I got the same for the 2nd line but then...^5\right) &= \dfrac{\mathrm{d}}{\mathrm{d}x} \left( 4x \times (3x-2)^5 \right) \\ &=4x(5(3x-2)^4\times 3)+4(3x-2)^5 \\&= 4(3x-2)^4[15x+3x-2]\\&=4(3x-2)^4(18x-2)\end{align*})
Asianese perfectly differentiated it,
Thanks for your help... Just wondering where the 4x went from the 2nd line?
There is no problem with 4x
Awe yeah, thanks... Yes, I realised it was the product rule (that's what I'm meant to be using)
That's flattering.
Product rules is used when u have a product of 2 functions
haha
Which is 3x^2... Am I correct here 'HeriocPandas'?
Thanks Asianese... Sorry to go back to this question, just writing it down now... In the 2nd line of working, how did you get x 3 in the first set of brackets? I thought it would have been without x 3)... I think I'm missing a basic here am I?
Yes, I just hope that u didnt use product rule
Did you want me to?!
Yes it is, so I need to add this in??If you just focus on
for a moment..
This is a (simple) example of the chain rule. The 3 is the derivative of 3x-2.
Yeah, I get it now... Thanks heaps for your patience.... So this step, using the chain rule has to be done first before we can use the product rule from then... Am I correct?To differentiate a function of a function, we use the rule:
Hereand
so then
) &= \dfrac{\mathrm{d}}{\mathrm{d}x} (3x-2)^5 \\&= f'(3x-2)\cdot \dfrac{\mathrm{d}}{\mathrm{d}x}(3x-2)\\ &= 5(3x-2)^4 \cdot 3 \\&= 15(3x-2)^4. \end{align*})
Yeah ok. Thanks for you advice, I reckon I should be too... I will continue to practice with the questions after this one!