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It's a bit of work, but... Write out each tangent as the sine/cosine equivalent, and then use trig identities to convert the terms that are multiples of 'a' into sina and cosa equivalents. For example: sin2a = 2sinacosa and cos2a = cos^2a-sin^2a. I will leave it to you to figure out how to converyt sin3a and cos3a into terms of sina and cosa. Once you get it into a form that has only sina and cosa terms, you'll see it works out. |
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 Originally Posted by zaibjaffer
I started by combining the left hand side over a common denominator, which turns out to have the same denominator as the right hand side. So then it's merely a job of showing that both numerators are the same. In other words: sin(3a)*cos(2a)*cos(a) - sin(2a)*cos(3a)*cos(a) - sin(a)*cos(3a)*cos(2a) = sin(3a)*sin(2a)*sin(a) At this point, you substitute for sin(3a), cos(3a), sin(2a) and cos(2a) with identities that are purely in sin(a) and cos(a). Do you know what those identities are? |
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