(asin θ-bcos θ)²=?​​

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(asin θ-bcos θ)²=?

asked Feb 15, 2021 86.7k views

2 votes

(asin θ-bcos θ)²=?

Mathematics
high-school

Ltvie asked

by Ltvie

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$(a\sin(\theta) - b\cos(\theta))^2\\= a^2\sin^2(\theta) - 2ab\sin(\theta)\cos(\theta) + b^2\cos^2(\theta)\\= a^2\sin^2(\theta) - ab\sin(2\theta) + b^2\cos^2(\theta)$

Erwin Smith answered Feb 19, 2021

by Erwin Smith

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