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I have a string like this:

"\r color=\"red\" name=\"Jon\" \t\n depth=\"8.26\" "

And I want to parse this string and create a std::list of this object:

class data
{
    std::string name;
    std::string value;
};

Where for example:

name = color
value = red

What is the fastest way? I can use boost.

EDIT:

This is what i've tried:

vector<string> tokens;
split(tokens, str, is_any_of(" \t\f\v\n\r"));

if(tokens.size() > 1)
{
    list<data> attr;
    for_each(tokens.begin(), tokens.end(), [&attr](const string& token)
        {
            if(token.empty() || !contains(token, "="))
                return;

            vector<string> tokens;
            split(tokens, token, is_any_of("="));
            erase_all(tokens[1], "\"");
            attr.push_back(data(tokens[0], tokens[1]));
        }
    );
}

But it does not work if there are spaces inside " ": like color="red 1".

share|improve this question
    
Fastest to write, fastest to compile, or fastest at runtime? – ildjarn Jul 2 '12 at 20:01
    
Fastest to gain self awareness? – jball Jul 2 '12 at 20:03
    
@ildjarn runtime – Nick Jul 2 '12 at 20:03
    
I'm not inclined to write the actual code for a homework answer, but if it were me, I'd use Boost.Xpressive or Boost.Spirit.Qi. – ildjarn Jul 2 '12 at 20:08
2  
@Nick : Answering that would be writing the actual code for you. ;-] – ildjarn Jul 2 '12 at 20:22
up vote 1 down vote accepted

Assuming that there will always be at least one white-space before the name, i think the following algorithm is fast enough:

list<data> l;
size_t fn, fv, lv = 0;

while((fv = str.find("\"", ++lv)) != string::npos &&
    (lv = str.find("\"", fv+1)) != string::npos)
{
    fn = str.find_last_of(" \t\n\v\f\r", fv);
    l.push_back(data(str.substr(++fn, fv-fn-2), str.substr(++fv, lv-fv)));
}

Where str is your std::string and data has a constructor of this type:

data(string name, string value)
    : name(name), value(value)
{   }

As you can see there was no need to use boost or regex, simply the standard library.

share|improve this answer
    
Pendantic, but as of C++11, regex is part of the standard library. :-] – ildjarn Jul 6 '12 at 19:37

after your edit: you could do the following for the space problem:

(replace all spaces that are not within " " quotes with a \n)

void PrepareForTokanization(std::string &str)
{
    int quoteCount = 0;
    int strLen = str.length();
    for(int i=0; i<strLen; ++i){
        if (str[i] == '"' && (i==0 || (str[i-1] != '\\')))
            quoteCount++;
        if(str[i] == ' ' && quoteCount%2 == 0)
            str[i] = '\n';
    }
}

and before you call split, prepare the string, and then remove the space character from the split is_any_of

PrepareForTokanization(str);
split(tokens, str, is_any_of("\t\f\v\n\r"));
share|improve this answer

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