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a=b+(b=a)*0;

This sentence can swap the value between a and b.
I've tried it with C# and it works.
But I just don't konw how it works.
e.g.

a = 1, b = 2

I list the steps of it as below:

b = a -> a = 1, b = 1
b * 0 -> a = 1, b = 1
b + 0 -> a = 1, b = 1
a = b -> a = 1, b = 1 ?

But the value of b may be wrong.
Could anyone help me? It puzzles me a lot.

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Interesting! TIL! :D Have an upvote! Never knew of this trick but then if I ever saw it in production, I'd make that coder install Windows ME on 200x 386-16Mhz machines...until he pleads for mercy :) –  t0mm13b Jul 2 '12 at 0:57

3 Answers 3

up vote 17 down vote accepted
a=b+(b=a)*0;

That (b=a) in the middle is an assignment statement setting b to the current value of a with the side effect that its result is (the final value of) b. When that's multiplied by 0, you get 0, but the assignment has still happened.

The outer bit sets a to b plus the result of (b=a)*0 (which is zero). Because the original b has already been used to start setting a before the assignment in the (b=a) bit, the assignment has no effect on a. In other words, it's an atomic a = b; b = a;, swapping the two values.

C# evaluates things in a strict left to right order (unlike C and C++) to avoid a large class of subtle bugs. Note that the compiler can evaluate them in a different order but only if it can determine that it will have no effect (that's not the case here).

The snippet you posted works, but is also hideous and not a good idea, especially when you can just use the far more readable:

int t = a; a = b; b = t;

Tricks like what you see here, and the XOR swap trick, and Duff's device have no place in decent, maintainable code. They're usually a way for coders to show how clever they are but they usually just show how bad they are.

If you ever see something like that in production code, I don't think any jury in the world would convict you for hunting down the perpetrator and beating them to death with the rolled up program listing.

You should write your code as if the next person that has to maintain it is a psychopath who knows where you live - in my case, you'd be half right - I have no idea where you live :-)

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1  
Are you sure that calculating first b is done before assignment operator? Does C# really guarantee order of calculating operands of + operator? –  Ivan Danilov Aug 5 '11 at 1:53
    
+1 I couldn't agree more! –  agent-j Aug 5 '11 at 1:54
1  
@Ivan, it's definitely left to right (unless the compiler can determine that it makes no difference but it does here): msdn.microsoft.com/en-us/library/Aa691322. They were trying to specifically avoid the large number of problems in C/C++ re order of eveluation. –  paxdiablo Aug 5 '11 at 1:58
    
@pax: Thanks :) –  Ivan Danilov Aug 5 '11 at 2:00
1  
Thank you for your clear answer. And I cannot agree with you more about the coding style. The key is maintainable. However, when I encounter trick like this I'd like to understand it before spitting. By the way, this is my first question, and you give me a good start. I feel very happy:) –  cindy Aug 5 '11 at 2:03

Ugh! Where did you see that?? I'm rather used to the (a ^= b; b ^= a; a ^= b;) trick, so that I at least recognize it (DON'T SHOOT! I NEVER SAID I USE IT!), but I'd have to look at that one for a minute... If you saw that in production code, please figure out who wrote it and hurt him.

As the others have said (but I'd like to emphasize it): "a = b" is an assignment, but it is also an expression with a value. That's why you can do things like "a = b = c = d" - it's not a special-case language trick; they just group as "a = (b = (c = d))", and the value of "d" folds back to all of those variables.

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  0. a=b+(b=a)*0     |             | a = 1, b = 2
  1. Evaluate b      | a=2+(b=a)*0 | a = 1, b = 2
  2. Evaluate (b=a)  | a=2+1*0     | a = 1, b = 1
  3. Evaluate 1*0    | a=2+0       | a = 1, b = 1
  4. Evaluate 2+0    | a=2         | a = 1, b = 1
  5. Evaluate a=2    |             | a = 2, b = 1
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