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I am a c# developer learning/relearning/brushing up on c++

I'm working on database access I have the following code and im having trouble understand what the & does in this case.

SQLHENV     hEnv = NULL;


If I remove the & I get this error.

'SQLAllocHandle' : cannot convert parameter 3 from 'SQLHENV' to 'SQLHANDLE *'

at first I thought it was simply passing this field in as a reference but based on the error it reads more like it is some how allowing it to convert?

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Why do you want to remove the address operator &? The function requires a pointer to a SQLHENV. –  harper Jan 4 '13 at 16:29
I don't I was just trying to learn from the error why it was there in the first place. –  Paul Wade Jan 4 '13 at 16:35
Don't hesitate writing the steps that you've done in that order you've done. This can help to understand the question better. –  harper Jan 4 '13 at 16:39
will do, thanks. –  Paul Wade Jan 4 '13 at 16:41

4 Answers 4

up vote 5 down vote accepted

In the context of your current example, the & operator is used to obtain the address of a variable.

From the error message, it looks like SQLAllocHandle expects the parameter 3 to be of type SQLHANDLE * (pointer to SQLHANDLE).

When you "removed" the &, you passed a SQLHENV to it, which could not be converted to the required type. But when you did "include" the &, it worked because I am guessing SQLHANDLE is typedefed to SQLHENV, or a SQLHENV* is convertible to SQLHANDLE* due to inheritance or other reason.

I need to do guesswork because the signatures of SQLAllocHandle and the class relation of SQLHENV and SQLHANDLE is not mentioned in the question.

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Thanks that was very detailed! –  Paul Wade Jan 4 '13 at 16:33
@PaulWade You are welcome. Once you have 15 reputation, please do upvote it as well. :) –  Masked Man Jan 4 '13 at 16:35

When appearing as a unary operator in an expression, & is the address-of operator. The code you're showing passes a pointer to hEnv into SQLAllocHandle().

You might want to pick up a good C++ book.

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& is the address operator. It's taking the local hEnv and passing the address of it. Now you have not the type but a pointer to the type you are referring.


void foo()
     int i = 1; 
     int * iptr = &i; 

When you skip the address operator you still have the type, not the pointer to the type.

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& does mean to pass by reference. The compiler is just telling you it can't convert from a reference to value type

EDIT: When a function accepts an ADDRESS(pointer), it is called pass by reference. I'm sorry if my answer confused some people, but in this case your function is expecting a REFERENCE to a variable, so you need to pass it the ADDRESS of that variable.

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-1: In this case, it's not passing by reference, it's taking the address. –  Angew Jan 4 '13 at 16:15
typename& may be a reference, but &variable is taking an address. –  Chowlett Jan 4 '13 at 16:15
-1 answer simply wrong –  Walter Jan 4 '13 at 16:17
In C++, "pass by reference" means declare the parameter type as a reference. If the parameter type is a pointer, it is a pointer passed by value. –  Angew Jan 4 '13 at 16:31
So, effectively, you are reversing the roles of what I said? I was saying that if you expect a pointer you need to pass an address, but what the OP's scenario is is expecting an address, so you have to pass it a pointer? Effectively, both ways pass a memory location as the parameter though... –  Kyle Preiksa Jan 4 '13 at 16:35

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