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void PrintNow(const std::vector<int> &v)
    std::cout << v[0] << std::endl;

std::vector<int>().push_back(20); // this line generates no complains
PrintNow(std::vector<int>().push_back(20)); // error

From VS2010 Sp1:

eror C2664: 'PrintNow' : cannot convert parameter 1 from 'void' to 'const std::vector<_Ty> &'

Q> Is it possible that we can pass a temporary vector to function?

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4 Answers 4

up vote 7 down vote accepted

In C++11 you can just do:

void PrintNow(const std::vector<int> &v)
    std::cout << v[0] << std::endl;


VS2010 doesn't yet support this part of C++11 though. (gcc 4.4 and clang 3.1 do)

If you only need a single element then in C++03 you can do:


If you need more than one element then I don't think there's any one line solution. You could do this:

{ // introduce scope to limit array lifetime
    int arr[] = {20,1,2,3};

Or you could write a varargs function that takes a list of ints and returns a vector. Unless you use this a lot though I don't know that it's worth it.

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The {20} syntax is supported in at least GCC 4.4.5. –  Joachim Pileborg Apr 19 '12 at 14:50
In C++03, you could use boost::list_of for a one-line solution with no extra named variables. –  Mike Seymour Apr 19 '12 at 15:11

The problem is that std::vector::push_back() returns void, not that you can't pass a temporary to the function.

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void vector::push_back ( const T& x ) –  q0987 Apr 19 '12 at 14:44
@q0987 exactly... so it returns void... –  Luchian Grigore Apr 19 '12 at 14:45

The error is generated because the return type of std::vector::push_back function is void:

void push_back ( const T& x );

Try the following:

PrintNow(std::vector<int>(1, 20));

The code above uses one of the available constructors of std::vector class:

explicit vector ( size_type n, const T& value= T(), const Allocator& = Allocator() );
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If all the elements are of the same value, you have one constructor that fits your needs:

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