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Use the substitution x=4sint to evaluate the integral ∫sqrt(16-x^2)dx
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Use the substitution x=4sint to evaluate the integral ∫sqrt(16-x^2)dx

User Xavier KRESS
by
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1 Answer

7 votes

Answer:

-1/3(cos^3(theta))

Explanation:

sqrt(16sin^2(theta))cos^2(theta)Dtheta

-(1/3)(cos^3(theta))

User Oshliaer
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