Does the "auto" keyword in C++ have anything to do with storage class For example:
void foo() {
auto ptr = new int[9]
}
Does the pointer to int above have is automatic(stack), or dynamic(heap)?
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Until c++11, auto was used to specify automaticstorage duration. But since c++11 its only meaning is that the type of the variable is automatically deduced. It has nothing to do wiith the storage-class of the variable itself.
In your case ptr is a local variable (int * ptr) pointing to a location on the heap. You can always get the same effect by explicitely writing the types of the variables as in the following:
void foo() {
int* ptr = new int[9];
}
Please take a look at this link for more details and on how the deduction process works.
answered Feb 15 '18 at 13:24
autois not used in C++11 as a storage-class specifier. – El Profesor Feb 15 '18 at 13:15int *ptr = new int[9];, But modern C++ doesn't like using (or abusing)newanddelete, you should rethink your app in terms ofvector,array,shared_ptr,unique_ptr,weak_ptr. – user9335240 Feb 15 '18 at 13:25