How do you derive the maclaurin series for #1/(1-x^2)#?

1 Answer
Alvin L.
Jan 2, 2018

#sum_(n=0)^oox^(2n)=1+x^2+x^4+x^6...#

Convergent when #|x|<1#

Explanation:

If we look at the geometric series:
#sum_(n=0)^oox^n=1+x+x^2+x^3...=1/(1-x)#

This is basically the same as our expression, but we have an #x^2# instead. So to determine the series for our expression, we just replace #x# with #x^2#:
#1/(1-x^2)=sum_(n=0)^oo(x^2)^n=sum_(n=0)^oox^(2n)=1+x^2+x^4+x^6...#

So, our Maclaurin series is #sum_(n=0)^oox^(2n)=1+x^2+x^4+x^6...#

We know that the geometric series is convergent for #|x|<1#, so to determine when this series is convergent, we solve for when #|x^2|<1#:

#|x^2|<1#

#x^2# is always positive, so we don't need the absolute value:
#x^2<1#

#sqrt(x^2)< sqrt1#

#|x|<1#

As luck would have it, this series has the same radius of convergence as the geometric series.

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