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Hi I have a question about double pointers. For example in this code:

int a, b=2;
int *iPtr1, **iPtr2;

iPtr1  = &a;
iPtr2  = &iPtr1;  
*iPtr1 = b+3;
*iPtr2 = iPtr1;

On the last line *iPtr2 = iPtr1; It that just telling iPtr1 to point back to itself since dereferencing a double pointer just once is like using iPtr1?

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Others have given you the answer, but I'll just add that IMO it's hugely helpful to draw up a little map of your memory space and show what points to what. In this case you'd have squares of memory for a, b, iPtr1 and iPtr2. Initially a would be empty (uninitalised) and b would be 2. Then you'd draw an arrow from iPtr1 to a (first line of code - iPtr1 = &a;). Then you'd draw a line from iPtr2 to iPtr1 for the second line of code. Carry on in this way, using "*" to mean "follow the arrow and take what's there". –  Vicky Feb 28 '13 at 15:51
    
Thanks for the tip! I definitely need to practice writing out and drawing like you say as I tend to just dive into the coding and it costs me later. –  MeesterMarcus Mar 21 '13 at 15:19

2 Answers 2

up vote 1 down vote accepted

Trace the execution with gdb, then you will see that the last line *iPtr2=iPtr1 doesn't change anything. (it's kind of like iPtr1=iPtr1)

On iPtr2 = &iPtr1;, the iPtr2 already points to the address where iPtr1 THE POINTER lies NOT THE ADDRESS iPtr1 points to.

Note: you cannot replace iPtr2=&iPtr1 with an *iPtr2=iPtr1, because at that point iPtr2 has garbage value (if it's a local non-static variable) and dereferencing it is undefined behaviour.

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Thanks for the extra info good answer –  MeesterMarcus Feb 28 '13 at 15:45

It makes *iPtr2 point to whatever iPtr1 points to. And as iPtr2 points to iPtr1 it's the same as iPtr1 = iPtr1.

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Yeah that's what I figured. I guess my professor was just trying to trick us or maybe error. –  MeesterMarcus Feb 28 '13 at 15:34

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