*Get the start of the token */
  begin = source;
  begin = *last;

sbegin = begin;

/*Scan through the string till we find character in delimiter. */
while(*begin != '\0' && not_in_delimiter(*begin, delimiter)){

/* Check if we have reached at of the string */
if(*begin == '\0') {
/* We dont need to come further, hence return NULL*/
   *last = NULL;
    return sbegin;
/* Scan the string till we find a character which is not in delimiter */
 next_token  = begin;
 while(next_token != '\0' && !not_in_delimiter(*next_token, delimiter))    {
 /* If we have not reached at the end of the string */
 if(*next_token != '\0'){
  *last = next_token--;
  *next_token = '\0';
   return sbegin;

 void main(){

    char string[10] = "abcb_dccc";
    char delim[10] = "_";
    char *token = NULL;
    char *last = "" ;
    token  = token_separater(string, delim, &last);
    printf("%s\n", token);
            token  = token_separater(NULL, delim, &last);
            printf("%s\n", token);


You can read detail analysis at blog mentioned in my profile :)

share|improve this answer
Nice, @jitsceait, but what happens if I have two delimiters together on input? I'll change a little your code. – Nilo Paim Nov 19 '13 at 13:13
I think i have added a test case for consecutive delimiters and it was working. Could you please highlight the code you have changed? – jitsceait Jan 12 '14 at 13:57

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