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I'm working again with c++ since a while and I have a doubt sending pointers as parameters in a function.

I wanted to send an object pointer to a function but with a const state, to know that the object pointed by the pointer was not going to be modified any time. So I did this:

int hi(const SomeObject* so)

SomeObject* so = new SomeObject();

But it didn't work. It says incompatible types...

Also, would it be different if I add the const to the function too? Like:

int hi(const SomeObject* so) const;

Can anyone explain me this doubt? Thanks

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How are you calling it? What are you passing? What's the full error? – Joseph Mansfield Mar 15 '13 at 12:04
"it says compatible types"? That doesn't sound like a compiler error to me. Maybe you should show us your actual code, and the actual error you're getting. :) – jalf Mar 15 '13 at 12:05
Please edit your question to contain the complete error, and also show how you are calling it, and how you declare the variable you use in the call. – Joachim Pileborg Mar 15 '13 at 12:05
What is the code for the class SomeObject? Is the method SayHi const? – Ed Heal Mar 15 '13 at 12:07
As for adding const to the function, you can't do that. Only member function can be constant, telling the compiler that they will not modify the object the method is in. – Joachim Pileborg Mar 15 '13 at 12:07

1 Answer 1

up vote 3 down vote accepted
int hi(const SomeObject* so)

You have declared SomeObject to be constant. This would cause a compiler error if sayHi is not declared const as well.

class SomeObject {
  void sayHi(void) const;

If your intention was to make the pointer constant (not the object it points to) it should look like this:

int hi(SomeObject* const so)

Here you can read about pointers and constant pointers

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