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How is this done in C++0x?

std::vector<double> myv1;
std::transform(myv1.begin(), myv1.end(), myv1.begin(),
               std::bind1st(std::multiplies<double>(),3));

Original question and solution is here.

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....was this taken from this other post? stackoverflow.com/questions/3885095/… –  ianmac45 Oct 7 '10 at 19:50
    
@ianmac45 - yes, I linked to this above –  Steve Townsend Oct 7 '10 at 19:51
    
ah, ok. missed that –  ianmac45 Oct 7 '10 at 19:52
    
@ianmac45 - my bad, it was an edit in the interests of full disclosure –  Steve Townsend Oct 7 '10 at 19:53
4  
Why not just for_each(begin(myv1), end(myv1), [](double& a) { a *= 3; }? –  Dario Oct 7 '10 at 19:58

5 Answers 5

up vote 14 down vote accepted
std::transform(myv1.begin(), myv1.end(), myv1.begin(), 
   [](double d) -> double { return d * 3; });
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16  
-> double is unnecessary; it gets automatically deduced. –  Potatoswatter Oct 7 '10 at 19:56
1  
@potato - it's supposed to, but current compilers sometimes ignore this fact. Better to just put it in all the time. –  Crazy Eddie Oct 7 '10 at 21:19

Like this:

vector<double> myv1;
transform(myv1.begin(), myv1.end(), myv1.begin(), [](double v)
{
    return v*3.0;
});
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3  
I find that formatting pretty confusing. –  Potatoswatter Oct 7 '10 at 19:58
2  
To each his own, I suppose. Tho I hasten to point out that mine is the correct formatting. :) –  John Dibling Oct 7 '10 at 20:05
1  
+1 for actually using a literal double for the constant. ;-) –  Adrian McCarthy Oct 7 '10 at 20:15

Just do as Dario says:

for_each(begin(myv1), end(myv1), [](double& a) { a *= 3; });

for_each is allowed to modify elements, saying it cannot is a myth.

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1  
+1 because this seems a more natural fit to me in the original question –  Steve Townsend Oct 7 '10 at 20:06
    
+1 for "for_each is allowed to modify elements." I participated in a very heated debate about this years ago. –  John Dibling Oct 7 '10 at 20:07

Using a mutable approach, we can use for_each to directly update the sequence elements through references.

for_each(begin(myv1), end(myv1), [](double& a) { a *= 3; });


There has been some debate going on if for_each is actually allowed to modify elements as it's called a "non-mutating" algorithm.

What that means is for_each isn't allowed to alter the sequence it operates on (which refers to changes of the sequence structure - i.e. invalidating iterators). This doesn't mean we cannot modify the non-const elements of the vector as usual - the structure itself is left untouched by these operations.

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The main original motivation for using that functional style for these cases in C++ was, "aaagh! iterator loops!", and C++0x removes that motivation with the range-based for statement. I know that part of the point of the question was to find out the lambda syntax, but I think the answer to the question "How is this done in C++0x?" is:

for(double &a : myv1) { a *= 3; }

There's no actual function object there, but if it helps you could pretend that { a *= 3; } is a highly abbreviated lambda. For usability it amounts to the same thing either way, although the draft standard defines range-based for in terms of an equivalent for loop.

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Ah yah. I typically forget about that since I don't use a compiler that supports it. :( Definitely the best solution. –  GManNickG Oct 7 '10 at 20:44
    
what's the name for this construct? I am still not familiar with what's in C++0x. –  Steve Townsend Oct 7 '10 at 20:44
1  
"range-based for statement", 6.5.4 in n3090. Added to the answer. –  Steve Jessop Oct 7 '10 at 20:50
    
Townsend. I think it's called 'ranged-based for-loop'. In Java this same construct is called foreach =/ –  KitsuneYMG Oct 7 '10 at 20:52

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