- #1
MarkFL
Gold Member
MHB
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Here are the questions:
I have posted a link there to this topic so the OP can see my work.
I have posted a link there to this topic so the OP can see my work.
Ann's questions at Yahoo Answers regarding finding tangent lines
In summary, we differentiated each function and found the equation of the tangent line at x=a. For the first function, y=(x+(1/x))^2, when a=0.5, the equation of the tangent line is y=-15x+55/4. For the second function, y=e^x+e^-x, when a=0, the equation of the tangent line is y=2.
- #2
MarkFL
Gold Member
MHB
- 13,288
- 12
Hello Ann,
1.) We are given:
\(\displaystyle f(x)=\left(x+\frac{1}{x} \right)^2=x^2+2+x^{-2}\)
Although not necessary, I have expanded the function just to make differentiation a bit easier. So, differentiating, we find:
\(\displaystyle f'(x)=2x-2x^{-3}=\frac{2\left(x^4-1 \right)}{x^3}\)
Now, the tangent line at $x=a$ can be found since we have the point $\left(a,f(a) \right)$ and we have the slope $m=f'(a)$. Applying the point-slope formula, we get the equation of the tangent line as:
\(\displaystyle y-f(a)=f'(a)(x-a)\)
Arranging in slope-intercept form, we have:
\(\displaystyle y=f'(a)x+\left(f(a)-af'(a) \right)\)
Using $f(x)$ and $f'(x)$, we have:
\(\displaystyle f(a)=a^2+2+a^{-2}\)
\(\displaystyle f'(a)=\frac{2\left(a^4-1 \right)}{a^3}\)
and so, the tangent line, in terms of the parameter $a$, is:
\(\displaystyle y=\left(\frac{2\left(a^4-1 \right)}{a^3} \right)x+\left(a^2+2+a^{-2}-\frac{2\left(a^4-1 \right)}{a^2} \right)\)
Simplifying, we obtain:
\(\displaystyle y=\frac{2\left(a^4-1 \right)}{a^3}x+\frac{\left(1+a^2 \right)\left(3-a^2 \right)}{a^2}\)
Now, plugging in \(\displaystyle a=\frac{1}{2}\), we get:
\(\displaystyle y=-15x+\frac{55}{4}\)
Here is a plot of the function and its tangent line:
View attachment 981
2.) We are given:
\(\displaystyle f(x)=e^{x}+e^{-x}\)
Differentiating, we find:
\(\displaystyle f'(x)=e^{x}-e^{-x}\)
Using the point $(a,f(a))$ and the slope $f'(a)$, we find the tangent line is:
\(\displaystyle y-f(a)=f'(a)(x-a)\)
Arranging in slope-intercept form, we have:
\(\displaystyle y=f'(a)x+\left(f(a)-af'(a) \right)\)
Using $f(x)$ and $f'(x)$, we have:
\(\displaystyle f(a)=e^{a}+e^{-a}\)
\(\displaystyle f'(x)=e^{a}-e^{-a}\)
and so, the tangent line, in terms of the parameter $a$, is:
\(\displaystyle y=\left(e^{a}-e^{-a} \right)x+\left(e^{a}+e^{-a}-a\left(e^{a}-e^{-a} \right) \right)\)
Simplifying, we obtain:
\(\displaystyle y=\left(e^{a}-e^{-a} \right)x+\left((1-a)e^{a}+(1+a)e^{-a} \right)\)
Now, plugging in \(\displaystyle a=0\), we get:
\(\displaystyle y=2\)
Here is a plot of the function and its tangent line:
View attachment 982
1.) We are given:
\(\displaystyle f(x)=\left(x+\frac{1}{x} \right)^2=x^2+2+x^{-2}\)
Although not necessary, I have expanded the function just to make differentiation a bit easier. So, differentiating, we find:
\(\displaystyle f'(x)=2x-2x^{-3}=\frac{2\left(x^4-1 \right)}{x^3}\)
Now, the tangent line at $x=a$ can be found since we have the point $\left(a,f(a) \right)$ and we have the slope $m=f'(a)$. Applying the point-slope formula, we get the equation of the tangent line as:
\(\displaystyle y-f(a)=f'(a)(x-a)\)
Arranging in slope-intercept form, we have:
\(\displaystyle y=f'(a)x+\left(f(a)-af'(a) \right)\)
Using $f(x)$ and $f'(x)$, we have:
\(\displaystyle f(a)=a^2+2+a^{-2}\)
\(\displaystyle f'(a)=\frac{2\left(a^4-1 \right)}{a^3}\)
and so, the tangent line, in terms of the parameter $a$, is:
\(\displaystyle y=\left(\frac{2\left(a^4-1 \right)}{a^3} \right)x+\left(a^2+2+a^{-2}-\frac{2\left(a^4-1 \right)}{a^2} \right)\)
Simplifying, we obtain:
\(\displaystyle y=\frac{2\left(a^4-1 \right)}{a^3}x+\frac{\left(1+a^2 \right)\left(3-a^2 \right)}{a^2}\)
Now, plugging in \(\displaystyle a=\frac{1}{2}\), we get:
\(\displaystyle y=-15x+\frac{55}{4}\)
Here is a plot of the function and its tangent line:
View attachment 981
2.) We are given:
\(\displaystyle f(x)=e^{x}+e^{-x}\)
Differentiating, we find:
\(\displaystyle f'(x)=e^{x}-e^{-x}\)
Using the point $(a,f(a))$ and the slope $f'(a)$, we find the tangent line is:
\(\displaystyle y-f(a)=f'(a)(x-a)\)
Arranging in slope-intercept form, we have:
\(\displaystyle y=f'(a)x+\left(f(a)-af'(a) \right)\)
Using $f(x)$ and $f'(x)$, we have:
\(\displaystyle f(a)=e^{a}+e^{-a}\)
\(\displaystyle f'(x)=e^{a}-e^{-a}\)
and so, the tangent line, in terms of the parameter $a$, is:
\(\displaystyle y=\left(e^{a}-e^{-a} \right)x+\left(e^{a}+e^{-a}-a\left(e^{a}-e^{-a} \right) \right)\)
Simplifying, we obtain:
\(\displaystyle y=\left(e^{a}-e^{-a} \right)x+\left((1-a)e^{a}+(1+a)e^{-a} \right)\)
Now, plugging in \(\displaystyle a=0\), we get:
\(\displaystyle y=2\)
Here is a plot of the function and its tangent line:
View attachment 982
Attachments
Related to Ann's questions at Yahoo Answers regarding finding tangent lines
1. What is a tangent line?
A tangent line is a straight line that touches a curve at only one point. It is perpendicular to the curve at that point and represents the slope of the curve at that specific point.
2. How do I find the equation of a tangent line?
To find the equation of a tangent line, you need to know a point on the line and the slope of the line at that point. Use the slope formula (m = (y2-y1)/(x2-x1)) to calculate the slope at the given point. Then, use the point-slope formula (y-y1 = m(x-x1)) to find the equation of the tangent line.
3. Can I find the tangent line without knowing the slope at a specific point?
No, you need to know the slope at a specific point to find the equation of the tangent line. If you have the equation of the curve, you can find the derivative of the curve at that point to get the slope of the tangent line.
4. What is the importance of finding tangent lines?
Finding tangent lines is important in calculus and other mathematical applications. It helps us understand the behavior of curves and calculate the rate of change of a function at a specific point. Tangent lines also have practical applications in physics and engineering.
5. Can I find the tangent line of a curve at any point?
Yes, you can find the tangent line of a curve at any point as long as you have the equation of the curve or know the coordinates of the point. However, some curves may have multiple tangent lines at the same point, so it's important to specify which tangent line you are looking for.
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