Suppose you want to solve for $f$ in: $$ f(x) = \sin(x) + \int_0^1 x t , f(t) , dt $$ This is an integral equation. In linear algebra, you'd write $f = \sin + Kf$, so $(I - K)f = \sin$. In $\mathbbR^n$, $I - K$ is a matrix. Here, $K$ is an operator (a function that turns functions into functions). Functional analysis tells you when $I-K$ is invertible. 1.2 The Problem with Infinite Matrices Imagine an infinite matrix: $$ A = \beginpmatrix 1 & 1/2 & 1/3 & \cdots \ 0 & 1 & 1/2 & \cdots \ 0 & 0 & 1 & \cdots \ \vdots & \vdots & \vdots & \ddots \endpmatrix $$ If you try to multiply this by an infinite vector $x = (x_1, x_2, \dots)$, the first component of $Ax$ is $x_1 + x_2/2 + x_3/3 + \cdots$. That sum might diverge! In finite dimensions, matrix multiplication always works. In infinite dimensions, operators must be bounded to guarantee convergence.
Department of Mathematics, Pacific Northwest University Preface: Why "Friendly" and Who This Book is For a friendly approach to functional analysis pdf
Now, take a deep breath. Turn the page. Let's befriend functional analysis. Suppose you want to solve for $f$ in: