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I have a function which gets 'unsigned int *& argument The parameter I want to transfer in my code is located in the std::vector<unsigned int> data So,what I do is : I transfer the following parameter &data[0] But get the compilation error:

unsigned int *' to 'unsigned int *&

What can be a work around? Thanks,

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2  
Why would you want to transfer a unsigned int *& in the first place? –  SingerOfTheFall Aug 15 '12 at 12:40
    
@SingerOfTheFall - I don`t :) but I use the functon which gets int*& –  Yakov Aug 15 '12 at 12:43
3  
There really isn't enough info for a real answer. Right now, the answer is simply "you can't, what you're asking doesn't make sense, you can't change the address of a vector's elements directly". However, what you should do instead depends on what that function does and why it needs a reference to a pointer. –  hvd Aug 15 '12 at 12:47
2  
What exactly does this function that takes an unsigned int *& do with it? Ususally, when a function takes a parameter by non-const-reference, it means that it's going to write to that parameter. That it's an output. And since the parameter is a pointer, that sounds like it's going to allocate memory into it or something. –  Nicol Bolas Aug 15 '12 at 12:52
    
You could make the opposite of std::move, which I'd call std::stay: template <typename T> T & stay(T && x) { return static_cast<T &>(x); } (But I agree that it's very likely you're doing something wrong.) –  Kerrek SB Aug 15 '12 at 13:07

4 Answers 4

up vote 6 down vote accepted

&data[0] is an rvalue and cannot be bound to non-const reference.

You can make it work this way:

unsigned int *ptr = &data[0];
func(ptr);

But possibly it's better to just change the signature of your function to

void foo(unsigned int &val); //or any other return type

There is a sense of passing a reference to a pointer in case you want to make a pointer point somewhere else. But I don't see a reason to do so in your case

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what can be a possible solution? –  Yakov Aug 15 '12 at 12:44
    
@Yakov: Creating an lvalue –  Andrew Aug 15 '12 at 12:46

The expression &data[0] yields indeed an r-value, which your function cannot accept.

A simple work-around if you don't want to alter your function (make sure you understand the reasons it requires a reference):

unsigned int* ptr = &data[0];
func(ptr);
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Write

unsigned int *argument = &data[0];
call_function(argument);

Be aware that the function may be expecting to change the value of argument, so it may expect you to then write:

data.assign(argument, argument + new_length);
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I'd first check if it really did, i.e. if (argument != &data[0]) data.assign(...); –  celtschk Aug 15 '12 at 12:48

&data[0] is a rvalue, but the function parameter type is non-constant reference to a pointer. A non-const reference can't be bound to an rvalue.

It's hard to suggest a good workaround until OP provides more context for his problem.

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2  
No, the type is definitely not const unsigned int* unless data is const in that context. –  celtschk Aug 15 '12 at 12:44
    
@celtschk: Thank you for pointing out, I corrected the answer. –  Andrey Aug 15 '12 at 12:46

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