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Iam trying to get the value for p(4) (sorry for this)

The equation is looking like this: 4800+p1+p2*z/1000+p3*e^(-p4*z/1000)

I keep getting this error: Attempted to access p(4); index out of bounds because numel(p)=3.

Error in waves (line 32) xy1 = 4800+5.6596+14.5820/1000*xs+257.4318*exp(-p(4)/1000);

How can i change the "bounds" in numel or is there any else i can do to fix this problem?

The code

z = [0.0; 500; 1000; 1500; 2000; 2500; 3000; 3500; 4000; 5000; 6000; 7000; 8000; 9000; 10000; 11000; 12000];
y = [5050 4980 4930 4890 4870 4865 4860 4860 4865 4875 4885 4905 4920 4935 4950 4970 4990]'-4800 ;
A = [ones(numel(z),1) z./1000 exp(-z./1000)];
p = A\y;
norm(p);
y = y+4800;

xs = 0:1:12000;
xy = 4800+5.6596+14.5820/1000*xs+257.4318*exp(-p(4)/1000);
subplot(2,2,4), plot(z,y,'o')
hold on
subplot(2,2,4), plot(xs,xy);
title('p4')

Edit:::::::

I had this first, where p4 had a start guess(value) (p4=1), i then put the p1,p2,p3 results in a new file to try to solve p4, thats the code above.

z = [0.0; 500; 1000; 1500; 2000; 2500; 3000; 3500; 4000; 5000; 6000; 7000; 8000; 9000; 10000; 11000; 12000];
y = [5050 4980 4930 4890 4870 4865 4860 4860 4865 4875 4885 4905 4920 4935 4950 4970 4990]'-4800 ;
A = [ones(numel(z),1) z./1000 exp(-z./1000)];
p = A\y;
norm(p);
y = y+4800;

xs = 0:1:12000;
xy = 4800+p(1)+p(2)/1000*xs+p(3)*exp(-xs/1000);
subplot(2,2,1), plot(z,y,'o')
hold on
subplot(2,2,1), plot(xs,xy);
title('p1,p2,p3')
share|improve this question
    
What are you trying to do here ? well since A is a 17 x 3 here and y is 17 x 1, p would be 3 x 1 and you are trying to access p(4) which does not exist. –  pm89 May 29 '13 at 20:34
    
I am trying to get the value for p(4) –  Amidii May 29 '13 at 20:36
    
So you expect p to be a 4 x 1 matrix ? Can you explain what p is supposed to be ? –  pm89 May 29 '13 at 20:42
    
Yeah thats correct (4x1) because of the first thing you said (3x1) and p(4) is then missing. p is just a variable but should result in 1.* something –  Amidii May 29 '13 at 20:44
2  
Are you trying to solve the equation y = A*p for the vector p? Or are you trying to divide the values in A by those in y (as @Huguenot suggests)? –  horchler May 29 '13 at 20:49

1 Answer 1

up vote 2 down vote accepted

Armed with the knowledge that you are trying to fit the model described here:

http://math.stackexchange.com/questions/214797/soundwaves-under-the-water

i.e. f(z) = 4800 + p1 + p2*z/1000 + p3*exp(-z*p4/1000)

The problem is this it is a non linear equation, so you cannot simply use the MATLAB backslash operator. You will need to do what the answer suggests and look into using lsqnonlin in optimzation toolbox or fit a custom equation in Curve Fitting Toolbox.

Personally, I am biased towards Curve Fitting Toolbox, and I would do the following with cftool:

enter image description here

Here we can see that the coefficient estimates are:

   p1 =      -20.21  (-29.34, -11.08)
   p2 =       17.34  (16.31, 18.36)
   p3 =       272.9  (263.3, 282.5)
   p4 =      0.7528  (0.6964, 0.8092)

Bear in mind that I have quite loose lower and upper bounds. If you wanted to make sure that p1 was always positive, you could do that by setting the lower bound to zero.

share|improve this answer
    
Thats how i did from the beginning, i updated the first post. The problem is to get the real value for p4. I pasted the equation in the first post if you can see it. –  Amidii May 29 '13 at 21:03
    
so if we consider your model as f(z) = p(1)*exp(-z/1000) + p(2)*z/1000 + p(3), where would you place p(4) –  Huguenot May 29 '13 at 21:05
    
in place of f(z)? –  Amidii May 29 '13 at 21:08
    
p(4) = p(1)*exp(-z/1000) + p(2)*z/1000 + p(3) ? –  Huguenot May 29 '13 at 21:13
    
yes like that. Is that wrong? –  Amidii May 29 '13 at 21:15

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