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Since I couldn't find anything on this in the documentation, I thought I ask it here. I have the following program (C++11):

#include <iostream> 
#include <boost/algorithm/string.hpp>

using namespace std;
using namespace boost;

int main () {
    string tmp = " #tag #tag1#tag2  #tag3 ####tag4   ";
    list<iterator_range<string::iterator> > matches;
    split( matches, tmp, is_any_of("\t #"), token_compress_on );

    for( auto match: matches ) {
            cout << "'" << match << "'\n";
    }
}

The output is:

''
'tag'
'tag1'
'tag2'
'tag3'
'tag4'
''

I would have thought that the token_compress_on option removes all empty tokens. The solution is, for example, to use boost::trim_if. Nevertheless I was wondering if this is the desired behaviour of boost::split, and why this is happening?

(g++ 4.6.3, boost 1.48)

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2 Answers 2

up vote 5 down vote accepted

The behavior is intentional, because you could recreate the string (complete with starting and trailing spaces) from the split version. Boost doesn't know if that whitespace is significant or not to you (it might be, as some file formats, for example, might force leading spaces/specific space counts).

You should trim_if or trim as you are if you do need to remove leading/trailing spaces.

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Maybe I don't get the point, but how can I recreate " #tag #tag1#tag2 #tag3 ####tag4 " from the tokens "", "tag", "tag1", "tag2", "tag3", "tag4", ""? –  fdlm May 3 '12 at 18:55
    
@fdlm That would be specific to the format of your string. The behavior of boost::split is pretty general, but for some users, they might care about preserving trailing/leading characters that would otherwise be removed by splitting on them. Basically if you need those characters gone, you need to be explicit and compose functions together that do what you expect. –  birryree May 3 '12 at 19:01
    
Ok, I got it. Thank you for pointing this out. –  fdlm May 3 '12 at 19:12

If eCompress argument is set to token_compress_on, adjacent separators are merged together. Otherwise, every two separators delimit a token.

Here

It does not remove the tokens only merges them.

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