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#include <algorithm>

bool comparisonFunc(char* c1, char* c2)
{
     return strcmp(c1, c2) ? 0 : 1;
}

vector<char*> myVec;
vector<char*>::iterator itr;
sort(myVec.begin(), myVec.end(), comparisonFunc)

Is that correct or is there a better way to do it?

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1  
itr appears to be unused. And strcmp(...) ? 0 : 1 would be more idiomatically written !strcmp(...). But I don't know the answer to your actual question. –  Zack Oct 22 '11 at 0:06
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2 Answers

up vote 8 down vote accepted

std::sortexpects a "less than" predicate. You should implement your comparisonFunc() like this:

bool comparisonFunc(const char *c1, const char *c2)
{
    return strcmp(c1, c2) < 0;
}

(Note the consts; they are important.)

Your current implementation couldn't possibly work because you just return if the values are equal or not. That information is not enough to sort - you need to know which one is smaller and which one is bigger (unless, of course, the values are equal).

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why const is important here ? –  user1002288 Oct 22 '11 at 0:12
    
std::sort would never let you modify the contents of the container when it just wants to know which one is smaller. –  hrnt Oct 22 '11 at 0:13
    
How about bool comparisonFunc(const char* c1, const char* c2) const {} ? –  user1002288 Oct 22 '11 at 0:22
    
The last const is only necessary/allowed if the function is a member function of a class (a method in Java-speak). Basically the last const after the parameters makes the this pointer const –  hrnt Oct 22 '11 at 0:27
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I more often want to sort a vector of pointer to records than just plain C-strings...

    template<>
    struct std::less<const foo*>
    {
       bool operator()(const foo* lhs, const foo* rhs) const
       {
          return strcmp(lhs->key, rhs->key);
       }
    };

This redefines comparison of foo* such that the default comparison works in the sort. To me this style feels more declarative, the other more procedural. If you need multiple orderings this use of the default is problematic; if you want to be sure that all ordered collections of foo*s are in the same order it's good.

std::vector<foo*> db;
std::sort(db.begin(), db.end());
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Don't you mean return strcmp(...) < 0; ? –  Robᵩ Oct 22 '11 at 2:56
    
IMO, this is rather problematic. You make foo_p1 < foo_p2 and std::less<const foo*>()(foo_p1, foo_p2) behave differently, and in addition the latter has a different result than std::less<foo*>()(foo_p1, foo_p2). –  UncleBens Oct 22 '11 at 12:12
    
... and the standard does not even seem to suggest that sorting algorithms should use std::less by default. Your snippet is full of errors and needn't work at all at the end of the day. –  UncleBens Oct 22 '11 at 12:41
    
UH my bad on strcmp(), sorry. What does the standard say about where it finds a default for T < T? Could it be... std::less(T)? –  phunctor Oct 24 '11 at 17:06
    
Defining operator< for non-class items such as T* is problematic as can be. This is how it's possible. –  phunctor Oct 24 '11 at 22:42
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