Find an equation for the tangent line to the curve at point (2,1)

[alexmay]

y= 5/x^2 +1

I need help approaching this problem, and how to go about it step by step.

 

[MarkFL]

It appears what you meant is:

[MATH]y=\frac{5}{x^2+1}[/MATH]
What is [MATH]\d{y}{x}[/MATH]?

 

[alexmay]

I'm not sure

 

[Steven G]

Please draw a diagram. You can draw any curve you want for y, except a straight line.

Find the point on this curve whose x coordinate is 1. Now draw the tangent line.

To get the equation of a line you can do this if you have a point and slope.

The key here is to know what information the derivative ,y', gives you. If you plug in for example 7 for x in the y' (NOT y) formula you will get the slope of the tangent line to the y curve where the x coordinations is 7

 

[Steven G]

I'm not sure

Can you confirm that MarkFL has the correct formula?

 

[MarkFL]

I'm not sure

I'd be tempted to write:

[MATH]y=5(x^2+1)^{-1}[/MATH]
And then apply the power/chain rules, rather than use the quotient rule on the original form. But either will work. Can you post some work?

 

[Steven G]

I'd be tempted to write:

[MATH]y=5(x^2+1)^{-1}[/MATH]
And then apply the power/chain rules, rather than use the quotient rule on the original form. But either will work. Can you post some work?

I agree with your approach but shouldn't we wait for the OP to confirm that we even know the correct function?

 

[Deleted member 4993]

I'm not sure

If this topic was not covered in your class-room, then please view:

The derivative & tangent line equations (video) | Khan Academy

The derivative of a function gives us the slope of the line tangent to the function at any point on the graph. This can be used to find the equation of that tangent line.

www.khanacademy.org

 

[MarkFL]

I agree with your approach but shouldn't we wait for the OP to confirm that we even know the correct function?

I assumed the form I gave rather than what was presented since the given point exists on the form I gave and not on the other.

 

[Steven G]

I assumed the form I gave rather than what was presented since the given point exists on the form I gave and not on the other.

Oops I missed the given point. Why do students put some information in the heading? I honestly thought the equation was \(\displaystyle \frac{5}{x^2}+1\). Thanks!

 

[alexmay]

at point (2,1)

I'm new to the website, so I am still understanding how it works.

 

[Steven G]

You need to know that \(\displaystyle \dfrac{d}{dx} (f(x))^n = n(f(x))^{n-1}*f'(x)\)

What is your f(x) and n? How do you handle that 5 in the front?

 

[Deleted member 4993]

View attachment 16976
at point (2,1). I'm new to the website, so I am still understanding how it works.

Great!

Did you watch the video I had suggested in response #8?

 

[alexmay]

n is 5 and f(x) is 2

 

[alexmay]

I got this as my final answer, is this correct?

 

[Deleted member 4993]

View attachment 16985
I got this as my final answer, is this correct?

An easy check (partial) would be to check whether that line (y = -4x/5 + 13/5) goes through the given point (2,1) or not. Does it?

 

[alexmay]

yes

 

[MarkFL]

With:

[MATH]y=5(x^2+1)^{-1}[/MATH]
We find:

[MATH]\d{y}{x}=-5(x^2+1)^{-2}(2x)=-\frac{10x}{(x^2+1)^{2}}[/MATH]
Hence

[MATH]\left.\d{y}{x}\right|_{x=2}=-\frac{10(2)}{(2^2+1)^{2}}=-\frac{4}{5}[/MATH]
And so the tangent line is:

[MATH]y=-\frac{4}{5}(x-2)+1=-\frac{4}{5}x+\frac{13}{5}\quad\checkmark[/MATH]

 

[Steven G]

n is 5 and f(x) is 2

No and no.

n=-1 and f(x) = (x^2 + 1)