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Hi there =) And sorry for my English, in advance I have a task to calculate hurst exponent by method of linear regression. And I have text description of solution. It looks very easy, but always i get values, that go out from range 0..1. Usually, value is 1.9 or something similar. Sometimes it gets negative value that is close to zero. I have looked over code about thousand times but couldn't see a mistake.

var
max_z,min_z,x_m:real; //max and min of cumulative sum and mean value of X for every Tau
st,ss,sst,st2 :real;
Al, Herst: real;
x_vr:array of double;   //a piece of array with length=tau
i, j, nach: integer;
begin
    //file opening and getting values of X array are in another function
    nach:=3;    //initial value of tau
    Setlength(ln_rs,l-nach); //length of  ln(R/S) array
    Setlength(ln_t,l-nach);  //length of  ln(tau) array
    Setlength(r,l-nach);   //length of  R array
    Setlength(s,l-nach);   //length of S array


      //Let's start
    for tau:=nach to l do  //we will change tau
    begin
        Setlength(x_vr,tau+1); //set new local array (length=tau)
        for i:=0 to length(x_vr)-1 do
            x_vr[i]:=x[i];

        x_m:=Mean(x_vr);    //mean value
        Setlength(y,tau+1);   //length of array of difference from mean value
        Setlength(z,tau+1);   //length of array of cumulative sum

        for i:=0 to tau do
            y[i]:=x_vr[i]-x_m;      //difference from mean value

        z[0]:=y[0];
        for i:=1 to tau do      //cumulative sum
             for j :=i downto 0 do
                z[i]:=z[i]+y[j];

        max_z:=z[0];
        for i:=1 to tau do        //max of cumulative sum
            max_z:=max(max_z,z[i]);

        min_z:=z[0];
        for i:=1 to tau do        //min of cumulative sum
            min_z:=min(min_z,z[i]);

        r[tau-nach]:=max_z-min_z;    //R value
        s[tau-nach]:=0;
        for i:=0 to tau do
            s[tau-nach]:=power(y[i],2)+s[tau-nach];         //S value

        s[tau-nach]:=sqrt(s[tau-nach]/(tau+1));

        //new array values
        ln_rs[tau-nach]:=Ln(R[tau-nach]/S[tau-nach]);   // ln(R/S)
        ln_t[tau-nach]:=ln(tau);                        // ln (tau)

    end;    //End of calculating

    //Method of Least squares
    for i:=0 to length(ln_rs)-1 do  
        st:=st+ln_t[i];

    st:=(1/length(ln_rs))*st;

    for i:=0 to length(ln_rs)-1 do
        ss:=ss+ln_rs[i];

    ss:=(1/length(ln_rs))*ss;

    for i:=0 to length(ln_rs)-1 do
        sst:=sst+ln_t[i]*ln_rs[i];

    sst:=(1/length(ln_rs))*sst;

    for i:=0 to length(ln_rs)-1 do
        st2:=st2+ln_t[i]*ln_t[i];

    st2:=(1/length(ln_rs))*st2;


    Herst:=(sst-st*ss)/(st2-st*st);      //coefficient of approximal function
    al:=ss-st*Herst;

Thanks everybody =)

P.S.

 for tau:=nach to l do

There is L, not 1. And L is Length of X array. And L>nach always besides last step, when l=nach.

P.P.S. It works, guys. But values are not right. And they go out from range. Maybe, there is mistake in algorithm. Or maybe I skiped some step.

Last Update

It's mystic, but i only changed method of calculating array Z and it started works correctly.... Thanks all =)

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4  
I don't know how to calculate 'hurst exponent by method of linear regression' or what it is. What I suggest you to do, if you say that the code runs without problems, but the results is wrong is: go, drink a coffee/water/etc 10 mins(take a break), and then take a paper and a pencil, make several case studies on algorithm(inputs and outputs), set breakpoints in the code and run it step by step. That's what I do when I have a complex code which does not work. –  RBA May 25 '11 at 8:21
    
Thanks for suggestion, RBA. But i try this method for 3 days... And can't see a mistake.. I'll go insane.. ) –  Letoile May 25 '11 at 8:40
    
You say, that "L>nach besides last step, when L=nach". But i can not see any code changing L or nach!?! They are constants. Where do you initialise L? –  Andreas May 25 '11 at 9:43
    
Omg... I musted talk about L and Tau... Of course, nach is a const. Tau is changing.. And L>tau besides last step.. I'm sorry.. I'm tired –  Letoile May 25 '11 at 10:01
    
Cross-posted to codecall.net. –  trashgod May 26 '11 at 7:26
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2 Answers 2

First thing I see:

nach := 3;    
for tau := nach to l do  //w

This counts up. And because nach>1, the body of this loop won't be executed.

If you expect to count down. Use the downto variant. To count down:

for tau := nach downto l do  //w
share|improve this answer
    
Mm.. this is not 1, it's L... L>nach always O_o only at the last step l=nach Oh.. it's my mistake. I didn't say about L. L is length of X array –  Letoile May 25 '11 at 7:56
1  
Ok, just another reason not to use single character variables. l looks like 1. –  Toon Krijthe May 25 '11 at 7:58
    
Yeah.. i'm sorry –  Letoile May 25 '11 at 8:00
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Given that the main loop (for tau) iterates from nach to l, the first four SetLength calls should set the length of l - nach + 1 instead of l - nach.

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I tried it for first.. But it doesn't help.. Thanks, I'll edit this –  Letoile May 25 '11 at 9:56
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