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Let's have simplified class:

class A
{
   bool val_;
   public:
     A() : val_(true) {}
     bool isNew() const { return val_; }
     void setDirty() { val_ = false; }
};

and the vector of objects of such class:

vector<A> coll;
coll.push_back(A());
coll.push_back(A());
coll.push_back(A());
coll.push_back(A());
coll[1].setDirty();
coll[3].setDirty();

I need some elegant solution to rearrange(sort) elements in the vector, so that not modified objects will be grouped at the beginning of the sequence.

share|improve this question
    
Please compile before posting. – John Dibling Oct 10 '11 at 20:45
up vote 6 down vote accepted

You can use Partition algorithm from standard library for that:

bool MyPredicate(A& a) { return a.isNew();}
...
// bound is iterator pointing to the first element for which predicate returns false
vector<A>::iterator bound = partition(coll.begin(), coll.end(), MyPredicate);

Or, as Christian Rau suggested solution without separate function:

std::partition(coll.begin(), coll.end(), std::mem_fun_ref(&A::isNew))
share|improve this answer
    
+1 The only one not suggesting std::sort, which may be overkill for this simpler problem. And you also get the start of the second group. Maybe a little code sample would make it an even more attractive alternative to the other sort-based answers. – Christian Rau Oct 10 '11 at 20:52
    
@ChristianRau: I agree that partition sounds like the most appropriate algorithm, but I wonder how it would differ from sort in terms of complexity in this particular situation (and bear in mind that we don't use stable_sort). – Kerrek SB Oct 10 '11 at 20:58
1  
With the help of std::mem_fun_ref you don't even need a separate function. And I also don't think you need to negate, as he wants the true ones first. So just do std::partition(coll.begin(), coll.end(), std::mem_fun_ref(&A::isNew)). This would be the most elegant C++03 has to offer, I think. – Christian Rau Oct 10 '11 at 20:58
    
@KerrekSB It doesn't matter if it is more efficient than std::sort, as it should obviously not be less efficient and could be more efficient. But the main thing is, it's just more suited, as it only does what is neccessary and is therefore a much more elegant solution. – Christian Rau Oct 10 '11 at 21:00
    
negation was wrong here indeed, was confused a bit – Vladimir Oct 10 '11 at 21:01

How about sort:

#include <algorithm>

std::sort(coll.begin(), coll.end(),
     [](const A & a, const A & b) -> bool { return a.isNew() < b.isNew(); } );

You'll have to rewrite the class to declare isNew() as const.

For older compilers, use a function instead of the lambda:

bool isNewCompare(const A & a, const A & b) { return a.isNew() < b.isNew(); }
std::sort(coll.begin(), coll.end(), isNewCompare);

Edit: @Vladimir has the better answer, std::partition() is the more appropriate algorithm for this problem.

share|improve this answer
    
probably should add the disclaimer that this is C++11 code – Doug T. Oct 10 '11 at 20:48

std::sort lets you provide a custom comparison function object. You define a class that overrides the paranthesis operator, and returns true if the first argument should come before the right argument:

class COrderByDirty
{
   bool operator(const A& lhs, const A& rhs) const 
   {
       // Says lhs should come before rhs only if 
       // lhs is marked as dirty, and rhs is not
       if (lhs.GetDirty() < rhs.Dirty())
       {
           return true;
       }
   }
 }

Then simply instantiate it use it to sort:

 std::sort(coll.begin(), coll.end(), COrderByDirty());

If you can use C++11, you can avoid the lengthy class creation and use a lambda, as Kernek does in his answer.

share|improve this answer

You could use std::sort from <algorithm> together with boost::bind. It could look something like this:

std::sort(coll.begin(), coll.end(), boost::bind(&A::isDirty, _1));

Assuming A has a function bool A::isDirty() const.

This works because you use the following ordering predicate implicitly:

bool cmp(const A &a, const A &b) {
    return a.isDirty();
}

We just don't care what happens when both are dirty or both are not dirty.

share|improve this answer
1  
boost::bind isn't necesarry – John Dibling Oct 10 '11 at 20:50
1  
krynr, John, have either of you tested your proposed versions? – Kerrek SB Oct 10 '11 at 20:56
    
Why not? Could you elaborate on that? – Florian Oct 10 '11 at 20:58
    
Thanks Kerrek, I forgot the &. – Florian Oct 10 '11 at 21:05
1  
@ChristianRaus: Or you could just ignore the second argument (in this case at least). It might look wired, but it works. – Florian Oct 10 '11 at 21:17

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