Math, asked by joshuarajujr5835, 1 year ago

Prove that: ( sin2A + sin2B + sin2C ) / ( sinA + sinB + sinC ) = 8 sin(A/2) sin(B/2) sin(C/2)

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Answered by Forzanius

15

first SinC + SinD and third we apply Sin2A formula and in denominator same thing is used

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