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Say I have a function:

void someFunc(int *x,int count);

which is out of my control, so I can't write it to accept iterators.

Is it safe to call it like so (regardless of the specific STL implementation):

vector<int> v;
/* ... */
someFunc(&v[0],v.size());

Obviously, one counter example is vector<bool>. How about any other type? (assuming I haven't specialized vector in any way).

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2  
Effectively a duplicate of Are std::vector elements guaranteed to be contiguous? –  James McNellis Jun 22 '10 at 13:20
1  
+1 Interesting question. I have to admit that I am somewhat supprised that it is safe but it is useful information to have. –  David Relihan Jun 22 '10 at 13:27
    
@Job: bools are one byte rather than the multibyte size of most int types? Which could be potentially be important depending on what someFunc actually does. –  JAB Jun 22 '10 at 13:27

3 Answers 3

up vote 23 down vote accepted

From section 23.2.4, point 1 of the standard:

[...] The elements of a vector are stored contiguously, meaning that if v is a vector where T is some type other than bool, then it obeys the identity &v[n] == &v[0] + n for all 0 <= n < v.size().

So yes, it is safe.

Note: If v is empty v[0] is undefined behavior so you should only do this if v is not empty.

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2  
While this is true, cplusplus.com is not a definitive reference. –  Billy ONeal Jun 22 '10 at 13:30
    
@Billy ONeal: You're right, I edited my answer to give a better quote. –  Job Jun 22 '10 at 13:38
3  
It's not safe if the vector is empty, since v[0] or v.front() are undefined behavior that way. Since this is the top-voted and chosen answer, it would be good to include that. Also, if the function stores the pointer long-term and the vector is freed or reallocates, the pointer becomes invalid. –  AshleysBrain Jun 22 '10 at 13:56
    
@AshleysBrain: Can you point to the section in the standard describing that v[0] when v.empty() is UB? –  Job Jun 22 '10 at 14:43
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Yes, @Jon, it's still undefined. You're calling the vector::operator[] function on a vector that has no elements. That in and of itself is undefined. At the point you're taking the address of the result and deciding whether or not to dereference that pointer, you're already in undefined-behavior territory. Nothing you do or don't do afterward can bring you back. –  Rob Kennedy Jun 22 '10 at 16:42

As others has suggested it is safe.

But I would like to have a small reservation. If this function accept an array and stores it for later use you might have a problem. This is because std::vector might freely deallocate its memory if it needs it to change size. So if this function just uses the array (makes a copy or whatever) or you never alter it, it is safe.

I just want to point that out, just because the vectors elements are stored contiguous it isn't automatically safe to pass around. Ownership is still an issue.

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Yes. Assuming v.size() > 0, this is safe (If the vector is empty, then v[0] results in undefined behavior).

The elements of a std::vector container are stored contiguously, just like in an ordinary array.

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In this case, yes. Would it be safe even with a vector with pointers to a base class? (so at runtime, pointers to derived classes could be passed). Assuming that someFunc() will dereference those, of course. –  PeterK Jun 22 '10 at 13:22
    
The value of a pointer is just an integer, so technically it would work, but you'd probably still get a warning or error for passing an array of pointers to classes rather than an array of integers unless you messed with casting. Or does C++ allow passing pointers as integers without explicit casting? –  JAB Jun 22 '10 at 13:25
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@PeterK: Yes; why do you think it wouldn't it work with pointer elements? @JAB: I really don't know what you are trying to say. –  James McNellis Jun 22 '10 at 13:26
    
@James: Don't worry, it's just me forgetting C++'s casting rules. –  JAB Jun 22 '10 at 13:28
    
@James McNellis: Sorry, i was just confused. It would of course work. (What i had in mind was that derived classes may be bigger than their base classes (when it comes to memory)). This of course does not affect pointers ;) –  PeterK Jun 22 '10 at 13:32

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