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This is a question from a practice test that I do not fully understand.

For the code fragment

int i = 0, j = 0, k = 0;
for (i=-1; i<=10; ++i){ 
    j = i; ++k; 
}

I am asked to find the values of the variables after executing the code.

The answers are:

 i = 11 j = 10 k = 12

I don't understand how, can someone please help?

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I think you meant to type: for (i=-1; i <= 10; ++i) { j = i; ++k; } –  Drew MacInnis Aug 21 '13 at 22:59
    
Yea, just fixed that, thanks –  jack476 Aug 21 '13 at 23:00
    
Code fixed @Drew –  Oscar Aug 21 '13 at 23:00
    
Explain what it is you don't understand, what you think the results should be, and how you went about determining that. –  Jim Balter Aug 21 '13 at 23:02
4  
This question is to test your understanding of when i is incremented, and when its value is tested. Forget j and k. –  Joshua Clayton Aug 21 '13 at 23:04

5 Answers 5

Understanding the value of i after the loop is very simple, much simpler than the sorts of other answers here. The loop condition is i<=10 ... in order for the loop to terminate, that condition must be false. Clearly, the value of i that makes that false is 11.

The value of j at the end of the loop is the previous value of i, which is 10, and the value of k is the number of times the loop executed, which is 1 (for -1) + 1 (for 0) + 10 (for 1 thru 10) = 12.

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1  
Hmmm... I didn't read your answer completely before I wrote my answer. +1 for good reasoning skills. –  jxh Aug 22 '13 at 0:31

i must be <= 10, so it is 11 to exit the loop and inside the last iteration of the loop, i = 10 = j. k is 1 after the first iteration, while i is -1. Running through the loop, you'll see:

k = 1, i = -1
k = 2, i = 0
k = 3, i = 1
k = 4, i = 2
k = 5, i = 3
k = 6, i = 4
k = 7, i = 5
k = 8, i = 6
k = 9, i = 7
k = 10, i = 8
k = 11, i = 9
k = 12, i = 10

Therefore k = 12

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Here are the steps:

  1. When the loop begins, all three variables are zero.
  2. The loop initializer sets i to minus 1.
  3. Loop test: i <= 10 is true, so loop is entered.
  4. Inside the loop, j is set to i, so j is also minus 1.
  5. k is incremented, so k becomes 1.
  6. the iteration ends; i is incremented because of the ++i, so i becomes 0.
  7. Loop test: since i is zero, i <= 10 is true, so the loop is entered again.

In this way, the loop continues, changing j, k, and i in that order. So when i becomes 10, j will be 9 and k 11. At that point:

  1. The loop is entered for the last time.
  2. j becomes 10 as well; k becomes 12
  3. Then i gets incremented to 11. The loop condition i <= 10 is false, and the loop terminates.

So i is 11. j is 10, k is 12 when the loop terminates.

The key point is, after the first pass, every time the loop is entered, j is one less than i, and k is one greater than i. When the loop terminates, this is still the case.

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Thank you, best answer yet :) –  jack476 Aug 21 '13 at 23:16
1  
Technically speaking loop test also happens between 2 and 3... –  alesplin Aug 21 '13 at 23:31
    
Good point @alesplin, I will amend. –  verbose Aug 21 '13 at 23:33
for (i=-1; i<=10; ++i){ 
    j = i; ++k; 
}

Here is the loop :

i = i +1;     <-------+
   |                  |
check condition!------|--+
   |                  |  |
j = i;                |  |
   |                  |  | 
  k++;----------------+  |
   |                     |
   +<--------------------+
   |
other code

at last loop

  i = 10
   condition == true
   j = 10;
   k = 12;

Then

i= i+1 means i = 11 but the condition show false! loop end.

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1  
@kikuchiyo I learned this from this website , some man can draw very really cool picture! –  Lidong Guo Aug 21 '13 at 23:11
    
Nice diagram, but unfortunately it is not correct. i is incremented at the end of the loop. –  andy256 Aug 22 '13 at 0:53
    
@andy256 Yes , I know i is incremented at the end of loop. so and the diagram shows so. –  Lidong Guo Aug 22 '13 at 1:10

Take three variables separate. You can see the variable k would be incremented , the number of times the loop is executed. The no. of time sit would be executed from -1 to 10 it would have done 12 iterations

k = 1,  i = -1,  j=-1
k = 2,  i = 0,   j=0
k = 3,  i = 1,   j=1
k = 4,  i = 2,   j=2
k = 5,  i = 3,   j=3
k = 6,  i = 4,   j=4
k = 7,  i = 5,   j=5
k = 8,  i = 6,   j=6
k = 9,  i = 7,   j=7
k = 10, i = 8,   j=8
k = 11, i = 9,   j=9
k = 12, i = 10,  j=10

After This i has reached its limit, but it will first increment and then check, hence i=11, k=12 and j to a one less than the value of i i.e j= 10

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