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Image from a video, courtesy of ReelLearning

In the above powerpoint slide, why is it that:

int* p = &x; 
cout << *p << endl;

outputs 25? From the little understanding that I have with pointers, &x is the address of x, which is assigned to *p, the value of p. In that case, since &x is 0003, so shouldn't *p and its output also be 0003?

For all the advanced coders out there who cannot stand a simpleton like myself, I apologize in 'advance'.

  • p is of type "int*", so the address is assigned to p. – Rohit Chatterjee Mar 16 '17 at 6:32
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    @zycoactivtheory You don't need to apologize for beeing learning but, please, edit the code and make it a complete, self-standing example. (If output is 25 this is either not reproducible or there is code missing.) – Scheff Mar 16 '17 at 7:23
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&x is the address of x, which is assigned to *p

No, there is nothing assigned to *p. In that line p is defined with type int* and p is assigned the address of x.

Now p holds the address 0003 and *p holds 25.

The * only relates to the variable definition in that line. During initialization you assign values to the variable you define. If that wasn't the case, where should p point to in first place? Into which location should the 0003 be written then?

  • Thank you for the explanation! One more question, what is the difference between int and int* ? As in, what does the pointer do to make that difference, if there is any? – zycoactivtheory Mar 16 '17 at 7:38
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The slide is confusing, since it suggests that the name of the pointer variable were *p. The name of the variable is just p.

When you print the expression p, you will get 0003, since that is the value of the pointer.

So the pointer points to the object at address 0003, and the expression *p gets you the value from there, which is 25.

The slide should better say that cell 0001 has the name p. And that cell 0003 has two names (or paths to get there), which are x directly or *p indirectly.

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When we declare pointer we use * with datatype for e.g int *p it doesn't mean that we are declaring as well as referring to value at the same time.

So when you type int *p = &x; it is similar as writing

int *p;
p = &x;

Now p is 0003 and value at address 0003 is 25. which you can get by *p.

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The reference operator(&) refers to the address of variable x,which is assigned to p.Since p is holding the address of a memory location it is of pointer type (int*).Now the (*p) ,where (*) is the deference operator(*) refers to the value that the address in p is holding.

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