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For example, I can define a lambda function as

auto f = [](double value) {double ratio = 100; return value * ratio;}

Now I want to generate a function with the ratio an argument and return the lambda function like

auto makeLambda(double ratio) { return [=](double value) {return value * ratio;}; }

How to do it?

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1  
What's wrong with what you have? –  chris Jun 26 at 13:23
5  
@chris: It requires C++14 to deduce the function return type. –  Mike Seymour Jun 26 at 13:23

3 Answers 3

up vote 20 down vote accepted

With C++14 function return type deduction, that should work.

In C++11, you could define another lambda (which can deduce the return type), rather than a function (which can't):

auto makeLambda = [](double ratio) {
    return [=](double value) {return value * ratio;};
};

As noted in the comments, this could be further wrapped, if you particularly want a function:

auto makeLambdaFn(double ratio) -> decltype(makeLambda(ratio)) {
    return makeLambda(ratio);
}
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2  
You forgot to make the inner lambda capturing. –  Konrad Rudolph Jun 26 at 13:33
    
@KonradRudolph: So I did, thanks. –  Mike Seymour Jun 26 at 13:34
1  
The example works in idone but failed in vc2013. VC2013 is still not c++11 enough. –  user1899020 Jun 26 at 13:37
3  
If you want a function rather than a lambda, wrap the lambda in a function again: auto func(double x)->decltype(makeLambda(x)){return makeLambda(x);} –  Yakk Jun 26 at 13:45

@disclaimer: this answer just adds extra arguments to @Slava's answer (but is too long for a comment).

You probably should not return a lambda, but a function pointer or a std::function.

Efficiency concerns asside (see below), the declaration of an API should tell you how to use it. A lambda is a temporary function - something designed to make sense where you use it (in a local context).

If you write this:

std::function<double( double )> makeFunction(double ratio);

Your code will be much more flexible (not depending on C++14), much better defined (you can look at the signature and know what it does) and future-proof (it is easy to understand the intent behind the API, which makes easy to extend later without screwing up client code).

If you write this:

auto makeFunction(double ratio);

You have to define it inline (I guess).

For an implementation similar to MikeSeymour's answer, you need to add an extra lambda, to avoid a limitation of the compiler. Reading an implementation with a lambda returning a lambda just to figure what the API returns, is a big no-no.

First, because it is non-obvious and obscure.

Second, it will impose on client code, an API that either needs a comment/explanatory note to make sense, or forces clients to read it's implementation to know how to use it.

If you cannot guarantee this is throw-away code, you will:

  • increase WTF/SLOC ratio of your code (code is not clear in purpose, if you need to read the implementation to figure out what it returns)

  • have something non-obvious, that you will have to maintain for the whole project. This is called cruft and is what makes sucky legacy code be sucky legacy code).

If you need to return a functor, you're better off returning a std::function; The return type practically screams "returning a functor".

If this is too inefficient for your needs, you can optimize/particularize it later) - for example, by returning a struct X { double operator()(double); } instance.

A note about being able to guarantee that this is not production code:

I've seen many cases where:

  • I was looking at horrible three-year old code, where people told me originally this was the prototype, but we showed the app to the clients, they asked for it "as it is", and now clients depend on it, but we don't have the time budget to clean it up.

  • I sent ugly prototype code to someone else (as in "we could do something that follows this algorithm") and saw it committed as a solution in source control later.

  • People wrote hacks over hacks because the code was already hacky and one more hack doesn't matter (that's a very common excuse actually).

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You can return std::function<double( double )>. Calling it may have a cost of additional function call, which is insignificant in most cases.

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3  
This would be a good answer if you also described what the implications are (mainly for efficiency). –  Angew Jun 26 at 13:31
    
@Angew Do you have any pointers to info on that? I need to brush up on my C++11 :) –  Joachim Isaksson Jun 26 at 13:33
6  
@JoachimIsaksson the biggest is that std::function uses a technique called "type erasure", and this incurs an indirection every call (often implemented as a virtual function). –  Simple Jun 26 at 13:34
    
@JoachimIsaksson What Simple says. –  Angew Jun 26 at 13:42
1  
+1; I added an answer that basically supports this (too long for a comment). –  utnapistim Jun 26 at 14:05

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