Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm currently writing a C++ program where I have vectors of independent and dependent data that I would like to fit to a cubic function. However, I'm having trouble generating a polynomial that can fit my data.

Part of the problem is that I can't use various numerical packages, such as GSL (long story); it's possible that it might even be overkill for my case. I don't need a very generalized solution for least squares fitting. I specifically want to fit my data to a cubic function. I do have access to Sony's vector library, which supports 4x4 matrices and can calculate their inverses, among other things.

While prototyping this in Scilab, I used a function like:

function p = polyfit(x, y, n)
    m = length(x);
    aa = zeros(m, n+1)
    aa(:,1) = ones(m,1)
    for k = 2:n+1
        aa(:,k) = x.^(k-1)
    end
    p = aa\y
endfunction

Unfortunately, this doesn't map well to my current environment. The above example needs to support a matrix of M x N+1 dimensions. In my case, that's M x 4, where M depends on how much sample data that I have. There's also the problem of left division. I would need a matrix library that supported the inverse of matrices of arbitrary dimensions.

Is there an algorithm for least squares where I can avoid having to calculate aa\y, or at least limit it to a 4x4 matrix? I suppose that I'm trying to rewrite the above algorithm into a simpler case that works for fitting to a cubic polynomial. I'm not looking for a code solution, but if someone can point me in the right direction, I'd appreciate it.

share|improve this question
    
Even if you can't use GSL or, say, uBLAS, you can look at their source to see how it's done. –  Lightness Races in Orbit Aug 1 '11 at 18:14
1  
"Looking at the source" doesn't really address my problem and misses the point completely. These libraries are already built on top of robust matrix libraries, and use the same techniques that I'm trying to work around. I'm looking to decompose my problem into a 4x4 matrix or something simpler altogether. –  lhumongous Aug 1 '11 at 18:28
2  
"I would need a matrix library that supported the inverse of matrices of arbitrary dimensions." This is asking a lot -- namely because inverses aren't defined for matrices that aren't square. –  John Aug 1 '11 at 19:31

3 Answers 3

up vote 9 down vote accepted

Yes, we can limit the problem to computing with "a 4x4 matrix". The least squares fit of a cubic, even for M data points, only requires the solution of four linear equations in four unknowns. Assuming all the x-coordinates are distinct the coefficient matrix is invertible, so in principle the system can be solved by inverting the coefficient matrix. We assume that M is more than 4, as would typically be the case for least squares fits.

Here's a write-up for Maple, Fitting a cubic to data, that hides almost completely the details of what is being solved. The first-order minimum criteria (first derivatives with respect to coefficients as parameters of sum of squares error) gets us the four linear equations, often called the normal equations.

You can "assemble" these four equations in code, then apply your matrix inverse or a more sophisticated solution strategy. Obviously you need to have the data points stored in some form. One possibility is two linear arrays, one for the x-coordinates and one for the y-coordinates, both of length M the number of data points.

NB: I'm going to discuss this matrix assembly in terms of 1-based array subscripts. The polynomial coefficients are actually one application where 0-based array subscripts make things cleaner and simpler, but rewriting it in C or any other language that favors 0-based subscripts is left as an exercise for the reader.

The linear system of normal equations is most easily expressed in matrix form by referring to an Mx4 array A whose entries are powers of x-coordinate data:

A(i,j) = x-coordinate of ith data point raised to power j-1

Let A' denote the transpose of A, so that A'A is a 4x4 matrix.

If we let d be a column of length M containing the y-coordinates of data points (in the given order), then the system of normal equations is just this:

A'A u = A' d

where u = [p0,p1,p2,p3]' is the column of coefficients for the cubic polynomial with least squares fit:

P(x) = p0 + p1*x + p2*x^2 + p3*x^3

Your objections seem to center on a difficulty in storing and/or manipulating the Mx4 array A or its transpose. Therefore my answer will focus on how to assemble matrix A'A and column A'd without explicitly storing all of A at one time. In other words we will be doing the indicated matrix-matrix and matrix-vector multiplications implicitly to get a 4x4 system that you can solve:

C u = f

If you think about the entry C(i,j) being the product of the ith row of A' with the jth column of A, plus the fact that the ith row of A' is really just the transpose of the ith column of A, it should be clear that:

C(i,j) = SUM x^(i+j-2) over all data points

This is certainly one place where the exposition would be simplified by using 0-based subscripts!

It might make sense to accumulate the entries for matrix C, which depend only on the value of i+j, i.e. a so-called Hankel matrix, in a linear array of length 7 such that:

W(k) = SUM x^k over all data points

where k = 0,..,6. The 4x4 matrix C has a "striped" structure that means only these seven values appear. Looping over the list of x-coordinates of data points, you can accumulate the appropriate contributions of each power of each data point in the appropriate entry of W.

A similar strategy can be used to assemble the column f = A' d, namely to loop over the data points and accumulate the following four summations:

f(k) = SUM (x^k)*y over all data points

where k = 0,1,2,3. [Of course in the above sums the values x,y are the coordinates for a common data point.]

Caveats: This satisfies the goal of working only with a 4x4 matrix. However one typically tries to avoid the explicit formation of the matrix of coefficients for the normal equations because these matrices are often what in numerical analysis is called ill-conditioned. In particular the cases where x-coordinates are closely spaced can cause difficulty when one tries to solve the system by inverting the matrix of coefficients.

A more sophisticated approach to solving these normal equations would be the conjugate gradient method on the normal equations, which can be done with code that computes the matrix-vector products A u and A' v one entry at a time (using what we say above about entries of A).

The accuracy of the conjugate gradient method is often satisfactory because of its natural iterative approach, esp. when one can compute the required dot-products with a little extra precision.

share|improve this answer
    
Haha ... you beat me by 46 seconds. :) –  Chris Cunningham Aug 1 '11 at 19:23
    
@Chris Cunningham: Heh, +1 for nice layout! Actually there was an earlier Answer, now taken down, that just quickly mentioned Lagrange interpolation. I ignored it and plowed ahead... –  hardmath Aug 1 '11 at 19:44
    
+1. :) I think our answers are essentially the same though. –  Chris Cunningham Aug 1 '11 at 19:49
    
This wasn't too bad to implement and seems to give me the coefficients that I'm looking for. The numerical accuracy is a concern, though. It doesn't help that I'm limited to single precision floats on my target hardware. I'll research the conjugate method as a next step. –  lhumongous Aug 2 '11 at 0:01

Here is the page I am working from, although that page itself doesn't address your question directly. The summary of my answer would be:

If you can't work with Nx4 matrices directly, then do those matrix computations "manually" until you have the problem down to something that has only 4x4 or smaller matrices. In this answer I'll outline how to do the specific matrix computations you need "manually."

--

Let's suppose you have a bunch of data points (x1,y1)...(xn,yn) and you are looking for the cubic equation y = ax^3 + bx^2 + cx + d that fits those points best.

Then following the link above, you'd write this equation:

enter image description here

I'll write A, x, and B for those matrices. Then following my link above, you'd like to multiply by the transpose of A, which will give you the 4x4 matrix AT*A that you can invert. In equations, the following is the plan:

A * x = B .................... [what we started with]

(AT * A) * x = AT * B ..... [multiply by AT]

x = (AT * A)-1 * AT * B ... [multiply by the inverse of AT * A]

You said you are happy with inverting 4x4 matrices, so if we can code a way to get at these matrices without actually using matrix objects, we should be okay.

So, here is a method, although it might be a little bit too much like making your own matrix library for your taste. :)

  • Write an explicit equation for each of the 16 entries of the 4x4 matrix. The (i,j)th entry (I'm starting with (0,0)) is given by x1i * x1j + x2i * x2j + ... + xNi * xNj.

  • Invert that 4x4 matrix using your matrix library. That is (AT * A)-1.

  • Now all we need is AT * B, which is a 4x1 matrix. The ith entry of it is given by x1i * y1 + x2i * y2 + ... + xNi * yN.

  • Multiply our hand-created 4x4 matrix (AT * A)-1 by our hand-created 4x1 matrix AT * B to get the 4x1 matrix of least-squares coefficients for your cubic.

Good luck!

share|improve this answer

You should never do full matrix inversion for stability reasons. Do LU decomposition and forward-back substitution. The other solutions are spot on otherwise.

share|improve this answer
    
Can you add a reference for what you are talking about? I'd like to read it. –  Chris Cunningham Aug 1 '11 at 21:32
    
"Numerical Recipes" comes to mind, as would any decent book on numerical methods. –  duffymo Mar 18 at 16:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.