QUESTION IMAGE
Question
use implicit differentiation to find $\frac{dy}{dx}$.
$(4xy + 3)^2=16y$
$\frac{dy}{dx}=square$
Step1: Differentiate both sides
Differentiate \((4xy + 3)^2\) using chain - rule and product - rule. The derivative of the left - hand side: Let \(u = 4xy+3\), then \((4xy + 3)^2=u^2\). By the chain - rule, \(\frac{d}{dx}(u^2)=2u\frac{du}{dx}\). And \(\frac{du}{dx}=4y + 4x\frac{dy}{dx}\). So \(\frac{d}{dx}(4xy + 3)^2=2(4xy + 3)(4y + 4x\frac{dy}{dx})\). The derivative of the right - hand side is \(16\frac{dy}{dx}\). So we have \(2(4xy + 3)(4y + 4x\frac{dy}{dx})=16\frac{dy}{dx}\).
Step2: Expand the left - hand side
Expand \(2(4xy + 3)(4y + 4x\frac{dy}{dx})\):
\[
\]
So \(32xy^{2}+32x^{2}y\frac{dy}{dx}+24y + 24x\frac{dy}{dx}=16\frac{dy}{dx}\).
Step3: Isolate \(\frac{dy}{dx}\) terms
Move all terms with \(\frac{dy}{dx}\) to one side:
\[32x^{2}y\frac{dy}{dx}+24x\frac{dy}{dx}-16\frac{dy}{dx}=-32xy^{2}-24y\]
Factor out \(\frac{dy}{dx}\):
\(\frac{dy}{dx}(32x^{2}y + 24x-16)=-32xy^{2}-24y\).
Step4: Solve for \(\frac{dy}{dx}\)
\(\frac{dy}{dx}=\frac{-32xy^{2}-24y}{32x^{2}y + 24x - 16}=\frac{-8xy^{2}-6y}{8x^{2}y + 6x - 4}\)
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\(\frac{-8xy^{2}-6y}{8x^{2}y + 6x - 4}\)