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Assuming I have a function like this

my_method(const vector<const T*> & param); 

I wonder if I can call the function in this way

vector<T*> my_vector;
my_method(my_vector);
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Unfortunately not. vector<const T*> is not the same as vector<T *>. –  Oli Charlesworth Mar 23 '12 at 12:53

3 Answers 3

up vote 1 down vote accepted

Create a copy of the vector, but with const pointers:

vector<T*> pointers;

vector<const T*> const_pointers(pointers.begin(), pointers.end());

my_method(const_pointers);
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You cannot do what you are trying to do. std::vector<T*> is not the same type as std::vector<const T*> so the function argument does not match the function parameter. What you are trying to do is not "passing a non constant argument to a constant parameter", if it passing an argument of one type to a function expecting an argument of another type. "Passing a non constant argument to a constant parameter" would be something like

my_method(const vector<T*> & param);

vector<T*> v; // non const vector

my_method(v); // OK, method takes v by const reference, so it cannot be modify v.

and that, you can do.

Note, in the example above my_method cannot modify vector v, but since v holds non-const pointers, the objects those point to can be modified.

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Try it out and see: http://codepad.org/dHQzwMyH

Short answer - no. A

vector<const T*> my_vector;

will work, however.

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