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I have some

std::list<char> list_type

Now I have to supply contents of the list as (char *data, int length). Is there convenient way to present list contents as pointer and length? Does <vector> has such interface?

Thank you in advance.

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5 Answers 5

up vote 4 down vote accepted

You can do it with a vector, because its data is stored contiguously:

std::vector<char> vec;

char* data = &vec[0];
int length = static_cast<int>(vec.size());

For list, you have to copy the data to an array. Luckily, that too is fairly easy:

std::list<char> list:
int length = static_cast<int>(list.size());
char* data = new char[length]; // create the output array
std::copy(list.begin(), list.end(), data); // copy the contents of the list to the output array

Of course, you're then left with a dynamically allocated array you have to free again.

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1  
It is probably a good idea to use static_cast<int>(list.size()) or static_cast<int>(vec.size()), since the result of size() is of type size_t which might or might not be convertible to int on some platforms. –  Michael Aaron Safyan Jul 19 '09 at 14:01
1  
Good answer, +1. But why not the best of both worlds -- std::copy to a std::vector<char>? –  Pukku Jul 19 '09 at 14:06
    
Agree with Pukku except no need to std::copy to the vector, use the two-iterator constructor. –  Steve Jessop Jul 19 '09 at 14:14
    
what's the point in copying it to a vector, if he needs it in char*/length format? He's going to pass the data as an array anyway, so what would we gain by putting it in an intermediary vector? It's not like it would be any safer. (And true about the size_t/int thing) –  jalf Jul 19 '09 at 14:17
    
A vector can be "used as an array" - the reason it guarantees contiguous storage is precisely in order that its contents can be passed into C-style APIs taking start pointer and length. And it has the advantage over allocating an array with new[] that it provides RAII-style resource management. –  Steve Jessop Jul 19 '09 at 16:30

You can do this with vector, not with list. A vector is guaranteed to be a contigous chunk of memory so you can say:

char *data = &list_type[0];
std::vector<char>::size_type length = list_type.size();
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I don't know about std::list, but std::vector does:

std::vector<char> list_type;

...

foo(&list_type[0], list_type.size())

std::string can do the job too, but you probably already know it.

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You cannot do this with a list, as a list saves its data in list nodes. However, you can do this with a vector, which is guaranteed to store its data in a contiguous piece of memory. You can use either &v[0] or &*v.begin() to get a pointer to its first element:

void f(std::list<char>& list)
{
  std::vector<char> vec(list.begin(),list.end());
  assert(!vec.empty());
  c_api_function(&vec[0],vec.size());
  // assuming you need the result of the call to replace the list's content
  list.assign(vec.begin(),vec.end());
}

Note that the vector will automatically free its memory when the function returns. There are (at least) two more noteworthy things:

  • The vector must not be empty. You are not allowed to access v[0] of an empty vector. (Neither are you allowed to dereference v.begin().)
  • Since dynamic allocation is involved, converting back and forth between std::list and std::vector can be a real performance killer. Consider switching to std::vector altogether.
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list is a linked list data structure. There's no way you could do that (theoretically) without conversion.

You'll be able to access (C++0x Draft 23.2.6.3) the backing store of a vector with .data() in C++0x. Currently, your best bet is to treat it as an array by taking the address of the initial element.

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