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I want to know what [=] does? Here's a short example

template <typename T>
std::function<T (T)> makeConverter(T factor, T offset) {
    return [=] (T input) -> T { return (offset + input) * factor; };
}

auto milesToKm = makeConverter(1.60936, 0.0);

How would the code work with [] instead of [=]?

std::function<T (T)>

Means an function prototype which gets (T) as argument and return type T?

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up vote 90 down vote accepted

The [=] you're referring to is part of the capture list for the lambda expression. This tells C++ that the code inside the lambda expression is initialized so that the lambda gets a copy of all the local variables it uses when it's created. This is necessary for the lambda expression to be able to refer to factor and offset, which are local variables inside the function.

If you replace the [=] with [], you'll get a compiler error because the code inside the lambda expression won't know what the variables offset and factor refer to. Many compilers give good diagnostic error messages if you do this, so try it and see what happens!

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11  
"This is necessary" - this exact option isn't necessary; we could also write [&], [=offset, =input], etc. – M.M Jan 14 at 4:03
1  
@M.M - Doesn't that capture references to locals? – Useless Jan 14 at 17:14
4  
@M.M. Using a reference capture here would be a problem because those local variables' lifetimes will end as soon as the lambda is returned. You're right that we could list the individual variables individually, though. – templatetypedef Jan 14 at 17:27

It's a lambda capture list. Makes variables available for the lambda. You can use [=] which copies by value, or [&] which passes by reference.

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1  
You can also use [] which doesn't capture anything. :) – Daniel Kamil Kozar Jan 19 at 22:15
    
Yeah, true. :-) – kometen Jan 19 at 22:21

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