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I have realized a compression algorithm, suppose that I exec it, calling:

myCompression(data, th)

th parameter is a real number between 0 and 1. Sometimes this can be really small number, for example 212.19e-013.

num = length(myCompression(data, th))

gave me the number of data remains after compression. If I want num to be bigger, I need to choose a lower th parameter. Viceversa, if I want higher num, I have to choose lower th.

Now the problem is: I want to find a proper th such that num is equal to a target number that I choose. As you know, find th is really long work, and I would realize a brute force algorithm that finds th that satisfy my need. I've write this:

target = 304;
th = 2.49e-011;
num = 0;

    num = length(MCSimplify3(time, latitudes, longitudes, th));
    disp(horzcat('tol: ', num2str(th), ' num: ', num2str(num)));

    if (num>target)
        th = th+(rand()*th);
        th = th-(rand()*th);

    th = abs(th);

The previous script start but never catch the target. The problem, I suppose, is due the fact that added or subtracted (rand()*th) is too big, so one time is above the target, and one time is below. So continue to swinging, and never catch the result, as you can see here:

tol: 2.67e-012 num: 333
tol: 4.0685e-012 num: 303
tol: 2.9909e-012 num: 320
tol: 3.1953e-012 num: 316
tol: 4.5895e-012 num: 298
tol: 3.7916e-012 num: 308
tol: 3.8906e-012 num: 308
tol: 7.6049e-012 num: 257
tol: 4.3302e-012 num: 299
tol: 1.6646e-013 num: 624
tol: 2.9337e-013 num: 562
tol: 2.9553e-013 num: 561
tol: 4.965e-013 num: 503
tol: 8.47e-013 num: 448
tol: 1.3934e-012 num: 391
tol: 2.163e-012 num: 350
tol: 2.6348e-012 num: 335
tol: 4.6699e-012 num: 296

Can someone help me?

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3 Answers 3

First, draw a graph of the data you've shown us. That should give you a clear idea of where to direct your search for a value of th which gives you the target value you seek.

Second, implement some kind of search through values of th in the right range; even a simple bisection search of an interval bracketing the desired target value will be better than your current approach.

Just eyeballing your data suggests that, for the target value of 304, the value for th should lie in the range (3.7916e-012,4.0685e-012).

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Yes, this is exactly what I would, brute forcing shrinking the interval of tolerance. But clearly something goes wrong. – marianoc84 Apr 23 '12 at 16:27
@Mariano: it's not apparent from your code that this is exactly what you are doing. I don't understand the use of rand (which I take to be a random number generator) at all. Nor do I understand your constant use of brute force. – High Performance Mark Apr 23 '12 at 16:32
My idea was to add (or substract) a little numeric amount to the threshold. Since I don't know in advice how much this amount is big I generate it randomly, I know that this isn't a good idea, but in the meanwhile I can't think the best. – marianoc84 Apr 23 '12 at 16:39
@Mariano: I wrote 'bisection', I repeat 'bisection'. If you don't know what I mean, Google. – High Performance Mark Apr 23 '12 at 16:40
You were right. Sorry man ;) – marianoc84 Apr 23 '12 at 17:07

there are more then one way to skin your cat, and the first thing you need to do it remove rand, as it is a highly unpredictable parameter. That being said, I refer you to Nelder-Mead.

From a more practical perspective, you should replace rand() with either a constant (e.g. 0.1), or a variable that measures the distance between num and target multiplied by a varying parameter.

Alternatively, you can use minimization routines like fminsearch (which uses Nelder-Mead) with possibly some small tweaks for the discontinuities.

It's hard to give more info without being able to run code (i.e. I need MCSimplify3).

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With precious tips of High Performance Mark, this is how I resolved.

target = 304;
len = 0;

a = 0;
b = 1;

    c = (a+b)/2;
    len = length(MCSimplify3(time, latitudes, longitudes, c));
        b = c;
    if (len>target)
        a = c;
    if (len==target)
        disp(horzcat('tol: ', num2str(th), ' num: ', num2str(len)));
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