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I have unexpected outcome with sizeof operator (C++). In main class, I have these lines

 double * arguments_ = new double();
*arguments_  = 2.1;
*(arguments_+1) = 3.45;
 cout <<  (sizeof arguments_) << ' ' <<  (sizeof arguments_[0]) << ' '<< (sizeof arguments_)/(sizeof arguments_[0]);

which give me output 4 8 0

Double size is 8 bytes, and (sizeof arguments_[0]) = 8. However, why is (sizeof arguments_) not expressed in bytes as well (2*8 = 16)? Is sizeof operator applica

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Yes, the size of a pointer is 4 bytes on your machine; the size of a pointer does not depend on what it points to. By the way, what's with ending your variable names with an underscore? –  Mr Lister Feb 28 '12 at 11:55
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Note that *(arguments_+1) = 3.45 is writing in an uninitialized memory area! –  Gui13 Feb 28 '12 at 11:55
    
arguments_ is a pointer to a double, not a double. –  vulkanino Feb 28 '12 at 11:56
    
I don't know if this is "real" code, but *(agruments+1) is "the double that sits after the double allocated by your call to new double(). You're writing into a variable not allocated to you. Everything can happen, including everything going right, or your machine suddenly explode. –  Emilio Garavaglia Feb 28 '12 at 12:00
    
@Gui13, not uninitialized memory, it is writing to unallocated memory... –  CashCow Feb 28 '12 at 12:04

4 Answers 4

up vote 4 down vote accepted

Both values are expressed in the same units. You have a 32-bit system, so the size of an address is 32 bits, or 4 bytes. The size of double on your system is 8 bytes. The result of an integer division 4/8 is zero.

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(sizeof arguments_) yields the size of your pointer which is 4 bytes.

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In C++, pointer size is always 4 bytes no matter what it is pointing to. –  Abhineet Feb 28 '12 at 11:57
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In 32-bit C++, that's true. In 64-bit, it's 64, and so on. Other than the platform differences, you are correct. –  ssube Feb 28 '12 at 13:47

Because when you apply sizeof operator to a pointer no matter what type it points, you will get the size of space the pointer occupies.

And in C++, a pointer variable occupies 4 bytes (on architectures with 32-bit address busses).

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By the way, you should allocate arguments like this: double *arguments = new double[2], because you put 2 doubles in arguments. –  Rubbish_Oh Feb 28 '12 at 11:56
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The size of a pointer depends on the platform actually. –  Eser Aygün Feb 28 '12 at 11:56

What you got is:

sizeof(pointer) = 4bytes

sizeof(double) = 8bytes

4/8 = 0 (remeber / is equal to integer division)

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