Home
Manual
Packages
Global Index
Keywords
Quick Reference
|
/*
* convol.i
* convolution of two vectors using fft
*/
func convol (a,b,n0=,n1=)
/* DOCUMENT convol(a,b)
returns convolution of vector a with vector b, a vector
of length na+nb-1 where na=numberof(a), nb=numberof(b).
In detail, for i=[1 to na+nb-1]
result(i) = sum j=[max(1,1+i-nb) to min(na,i)] (a(j)*b(1+i-j))
The n0= and n1= keywords can be used to control the section of
the full array that is actually returned, 1<=n0<n1<=na+nb-1.
SEE ALSO: fft_good, fft
*/
{
na= numberof(a);
nb= numberof(b);
nc= na+nb-1;
nt= fft_good(nc);
at= bt= array(0i, nt);
at(1:na)= a;
bt(1:nb)= b;
work= fft_setup(dimsof(at));
fft_inplace, at, 1, setup=work;
fft_inplace, bt, 1, setup=work;
c= at*bt;
fft_inplace, c, -1, setup=work;
if (is_void(n0)) n0= 1;
if (is_void(n1)) n1= nc;
return double(c(n0:n1))/nt;
}
func fft_good(n)
/* DOCUMENT fft_good(n)
returns the smallest number of the form 2^x*3^y*5^z greater
than or equal to n. An fft of this length will be much faster
than a number with larger prime factors; the speed difference
can be an order of magnitude or more.
For n>100, the worst cases result in a little over a 11% increase
in n; for n>1000, the worst are a bit over 6%; still larger n are
better yet. The median increase for n<=10000 is about 1.5%.
SEE ALSO: fft, fft_setup, convol
*/
{
if (n<7) return max(n,1);
logn= log(n);
n5= 5.^indgen(0:long(logn/log(5.) + 1.e-6)); /* exact integers */
n3= 3.^indgen(0:long(logn/log(3.) + 1.e-6)); /* exact integers */
n35= n3*n5(-,); /* fewer than 300 numbers for n<5e9 */
n35= n35(where(n35<=n));
n235= 2^long((logn-log(n35))/log(2.) + 0.999999) * long(n35);
return min(n235);
}
/*
func convol_check (a,b)
{
na= numberof(a); nb= numberof(b); c= array(0.,na+nb-1);
for (i=1 ; i<na+nb ; i++)
for (j=max(1,1+i-nb) ; j<=min(na,i) ; j++) c(i)+= a(j)*b(1+i-j);
return c;
}
*/
|