ai-content-maker/.venv/Lib/site-packages/sympy/series/approximants.py

104 lines
3.1 KiB
Python
Raw Normal View History

2024-05-03 04:18:51 +03:00
from sympy.core.singleton import S
from sympy.core.symbol import Symbol
from sympy.polys.polytools import lcm
from sympy.utilities import public
@public
def approximants(l, X=Symbol('x'), simplify=False):
"""
Return a generator for consecutive Pade approximants for a series.
It can also be used for computing the rational generating function of a
series when possible, since the last approximant returned by the generator
will be the generating function (if any).
Explanation
===========
The input list can contain more complex expressions than integer or rational
numbers; symbols may also be involved in the computation. An example below
show how to compute the generating function of the whole Pascal triangle.
The generator can be asked to apply the sympy.simplify function on each
generated term, which will make the computation slower; however it may be
useful when symbols are involved in the expressions.
Examples
========
>>> from sympy.series import approximants
>>> from sympy import lucas, fibonacci, symbols, binomial
>>> g = [lucas(k) for k in range(16)]
>>> [e for e in approximants(g)]
[2, -4/(x - 2), (5*x - 2)/(3*x - 1), (x - 2)/(x**2 + x - 1)]
>>> h = [fibonacci(k) for k in range(16)]
>>> [e for e in approximants(h)]
[x, -x/(x - 1), (x**2 - x)/(2*x - 1), -x/(x**2 + x - 1)]
>>> x, t = symbols("x,t")
>>> p=[sum(binomial(k,i)*x**i for i in range(k+1)) for k in range(16)]
>>> y = approximants(p, t)
>>> for k in range(3): print(next(y))
1
(x + 1)/((-x - 1)*(t*(x + 1) + (x + 1)/(-x - 1)))
nan
>>> y = approximants(p, t, simplify=True)
>>> for k in range(3): print(next(y))
1
-1/(t*(x + 1) - 1)
nan
See Also
========
sympy.concrete.guess.guess_generating_function_rational
mpmath.pade
"""
from sympy.simplify import simplify as simp
from sympy.simplify.radsimp import denom
p1, q1 = [S.One], [S.Zero]
p2, q2 = [S.Zero], [S.One]
while len(l):
b = 0
while l[b]==0:
b += 1
if b == len(l):
return
m = [S.One/l[b]]
for k in range(b+1, len(l)):
s = 0
for j in range(b, k):
s -= l[j+1] * m[b-j-1]
m.append(s/l[b])
l = m
a, l[0] = l[0], 0
p = [0] * max(len(p2), b+len(p1))
q = [0] * max(len(q2), b+len(q1))
for k in range(len(p2)):
p[k] = a*p2[k]
for k in range(b, b+len(p1)):
p[k] += p1[k-b]
for k in range(len(q2)):
q[k] = a*q2[k]
for k in range(b, b+len(q1)):
q[k] += q1[k-b]
while p[-1]==0: p.pop()
while q[-1]==0: q.pop()
p1, p2 = p2, p
q1, q2 = q2, q
# yield result
c = 1
for x in p:
c = lcm(c, denom(x))
for x in q:
c = lcm(c, denom(x))
out = ( sum(c*e*X**k for k, e in enumerate(p))
/ sum(c*e*X**k for k, e in enumerate(q)) )
if simplify:
yield(simp(out))
else:
yield out
return