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I'm trying to use the C++ Standard Library algorithm unique (with BinaryPredicate).

I've created a vector of pairs; each pair is like "(first=a vector of 4 doubles, second=an integer)". The second element serves as index so after using `unique, I can still tell the original index.

In the example below, I've created something like this:


10 20 30 40, 1
10 20 30 40, 2
10 20 30 40, 3
10 20 30 40, 4
10 20 30 40, 5
10 20 30 40, 6

Now I want to use the unique function to compare only the first element of each pair. I've used a customize binary predictor uniquepred. Indeed, it works, but the vector is not reduced after using unique.

EXPECTED RESULT

Size before=6
equal!
equal!
equal!
equal!
equal!
Size after=1

ACTUAL RESULT

Size before=6
equal!
equal!
equal!
equal!
equal!
Size after=6

Minimum working example follows. Please help me debugging this.

#include <iostream>
#include <vector>
#include <algorithm>
using namespace std;

typedef std::vector<double> V1db;
typedef std::pair<V1db, int > Pairs;
typedef std::vector<Pairs> Vpairs;

bool uniquepred( const Pairs& l, const Pairs& r) {
    if (l.first==r.first)
        cout<<"equal!"<<endl;
    return l.first == r.first;
}
int main()
{
    Vpairs ak;
    V1db u2(4);
    u2[0]=10;u2[1]=20;u2[2]=30;u2[3]=40;
    Pairs m2;
    m2.first = u2;
    m2.second= 1;
    ak.push_back(m2);
    m2.second= 2;
    ak.push_back(m2);
    m2.second= 3;
    ak.push_back(m2);
    m2.second= 4;
    ak.push_back(m2);
    m2.second= 5;
    ak.push_back(m2);
    m2.second= 6;
    ak.push_back(m2);
    cout<<"Size before="<<ak.size()<<endl;
    unique(ak.begin(), ak.end(), uniquepred);
    cout<<"Size after="<<ak.size()<<endl;

    return 0;
}
share|improve this question
2  
+1 for complete, minimal example. See sscce.org. –  Robᵩ Sep 21 '11 at 17:33
1  
Yes but then -1 for "STL". –  Lightness Races in Orbit Sep 21 '11 at 17:36
3  
Think about this for a moment: You pass nothing but iterators to std::unique(); specifically, you do not pass the container. How is function supposed to erase elements from the container without being passed the container? –  sbi Sep 21 '11 at 17:41

2 Answers 2

up vote 8 down vote accepted

You want to do:

ak.erase(unique(ak.begin(), ak.end(), uniquepred), ak.end());

The reason for this is that std::unique reorders the values. It doesn't delete them though and you are left with a new range, from begin() to the iterator that unique returns. The container itself is not altered, other than this reordering.

There's no "remove at position X" method on vectors, even if there was it would invalidate the iterators. The unique algorithm by design doesn't even know anything about the underlying container, so it can work with any valid pair of iterators. The only requirement is that they are ForwardIterators.

share|improve this answer
    
Thank you both for the quick answer! That actually works. –  Kemcy Sep 21 '11 at 17:57
    
If you're interested the documentation I used was: sgi.com/tech/stl/unique.html - Note [1] is particularly relevant here. –  Flexo Sep 21 '11 at 18:03

std::unique does work; you forgot to look it up in your favourite C++ library documentation to find out what it does.

It functions a little weirdly, like std::remove, in that it actually just moves stuff around and gives you the end iterator to the new range. The underlying container is not resized: you have to do erasure yourself:

ak.erase(std::unique(ak.begin(), ak.end(), uniquepred), ak.end());
share|improve this answer
1  
+1 to offset the anonymous downvoter. >:( –  ildjarn Sep 21 '11 at 17:38
2  
@ildjarn: Thanks! Though I must protest: it is nobody's job to "counteract" somebody else's right to vote. –  Lightness Races in Orbit Sep 21 '11 at 17:47
1  
the vote seemed to be erroneous in my view too and unless I missed a mistake (which the downvoter neglected to point out) it's definitely not right for this answer to be scored 0 or negatively. –  Flexo Sep 21 '11 at 17:58
    
@awoodland: Individually, we don't vote for the final score; we vote for +1 or 0 or -1. :) What the final score ends up being is separate from how we decide to cast our vote. Thanks for the support, though! –  Lightness Races in Orbit Sep 21 '11 at 18:09
    
@TomalakGeret'kal - that's often not how I vote - I normally vote +1, 0 or -1 on if I think the answer is currently under/over rated. –  Flexo Sep 21 '11 at 18:14

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