Tutorial on FFT — The tough made simple.

Правка en10, от sidhant, 2016-03-11 12:22:09

Aim — To multiply 2 n-degree polynomials in instead of the trivial O(n2)

I have poked around a lot of resources to understand FFT (fast fourier transform), but the math behind it would intimidate me and I would never really try to learn it. Finally last week I learned it from some pdfs and CLRS by building up an intuition of what is actually happening in the algorithm. Using this article I intend to clarify the concept to myself and bring all that I read under one article which would be simple to understand and help others struggling with fft.

Let’s get started

Here A(x) and B(x) are polynomials of degree n - 1. Now we want to retrieve C(x) in

So our methodology would be this

  1. Convert A(x) and B(x) from coefficient form to point value form. (FFT)
  2. Now do the O(n) convulsion in point value form to obtain C(x) in point value form, i.e. basically C(x) = A(x) * B(x) in point value form.
  3. Now convert C(x) from point value from to coefficient form (Inverse FFT).

Q) What is point value form ?
Ans) Well, a polynomial A(x) of degree n can be represented in its point value form like this A(x) = {(x0, y0), (x1, y1), (x2, y2), ..., (xn - 1, yn - 1)} , where yk = A(xk) and all the xk are distinct.
So basically the first element of the pair is the value of x for which we computed the function and second value in the pair is the value which is computed i.e A(xk).
Also the point value form and coefficient form has one-to-one correspondence i.e. for each point value form there is exactly one coefficient representation and vice — versa, If for k degree polynomial, k + 1 point value forms have been used at least.
Reason is simple, the point value form has n variables i.e, a0, a1, ..., an - 1 and n equations i.e. y0 = A(x0), y1 = A(x1), ..., yn - 1 = A(xn - 1) so only one solution is there.
Now using matrix multiplication the conversion from coefficient form to point value form for the polynomial can be shown like this



And the inverse, that is the conversion from point value form to coefficient form for the same polynomial can be shown as this



C(1) = A(1) * B(1) = 5 * 3 = 15, C(2) = A(2) * B(2) = 3 * 4 = 12, C(3) = A(3) * B(3) = 2 * 7 = 14

So C(x) = {(1, 15), (2, 12), (3, 14)} where degree of C(x) = degree of A(x) + degree of B(x) = 4
But we know that a polynomial of degree n - 1 requires n point value pairs, so 3 pairs of C(x) are not sufficient for determining C(x) uniquely as it is a polynomial of degree 4.
Therefore we need to calculate A(x) and B(x), for 2n point value pairs instead of n point value pairs so that C(x)’s point value form contains 2n pairs which would be sufficient to uniquely determine C(x) which would have a degree of 2(n - 1).

Now if we had performed this algorithm naively it would have gone on like this

Note — This is NOT the actual FFT algorithm but I would say that understanding this would layout framework to the real thing.
Note — This is actually DFT algorithm, ie. Discrete fourier transform.

  1. We construct the point value form of A(x) and B(x) using x0, x1, ..., x2n - 1 which can be made using random distinct integers. So point value form of A(x) = {(x0, α0), (x1, α1), (x2, α2), ..., (x2n - 1, α2n - 1)} and B(x) = {(x0, β0), (x1, β1), (x2, β2), ..., (x2n - 1, β2n - 1)} - (1) Note — The x0, x1, ..., x2n - 1 should be same for $A(x) and $B(x). This conversion takes O(n2).
  2. As C(x) = A(x) * B(x), then what would have been the point-value form of C(x) ?
    If we plug in x0 to all 3 equations then we see that
    C(x0) = A(x0) * B(x0)
    C(x0) = α0 * β0
    So C(x) in point value form will be C(x) = {(x0, α0 * β0), (x1, α1 * β1), (x2, α2 * β2), ..., (x2n - 1, α2n - 1 * β2n - 1)}
    This is the convulsion, and it’s time complexity is O(n)
  3. Now converting C(x) back from point value form to coefficient form can be represented by using the equation 2. Here calculating the inverse of the matrix requires LU decomposition or Lagrange’s Formula. I won’t be going into depth on how to do the inverse, as this wont be required in the REAL FFT. But we get to understand that using Lagrange’s Formula we would’ve been able to do this step in O(n2).

Note — Here the algorithm was performed wherein we used x0, x1, ..., x2n - 1 as ordinary real numbers, the FFT on the other hand uses roots of unity instead and we are able to optimize the O(n2) conversions from coefficient to point value form and vice versa to because of the special mathematical properties of roots of unity which allows us to use the divide and conquer approach. I would recommend to stop here and re-read the article till here until the algorithm is crystal clear as this is the raw concept of FFT.

A math primer on complex numbers and roots of unity would be a must now.

Q) What is a complex number ?
Answer — Quoting Wikipedia, “A complex number is a number that can be expressed in the form a + bi, where a and b are real numbers and i is the imaginary unit, that satisfies the equation i2 =  - 1. In this expression, a is the real part and b is the imaginary part of the complex number.” The argument of a complex number is equal to the magnitude of the vector from origin (0, 0) to (a, b), therefore arg(z) = a2 + b2 where z = a + bi.

Q) What are the roots of unity ?
Answer — An nth root of unity, where n is a positive integer (i.e. n = 1,  2,  3, ...), is a number z satisfying the equation zn = 1.
In the image above, n = 2, n = 3, n = 4, from LEFT to RIGHT.
Intuitively, we can see that the nth root of unity lies on the circle of radius 1 unit (as its argument is equal to 1) and they are symmetrically placed ie. they are the vertices of a n — sided regular polygon.

The n complex nth roots of unity can be represented as eik / n for k = 0, 1, ..., n - 1
Also Graphically see the roots of unity in a circle then this is quite intuitive.

If n = 4, then the 4 roots of unity would’ve been ei * 0 / n, ei * 1 / n, ei * 2 / n, ei * 3 / n = e1, ei / n, (ei / n)2, (ei / n)3 = (ei / n)0, (ei / n)1, (ei / n / )2, (ei / n)3 where n should be substituted by 4.
Now we notice that all the roots are actually power of ei / n. So we can now represent the n complex nth roots of unity by wn0, wn1, wn2, ..., wnn - 1, where wn = ei / n

Now let us prove some lemmas before proceeding further

Note — Please try to proove these lemmas yourself before you look up at the solution :)

Lemma 1 — For any integer n ≥ 0, k ≥ 0 and d ≥ 0, wdndk = wnk
Proof — wdndk = (ei / dn)dk = (ei / n)k = wnk

Lemma 2 — For any integer n ≥ 0, wnn / 2 = w2 =  - 1
Proof — wnn / 2 = w2 * (n / 2)n / 2 = wd * 2d * 1 where d = n / 2
wd * 2d * 1 = w21 — (Using Lemma 1)
w21 = eiπ = cos(π) + i * sin(π) =  - 1 + 0 =  - 1

Lemma 3 — If n > 0 is even, then the squares of the n complex nth roots of unity are the (n/2) complex (n/2)th roots of unity, formally (wnk)2 = (w2 * (n / 2)2k = wn / 2k

Proof — By using lemma 1 we have (wnk)2 = w2 * (n / 2)2k = wn / 2k, for any non-negative integer k. Note that if we square all the complex nth roots of unity, then we obtain each (n/2)th root of unity exactly twice since,

(Proved above)

Also, (wnk + n / 2)2 = wn2k + n = ei * k' / n, where k' = 2k + n

ei * k' / n = ei * (2k + n) / n = ei * (2k / n + 1) = e(2πi * 2k / n) + (2πi) = ei * 2k / n * ei = wn2k * (cos(2) + i * sin(2))

(Proved above)

Therefore, (wnk)2 = (wnk + n / 2)2 = wn / 2k

Lemma 4 — For any integer n ≥ 0, k ≥ 0, wnk + n / 2 =  - wnk
Proof — wnk + n / 2 = ei * (k + n / 2) / n = ei * (k / n + 1 / 2) = e(2πi * k / n) + (πi) = ei * k / n * eπi = wnk * (cos(π) + i * sin(π)) = wnk * ( - 1) =  - wnk

1. The FFT — Converting from coefficient form to point value form

Note — Let us assume that we have to multiply 2 n — degree polynomials, when n is a power of 2. If n is not a power of 2, then make it a power of 2 by padding the polynomial's higher degree coefficients with zeroes.
Now we will see how is A(x) converted from coefficient form to point value form in using the special properties of n complex nth roots of unity.

yk = A(xk)

Let us define
Aeven(x) = a0 + a2 * x + a4 * x2 + ... + an - 2 * xn / 2 - 1, Aodd(x) = a1 + a3 * x + a5 * x2 + ... + an - 1 * xn / 2 - 1
Here, Aeven(x) contains all even-indexed coefficients of A(x) and Aodd(x) contains all odd-indexed coefficients of A(x).
It follows that A(x) = Aeven(x2) + x * Aodd(x2)
So now the problem of evaluating A(x) at the n complex nth roots of unity, ie. at wn0, wn1, ..., wnn - 1 reduces to

  1. Evaluating the n/2 degree polynomials Aeven(x2) and Aodd(x2). As A(x) requires wn0, wn1, ..., wnn - 1 as the points on which the function is evaluated, therefore A(x2) would’ve required (wn0)2, (wn1)2, ..., (wnn - 1)2. Extending this logic to Aeven(x2) and Aodd(x2) we can say that the Aeven(x2) and Aodd(x2) would require (wn0)2, (wn1)2, ..., (wnn / 2 - 1)2 ≡ wn / 20, wn / 21, ..., wn / 2n / 2 - 1 as the points on which they should be evaluated. Here we can clearly see that evaluating Aeven(x2) and Aodd(x2) at wn / 20, wn / 21, ..., wn / 2n / 2 - 1 is recursively solving the exact same form as that of the original problem, i.e. evaluating A(x) at wn0, wn1, ..., wnn - 1. (The division part in the divide and conquer algorithm)
  2. Combining these results using the equation A(x) = Aeven(x2) + x * Aodd(x2). (The conquer part in the divide and conquer algorithm).
    Now, A(wnk) = Aeven(wn2k) + wnk * Aodd(wn2k), if k < n / 2, quite straightforward
    And if k ≥ n / 2, then A(wnk) = Aeven(wn / 2k - n / 2) - wnk - n / 2 * Aodd(wn / 2k - n / 2)
    Proof — A(wnk) = Aeven(wn2k) + wnk * Aodd(wn2k) = Aeven(wn / 2k) + wnk * Aodd(wn / 2k) using (wnk)2 = wn / 2k
    A(wnk) = Aeven(wn / 2k) - wnk - n / 2 * Aodd(wn / 2k) using wnk' + n / 2 =  - wnk' i.e. (Lemma 4), where k' = k - n / 2.

So the pseudocode (Taken from CLRS) for FFT would be like this

1.RECURSIVE-FFT(a)
2. n = a.length()
3. If n =  = 1 then return a //Base Case
4. wn = ei / n
5. w = 1
6. aeven = (a0, a2, ..., an - 2)
7. aodd = (a1, a3, ..., an - 1)
8. yeven = RECURSIVE - FFT(aeven)
9. yodd = RECURSIVE - FFT(aodd)
10. For k = 0 to n / 2 - 1
11.     yk = ykeven + w * ykodd
12.     yk + n / 2 = ykeven - w * ykodd
13.     w *  = wn
14. return y;

2. The Multiplication OR Convulsion

This is simply this
1.a = RECURSIVE-FFT(a), b = RECURSIVE-FFT(b) //Doing the fft.
2.For k = 0 to n - 1
3.    c(k) = a(k) * b(k) //Doing the convulsion in O(n)

3. The Inverse FFT

Now we have to recover c(x) from point value form to coefficient form and then we are done.

Теги fft, math, divide and conquer, polynomials, fast multiplication

История

 
 
 
 
Правки
 
 
  Rev. Язык Кто Когда Δ Комментарий
en19 Английский sidhant 2016-12-15 15:43:01 68 Tiny change: 'y/48798)\n\nRefere' -br
en18 Английский sidhant 2016-12-02 10:11:30 11
en17 Английский sidhant 2016-12-02 10:08:00 6 Tiny change: '2k}*(cos(2) + i*sin(2)) = w_{n}' - (published)
en16 Английский sidhant 2016-12-02 10:06:22 124 (saved to drafts)
en15 Английский sidhant 2016-10-17 12:10:22 3897 Tiny change: 'n - 1} \\ w_n^{2} &' -
en14 Английский sidhant 2016-03-12 13:12:08 269
en13 Английский sidhant 2016-03-11 20:36:36 20 Typo - Convulsion is actually Convolution.
en12 Английский sidhant 2016-03-11 17:34:46 0 (published)
en11 Английский sidhant 2016-03-11 15:48:16 287 Tiny change: ' for $A(x) and $B(x).\nThis co' -
en10 Английский sidhant 2016-03-11 12:22:09 182 Tiny change: ' A(x) * B(X)$ \nH' -br
en9 Английский sidhant 2016-03-11 12:16:47 1195 Tiny change: ' $w_{n} = $ e^{2\pii\n}$ \n5' -br
en8 Английский sidhant 2016-03-11 10:59:08 181 Tiny change: ' to RIGHT.\nIntuitiv' -br
en7 Английский sidhant 2016-03-11 10:55:44 2737 Tiny change: 'm in $O(n*\logn)$ usi' -
en6 Английский sidhant 2016-03-11 10:29:11 14 Tiny change: 'us_bi.png)\nQ) What ' -br\nQ) What '
en5 Английский sidhant 2016-03-11 10:26:18 2616 Tiny change: '^{2\pii/n}\nNow let ' -
en4 Английский sidhant 2016-03-11 09:14:22 2751 Tiny change: '$ \n$\n\begin{pma' -br
en3 Английский sidhant 2016-03-02 11:31:21 3540 Tiny change: '(x) * B(x)$ \n$C' -br
en2 Английский sidhant 2016-03-02 10:57:18 2132 Tiny change: 't started -\n$\displa' -br
en1 Английский sidhant 2016-03-02 10:41:33 1180 Initial revision (saved to drafts)