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Can somebody please explain this code

// Option 1
int **p = new Point*[2];
p[1] = new Point;
p[1]->x = p[1]->x = 1;

// Option 2
int **p = new Point*[2];
*(p+1) = new Point;
(*(p+1))->x = (*(p+1))->x = 1;

Isn't both options the same? Why when I create the variable using option 2, I cant write its value with option 1 (I got random numbers (address numbers?))? Is there any difference?

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10  
Yes, there's a difference; the second example never initialises y. –  Mr Lister Apr 24 '12 at 18:45
2  
Well, for one thing you don't assign y to anything in Option 2 -- you do ->x twice. –  Nathan Monteleone Apr 24 '12 at 18:46
1  
Oh, I see you edited your example now so that both options have the same error. –  Mr Lister Apr 24 '12 at 19:20
    
The pseudo-code you have provided doesn't demonstrate the problem. Please create the smallest actual program that does demonstrate the problem and paste that program, in its entirety, into your question. See sscce.org. (Hint: you should be able to demonstrate the problem in 10 lines or so.) –  Robᵩ Apr 24 '12 at 19:22
    
@Robᵩ the OP "demonstrates" the problem in the comment to CodeChordsman's answer below, by using some UB in printf. –  Mr Lister Apr 24 '12 at 19:25

1 Answer 1

You have a typo: (*(p+1))->x = (*(p+1))->x = 1; - should be y in the second term

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sorry, there should by "x" as you have written. Im writing a project and I got different outputs on printf("%f != %f", p[1], *(p+1)); –  Buksy Apr 24 '12 at 19:11
    
@Buksy Why are you using %f there? %f expects a double, not a pointer to a struct. Of course it prints two different values! –  Mr Lister Apr 24 '12 at 19:23

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