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 wrote the below code to check whether a certin string exists in a text or no. The issue is that match() function always returns false even the pattern exists in the text.

int main(){

    char *text="hello my name is plapla";
    char *patt="my";

    cout<<match(patt,text);

    system("pause");
    return 0;
}

bool match(char* patt,char* text){

    int textLoc=0, pattLoc=0, textStart=0;
    while(textLoc <= (int) strlen(text) && pattLoc <= (int)strlen(patt)){
        if( *(patt+pattLoc) == *(text+textLoc) ){
            textLoc= textLoc+1;
            pattLoc= pattLoc+1;

        }

        else{
            textStart=textStart+1;
            textLoc=textStart;
            pattLoc=0;
        }

    }
    if(pattLoc > (int) strlen(patt))
        return true;
    else return false;
}
share|improve this question
1  
Why are you not using std::string? Any particular reason or just love for c? –  Alok Save Jan 31 '12 at 18:26
    
yep, just love parts of C. –  Aan Jan 31 '12 at 18:27
2  
Instead of *(patt+pattLoc) you can use patt[pattLoc], but since you love parts of C, I think textLoc should rather be a char *. –  ipc Jan 31 '12 at 18:27
    
Maybe this was homework or coding practice. –  AppleGrew Jan 31 '12 at 18:28
    
@Adban Wait, so you actually like pointers and raw memory management? –  Etienne de Martel Jan 31 '12 at 18:30

3 Answers 3

up vote 3 down vote accepted

Try pattLoc < (int)strlen(patt) in your while loop. Loop will stop when pattLoc == 2, so you avoid comparing the '\0' of "my" with the ' ' of "hello my name is pala", which set pattloc to 0 and return false.

Or better, use string substr.

share|improve this answer
    
string::substr is likely to have even worse performance than his multiple calls to strlen (although it's far from sure). For better or for worse, the C++ library is designed around iterators. –  James Kanze Jan 31 '12 at 19:04
    
@yngum: thanks, part of your answer helped me. –  Aan Jan 31 '12 at 19:13

The obvious solution is:

bool
match( std::string const& pattern, std::string const& text )
{
    return std::search( text.begin(), text.end(), 
                        pattern.begin(), pattern.end() )
            != text.end();
}

This is idiomatic C++, and the way I would expect any C++ programmer to write it, at least in a professional environment.

If the goal is to learn how to write such a function, then of course, the above isn't much of a solution. The solution then should be mroe divide and conquer; there's much too much in match for you to put it in one function. I'd recommend something like:

bool
startsWith( std::string::const_iterator begin,
            std::string::const_iterator end,
            std::string const& pattern )
{
    return end - begin >= pattern.size()
        && std::equal( pattern.begin(), pattern.end(), begin );
}

bool
match( std::string const& pattern, std::string const& text )
{
    std::string::const_iterator current = text.begin();
    while ( current != text.end()
            && !startsWith( begin, text.end(), pattern ) ) {
        ++ current;
    }
    return current != text.end();
}

This can obviously be improved; for example, there's no point in continuing in the while loop when the length of the remaining text is less than the length of the pattern.

And if your professor insists on your using char const* (if he insists on char*, then he's totally incompetent, and should be fired), this can easily be rewritten to do so: just replace all calls to begin with the pointer, and all calls to end with pointer + strlen(pointer).

share|improve this answer

I have solved the problem:

while(textLoc <= (int) strlen(text) && pattLoc <= (int)strlen(patt))

should be:

while(textLoc < (int) strlen(text) && pattLoc < (int)strlen(patt))

and if(pattLoc > (int) strlen(patt)) to if(pattLoc >= (int) strlen(patt))

share|improve this answer

Your Answer

 
discard

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

Not the answer you're looking for? Browse other questions tagged or ask your own question.