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.

I have a string that I would like to tokenize. But the C strtok() function requires my string to be a char*. How can I do this simply?

I tried:

token = strtok(str.c_str(), " "); 

which fails because it turns it into a const char*, not a char*

share|improve this question
    
See this question: stackoverflow.com/questions/53849/… –  Ferruccio Jul 24 '12 at 19:24
add comment

8 Answers

#include <iostream>
#include <string>
#include <sstream>

std::string myText("some-text-to-tokenize");
std::istringstream iss(myText);
std::string token;
while(getline(iss, token, '-'))
{
      std::cout << token << std::endl;
}

Or, as mentioned, use boost for more flexibility.

share|improve this answer
1  
Just in case, if someone decides to add namespace prefix to getline() call (or find it in some docs), this will be std::getline(), not istream::getline(). (The latter will not compile actually.) –  Linulin Jan 29 '09 at 14:07
add comment

Duplicate the string, tokenize it, then free it.

char *dup = strdup(str.c_str());
token = strtok(dup, " ");
free(dup);
share|improve this answer
1  
Isn't the better question, why use strtok when the language in question has better native options? –  Kendall Helmstetter Gelner Nov 14 '08 at 6:24
    
Not necessarily. If the context of the question surrounds maintaining a fragile codebase, then stepping away from the existing approach (notionally strtok in my example) is riskier than changing the approach. Without more context in the question, I prefer to answer what is asked. –  DocMax Nov 14 '08 at 6:27
    
If the asker is a newbie, you should want against doing free() before using token... :-) –  PhiLho Nov 14 '08 at 6:34
    
I am dubious that using a more robust native tokenizer is ever less safe than inserting new code that calls a library that inserts nulls into the block of memory passed to it... that's why I did not think it a good idea to answer the question as asked. –  Kendall Helmstetter Gelner Nov 14 '08 at 6:48
add comment
  1. If boost is available on your system (I think it's standard on most Linux distros these days), it has a Tokenizer class you can use.

  2. If not, then a quick Google turns up a hand-rolled tokenizer for std::string that you can probably just copy and paste. It's very short.

  3. And, if you don't like either of those, then here's a split() function I wrote to make my life easier. It'll break a string into pieces using any of the chars in "delim" as separators. Pieces are appended to the "parts" vector:

    void split(const string& str, const string& delim, vector<string>& parts) {
      size_t start, end = 0;
      while (end < str.size()) {
        start = end;
        while (start < str.size() && (delim.find(str[start]) != string::npos)) {
          start++;  // skip initial whitespace
        }
        end = start;
        while (end < str.size() && (delim.find(str[end]) == string::npos)) {
          end++; // skip to end of word
        }
        if (end-start != 0) {  // just ignore zero-length strings.
          parts.push_back(string(str, start, end-start));
        }
      }
    }
    
share|improve this answer
    
I find it hilarious that you vote me down for pointing out a native solution is superior, and then proceed to not answer the original question but instead - a native solution. Since your answer is the most comprehensive I voted you up despite your acerbic personality. –  Kendall Helmstetter Gelner Nov 14 '08 at 6:44
    
I actually didn't vote you down for suggesting that he use a library. I voted you down for saying "you should mention the language" and not providing a real solution when it's clear what the language is. But I'm just in a bad mood and you seem like a nice guy so I removed my downvote :-). Cheers. –  tgamblin Nov 14 '08 at 6:50
    
Thank you, believe me I do not like to stray into answering questions for things I don't have much recent experience with, but I felt the need to point out answering the question as is was much less useful to the original poster than really providing a direction for what he should be looking for. –  Kendall Helmstetter Gelner Nov 14 '08 at 6:56
add comment

I suppose the language is C, or C++...

strtok, IIRC, replace separators with \0. That's what it cannot use a const string. To workaround that "quickly", if the string isn't huge, you can just strdup() it. Which is wise if you need to keep the string unaltered (what the const suggest...).

On the other hand, you might want to use another tokenizer, perhaps hand rolled, less violent on the given argument.

share|improve this answer
add comment

Assuming that by "string" you're talking about std::string in C++, you might have a look at the Tokenizer package in Boost.

share|improve this answer
add comment

First off I would say use boost tokenizer.
Alternatively if your data is space separated then the string stream library is very useful.

But both the above have already been covered.
So as a third C-Like alternative I propose copying the std::string into a buffer for modification.

std::string   data("The data I want to tokenize");

// Create a buffer of the correct length:
std::vector<char>  buffer(data.size()+1);

// copy the string into the buffer
strcpy(&buffer[0],data.c_str());

// Tokenize
strtok(&buffer[0]," ");
share|improve this answer
add comment

There is a more elegant solution.

With std::string you can use resize() to allocate a suitably large buffer, and &s[0] to get a pointer to the internal buffer.

At this point many fine folks will jump and yell at the screen. But this is the fact. About 2 years ago

the library working group decided (meeting at Lillehammer) that just like for std::vector, std::string should also formally, not just in practice, have a guaranteed contiguous buffer.

The other concern is does strtok() increases the size of the string. The MSDN documentation says:

Each call to strtok modifies strToken by inserting a null character after the token returned by that call.

But this is not correct. Actually the function replaces the first occurrence of a separator character with \0. No change in the size of the string. If we have this string:

one-two---three--four

we will end up with

one\0two\0--three\0-four

So my solution is very simple:


std::string str("some-text-to-split");
char seps[] = "-";
char *token;

token = strtok( &str[0], seps );
while( token != NULL )
{
   /* Do your thing */
   token = strtok( NULL, seps );
}

Read the discussion on http://www.archivum.info/comp.lang.c++/2008-05/02889/does_std::string_have_something_like_CString::GetBuffer

share|improve this answer
add comment

EDIT: usage of const cast is only used to demonstrate the effect of strtok() when applied to a pointer returned by string::c_str().

You should not use strtok() since it modifies the tokenized string which may lead to undesired, if not undefined, behaviour as the C string "belongs" to the string instance.

#include <string>
#include <iostream>

int main(int ac, char **av)
{
    std::string theString("hello world");
    std::cout << theString << " - " << theString.size() << std::endl;

    //--- this cast *only* to illustrate the effect of strtok() on std::string 
    char *token = strtok(const_cast<char  *>(theString.c_str()), " ");

    std::cout << theString << " - " << theString.size() << std::endl;

    return 0;
}

After the call to strtok(), the space was "removed" from the string, or turned down to a non-printable character, but the length remains unchanged.

>./a.out
hello world - 11
helloworld - 11

Therefore you have to resort to native mechanism, duplication of the string or an third party library as previously mentioned.

share|improve this answer
    
casting away the const does not help. It is const for a reason. –  Loki Astari Nov 14 '08 at 10:01
    
@Martin York: Agreed. It's const for a reason - down voted. –  Sherm Pendley Nov 14 '08 at 15:53
    
@Martin York, @Sherm Pendley : did you read the conclusion or only the code snippet ? I edited my answer to clarify what I wanted to show here. Rgds. –  philant Nov 14 '08 at 16:14
1  
@Philippe - Yes, I only read the code. A lot of people will do that, and go straight to the code and skip the explanation. Perhaps putting the explanation in the code, as a comment, would be a good idea? Anyhow, I removed my down vote. –  Sherm Pendley Nov 14 '08 at 16:37
    
Right, I'll add a comment, thx –  philant Dec 1 '08 at 8:21
add comment

Your Answer

 
discard

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