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I want to test if a non-empty vector contains identical elements. Is this the best way?

count(vecSamples.begin()+1, vecSamples.end(), vecSamples.front()) == vecSamples.size()-1;
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It is simple, sure, but inefficient if they are different. Plus you could simplify it further by removing the +/- 1's. Especially since this would blow up on an empty vector. –  Ryan Guthrie Mar 20 '13 at 18:00
    
vecSamples.front() would blow up on an empty vector. –  john Mar 20 '13 at 18:01
    
The vector is never empty in my case. –  Neil Kirk Mar 20 '13 at 18:03
    
Is your vector always at least 2 elements though? –  Michael Dorgan Mar 20 '13 at 18:05
    
No, is that a problem? –  Neil Kirk Mar 20 '13 at 20:05

3 Answers 3

up vote 3 down vote accepted

As @john correctly points out, your solution iterates over the entire container even if the first two elements are different, which is quite a waste.

How about a purely no-boost no c++11 required solution?

bool allAreEqual = 
  find_if(vecSamples.begin() + 1, 
    vecSamples.end(), 
    bind1st(not_equal_to<int>(), vecSamples.front())) == vecSamples.end();

Stops on first non-equal element found. Just make sure your vecSamples is non-empty before running this.

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1  
Accepted as I'm only using old C++ right now. –  Neil Kirk Mar 21 '13 at 11:33

In c++11 (or Boost Algorithm)

std::all_of(vecSamples.begin()+1,vecSamples.end(),
          [&](const T & r) {return r==vecSamples.front();})
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Probably not, because it always examines all the elements of the vector even if the first two elements are different. Personally I'd just write a for loop.

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