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I am confused by the following code:

#include <stdio.h>

int main()
{
    int a[] = {5, 15, 1, 20, 25};
    int i, j, m;

    i = ++a[1];   /*statement 1*/
    j = a[1]++;   /*statement 2*/
    m = a[i++];   /*statement 3*/

    printf("\n%d\n%d\n%d\n", i, j, m);

    return 0;
}

Statements 1, 2, 3 are a bit confusing for me; I don't not get the way these are producing the output for me. Can anyone shed some light on this please?

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2  
Is this missing the homework tag? –  RedX Apr 14 '11 at 9:20
    
:-o @Redx THIS IS NOT MY HOME WORK AT ALL........:-) –  nobalG Apr 14 '11 at 9:22
    
This test requires either (1) a C compiler or (2) a pretty good knowledge the effect the post-increment operator would have on the expression being evaluated and its side-effect of the variables post-incremented. Possibly both! Even a seasoned C programmer would probably prefer a pen and paper to help them solve it. I'd take it as a caution as to how side-effect operators can make code hard to read. –  Jim Blackler Apr 14 '11 at 9:27
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4 Answers 4

up vote 3 down vote accepted
i=++a[1];   /*statement 1*/   // increments the value of a[1] and assigns to i
j=a[1]++;   /*statement 2*/   // assign the value of a[i] and then increments the value of a[i] to j
m=a[i++];   /*statement 3*/   //  assign a[i] to m, and increment i


i=++a[1];   // a[1] is 15 here so i =16, and a[1] =16
j=a[1]++;   // a[1] is 16 so j =16 and a[1] =17
m=a[i++];   // i is 16 here but index 16 does not exists here, so program fails
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5  
The last one is not correct. it assigns a[i] to m and then increments i. –  Benoit Thiery Apr 14 '11 at 9:19
1  
Plus it will fail in the example of Alfred Nobel because it would point to a[6] –  Chris Apr 14 '11 at 9:21
1  
Doesn't it point to a[16] ? Well out of bounds. Plus 'k' is never used. –  Jim Blackler Apr 14 '11 at 9:24
    
@GAURAV:in statement 2,are you saying that,j will have the value of a[1],& a[1] will get incremented? –  nobalG Apr 14 '11 at 9:24
    
@BenoitThiery : thanks. I corrected it. –  Gaurav Apr 14 '11 at 9:24
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i = ++a[1];   /*statement 1*/

Hear a[1] will be 15. and Pre Increment operator will increase a[1] with 1 S0 i will be 16

j = a[1]++;   /*statement 2*/

Post increment operator will also increment the value of a[1] by 1. so j will be 16.

m = a[i++];   /*statement 3*/

Here, it is i++, so post increment oprator will increase i by 1..earlier i was computed 16 . now i will now be 17.

So a[17] has no value. so m will be junk value
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The last one is not correct. it assigns a[i] to m and then increments i. –  Gaurav Apr 14 '11 at 9:47
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In case of doubt, what you can do is use gdb:

  1. Compile your code setting debug flag (-g for gcc) gcc -g -o so stackoverflow.c
  2. run gdb gdb ./so
  3. identify lines to break list in gdb
  4. set breakpoints break 6 (first break is line 6)
  5. Step forward step
  6. Display values print i or print a[1] for instance.

But beware, if you call print ++a[1] in gdb you may change your program behaviour!

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The First Statement

i = ++a[1] ---> Increments the value of a[1] (i.e) i value will be 16

Second Statement

j = a[1]++ ---> Assign the value of a[1] to j and then incremented(i.e) j would be 16.

Third Statement

m = a[i++] --> Assigning value of a[i] to m and i is incremented.

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1  
a[1] is incremented in first statement so it would be 16 in second statement. –  Gaurav Apr 14 '11 at 9:28
    
yeah..i corrected it..thanx... –  Anish Apr 14 '11 at 11:23
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