Request explain the marked portion of closed graph theorem proof 10.2 Closed graph theorem (Banach, 1932)Let X and Y be Banach spaces and F: X→ Y be a closed linearmap. Then F is continuous.Proof:By condition (i) of 6.2, it is enough to prove that F is bounded onsome neighborhood of 0. For each positive integer n, letV₁ = {x € X: ||F(x)|| ≤ n}.We prove that some V₁ contains a neighborhood of 0 in X. NowX = UV₂ = UVA,n=1n=1where V, denotes the closure of the set V₁ in X. Hence(V₂) = 0,n=1where (V₁) denotes the complement of the set V₁ in X. Since X is aBanach space, one of the open sets (V₂) must not be dense in X byBaire's theorem (3.4). Hence we find a positive integer p, some ro € Xand 8 >0 such that U(ro, 6) CVp. We shall show that U(0,6) C Vap-First, note that U(0,8) CV2p. For, if z X with ||*|| < 8, thenx+xo € U(xo, 8) CVp. Also, 2o € Vp. If (vn) and (w) are sequencesin V, such that Un →+To and wn →To, then UnUn-Wn € V₂p since→x, whereRequest Explain||F(vn - wn)| ≤|F(vn)|| + ||F(wn)|| ≤ 2p.Thus x € V2p. In particular, for every z EU (0,8), there is some 2₁ inV2p such that ||*-*₁|| < 8/2. HenceU(0, 6) C V2p + U(0,6).

Answered: Image /qna-images/answer/12605bcf-385d-44ec-9ffd-d497abb69722.jpg

Answered: and 6 >0 such that U(ro, 6) C Vp. We…

and 6 >0 such that U(ro, 6) C Vp. We shall show that U(0,8) C V4p. First, note that U(0,8) C V2p. For, if x € X with ||||

Algebra & Trigonometry with Analytic Geometry

13th Edition

ISBN:9781133382119

Author:Swokowski

Publisher:Swokowski

Chapter5: Inverse, Exponential, And Logarithmic Functions

Section5.3: The Natural Exponential Function

Problem 52E

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Request explain the marked portion of closed graph theorem proof

10.2 Closed graph theorem (Banach, 1932)
Let X and Y be Banach spaces and F: X→ Y be a closed linear
map. Then F is continuous.
Proof:
By condition (i) of 6.2, it is enough to prove that F is bounded on
some neighborhood of 0. For each positive integer n, let
V₁ = {x € X: ||F(x)|| ≤ n}.
We prove that some V₁ contains a neighborhood of 0 in X. Now
X = UV₂ = UVA,
n=1
n=1
where V, denotes the closure of the set V₁ in X. Hence
(V₂) = 0,
n=1
where (V₁) denotes the complement of the set V₁ in X. Since X is a
Banach space, one of the open sets (V₂) must not be dense in X by
Baire's theorem (3.4). Hence we find a positive integer p, some ro € X
and 8 >0 such that U(ro, 6) CVp. We shall show that U(0,6) C Vap-
First, note that U(0,8) CV2p. For, if z X with ||*|| < 8, then
x+xo € U(xo, 8) CVp. Also, 2o € Vp. If (vn) and (w) are sequences
in V, such that Un →+To and wn →To, then Un
Un-Wn € V₂p since
→x, where
Request Explain
||F(vn - wn)| ≤|F(vn)|| + ||F(wn)|| ≤ 2p.
Thus x € V2p. In particular, for every z EU (0,8), there is some 2₁ in
V2p such that ||*-*₁|| < 8/2. Hence
U(0, 6) C V2p + U(0,6).

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