620-295 Real Analysis with Applications, Lecture 21

Arun Ram
Department of Mathematics and Statistics
University of Melbourne
Parkville, VIC 3010 Australia
aram@unimelb.edu.au
and

Department of Mathematics
University of Wisconsin, Madison
Madison, WI 53706 USA
ram@math.wisc.edu

Last updates: 16 February 2010

Derivatives, the Mean Value Theorem and the Intermediate Value Theorem

The function $f$ is differentiable at $x = c$ if $\lim_{x \to c} \frac{f (x) - f (c)}{x - c} exists.$

The derivative of $f$ at $x = c$ is $f' (c) = \lim_{x \to c} \frac{f (x) - f (c)}{x - c},$ if $f$ is differentiable at $x = c .$

If $f : [a, b] \to ℝ$ and $g : [a, b] \to ℝ$ are functions and $l \in ℝ$ define

$\begin{array}{rcl} (f + g) : [a, b] \to ℝ & by & (f + g) (x) = f (x) + g (x), \\ (l f) : [a, b] \to ℝ & by & (l f) (x) = l f (x) \\ f g : [a, b] \to ℝ & by & (f g) (x) = f (x) g (x) \end{array}$

If $c \in [a, b]$ and $f' (c)$ exists and $g' (c)$ exists then

$\begin{array}{rcl} (a) & (f + g)' (c) & = & f' (c) + g' (c) \\ (b) & (l f)' (c) & = & l f' (c) \\ (c) & (f g)' (c) & = & f' (c) g (c) + f (c) g' (c) . \end{array}$

Proof (a)

To show: $(f + g)' (c) = f' (c) + g' (c) .$

$\begin{array}{rcl} (f + g)' (c) & = & \lim_{x \to c} \frac{(f + g) (x) - (f + g) (c)}{x - c} \\ = & \lim_{x \to c} \frac{f (x) + g (x) - (f (c) + g (c))}{x - c} \\ = & \lim_{x \to c} \frac{f (x) - f (c) + g (x) - g (c)}{x - c} \\ = & \lim_{x \to c} \frac{f (x) - f (c)}{x - c} + \frac{g (x) - g (c)}{x - c} \\ = & \lim_{x \to c} \frac{f (x) - f (c)}{x - c} + \lim_{x \to c} \frac{g (x) - g (c)}{x - c} \\ = & f' (c) + g' (c), \end{array}$

if you believe that $\lim_{x \to c} A (x) + B (x) = \lim_{x \to c} A (x) + \lim_{x \to c} B (x) .$ $□$

Let $A : [a, b] \to ℝ$ and $B : [a, b] \to ℝ$ and assume that $\lim_{x \to c} A (x)$ exists and $\lim_{x \to c} B (x)$ exists. Then $\lim_{x \to c} A (x) + B (x)$ exists and $\lim_{x \to c} A (x) + B (x) = \lim_{x \to c} A (x) + \lim_{x \to c} B (x) .$

Proof.

Let $l_{1} = \lim_{x \to c} A (x)$ and $l_{2} = \lim_{x \to c} B (x) .$

To show: $\lim_{x \to c} A (x) + B (x) = l_{1} + l_{2} .$

To show: If $ε \in ℝ_{\geq 0}$ then there exists $δ \in ℝ_{> 0}$ such that if $x \in B_{δ} (c)$ then $(A (x) + B (x) - (l_{1} + l_{2})) < ε .$

Assume $ε \in ℝ_{> 0} .$

We know: there exists $δ_{1} \in ℝ_{> 0}$ such that if $x \in B_{δ_{1}} (c)$ then $(A (x) - l_{1}) < \frac{ε}{2} .$

We know: there exists $δ_{2} \in ℝ_{> 0}$ such that if $x \in B_{δ_{2}} (c)$ then $(A (x) - l_{2}) < \frac{ε}{2} .$

Let $δ = \min (δ_{1}, δ_{2}) .$

To show: $(A (x) + B (x) - (l_{1} + l_{2})) < ε .$

$\begin{array}{rcl} (A (x) + B (x) - (l_{1} + l_{2})) & = & ((A (x) - l_{1}) + (B (x) - l_{2})) \\ \leq & (A (x) - l_{1}) + (B (x) - l_{2}) \\ \leq & \frac{ε}{2} + \frac{ε}{2} = ε . \end{array}$

So $\lim_{x \to c} A (x) + B (x) = \lim_{x \to c} A (x) + \lim_{x \to c} B (x) .$ $□$

(Intermediate Value Theorem) If $f : [a, b] \to ℝ$ is continuous and $w$ is between $f (a)$ and $f (b)$ then there exists $c \in (a, b)$ such that $f (c) = w .$

(Mean Value Theorem) If $f : [a, b] \to ℝ$ is continuous for $x \in [a, b]$ and differentiable for $x \in (a, b)$ then there exists $c \in (a, b)$ such that $f' (c) = \frac{f (b) - f (a)}{b - a}$

Functions $f : [a, b] \to ℝ$

Let $a, b \in ℝ .$ Let $c \in [a, b] .$

The function $f$ is continuous at $x = c$ if $f$ satisfies:

if $ε \in ℝ_{> 0}$ then there exists $δ \in ℝ_{> 0}$ such that if $x \in B_{δ} (c)$ then $f (x) \in B_{ε} (f (c)),$

where $B_{δ} (c) = \{x \in [a, b] | |x - c| < δ\} = (c - δ, c + δ) .$

The function $f$ is continuous at $x = c$ if $f$ satisfies:

if $ε \in ℝ_{> 0}$ then there exists $δ \in ℝ_{> 0}$ such that $B_{δ} (c) \subseteq f^{- 1} (B_{ε} (f (c))) .$

The function $f$ is continuous at $x = c$ if $f$ satisfies:

if $ε \in ℝ_{> 0}$ and $V = B_{ε} (f (c))$ then $c$ is an interior point of $f^{- 1} (V) .$

A set $E \subseteq [a, b]$ is connected if there do not exist open sets $A, B \subseteq [a, b]$ with

$A \neq \emptyset$ and $B \neq \emptyset$
$A \cup B = [a, b]$
A ∩B=∅.

If $f : X \to Y$ is continuous and $X$ is connected then $f (X)$ is connected.

Proof

Proof by contradiction.

Assume $f (X)$ is not connected.

Let $A, B$ be open in $f (X)$ such that $A \cup B = f (X)$ and $A \cap B = \emptyset$

Then let $C = f^{- 1} (A)$ and $D = f^{- 1} (B) .$

Then

$\begin{array}{rcl} C \cup D & = & f^{- 1} (A) \cup f^{- 1} (B) = f^{- 1} (A \cup B) = f^{- 1} (f (X)) = X . \\ C \cap D & = & f^{- 1} (A) \cap f^{- 1} (B) = f^{- 1} (A \cap B) = f^{- 1} (\emptyset) = \emptyset . \end{array}$

$C \neq \emptyset$ since $A \neq \emptyset$ and $A \subseteq f (X) .$

$D \neq \emptyset$ since $B \neq \emptyset$ and $B \subseteq f (X) .$

So $X$ is not connected. Contradiction.

So $f (X)$ is connected. $□$

References [PLACEHOLDER]

[BG] A. Braverman and D. Gaitsgory, Crystals via the affine Grassmanian, Duke Math. J. 107 no. 3, (2001), 561-575; arXiv:math/9909077v2, MR1828302 (2002e:20083)

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