Differentiate t^4 In(8cost)

Question

asked Aug 8, 2023 13.8k views

2 Answers

Thomas Marti · Answer 1 · 2023-08-09T02:06:52+0000

Answer:

t^3 (4 ln(cos8t) - t tant)

Explanation:

Using the Product Rule:

dy/dt = t^4 * d(ln(8cost) / dt + ln(8cost) * d(t^4)/dt

= t^4 * 1/ (8cost) * (-8sint) + 4t^3 ln(8cost)

= -8t^4 sint / 8 cost + 4t^3 ln(8cost)

= -t^4 tan t + 4t^3 ln(8cost)

= t^3 (4 ln(cos8t) - t tant)

Varol Okan · Answer 2 · 2023-08-14T15:52:21+0000

⇒It is way more appropriate if I use the product rule. That states that:

⇒f(x)g(x)=f'(x)g(x)+f(x)g'(x)

$t^(4) In(8cos(t))\\=4t^(3)In(8cos(t))+t^(4) (1)/(8cos(t)) *(0cos(t)+8*(-sin(t))*1)\\=4t^(3)In(8cos(t))+(t^(4)-8sin(t))/(8cos(t))$

Note:

Given F(x)=In(x)

⇒
F'(x)=(1)/(x)

Goodluck