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I want to convert a vector of doubles to an array of doubles. Can any one help me do this?

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8  
Kinda begs the question of why? You can access a vector as an array. What does an array do that a vector does not? – Michael Dorgan May 27 '10 at 17:17
40  
@Michael The typical use case I have is using a vector in my own code and needing to call a third-party function that takes an array – Michael Mrozek May 27 '10 at 17:20
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The terminology being thrown around is confusing. A pointer isn't an array. Do we want a pointer to the first element of an array, or an array? – GManNickG May 27 '10 at 17:21
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absolutely a real question -- quite a simple, easily interpreted one, too. please reopen. – dbliss Dec 7 '15 at 19:41
up vote 299 down vote accepted

There's a fairly simple trick to do so, since the spec now guarantees vectors store their elements contiguously:

std::vector<double> v;
double* a = &v[0];
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8  
@ganuke You're not copying, you're making a pointer that points to the actual array the vector is using internally. If you want to copy GMan's answer explains how – Michael Mrozek May 27 '10 at 17:22
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@ganuke: What is "the array"? You need to provide more information. What's the big picture? – GManNickG May 27 '10 at 17:22
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@ganuke You don't, you just need a double* that points to the same data. This answer works for exactly that case – Michael Mrozek May 27 '10 at 17:36
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Since this line does not copy data, does that mean I don't need to delete a after I'm done with it? – guneykayim May 30 '14 at 8:49
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@guneykayim The vector owns that memory, you shouldn't free it – Michael Mrozek May 30 '14 at 14:35

What for? You need to clarify: Do you need a pointer to the first element of an array, or an array?

If you're calling an API function that expects the former, you can do do_something(&v[0], v.size()), where v is a vector of doubles. The elements of a vector are contiguous.

Otherwise, you just have to copy each element:

double arr[100];
std::copy(v.begin(), v.end(), arr);

Ensure not only thar arr is big enough, but that arr gets filled up, or you have uninitialized values.

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3  
Hmm. Should it not be double arr[100]; std::copy(v.begin(),v.end(),arr); – Reed Richards Jun 18 '12 at 15:50
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@ReedRichards: Haha, yeah. That went unnoticed for quite some time! – GManNickG Jun 18 '12 at 16:47
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Note: use v.size() to get the number of elements for the new array: double arr[v.size()]; – rbaleksandar Dec 25 '13 at 21:09
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@rbaleksandar: Arrays can't have a non-constant expression size. – GManNickG Dec 26 '13 at 6:04
    
@GManNickG : It works but I think there is some misunderstanding here. Imagine the following: you have a class with a bunch of pointers of various types that have to point to arrays, which are not known at the time you define your class and which are later on created by flushing various vectors and using their size-parameter to determine how much space is to be used. Another example: a simple function void arrayTest(unsigned int arrSize), that creates an array (short arr[arrSize];) in it by using its function-parameter for the size. – rbaleksandar Dec 26 '13 at 11:40
vector<double> thevector;
//...
double *thearray = &thevector[0];

This is guaranteed to work by the standard, however there are some caveats: in particular take care to only use thearray while thevector is in scope.

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3  
...and make sure the vector isn't empty(), otherwise this would invoke the dreaded UB. – sbi May 27 '10 at 18:39

Vectors effectively are arrays under the skin. If you have a function:

void f( double a[]);

you can call it like this:

vector <double> v;
v.push_back( 1.23 )
f( &v[0] );

You should not ever need to convert a vector into an actual array instance.

share|improve this answer
    
I think you meant f( &v[0] ); for your last line – Michael Mrozek May 27 '10 at 17:17

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