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function(deltaTime) {
  x = x * FACTOR; // FACTOR = 0.9
}

This function is called in a game loop. First assume that it's running at a constant 30 FPS, so deltaTime is always 1/30.

Now the game is changed so deltaTime isn't always 1/30 but becomes variable. How can I incorporate deltaTime in the calculation of x to keep the "effect per second" the same?


And what about

function(deltaTime) {
  x += (target - x) * FACTOR; // FACTOR = 0.2
}
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What programming language, environment, etc ? –  Paul R Apr 19 '10 at 9:14
    
For the second problem you use a variable delta = target - x. Then the update function becomes delta = delta * (1 - FACTOR), which you already know to solve. Given delta you can always get x = target - delta. –  abc Apr 19 '10 at 12:18

2 Answers 2

up vote 1 down vote accepted
x = x * Math.pow(0.9, deltaTime*30)

Edit

For your new update:

x = (x-target) * Math.pow(1-FACTOR, deltaTime*30) + target;

To show how I got there:

Let x0 be the initial value, and xn be the value after n/30 seconds. Also let T=target, F=factor. Then:

x1 = x0 + (T-x0)F = (1-F)x0 + TF
x2 = (1-F)x1 + TF = (1-F)^2 * x0 + (1-F)TF + TF

Continuing with x3,x4,... will show:

xn = (1-F)^n * x0 + TF * (1 + (1-F) + (1-F)^2 + ... + (1-F)^(n-1))

Now substituting the formula for the sum of a geometric sequence will give the result above. This really only proves the result for integer n, but it should work for all values.

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Thanks, it works. I've expanded the question with a more difficult problem. –  Bart van Heukelom Apr 19 '10 at 11:32
    
That also works, thanks again. This one is harder to understand though :p –  Bart van Heukelom Apr 19 '10 at 12:15

x = x * powf(0.9, deltaTime / (1.0f / 30.0f))

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