1

I've got some inherited code that went something like this. (Please hold the laughter... I KNOW this is ugly even after I've pseudo-codified it. That's why I'm trying to improve it and my first thing to work on is the bone headed (by my way of thinking) storing of time as a double of milliseconds since the epoch, and using that time as the key in the multimap). Anyway this is the "before" code, call it foo.h:

#include <vector>
#include <map>
#include <list>
#include <queue>
#include <string>
#include <time.h>
using namespace std;

#include "yasper.h"
using yasper::ptr;

class foo
{
private:
    ...
public:
    foo(...);
    virtual ~foo();
    ...
bool operator() (const ptr<foo> poFoo1, const ptr<foo> poFoo2)
    {
        ...
    }
}
...
typedef ptr<foo> fooPtr;

typedef queue<fooPtr> fooQueue;
typedef list<fooPtr> fooList;
typedef fooList *fooListPtr;

typedef multimap<double, fooPtr> fooTimeMap;

I also know that my platform doesn't provide time precision anywhere near nanoseconds but it is a little better than seconds or milliseconds. Also I've tried to understand and implement the suggestions from several similar question both from google results and from this site ( C++ Using .find() with struct as key in map and using struct as key in map ). However those are slightly different because they are for their own new struct and I am trying to do it with an existing standard library struct.

So my main goal is to change that last line to:

typedef multimap<timespec, fooPtr> fooTimeMap;

When I make only that change, I get

In member function 'bool std::less<_Ty>::operator()(const _Ty&, const _Ty&) const [with _Ty = timespec]': /.../include/cpp/xtree:895: instantiated from 'std::_Tree<_Traits>::iterator std::_Tree<_Traits>::find(const typename _Traits::key_type&) [with _Traits = std::_Tmap_traits, std::less, std::allocator > >, true>]' /home/.../foo.cpp:109: instantiated from here /.../include/cpp/functional:136: error: no match for 'operator<' in '_Left < _Right'

Based on these and other referenced posts, I've tried to define the less than operator for timespec... e.g. before the closing } of class foo, I put

bool operator() (const timespec& lhs, const timespec& rhs)
{
    return ( lhs.tv_nsec < rhs.tv_nsec && lhs.tv_sec == rhs.tv_sec ) ||
        lhs.tv_sec < rhs.tv_sec;
}

but I guess I don't understand where is the right place to do that and why. Or even if it is not "the right place" but somewhere that is valid enough to make the multimap<timespec,...> compile (and run : - ). Also some posts talk about defining operator<(...) and others talk about operator()(...).

I'd rather not define a whole new wrapper class like timespec_compare_class around timespec (I've seen the syntax of multimap<timespec, fooPtr, timespec_compare_class> in other posts) so I'd rather avoid that if there is a way to do it within class foo itself, or even after the } of foo but still within foo.h.

(note, I don't think the "bool operator() (const ptr poFoo1, const ptr poFoo2)", nor the fooQueue, fooList, nor fooListPtr are relevant to the question but I've left them in the pseudo-code just in case.)

So, aside from "read a C++ primer", which I know I need to do, can anyone point me at a slightly quicker solution?

@thb and @MarkRansom, thanks for replying... yeah those were mentioned in other posts too though as I said slightly different cases like with their own new structs, which I tried to apply to my case.

e.g. 1) When I do bool operator() (const timespec& lhs, const timespec& rhs) inside the { braces } of foo, I still get "error: no match for 'operator<' in '_Left < _Right'"

e.g. 2) when I do that outside the braces, just before the typedef multimap, I get "bool operator()(const timespec&, const timespec&)' must be a nonstatic member function".

e.g. 3) When I do bool operator< (const timespec& lhs, const timespec& rhs) inside the braces, I get "'bool foo::operator<(const timespec&, const timespec&)' must take exactly one argument" And even if I changed that to one argument, I don't think that's what I want because I'm not trying to tell it how to compare a foo to a timespec.

e.g. 4) When I do that outside the braces, just before the typedef multimap, I get "multiple definition of `operator<(timespec const&, timespec const&)'".

So are one of these closer to the right track, or something completely different?

  • Is there a reason that you prefer not to rename operator() to operator< ? At any rate, I know of two basic ways to do what you want. First, by operator<. Second, alternately, by defining a suitable Less functor. (In my experience, the first usually seems easier.) – thb Mar 20 '12 at 1:57
0

I would change it slightly more:

struct TimeTest
{
    bool operator()(timespec const& lhs, timespec const& rhs) const
    {
         return <TEST>
    }
};
typedef multimap<timespec, fooPtr, TimeTest> fooTimeMap;

The reason that I would take the extra step is that if you define operator< for timespec is that it has a high chance for a clash with any C++ library that uses time information. They may not define the same ordering and then things get complicated.

By explicitly setting the comparison you guarantee there will be no clashes.

  • Three cheers for the kindness of strangers!! This compiles (with the following outside the "class foo { ... }"). Thank you VERY much! struct TimeTest { bool operator()(const timespec& lhs, const timespec& rhs) const { return ( lhs.tv_nsec < rhs.tv_nsec && lhs.tv_sec == rhs.tv_sec ) || lhs.tv_sec < rhs.tv_sec; }; }; typedef multimap<timespec, fooPtr, TimeTest> fooTimeMap; – Martin Moops Mar 20 '12 at 15:08
  • I should say, this compiles, and I will report back if it does not also test well! : - ) – Martin Moops Mar 20 '12 at 15:13
1

Why not define the less-than operator as

bool operator< (const timespec& lhs, const timespec& rhs) { ... }

which differs slightly from what you wrote? The function-call operator()() can indeed be used instead of operator<(), but not quite as you did it. The operator<() is probably easier, anyway.

Good luck.

  • Right. operator() only makes sense when it's a member of a class, which in this case would be called a functor. – Mark Ransom Mar 20 '12 at 2:22
  • 1
    Yeah I've tried that too but still can't seem to get the syntax right so I must not be understanding something correctly. – Martin Moops Mar 20 '12 at 2:22
  • The problem here is you can potentially clash with a less than operator defined by another package. I think provided the comparison functor to the container rather than relying on default template parameters to map it to the operator< – Martin York Mar 20 '12 at 3:20

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