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Behaviour and Order of evaluation in C#

I have some code

static void Main(string[] args)
    int j = 0;
    for (int i = 0; i < 10; i++) 
        j = j++;

Why answer is 0 ?

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marked as duplicate by Oded, CodesInChaos, Henk Holterman, outis, animuson Mar 26 '12 at 19:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

Such code must come from academia. Absurd. – usr Mar 25 '12 at 20:28
I thought that answer will be 10 – BILL Mar 25 '12 at 20:28
No, because the value of j is taken into intermediate result, variable j is incremented and THEN is intermediate result assigned to j. – Nikola Markovinović Mar 25 '12 at 20:30
@NikolaMarkovinović - You should post that as an answer. The best answer so far, btw. – Oded Mar 25 '12 at 20:31
I suppose that's all very possible, but I was rather hoping to get the OP's reason, to better to address the misunderstanding – harold Mar 25 '12 at 20:40

2 Answers 2

up vote 7 down vote accepted

This is because of the way the ++ increment works. The order of operations is explained in this MSDN article This can be seen here (somebody please correct me if I am reading the spec on this one wrong :)):

int j = 2;
//Since these are value objects, these are two totally different objects now
int intermediateValue = j;
j = 2 + 1
//j is 3 at this point
j = intermediateValue;
//However j = 2 in the end

Since it is a value object, the two objects (j and intermediateValue) at that point are different. The old j was incremented, but because you used the same variable name, it is lost to you. I would suggest reading up on the difference of value objects versus reference objects, also.

If you had used a separate name for the variable, then you would be able to see this breakdown better.

int j = 0;
int y = j++;
//Output is 
// 1
// 0

If this were a reference object with a similar operator, then this would most likely work as expected. Especially pointing out how only a new pointer to the same reference is created.

public class ReferenceTest
    public int j;

ReferenceTest test = new ReferenceTest();
test.j = 0;
ReferenceTest test2 = test;
//test2 and test both point to the same memory location
//thus everything within them is really one and the same
//Output: 1

Back to the original point, though :)

If you do the following, then you will get the expected result.

j = ++j;

This is because the increment occurs first, then the assignment.

However, ++ can be used on its own. So, I would just rewrite this as


As it simply translates into

j = j + 1;
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The order of operations is not correct. The assignment happens after the increment using a stored value. See – fgb Mar 25 '12 at 20:46
There is no difference between value and reference types in this context. – CodesInChaos Mar 25 '12 at 20:48
@fgb Hrmm, I guess I never dug into the order of operations. I will update my answer – Justin Pihony Mar 25 '12 at 20:53
@CodeInChaos You are correct, however I think part of the confusion with this could be resolved with a proper understanding of value versus reference objects – Justin Pihony Mar 25 '12 at 20:54
@fgb Feel free to take a look and verify that I wrote the order up properly :) – Justin Pihony Mar 25 '12 at 21:11

As the name says, post-increment increments after the value has been used

y = x++;

According to the C# Language Specification this is equivalent to

temp = x;
x = x + 1;
y = temp;

Applied to your original problem it means that j remains the same after these operations.

temp = j;
j = j + 1;
j = temp;

You can also use pre-increment, which does the opposite

x = x + 1;
y = x;


y = ++x;

See Postfix increment and decrement operators on MSDN

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Can you illustrate using one variable, as in the question? – Oded Mar 25 '12 at 20:31
This behavior doesn't follow trivially from the definition of post-increment. In other languages such as C or C++ this expression would be undefined. It's only defined in C#, because the evaluation order is well defined. – CodesInChaos Mar 25 '12 at 20:33
I added an example using the original problem specified in the question, as suggested by @Oded. – Olivier Jacot-Descombes Mar 25 '12 at 21:04
But j does change. Twice! – Eric Lippert Mar 25 '12 at 22:01
@EricLippert: You are right of cause. I clarified my statement. – Olivier Jacot-Descombes Mar 25 '12 at 22:07

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