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The following code is part of an easing equation. I'm just interested in the syntax.

sqrtf(1 - (t = t / d - 1) * t);

I haven't seen the '=' operator used like this before. What does it do in this context?

Edit: the code is from a well-known Robert Penner easing function, written in ActionScript:

static function easeOut (t:Number, b:Number, c:Number, d:Number):Number {
    return c * Math.sqrt(1 - (t=t/d-1)*t) + b;
}
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Are you sure that it isn't a mistake? If not, that's a really convoluted way of writing sqrtf(1 - (t / d - 1)^2); and setting t = t / d - 1 at the same time. –  Blender Dec 19 '12 at 0:52
2  
This looks really dangerous. –  paddy Dec 19 '12 at 0:53
    
It's quite strange and awful, but thanks to the parentheses I do believe it's not undefined behaviour... –  Jonathan Grynspan Dec 19 '12 at 0:58

1 Answer 1

up vote 4 down vote accepted

The = operator here does what it always does. In this case it modifies t (setting it to t / d - 1). The value returned from that part of the equation will be the new value of t.

This becomes confusing because t is used later in the equation, and I wouldn't be sure that every compiler would treat it the same. ie is the third t going to use the old value or the new value?

I would avoid writing equations in this way. It's lazy and I don't see any good reason to do it.

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As the expression is evaluated left-to-right, I would expect it to use the new value. Are there any compilers not guaranteeing that? –  Bergi Dec 19 '12 at 1:18
    
I don't know. I just don't like it for that very reason, and I would never recommend people write equations that way just because they want it to appear on one line instead of two. –  paddy Dec 19 '12 at 1:22

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