118 Chapter 2 • SequencesProof. Suppose { Xn} is a Cauchy sequence. Then, taking E = 1 in Defini-
tion 2.7.1, :lno EN 3 m,n ~no=> lxm - Xnl < l. Then
n 2: no ::::} lxn - Xnol < 1Xno + l -
Xno --
Xno -1 -=> -1 < Xn - Xn 0 < 1
::::} Xn 0 - 1 < Xn < Xn 0 + 1.------T---~--------• • I
- • • •
=~===~i====~==~~=== •IFigure 2.6As in the proof of Theorem 2.2.10, we define
A= min{x1, X2, · · · , Xn 0 , Xn 0 - 1} and B = max{x1, X2, · · · , Xn 0 , Xn 0 + 1}.
Then \:/n EN, A:::; Xn:::; B. That is , {xn} is bounded. •lff.WI Theorem 2.7.4 Every Cauchy sequence converges.
Proof. Suppose {xn} is a Cauchy sequence. By Theorem 2.7.3, {xn} is
bounded. Hence, by the Bolzano-Weierstrass Theorem, it has a convergent sub-
sequence, say {xnk}, with Xnk --+ L.
To prove: Xn--+ L. Let E > 0. Since { xn} is a Cauchy sequence, :3 n 1 EN 3
m , n ~ n1 => lxm - xnl <~-Since Xnk --+ L , :3n 2 EN 3 k 2: n2 => lxnk - LI<
€
2· Let no= max{n 1 ,n2}. Thenm ~no => m ~ n1 and nm ~ m 2: n1 and nm 2: m 2: n2
€ €
::::} lxm - Xnm I < 2 and lxnm - LI < 2
=> lxm --:--Xnm I + lxnm - LI < €
=> lxm - Xnm + Xnm - LI < € by the triangle inequality
=> lxm - LI < €.
Therefore, Xn --+ L. •Theorem 2. 7.5 Suppose that { Xn} is a sequence for which there is a constant
c -
C such that\:/n EN, lxn+i -xn l <-. Then {xn} is a Cauchy sequence; hence
2n
it converges.