Domains of f(x)=1/sqrt(x) and f'

[ahorn]

Hello



Is the domain of \(\displaystyle f(x)=\dfrac{1}{\sqrt{x}}\) equal to \(\displaystyle x\geq 0\)? I am assuming this because x is the expression within a square root so cannot be non-negative.


And is the domain of \(\displaystyle f'(x)=-\dfrac{1}{2x\sqrt{x}}\) equal to \(\displaystyle x > 0 \)? I am assuming that \(\displaystyle x \neq 0 \) here because I am assuming that f is not differentiable on its endpoint.

 

[fcabanski]

Yes. Your domains are correct. The derivative has x in the denominator, so x cannot be 0. The concern is -'s in the square roots (or other even roots such as 4th roots) and 0's in the denominator. You can verify answers for problems like this at wolframalpha.com.

 

[ahorn]

Ok thanks. I'll try use wolframalpha next time. From what you are saying about the denominator not equalling 0, doesn't that mean that the domain of f also has \(\displaystyle x \neq 0\)?

 

[Quaid]

Whoops. From the post timestamps, it looks like ahorn edited his post while fcabanski was typing.

The domain statement for f is not currently correct because 0 is not in the domain.

 

[Quaid]

Is the domain of \(\displaystyle f(x)=\dfrac{1}{\sqrt{x}}\) equal to \(\displaystyle x\geq 0\)? I am assuming this because x is the expression within a square root so cannot be non-negative.

The phrase highlighted in red above is not correct. Is that a typo?

You need to fix the inequality symbol, in the domain statement above.

:cool:

Edit: After precalculus, one ought to be able to reason through the domain of 1/sqrt(x), without resorting to technology.

 

[fcabanski]

Both domains are x>0. I didn't see that the OP wrote >= in the first case.

"Resorting to technology" is fine to check an answer.

Too many students refuse to use a calculator, or aren't taught to use it, to help with problem solving. For example, if you graph 1/sqrt(x) you'll see the domain clearly.

 

[Quaid]

"Resorting to technology" is fine to check an answer.

That is a conditional statement, my friend.

Too many students refuse to use a calculator … to help with problem solving.

Are you talkin' problem-solving or answer-checking?

 

[fcabanski]

That is a conditional statement, my friend.




Are you talkin' problem-solving or answer-checking?

I am talking about both. It's valid to graph a function to see its domain. In this problem, for example, the first thing I'd do is graph it. Then I can see the domain not only to arrive at the answer, but to verify the answer.

"Resorting to technology is fine" is a conditional statement. The condition is being in the real world.

 

[Quaid]

The condition is being in the real world.

Is there some other kind of world, in which we can be, lol?

Yes, yes, technology is a fine thing (I use it every day), yet, I believe from the perspective of learning that too much of a fine thing ain't always a good thing. We need reasoning skills, for the real world (power failures, system failures, et al).

By the way, what happens when the domain is (sqrt[101]/7,sqrt[201]/7)? How do you get those values from a graph?

:idea: The real world is not always an ideal world, but mental effort saves the day (we hope).