34
int n;    
int main()
{
    [](){ n = 0; }(); // clang says "ok"

    int m;
    [](){ m = 0; }(); // clang says "not ok"
}

I just wonder:

If the lambda captures nothing, is it allowed to access global variables as per the C++ standard?

6
  • 6
    I would assume so, given that you can use other global things (functions and types) without capturing them. Imagine if you had to capture C++ algorithm functions (std::find for example) in order to use them from lambdas.
    – cdhowie
    May 7, 2017 at 4:00
  • en.cppreference.com/w/cpp/language/lambda says something about capture-default. I couldn't figure out in details what it does.
    – taskinoor
    May 7, 2017 at 4:13
  • 3
    If you think about it a lambda is just a short-cut to defining a struct with a function operator. Local variables are not in scope for struct member functions but global variables are.
    – Galik
    May 7, 2017 at 4:51
  • 3
    Global variables can't be captured.
    – cpplearner
    May 7, 2017 at 10:20
  • 1
    @cpplearner "Global variables can't be captured. "? Any reference?
    – John
    Nov 2, 2021 at 7:39

3 Answers 3

24

Yes, sure. Normal name lookup rules apply.

[expr.prim.lambda]/7 ... for purposes of name lookup ... the compound-statement is considered in the context of the lambda-expression.

Re: why local variables are treated differently from global ones.

[expr.prim.lambda]/13 ... If a lambda-expression or an instantiation of the function call operator template of a generic lambda odr-uses (3.2) this or a variable with automatic storage duration from its reaching scope, that entity shall be captured by the lambda-expression.

[expr.prim.lambda]/9 A lambda-expression whose smallest enclosing scope is a block scope (3.3.3) is a local lambda expression... The reaching scope of a local lambda expression is the set of enclosing scopes up to and including the innermost enclosing function and its parameters.

In your example, m is a variable with automatic storage duration from the lambda's reaching scope, and so shall be captured. n is not, and so doesn't have to be.

3
  • The given citation says nothing related to global variables.
    – xmllmx
    May 7, 2017 at 4:07
  • If n is local, the code is illegal. Why is it legal if n is global?
    – xmllmx
    May 7, 2017 at 4:08
  • @xmllmx Added the explanation for why local variables behave differently. May 7, 2017 at 4:41
14

Actually the [](){ n = 10; }(); doesn't capture anything, it uses the global variable instead.

int n;    
int main()
{
    [](){ n = 10; }(); // clang says "ok"
    std::cout << n; // output 10
}

See capture-list in Explaination

capture-list - a comma-separated list of zero or more captures, optionally beginning with a capture-default.

Capture list can be passed as follows (see below for the detailed description):

  • [a,&b] where a is captured by copy and b is captured by reference.
  • [this] captures the current object (*this) by reference
  • [&] captures all automatic variables used in the body of the lambda by reference and current object by reference if exists
  • [=] captures all automatic variables used in the body of the lambda by copy and current object by reference if exists
  • [ ] captures nothing
1
  • "current object by reference if exists"? What's that? Could you please explain that in more detail?
    – John
    Nov 2, 2021 at 7:36
10

Global, static and const variables are accessed by default:

#include <iostream>

int n;    
int main()
{
    [](){ n = 10; }();
    std::cout << n << std::endl;
    static int m = 1;
    [](){ m = 100; }();
    std::cout << m << std::endl;
    const int l = 200;
    [](){ std::cout << l << std::endl; }();
}
1
  • What makes const int l "accessible by default"? What are the rules here? Can I make my custom type accessible by default as well? (EDIT: I can, I had to use constexpr and my object was accessible 😮)
    – Kyriet
    Jun 24, 2023 at 22:25

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