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I have the following code:

#include <iostream>
#include <vector>
#include <algorithm>

int main( int argc, char* argv[] )
{
    std::vector< int > obj;
    obj.push_back( 10 );
    obj.push_back( 20 );
    obj.push_back( 30 );
    std::for_each( obj.begin(), obj.end(), []( int x )
    { 
        return x + 2; 
    } );
    for( int &v : obj )
        std::cout << v << " ";
    std::cout << std::endl;
    return 0;
}

The result is : 10, 20, 30

i want to change all elements in vector (obj), using Lambda functions of new C++11 standard.

This is the code of implementation for_each function:

template<class InputIterator, class Function>
Function for_each(InputIterator first, InputIterator last, Function f)
{
    for ( ; first!=last; ++first )
        f(*first);
    return f;
}

*first passed by value and cope of element is changed, what is the alternative of for_each i must use that i have a result: 12, 22, 32 ?

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1  
You need to use lambda with references. I don't know the exact syntax, but it was something like: [&](int x){ ..} –  Kiril Kirov Nov 10 '11 at 18:25
2  
@KirilKirov The & inside of [] captures the surrounding environment (local variables) by reference. What he needs is just a reference for the input argument: [](int &x). –  Christian Rau Nov 10 '11 at 19:20
    
@ChristianRau - thanks. I haven't examined the new standard yet, I just have read some things in wikipedia and I don't remember all of that. –  Kiril Kirov Nov 10 '11 at 19:24

5 Answers 5

up vote 9 down vote accepted

i want to change all elements in vector (obj), using Lambda functions of new C++11 standard.

You've to do this :

std::for_each( obj.begin(), obj.end(), [](int & x)
{                                          //^^^ take argument by reference
   x += 2; 
});

In your (not my) code, the return type of the lambda is deduced as int, but the return value is ignored as nobody uses it. That is why there is no return statement in my code, and the return type is deduced as void for this code.

By the way, I find the range-based for loop less verbose than std::for_each for this purpose:

for( int &v : obj )  v += 2;
share|improve this answer
    
You must say return in your lambda body if the function is to return anything. –  wilhelmtell Nov 11 '11 at 21:28
1  
@wilhelmtell: Lambda doesn't return anything. –  Nawaz Nov 12 '11 at 1:36

Pass the argument by reference and modify the reference:

std::for_each( obj.begin(), obj.end(), [](int & x){ x += 2; } );
//                                        ^^^^^
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std::for_each( obj.begin(), obj.end(), []( int& x )
{ 
     x += 2; 
} );
share|improve this answer

You should use transform:

std::transform( obj.begin(), obj.end(), obj.begin(), []( int x )
{ 
    return x + 2; 
} );
share|improve this answer
    
I think for_each is just as clear, transform makes more sense when you're destination is not the source. In any case, if we're talking "should"'s, I think this is what should be done: for(auto& x : obj) x += 2; –  GManNickG Nov 10 '11 at 21:46
    
I think both std::transform() and the range-based for-loop are good code here. std::transform() says more semantically, and for talks less period. So you can argue either way. –  wilhelmtell Nov 11 '11 at 21:32

In addition to the already existing (and perfectly correct) answers, you can also use your existing lambda function, that returns the result instead of modifying the argument, and just use std::transform instead of std::for_each:

std::transform(obj.begin(), obj.end(), obj.begin(), []( int x )
{
    return x + 2;
} ); 
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