sinclairharry
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Question is to derive 5x ^ 6x
I believe the answer to be 30x ^ (6x) ( ln (5x) + 1)
Is it correct?
I believe the answer to be 30x ^ (6x) ( ln (5x) + 1)
Is it correct?
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- Thread starter sinclairharry
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Question is to derive 5x ^ 6x
I believe the answer to be 30x ^ (6x) ( ln (5x) + 1)
Is it correct?
Is your question:
Calculate the derivative, with respect to x, of
y = 5x6x
sinclairharry
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Is your question:
Calculate the derivative, with respect to x, of
y = 5x6x
yes !
I worked the problem and my answer is very similar to yours, except the natural log is of x instead of 5x. I'll go through my steps.
Starting with \(\displaystyle y = 5x^{6x}\)
Divide by 5: \(\displaystyle \frac{y}{5}=x^{6x}\)
Take the natural log: \(\displaystyle ln\left(\frac{y}{5}\right)=ln\left(x^{6x}\right)\)
Apply the Power Rule for Logarithms: \(\displaystyle ln\left(\frac{y}{5}\right)=6x\cdot ln\left(x\right)\)
Take the derivative: \(\displaystyle \frac{d}{dx}\left(ln\left(\frac{y}{5}\right)\right)=\frac{d}{dx}\left(6x\cdot ln\left(x\right)\right)\)
Apply Implicit Differentiation and Product Rule for Derivatives: \(\displaystyle \frac{y'\left(x\right)}{y\left(x\right)}=6\cdot ln\left(x\right)\:+\:6x\cdot \frac{1}{x}\)
Simplify: \(\displaystyle \frac{y'\left(x\right)}{y\left(x\right)}=6\left(ln\left(x\right)+1\right)\)
Multiply by y(x) to get the final answer: \(\displaystyle y'(x)=30x^{6x}\left(ln\left(x\right)+1\right)\)
I hope that seeing the process I used was helpful to you.
Starting with \(\displaystyle y = 5x^{6x}\)
Divide by 5: \(\displaystyle \frac{y}{5}=x^{6x}\)
Take the natural log: \(\displaystyle ln\left(\frac{y}{5}\right)=ln\left(x^{6x}\right)\)
Apply the Power Rule for Logarithms: \(\displaystyle ln\left(\frac{y}{5}\right)=6x\cdot ln\left(x\right)\)
Take the derivative: \(\displaystyle \frac{d}{dx}\left(ln\left(\frac{y}{5}\right)\right)=\frac{d}{dx}\left(6x\cdot ln\left(x\right)\right)\)
Apply Implicit Differentiation and Product Rule for Derivatives: \(\displaystyle \frac{y'\left(x\right)}{y\left(x\right)}=6\cdot ln\left(x\right)\:+\:6x\cdot \frac{1}{x}\)
Simplify: \(\displaystyle \frac{y'\left(x\right)}{y\left(x\right)}=6\left(ln\left(x\right)+1\right)\)
Multiply by y(x) to get the final answer: \(\displaystyle y'(x)=30x^{6x}\left(ln\left(x\right)+1\right)\)
I hope that seeing the process I used was helpful to you.
sinclairharry
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nope, i was correct !
No. You are not correct for eithernope, i was correct !
y=(5x)6x
or
y=5(x)6x
For the first you are off by a factor of 5 and for the second the ln(5x) should be ln(x) as ksdhart demonstrated. I would do it a slightly different way if I didn't know the formula; write the first as
y = e ln(y) = e6x ln(5x)
and
y' = e6x ln(5x)(6x ln(5x))'
= (5x)6x (6x ln(5x))'
= (5x)6x [6 ln(5x) + 6x \(\displaystyle \frac{(5x)'}{5x}\)]
= (5x)6x [6 ln(5x) + 6x \(\displaystyle \frac{5}{5x}\)]
= (5x)6x [6 ln(5x) + 6x \(\displaystyle \frac{1}{x}\)]
= (5x)6x [6 ln(5x) + 6]
= 6 (5x)6x [ln(5x) + 1]
Last edited:
sinclairharry
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No. You are not correct for either
y=(5x)6x
or
y=5(x)6x
For the first you are off by a factor of 5 and for the second the ln(5x) should be ln(x) as ksdhart demonstrated. I would do it a slightly different way if I didn't know the formula; write the first as
y = e ln(y) = e6x ln(5x)
and
y' = e6x ln(5x)(6x ln(5x))'
= (5x)6x (6x ln(5x))'
= (5x)6x [6 ln(5x) + 6x \(\displaystyle \frac{(5x)'}{5x}\)]
= (5x)6x [6 ln(5x) + 6x \(\displaystyle \frac{5}{5x}\)]
= (5x)6x [6 ln(5x) + 6x \(\displaystyle \frac{1}{x}\)]
= (5x)6x [6 ln(5x) + 6]
= 6 (5x)6x [ln(5x) + 1]
Wouldn't 6 (5x)6x [ln(5x) + 1] be equal to 30x6x [ln(5x) + 1] by simply multiplying the 6 by 5. Meaning my answer is correct ?
Wouldn't 6 (5x)6x [ln(5x) + 1] be equal to 30x6x [ln(5x) + 1] by simply multiplying the 6 by 5. Meaning my answer is correct ?
no, for the same reason 2*3^2 = 18 is not the same as 6^2=36.