Answer:
[tex]\dfrac{dy}{dx}=-\dfrac{21}{5}[/tex]
Step-by-step explanation:
Given function:
[tex]4x^2+4x+xy=5[/tex]
To differentiate the given function using implicit differentiation:
[tex]\dfrac{d}{dx}4x^2+\dfrac{d}{dx}4x+\dfrac{d}{dx}xy=\dfrac{d}{dx}5[/tex]
Differentiate terms in x only (and constant terms) with respect to x:
[tex]\implies 8x+4+\dfrac{d}{dx}xy=0[/tex]
Use the product rule to differentiate the term in x and y:
[tex]\textsf{let }\: u = x \implies \dfrac{du}{dx} = 1[/tex]
[tex]\textsf{let }\: v = y \implies \dfrac{dv}{dx} = \dfrac{dy}{dx}[/tex]
[tex]\begin{aligned}\implies \dfrac{dy}{dx} & =u \dfrac{dv}{dx}+v\dfrac{du}{dx}\\ & =x\dfrac{dy}{dx}+y\end{aligned}[/tex]
[tex]\implies 8x+4+x\dfrac{dy}{dx}+y=0[/tex]
Rearrange to make dy/dx the subject:
[tex]\implies x\dfrac{dy}{dx}=-8x-y-4[/tex]
[tex]\implies \dfrac{dy}{dx}=-\dfrac{8x+y+4}{x}[/tex]
When x = 5, y = -23. Therefore, substitute these values into the differentiated function to find y'(5):
[tex]\implies \dfrac{dy}{dx}=-\dfrac{8(5)+(-23)+4}{5}[/tex]
[tex]\implies \dfrac{dy}{dx}=-\dfrac{21}{5}[/tex]
