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Question is part of Reek's earlier mentioned handbook. I got variables:

h under 1080 address with value 1020
i under 1020 address with value 1080.

Evaluate L-value and R-value of an expression **h, when treating h and i as pointers to integers. My answer is R:1020 L:1080, but Instructor's guide says: R:1080, L:1020. Who right and who's wrong?

Step by step:
R-value first:
h=1020
*h=*(1020)=1080
**h=*(*h)=*(1080)=1020
L-value:
same, but value is address of value 1020, so 1080.

Ok, here is the code that should work.If it works as planned it proves that **h in this case = h.

#include <stdio.h>

int main(void)
{
  unsigned int * h;
  unsigned int *i;
  unsigned int ans=0;

  h=&i;
  i=&h;
  printf("h=%u &h=%u i=%u &i=%u\n", h, &h, i, &i);

  ans=*(unsigned int *)*h;
  printf("**h=%u\n", ans);

  *(unsigned int *)*h=1;

  printf("h=%u &h=%u i=%u &i=%u\n", h, &h, i, &i);

  return 0;

}

And here' output I get:

h=3214580856 &h=3214580852 i=3214580852 &i=3214580856
**h=3214580856
h=1 &h=3214580852 i=3214580852 &i=3214580856

In last line I did **h=1;

share|improve this question
    
Statistically seen the Instructor is right. – alk Sep 3 '13 at 13:27
    
Please show your work. What led you to your answer, step by step? That will help sort it out. – lurker Sep 3 '13 at 13:29
    
Why downvotes? What's wrong with this question? – zubergu Sep 3 '13 at 13:33
    
Have you ever heard term, "Lies, damned lies, and statistics?" – zubergu Sep 3 '13 at 13:41
    
I did not downvote you, don't know the reason, but suspect it may be due to your vagueness. In any case, maybe this link will help – ryyker Sep 3 '13 at 14:20
addr | value
...  | ...
1020 | 1080    <-- i
...  | ...
1080 | 1020    <-- h

and code would look the following way:

int* h;
int* i;
h = &i; // h pointing to the address of i (= 1020)
i = &h; // i pointing to the address of h (= 1080)

so **h is equal to *i, Now the real question here is: What does it mean to "evaluate R-value of the expression" *i? ...What's the difference between l-value and r-value in this case?

MSDN's article on "L-Value and R-Value Expressions" states: "An identifier is a modifiable l-value if it refers to a memory location... if ptr is a pointer to a storage region, then *ptr is a modifiable l-value that designates the storage region to which ptr points." ~ in other words: if you look at the expression *i as l-value, it is just the same as using h directly. ~> value of h == 1020.

It also states: "The term "r-value" is sometimes used to describe the value of an expression and to distinguish it from an l-value. All l-values are r-values but not all r-values are l-values." ~ in other words (my interpretation for this case): if you look at *i as r-value, you should not look at it as an alias for the variable h but rather the value of an expression itself. ~> explaining why *i could be considered &h.

share|improve this answer
    
but isn't value of h used as L-value 1080? *i=*&h=h. **h=h? – zubergu Sep 3 '13 at 14:33
    
@zubergu: The confusion lies in interpretation of "Evaluate R-value of expression *ptr". Check my edit, maybe it will make more sense now. – LihO Sep 3 '13 at 14:55
    
I think it means what value will produce **h= and =**h; – zubergu Sep 3 '13 at 15:03
    
@zubergu: Using an expression at the left side of the assignment doesn't make it l-value. – LihO Sep 3 '13 at 15:10

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