This is not a homework problem.
How to find $f'(x)$ if $f(x)=2x^{1/2}\log(2)$?
Thanks in advance for your help! I just can't figure it out...
What rule should I use?
This is not a homework problem.
How to find $f'(x)$ if $f(x)=2x^{1/2}\log(2)$?
Thanks in advance for your help! I just can't figure it out...
What rule should I use?
You can use simple differentiation but another way to do this is to find the natural logarithm of both sides and use the fact that the derivative of $\ln f(x)$ is $\frac{f'(x)}{f(x)}$, where $f'(x)$ is the derivative of $f(x)$ Thus, $$\ln f(x)=\ln 2+\frac{1}{2}\ln x+\ln (log(2))$$
So differentiating, you get $$\frac{f'(x)}{f(x)}=\frac{1}{2x}$$ , since $ln 2$ and $ln (\log 2)$ are constants. So you get;
$$f'(x)=\frac{1}{2x}f(x)=x^{-\frac{1}{2}}\log (2)$$
Note that $f(x)=(2\log 2)x^{1/2}$, and that $2\log 2$ is a constant. The derivative of $x^{\frac{1}{2}}$ with respect to $x$ is $\left(\frac{1}{2}\right)x^{\frac{1}{2}-1}$, and therefore $$f'(x)=(2\log 2)\frac{1}{2}x^{-1/2}=(\log 2)x^{-1/2}.$$
Comment: If $k$ is a constant, and $f(x)=kg(x)$, then $f'(x)=kg'(x)$. In more fancy language, if $g'(x)$ exists then $f'(x)$ exists and is equal to $kg'(x)$. This rule should be after a while automatic. In general, if $a$ and $b$ are constants, and $f(x)=ag(x)+b$, then $f'(x)=ag'(x)$. The other rule that we used is the one that says that if $k$ is a constant, then the derivative of $x^k$ is $kx^{k-1}$. This one is usually proved first for $k$ a positive integer, then for $k$ an integer, then for $k$ a rational, and usually somewhat later for all real $k$.
Note that $\frac{d}{dx} (c \cdot f(x)) = c \cdot f'(x)$. Hence you just want to find the derivative of $f(x) = \sqrt{x}$. Using the definition of the derivative we have
\begin{align*} f'(x) & = \lim_{h \to 0} \: \frac{f(x+h)- f(x)}{h} \\ &= \lim_{h \to 0} \: \frac{\sqrt{x+h} - \sqrt{x}}{h} \\ &= \lim_{h \to 0} \: \frac{\sqrt{x+h}-\sqrt{x}}{h} \times \frac{\sqrt{x+h} + \sqrt{x}}{\sqrt{x+h}+\sqrt{x}} \\ &=\lim_{h \to 0} \: \frac{x+h - x}{h \cdot \bigl(\sqrt{x+h} + \sqrt{x}\:\bigr)} \\ &= \lim_{h \to 0} \frac{1}{\sqrt{x+h} + \sqrt{x}} = \frac{1}{2 \cdot \sqrt{x}} \end{align*}
Use the above rule and see that $ \displaystyle f'(x) = 2 \cdot \log(2) \cdot \frac{1}{2 \cdot \sqrt{x}}$