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Is there an STL/boost algorithm that will test if all the elements between two iterators match a given value? Or alternatively that a predicate returns true for all of them?

i.e. something like

template<class InputIterator, class T>
InputIterator all_match (InputIterator first, InputIterator last, const T& value)
{
    bool allMatch = true;
    while(allMatch && first!=last)
        allMatch = (value == *first++);
    return allMatch;
}

Or

template <class InputIterator, class Predicate>
bool all_true (InputIterator first, InputIterator last, Predicate pred)
{
    bool allTrue = true;
    while (allTrue && first != last) 
        allTrue = pred(*first++);
    return allTrue;
}
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5 Answers

up vote 21 down vote accepted

If you can negate the predicate you can use std::find / std::find_if and see if it returns the end element of your sequence. If not then it returns the one that does match.

You can adapt an function with std::not1 or std::not_equal_to so by doing combined with std::find_if you can indeed do so using STL without writing a loop.

bool allMatch = seq.end() == std::find_if( seq.begin(), seq.end(), 
    std::not_equal_to(val) );
bool allPass = seq.end() == std::find_if( seq.begin(), seq.end(), 
    std::not1(pred) );
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That'll do nicely. Thanks. –  GrahamS Nov 19 '10 at 12:57
3  
actually I don't think that not_equal_to() syntax is quite right. I may be doing something wrong, but I had to use bind2nd with it like this: std::find_if(seq.begin(), seq.end(), std::bind2nd(std::not_equal_to<MyType>(), val)) –  GrahamS Nov 19 '10 at 15:14
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C++0x introduces std::all_of.

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2  
+1, nice, didn't even know this was to be added. –  avakar Nov 19 '10 at 12:49
    
@avakar: Section 25.1 [algorithms.general] It also introduces std::any_of and std::none_of (and the infamous std::copy_if). –  Matthieu M. Nov 19 '10 at 13:10
    
@avakar: we're not using C++0x but that is useful to know anyway, thanks. –  GrahamS Nov 19 '10 at 14:10
    
This is interesting. It shows C++0x poses a shift towards a more humane interface. –  wilhelmtell Nov 19 '10 at 14:46
    
@wilhelmtell: I don't know if it is a shift much more than an identified need. I wasn't in the field in 2003 so I could not say if the C++03 standard was the occasion for such an adjustment too. –  Matthieu M. Nov 19 '10 at 15:16
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You could use std:find ord std::find_if to do this.

template <class T>
struct pred {
    T t_;

    pred(const T& value) : t_(value) {}

    bool operator()(const T &t)
    {
        return t != t_;
    }
};

if (e.cend() == std::find_if(c.cbegin(), c.cend(), pred<T>(value)))
    print("all match value");
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As I understand it, find and find_if only locate the first match in a container. I want to check that EVERY element between the iterators is a given value. –  GrahamS Nov 19 '10 at 12:44
    
Does my edit show how it should work? –  frast Nov 19 '10 at 12:46
    
Sorry, my predicate was worng. I corrected it now. –  frast Nov 19 '10 at 12:48
    
Aah I see. So define a predicate that is true if it the element doesn't match, then see if find_if reaches the end or not. Cunning, thanks. +1 –  GrahamS Nov 19 '10 at 12:52
1  
There is already a predicate to test not equal, std::not_equal_to, and no need to write your own. –  CashCow Nov 19 '10 at 12:53
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You can use std::equal with the predicate. Something like:

using namespace std;
using namespace boost::lambda;

int main()
{
    vector<int> a;
    a.push_back(1);
    a.push_back(1);
    a.push_back(2);
    a.push_back(2);
    a.push_back(3);
    bool allMatch = equal(a.begin(), a.begin() + 2, a.begin(), _1 == 1);
    return 0;
}
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+1 A little perverse, but clever ;_) –  Tony D Nov 19 '10 at 14:40
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Often you can just count them:

template<class FwdIterator, class T>
InputIterator all_match (FwdIterator first, FwdIterator last, const T& value)
{
   return std::count(first, last, value) == std::distance(first, last);
}

Inefficient when the iterator isn't random, or when it returns false. Doesn't work for input iterators.

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Also doesn't stop as soon as it finds a non-match, which makes it less ideal for very large containers. –  GrahamS Nov 19 '10 at 16:22
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