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int lf = ((t.left==null) = (t.right==null)) ? 1:0;

it returns 1 if the statement in the bigger parenthesis is true, but in the middle, whats the point of assigning right value to lefT?

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11  
Does that even compile? The compiler shouldn't allow assignments to expressions. –  Paulpro Jun 21 '12 at 14:41
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There is no inner assignmnet, otherwise the code wouldn't compile. THe third operator must be another ==. –  EJP Jun 22 '12 at 0:29
    
((t.left == null) == (t.right == null)) : 1 is returned if t.left AND t.right are both 'null' or 'not null' . If only one is 'null' zero is returned. ((Object)o == null) return a boolean. If you return zero and one you can use true or false and replace int lf by boolean lf –  cl-r Jun 22 '12 at 6:18
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2 Answers

up vote 10 down vote accepted

Normally you'd have an equal sign to assign. The return of the assigned is the same as the RHS of the expression.

You'd use an equal sign in a expression within an if to assign and check the result at the same time.

// return first and third items added if they exist.
if ((list = GetItems()).Length > 2) { return list[0] + list[2]; } 

Right here all you have is a compiler error because t.left==null evaluates to (true/false) and you can't assign to that.

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3  
A little warning on this syntax trick, it can get very confusing if overused. if (((area = length * width) > 100) && (area < 1000) && ((area2 = length2 * width2) > 1000) && ((totalarea = area + area2) < (absolutemaxarea = (area4 = area5 + area6) - bufferarea))) { return absolutemaxarea - totalarea + bufferarea; } // what just happened –  Lee Louviere Jun 21 '12 at 15:00
    
just to add, the line above was to determine, in a binary search tree that how many nodes has only ONE child using recursion.. not sure if that helps –  warpstar Jun 21 '12 at 15:13
    
@warpstar If you want to know that, then the line would be ((t.left==null) != (t.right==null)) ? 1 : 0; This would return true IFF only one of the nodes has a child, false if both or neither have a child. –  Lee Louviere Jun 28 '12 at 15:09
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If both t.left and t.right are either null or not null at the same time, then lf is 1 otherwise it is 0.

Also you have a typo in there. The line should be

int lf = ((t.left==null) == (t.right==null)) ? 1:0;

Notice the == between the two null checks.

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1  
I don't think this is true, I think whatever the left thing evaluates, it will be replaced with the right thing. I think only the right thing is what matters. edit: there is no == between the two null checks –  ajax333221 Jun 21 '12 at 14:43
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@ajax333221 sorry i didn't notice his typo... in java it would not compile if there was only one = (assignment) –  alegen Jun 21 '12 at 14:44
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Also, how are you sure that's the intended compare? What if the coder wanted ((t.left == null) != (t.right == null)). Never assume. Always go find out what was intended if at all possible. –  Lee Louviere Jun 21 '12 at 15:05
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