/
560Hence
11-zl < k
1-lzl -Chaptersfor any z in (}' except the vertex A. Consequently, if we let z ~ 1 along
any path, ultimately in <J' we have IRn(z)I < e(l + k) for n large enough,
which means that
n
Sn(z) = l::>kzk
k=O
converges uniformly as z ~ 1, z E <J'. Then by Theorem 4.18 we have
(z = 1 being an accumulation point of <J')
00 00
l.im f(z) = li"m lim Sn(z) = lim '"""akzk = '"""ak = Sz---+1 z---+l n-+oo z-+I ~ L...J
zEu zEu zEu k=O k=ORemarks Since f(l) = S, Abel's theorem means that f(z) is continuous
in a restricted sense at z = 1.
The more general case of a power series with radius of convergence R(0 < R < oo) converging at a point z 0 =Reio on the circle of convergence
can be reduced to the case discussed in Theorem 8.15 by replacing z by z / zo.
The condition ll-zl/(1-lzl) :::; k needs to be imposed on ll-zl/(1-lzl)
since this expression becomes unbounded for z close to 1 yet much closerto the circle lzl = 1. For instance, letting 0 < 11-zl = p < 1, 1 - lzl = p^2 ,
we have----? 00As a corollary of Theorem 8.15 we shall prove Abel's theorem con-
cerning the product of two converging series. See the Remark following
Theorem 4.14.Corollary 8. 7 If two series I.: an and I.: bn are convergent with sums A
and B, respectively, and if the product series I.: en, formed according to
Cauchy's rule, is also convergent with sum C, then C =AB.
Proof Consider the power series
00 00 00
f(z) = L anzn, g(z) = L bnzn,
n=O n=O