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 have a class with a few numeric fields such as:

class Class1 {
    int a;
    int b;
    int c;
public:
    // constructor and so on...
    bool operator<(const Class1& other) const;
};

I need to use objects of this class as a key in an std::map. I therefore implement operator<. What is the simplest implementation of operator< to use here?

EDIT: The meaning of < can be assumed so as to guarantee uniqueness as long as any of the fields are unequal.

EDIT 2:

A simplistic implementation:

bool Class1::operator<(const Class1& other) const {
    if(a < other.a) return true;
    if(a > other.a) return false;

    if(b < other.b) return true;
    if(b > other.b) return false;

    if(c < other.c) return true;
    if(c > other.c) return false;

    return false;
}

The whole reason behind this post is just that I found the above implementation too verbose. There ought to be something simpler.

share|improve this question
    
You must first decide what '<' means for the case where multiple members represent the invariant of the class. –  Amardeep Jun 9 '10 at 13:52

4 Answers 4

up vote 3 down vote accepted

It depends on if the ordering is important to you in any way. If not, you could just do this:

bool operator<(const Class1& other) const
{
    if(a == other.a)
    {
         if(b == other.b)
         {
             return c < other.c;
         }
         else
         {
             return b < other.b;
         }
    }
    else
    {
        return a < other.a;
    }
}
share|improve this answer
    
Thanks!! This is what I was looking for. –  Agnel Kurian Jun 9 '10 at 14:00
    
Or, for fun, return a!=other.a?a<other.a:b!=other.b?b<other.b:c<other.c; –  Skizz Jun 9 '10 at 14:15
3  
I don't see in what way this is better than the "simplistic implementation" that the OP gave. This version is less readable. –  Frank Jun 26 '12 at 20:43

I assume you want to implement lexicographical ordering.

#include <boost/tuple/tuple.hpp>
#include <boost/tuple/tuple_comparison.hpp>
bool Class1::operator<(const Class1& other) const
{
    return boost::tie(a, b, c) < boost::tie(other.a, other.b, other.c);
}
share|improve this answer
    
Nice! But boost is too heavy for my particular case. –  Agnel Kurian Jun 9 '10 at 14:01
    
Great, never thought of using tuples! –  Matthieu M. Jun 9 '10 at 14:27
    
@Agnel Kurian: no need to 'use' it further than this one tie. It is header-only too, to minimize build impact (time/dependencies) you can isolate it into a separate compilation unit (but for release builds, consider doing it in the header for inlining!) –  sehe May 24 '11 at 20:50
    
With a recent compiler you can use std::tie after including <tuple> header :) –  fmuecke May 9 '14 at 20:56

I think there is a misunderstanding on what map requires.

map does not require your class to have operator< defined. It requires a suitable comparison predicate to be passed, which conveniently defaults to std::less<Key> which uses operator< on the Key.

You should not implement operator< to fit your key in the map. You should implement it only if you to define it for this class: ie if it's meaningful.

You could perfectly define a predicate:

struct Compare: std::binary_function<Key,Key,bool>
{
  bool operator()(const Key& lhs, const Key& rhs) const { ... }
};

And then:

typedef std::map<Key,Value,Compare> my_map_t;
share|improve this answer

You could do:

return memcmp (this, &other, sizeof *this) < 0;

but that has quite a lot of of caveats - no vtbl for example and plenty more I'm sure.

share|improve this answer
3  
That will almost never work as intended. –  Peter Alexander Jun 9 '10 at 14:01
    
@Peter: The OP only wants to guarantee uniqueness as long as any of the fields are unequal, so, adding an offsetof to get the address of the first key field and ensuring the key fields are contiguous, memcmp should do the trick. –  Skizz Jun 9 '10 at 14:18

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.