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I have two strings, i.e: APPLE and APPLEA. I want to iterate over APPLE and check if its characters belong to APPLEA. I have done this:

int counter=0;
for (j=0;j<dictionary[i].size();j++)
{
    if (word_to_match.find(dictionary[i][j]) != std::string::npos)
    {
        counter++;
    }
}

Where dictionary is just a std::vector that has APPLE and other words. Is it possible to avoid the for loop by using std::transform or another tool?

----------------------------------EDIT------------------------------------

I have this, I dont know if it could be even cleaner

    std::for_each(dictionary[i].begin(),dictionary[i].end(),[&word_to_match,&counter](char const &c){
        if (word_to_match.find(c) != std::string::npos)
        {
            counter++;
        }
    });
2
  • 1
    Could you provide some additional input, and output cases? I'm not clear what the algorithm is doing.
    – cigien
    Apr 10 '20 at 18:09
  • Is your end result to have the number of matched characters?
    – sptrks
    Apr 10 '20 at 18:19
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How about std::count_if

int count = std::count_if(dictionary.begin(), dictionary.end(), [&](const std::string& s){
        return word_to_match.find(s) != std::string::npos;
    });

assuming dictionary is a container for std::string, eg. std::vector<std::string>. You can modify it accordingly to match your case.

1
  • As it seems OP wants then to check count with size, std::all_of seems appropriate.
    – Jarod42
    Apr 10 '20 at 18:56

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