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What does this do? Specifically, I have 3 fields out of 20 in 'this' object that I want to pass into the lambda. If I use [&] will it only take the 3 fields I use? And will they be passed by reference or value?

Thanks

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show us teh codez? –  Mooing Duck Oct 3 '12 at 23:00
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"If I use [&] will it only take the 3 fields I use?" No, it will take a single field – this. "And will they be passed by reference or value?" & denotes pass-by-ref; if it were = it would be pass-by-val. But given that you're only capturing a pointer, there's no difference in this case. –  ildjarn Oct 3 '12 at 23:00
    
@ildjarn: "No, it will take a single field – this." No, it won't, but that's only because you can't capture this by reference. The compiler should error out when you attempt to use member variables without either implicitly capturing everything by value or explicitly capturing this. –  Nicol Bolas Oct 4 '12 at 0:08
    
@Nicol : Then does the fact that this works in GCC 4.7.2 and VC++ 2012 imply a bug in said compilers? –  ildjarn Oct 4 '12 at 0:13
    
@ildjarn: Actually, strike that. I checked the spec, and there's no language preventing the capture of this from a default reference capture. You can't explicitly capture it by reference, but apparently you can implicitly do so. That's oddly inconsistent, but it's apparently legal. –  Nicol Bolas Oct 4 '12 at 0:21

3 Answers 3

up vote 7 down vote accepted

What does this ([&]) do?

It specifies all (implicit) captures are captured by reference. That is, it behaves as if there exists a hidden reference member of the closure object, initialized by the actual captured object.

I have 3 fields out of 20 in 'this' object that I want to pass into the lambda. If I use [&] will it only take the 3 fields I use?

No, if you only capture members of the this object, only the this pointer is captured (always by value).

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According to [5.12:15]: It is unspecified whether additional unnamed non-static data members are declared in the closure type for entities captured by reference., so whether there actually exists a hidden member or not is not specified by the standard. –  Jesse Good Oct 3 '12 at 23:31
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@JesseGood: That's why I used the wording "... as if there exists ..." –  jpalecek Oct 4 '12 at 0:05
    
Yes, I think your answer is fine (I upvoted). I just wanted to make that more clear. –  Jesse Good Oct 4 '12 at 0:09

Using [&] as your capture specification in a C++11 lambda simply means that any variable which is referenced inside the lambda will be treated as if it implicitly were specified using &varname in the capture specification. The lambda will not capture any unreferenced variable.

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"Additionally, the value this is special, it cannot be captured by reference, only by value. Since you're trying to reference fields of this, you're actually implicitly capturing this. Since you cannot capture this by reference, using [&] will not work. You need to either use [=] or use [this]." This is not based on the standard, and not true with current implementations. In short, capturing this when calture-list is [&] should be ok. –  jpalecek Oct 3 '12 at 23:23
    
@jpalecek: Interesting. That was written based on the documentation on wikipedia (yes yes, wikipedia isn't authoritative). I guess I'm not surprised if compilers allow capturing this anyway. I wonder what the spec says. –  Kevin Ballard Oct 3 '12 at 23:24
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@jpalecek: You're right. I checked the spec, and nowhere do I see the prohibition against capturing this by-reference. I will delete that section from my answer. –  Kevin Ballard Oct 3 '12 at 23:30
    
@jpalecek: In fact, I don't even see anywhere that says this is always captured by-value, as you said in your answer. Am I missing something? –  Kevin Ballard Oct 3 '12 at 23:32
    
That may be a shortcut on my side, caused by (1) actual implementation in gcc, (2) the fact that it should always behave the same given that this is always a rvalue and immutable during the run of the member function (save for the academic discussion about whether running [&] { return this; } after the member function it was created in ended is UB or not) and (3) the fact that the standard disallows &this in the capture list. –  jpalecek Oct 3 '12 at 23:57

The capture specification tells the compiler how the different variables are meant to be captured. Using [&] means that all variables from the local scope mentioned inside the lambda will be referred to by reference, i.e., they need to stay around as long as the lambda is used. Any changes to these variables will be reflected in the original. You can also use [=] which would store copies of the variables being used. If you want to mix the access, you can set up a default and override the way variables are referred to afterwards, e.g., [=,&foo] captures all variables referred to by value except for foo which captured by reference.

In any case, the lambda object will only store references to or copies of the variables actually being used inside the lambda function or explicitly (by name) mentioned in the capture (thank to jpalecek for pointing out that variables explicitly mentioned are always stored).

In the context mentioned, you mention member variables: these are never captured because they are not in the local scope. What can be captured is this but since it is immutable, it is always captured by value. Speaking of immutable: the variables captures by value by default const. If you want to change them you need to make the the lambda function mutable by mentioning mutable between the parameter list and the body of the lambda function.

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