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What of the below is wrong please?

It is my understanding that a pointer represents an address of something of some type.

So, int i = 18, a pointer to it is int *pI = &i;

The following 2 declarations are valid

void foo (int &something) // Will accept an address of something
void bar (int *something) // Will accept a pointer to something

When we declare a function as

void bar (int *something)

We better send a pointer to something. Indeed, foo(pI) works.

Following the same logic, when looking at

void foo (int &something)

We should send it an address of something pointing to an int as an argument, so then:

Why is foo(&i) wrong?

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5 Answers 5

up vote 5 down vote accepted

void foo (int &something) // Will accept an address of something

This is incorrect: int& is a reference, a concept that is similar to pointers in certain ways, but not at all identical.

References are similar to pointers in that a value can be changed through a reference, just like it can be changed through a pointer. However, there is no such thing as "null reference", while NULL pointers are very common.

When you call a function that takes a reference, you simply pass the variable the reference to which you are taking - no & operator is required:

void foo (something); // "something" must be a variable
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The declaration void foo (int &something) takes a reference variable, not a pointer.

You call it exactly the same as you would call void foo (int something), except that something is passed by reference, not by value.

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void foo (int &something) // Will accept an address of something

No, though I can understand the confusion. That function takes a reference to int. References are guaranteed to be non-null in a well defined program. It is similar conceptually to a pointer, but semantically different.

To call that function you don't need to do anything special.

int i = 10;
foo(i);  // passed to foo by reference
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Because in C++ the & means "reference type" in the context of a function prototype as you are using it here. Your function:

void foo (int &something)

is actually specifying that an integer reference type should be passed, so you would simply call this function like this:

foo(i);

Note that in this case you are still passing the address of i into the function, but you are doing it as a reference type rather than a raw pointer.

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There are two different meanings for &.

The first is to create a pointer from an existing variable.

The second is to make a reference.

Even though they both use the same character, they are two completely different things.

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