How do you find a power series converging to #f(x)=sqrt(1-x^2)# and determine the radius of convergence?
1 Answer
Dec 30, 2017
# sqrt(1-x^2) = 1 - 1/2x^2 - 1/8x^4 - 1/16x^6 - 5/128x^8 + ...#
# | x | lt 1 #
Explanation:
Let:
# f(x) = sqrt(1-x^2) #
The binomial series tell us that:
# (1+x)^n = 1+nx + (n(n-1))/(2!)x^2 + (n(n-1)(n-2))/(3!)x^3 + ...#
Which converges for:
# | x | lt 1 #
And so for the given function, we have:
# f(x) = (1-x^2)^(1/2) #
# \ \ \ \ \ \ \ = 1 + (1/2)(-x^2) + (1/2(-1/2))/(2!)(-x^2)^2 + (1/2(-1/2)(-3/2))/(3!)(-x^2)^3 + (1/2(-1/2)(-3/2)(-5/2))/(4!)(-x^2)^4 + ...#
# \ \ \ \ \ \ \ = 1 - 1/2x^2 - (1/4)/(2)x^4 - (3/8)/(6)x^6 - (15/16)/(24)x^8 - ...#
# \ \ \ \ \ \ \ = 1 - 1/2x^2 - 1/8x^4 - 1/16x^6 - 5/128x^8 + ...#
The series is valid provided
# | -x^2 | lt 1 => | x | lt 1#