Chapter 2.1, Problem 42E

a.

To determine

To find: The value of $f^{\prime }\left(x\right)$ , $x<1$

Answer to Problem 42E

The value is $2x$ .

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

The left-hand derivative is given by the formula $f^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{f\left(x+h\right)-f\left(x\right)}{h}$

Calculation:

Here, in the piece wise function the value of $f\left(x\right)$ at $x<1$ is $x^2$ .

Substitute the values in the formula,

  $\begin{array}{c}{f}^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{{\left(x+h\right)}^2-x^2}{h}\\ =\underset{h\to 0}{\lim }\frac{x^2+h^2+2xh-x^2}{h}\\ =\underset{h\to 0}{\lim }\frac{h\left(h+2x\right)}{h}\\ =2x\end{array}$

Conclusion: The value of $f^{\prime }\left(x\right)=2x$ , $x<1$ .

b.

To determine

To find: The value of $f^{\prime }\left(x\right)$ , $x>1$

Answer to Problem 42E

The value is $2$ .

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

The right-hand derivative is given by the formula $f^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{f\left(x+h\right)-f\left(x\right)}{h}$ .

Calculation:

Here, in the piece wise function the value of $f\left(x\right)$ at $x<1$ is $2x$ .

Substitute the values in the formula,

  $\begin{array}{c}{f}^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{2\left(x+h\right)-2x}{h}\\ =\underset{h\to 0}{\lim }\frac{2x+2h-2x}{h}\\ =\frac{2h}{h}\\ =2\end{array}$

Conclusion: The value of $f^{\prime }\left(x\right)=2$ , $x>1$ .

c.

To determine

To find: The value of $\underset{x\to 1^{-}}{\lim }{f}^{\prime }\left(x\right)$ .

Answer to Problem 42E

The value is $2$ .

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

The left-hand derivative is given by the formula $f^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{f\left(x+h\right)-f\left(x\right)}{h}$

Calculation:

Here, in the piece wise function the value of $f\left(x\right)$ at $x<1$ is $x^2$ .

Substitute the values in the formula,

  $\begin{array}{c}{f}^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{{\left(x+h\right)}^2-x^2}{h}\\ =\underset{h\to 0}{\lim }\frac{x^2+h^2+2xh-x^2}{h}\\ =\underset{h\to 0}{\lim }\frac{h\left(h+2x\right)}{h}\\ =2x\end{array}$

Substitute the values in the formula,

  $\begin{array}{c}\underset{x\to 1^{-}}{\lim }{f}^{\prime }\left(x\right)=\underset{x\to 1^{-}}{\lim }2x\\ =2\left(1\right)\\ =2\end{array}$

Conclusion: The value of $\underset{x\to 1^{-}}{\lim }{f}^{\prime }\left(x\right)=2$

d.

To determine

To find: The value of $\underset{x\to 1^{+}}{\lim }{f}^{\prime }\left(x\right)$

Answer to Problem 42E

The value is $2$ .

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

The right-hand derivative is given by the formula $f^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{f\left(x+h\right)-f\left(x\right)}{h}$ .

Calculation:

Here, in the piece wise function the value of $f\left(x\right)$ at $x<1$ is $2x$ .

Substitute the values in the formula,

  $\begin{array}{c}{f}^{\prime }\left(x\right)=\underset{h\to 0}{\lim }\frac{2\left(x+h\right)-2x}{h}\\ =\underset{h\to 0}{\lim }\frac{2x+2h-2x}{h}\\ =\frac{2h}{h}\\ =2\end{array}$

Substitute the values in the formula,

  $\begin{array}{c}\underset{x\to 1^{+}}{\lim }{f}^{\prime }\left(x\right)=\underset{x\to 1^{+}}{\lim }2\\ =2\end{array}$

Conclusion: The value of $f^{\prime }\left(x\right)=2$

e.

To determine

To find: Existence of $\underset{x\to 1}{\lim }{f}^{\prime }\left(x\right)$ .

Answer to Problem 42E

The $\underset{x\to 1}{\lim }{f}^{\prime }\left(x\right)$ exists.

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

If $\underset{x\to 1^{-}}{\lim }{f}^{\prime }\left(x\right)=\underset{x\to 1^{+}}{\lim }{f}^{\prime }\left(x\right)$ , then $\underset{x\to 1}{\lim }{f}^{\prime }\left(x\right)$ exists.

Calculation:

Value of $\underset{x\to 1^{+}}{\lim }{f}^{\prime }\left(x\right)$ is calculated as shown below.

  $\begin{array}{c}\underset{x\to 1^{-}}{\lim }{f}^{\prime }\left(x\right)=\underset{x\to 1^{-}}{\lim }2x\\ =2\left(1\right)\\ =2\end{array}$

Value of $\underset{x\to 1^{-}}{\lim }{f}^{\prime }\left(x\right)$ is calculated as shown below.

  $\begin{array}{c}\underset{x\to 1^{-}}{\lim }{f}^{\prime }\left(x\right)=\underset{x\to 1^{-}}{\lim }2x\\ =2\left(1\right)\\ =2\end{array}$

Conclusion: The value of $\underset{x\to 1}{\lim }{f}^{\prime }\left(x\right)$ exists.

f.

To determine

To find: The value of left hand derivative.

Answer to Problem 42E

The value of left-hand derivative is $2$ .

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

The left-hand derivative is given by the formula $f^{\prime }\left(x\right)=\underset{h\to 0^{+}}{\lim }\frac{f\left(a+h\right)-f\left(a\right)}{h}$

Calculation:

Here, in the piece wise function the value of $a=1$ , and the value of $f\left(x\right)$ at $x<1$ is $2x$ .

Substitute the values in the formula,

  $\begin{array}{c}\underset{h\to 0^{+}}{\lim }\frac{f\left(1+h\right)-f\left(1\right)}{h}=\underset{h\to 0^{+}}{\lim }\frac{2\left(1+h\right)-2\left(1\right)}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2+2h-2}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2h}{h}\\ =2\end{array}$

Conclusion: The value of left-hand derivative of the function is $2$ .

g.

To determine

To find: The value of right hand derivative.

Answer to Problem 42E

The value of right-hand derivative is $\infty$ .

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

The left-hand derivative is given by the formula $f^{\prime }\left(x\right)=\underset{h\to 0^{+}}{\lim }\frac{f\left(a+h\right)-f\left(a\right)}{h}$

Calculation:

Here, in the piece wise function the value of $a=1$ , and the value of $f\left(x\right)$ at $x<1$ is $2x$ .

Substitute the values in the formula,

  $\begin{array}{c}\underset{h\to 0^{+}}{\lim }\frac{f\left(1+h\right)-f\left(1\right)}{h}=\underset{h\to 0^{+}}{\lim }\frac{2\left(1+h\right)-{\left(1\right)}^2}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2+2h-1}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2h+1}{h}\\ =2+\underset{h\to 0^{+}}{\lim }\frac{1}{h}\\ =\infty \end{array}$

Conclusion: The value of right hand derivative is not defined.

h.

To determine

To find: Existence of $f^{\prime }\left(1\right)$

Answer to Problem 42E

The derivative does not exist.

Explanation of Solution

Given information:

The function is $f\left(x\right)=\left\{\begin{array}{c}{x}^2,x\le 1\\ 2x,x>1\end{array}\right.$

Concept used:

If the left hand derivative and right hand derivative exists and is equal then the derivative exists.

Calculation:

Here, in the piece wise function the value of $a=1$ , and the value of $f\left(x\right)$ at $x<1$ is $2x$ .

Substitute the values in the formula,

  $\begin{array}{c}\underset{h\to 0^{+}}{\lim }\frac{f\left(1+h\right)-f\left(1\right)}{h}=\underset{h\to 0^{+}}{\lim }\frac{2\left(1+h\right)-2\left(1\right)}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2+2h-2}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2h}{h}\\ =2\end{array}$

Here, in the piece wise function the value of $a=1$ , and the value of $f\left(x\right)$ at $x<1$ is $2x$ .

Substitute the values in the formula,

  $\begin{array}{c}\underset{h\to 0^{+}}{\lim }\frac{f\left(1+h\right)-f\left(1\right)}{h}=\underset{h\to 0^{+}}{\lim }\frac{2\left(1+h\right)-{\left(1\right)}^2}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2+2h-1}{h}\\ =\underset{h\to 0^{+}}{\lim }\frac{2h+1}{h}\\ =2+\underset{h\to 0^{+}}{\lim }\frac{1}{h}\\ =\infty \end{array}$

Conclusion: The derivative does not exist.