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Products-to-sums identities (1 Viewer)

Masaken

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for part (b), i would write the LHS as 4cosa(sin5acos3a). that allows you to use product to sum with the bit that can be changed isolated in brackets, so you get 2cosa(sin8a + sin2a) [you have a 2 out front because you multiplied 4 by 1/2 as per the given product to sum identity]. from there, expand everything out, so you get 2sin8acosa + 2sin2acosa. again, apply the product to sum identity for each of the terms given, so you would get (with the 2 being cancelled out for both because it's multiplied by 1/2) = (sin 9a + sin 7a) + (sin 3a + sina) = RHS.
 

yellowhighlighterr

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for part (b), i would write the LHS as 4cosa(sin5acos3a). that allows you to use product to sum with the bit that can be changed isolated in brackets, so you get 2cosa(sin8a + sin2a) [you have a 2 out front because you multiplied 4 by 1/2 as per the given product to sum identity]. from there, expand everything out, so you get 2sin8acosa + 2sin2acosa. again, apply the product to sum identity for each of the terms given, so you would get (with the 2 being cancelled out for both because it's multiplied by 1/2) = (sin 9a + sin 7a) + (sin 3a + sina) = RHS.
aaak ok. thanks m8
 

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