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i am trying to get the last letters of a word, to compare if these letters row are in a vector. So i want to check first the last 2, then the last 3 and the last 4 letters. As soon as it finds one, it should break up, and return false. Else it should check everything left, and return in case of nothing founded, true.

This my function:

bool isIt(wstring word, vector <wstring> vec) {

int ct = 2;
while (ct < 5) {
    word = word.substr(word.length() - ct, word.length()-1);
    //wcout << word << endl;
    if (find(vec.begin(), vec.end(), word) != vec.end()) {
        //wcout << "false" << endl;
        ct = 5; return false;

    } else {ct++; wcout << ct << endl; continue; }
}  return true;}

the function get called thru this:

if( word >3){ isIt(word, vec); }

when the first check does fail, i receive this error msg:

terminate called after throwing an instance of 'std::out_of_range' what(): basic_string::substr

i don't understand, why it does not continue, once it is in the else part. I hope my description was good enough. BR

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2  
Comparing wstring and string might not always work. You should settle for one. –  RedX Mar 24 '13 at 16:29
1  
Assigning 5 to ct just before returning won't do anything but make people wonder why it's being assigned a value, and that one in particular, if it's just going to be discarded. –  chris Mar 24 '13 at 16:30
1  
word = word.substr(word.length() - ct, word.length()-1); here you assign your cut down word to itself. Next run you try to substr the already short string... This cannot work... –  RedX Mar 24 '13 at 16:31
    
ah sorry, yes, this was a mistake here, i copy the code, and change the function head, to make it short. I actually had: vector <wstring> .. there is another mistake, which cause this error msg :) @RedX: this should be fine or? first ct=2, but when it should be 3 it breaks up, although the word is big enough :S –  Ramis Habib Mar 24 '13 at 16:33
    
What is word.length() - ct when word is "ABC" and ct is 4? –  Drew Dormann Mar 24 '13 at 16:35

1 Answer 1

up vote 0 down vote accepted

The bug is here, where you modify word.

    word = word.substr(word.length() - ct, word.length()-1);

If word is "ABCD" entering this function then the first time through the loop this evaluates to:

    word = std::string("ABCD").substr( 2, 3 );

And the second time through your loop it evaluates to:

    word = std::string("CD").substr( size_t(-1), 1 );
share|improve this answer
    
oh yes thanks a lot. I changed it to : word1 = word.substr(word.length() - ct, word.length()-1); now it works i think :) –  Ramis Habib Mar 24 '13 at 16:52

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