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I read a manual saying that (see http://en.cppreference.com/w/cpp/memory/shared_ptr/make_shared):

Moreover, f(shared_ptr<int>(new int(42)), g()) can lead to memory leak if g throws an exception. This problem doesn't exist if make_shared is used.

Why would that lead to memory leak?

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1 Answer 1

up vote 16 down vote accepted

The compiler is allowed to evaluate that expression in the following order:

auto __temp1 = new int(42);
auto __temp2 = g();
auto __temp3 = shared_ptr<int>(__temp1);
f(__temp3, __temp2);

You can see that if g() throws, then the allocated object is never deleted.

Using make_shared, nothing can come between allocating the object and initialising the smart pointer to manage it.

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+1. Yes,that is the reason, I was about to write that, but I talked about the constructor first and it got messed up. –  Nawaz Sep 26 '13 at 17:24

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