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Suppose that $f$ is analytic in the annulus $1<|z|<2$ and there exist a sequence of polynomials converging to $f$ uniformly on every compact subset of this annulus. Show $f$ has an analytic extension to all of the disc $|z|<2$.

mrf
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john
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    I think this has to do with Laurent series but I could be wrong. I also thought of maybe showing $f$ has a removable singularity at 0, but I could not get it to work. – john May 26 '12 at 14:09

1 Answers1

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Take the Laurent series for $f$ in the annulus and calculate the coefficients of negative powers using the polynomial approximation.

Conclude that the Laurent series is a power series.

A power series that converges in the annulus already converges in the disc.

Phira
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  • "A power series that converges in the annulus already converges in the disc" Why is this true? – john May 26 '12 at 19:53
  • A power series with powers of $z$ has a radius ofconvergence. It converges inside the radius, and it diverges outside (the cercle itself is a more delicate question). So, when you know it converges for points of radius 1.5, it automatically converges of all smaller ones. – Phira May 26 '12 at 20:03