Purpose of the project: Struggle through a difficult but important calculus prob
Purpose of the project: Struggle through a difficult but important calculus problem.
Each of the following is a difficult definition of the derivative problem. Your group will be assigned one of the following, and then you can present the solution to the class. In each case, the “stuff in the example box” is not your problem, but look at it and hopefully it will help with your problem.
- Let [latex]f(x) = x^4[/latex]. Using the definition of the derivative, find [latex]f'(x)[/latex].
Simplify [latex](x + 1)^4[/latex].We can do this problem by splitting it up into [latex](x + 1)^2 (x + 1)^2[/latex]. We know [latex](x + 1)^2 = x^2 + 2x + 1[/latex] — that means
[latex](x + 1)^4 = (x^2 + 2x + 1)(x^2 + 2x + 1)[/latex]
To solve from here, we need to multiply every term of [latex](x^2 + 2x + 1)[/latex] by [latex]x^2[/latex], then every term by [latex]2x[/latex], then every term by [latex]1[/latex], and add it all up. Here we go: \begin{align*}
(x + 1)^4 & = (x^2 + 2x + 1)({\color{green} x^2} + {\color{red} 2x} + {\color{blue} 1}) \\
& = (x^2 + 2x + 1){\color{green}x^2} + (x^2 + 2x + 1){\color{red}2x} + (x^2 + 2x + 1){\color{blue}1} \\
& = {\color{green} x^4 + 2x^3 + x^2} + {\color{red}2x^3 + 4x^2 + 2x} + {\color{blue}x^2 + 2x + 1} \\
& = x^4 + 4x^3 + 6x^2 + 4x + 1.
\end{align*} - Let [latex]f(x) = \sqrt{x}[/latex]. Using the definition of the derivative, find [latex]f'(x)[/latex] (which can also be written [latex]\frac{d}{dx} f(x)[/latex] or [latex]\frac{df}{dx}[/latex]).
Rationalize the numerator of [latex]\frac{\sqrt{x + 1} - \sqrt{x}}{x}[/latex].
To “rationalize the numerator”, the trick is to multiply top and bottom by what is known as the conjugate: it is the same as the numerator, only the sign is flipped so that subtraction becomes addition or vice versa. In this case, the conjugate is [latex]\sqrt{x + 1} + \sqrt{x}[/latex]. We see
\begin{align*}
\frac{\sqrt{x + 1} – \sqrt{x}}{x} & = \frac{(\sqrt{x + 1} – \sqrt{x})}{(x)} \cdot \frac{(\sqrt{x + 1} + \sqrt{x})}{(\sqrt{x + 1} + \sqrt{x})}\\
& = \frac{(\sqrt{x + 1} – \sqrt{x})(\sqrt{x + 1} + \sqrt{x})}{(x)(\sqrt{x + 1} + \sqrt{x})} \\
& = \frac{(\sqrt{x + 1})^2 – (\sqrt{x})^2}{x(\sqrt{x + 1} + \sqrt{x})} \\
& = \frac{x+1 – x}{x(\sqrt{x + 1} + \sqrt{x})} \\
& = \frac{1}{x(\sqrt{x + 1} + \sqrt{x})}
\end{align*}
The numerator is now rationalized. - Let [latex]f(x) = \sin(x)[/latex]. Using the definition of the derivative, find [latex]f'(x)[/latex] (which can also be written [latex]\frac{d}{dx} f(x)[/latex] or [latex]\frac{df}{dx}[/latex]). There are three facts we need to compute this derivative:
- [latex]\sin(A + B) = \sin(A) \cos(B) + \cos(A) \sin(B)[/latex]
- [latex]\lim_{h \to 0} \frac{\sin(h)}{h} = 1[/latex]
- [latex]\lim_{h \to 0} \frac{\cos(h) - 1}{h} = 0[/latex]
Find [latex]\lim_{h \to 0} \cfrac{\sin(y + h) - \sin(y) \cos(h)}{h}[/latex].In this example, we use the first fact listed above to write [latex]\sin(y + h) = \sin(y) \cos(h) + \cos(y) \sin(h)[/latex]. We have the original problem is equa