Math, asked by dsank15, 9 months ago

2 sin^2b + 4 cos(a +B) sina sinB + cos2(a +B) = cos2a​

Answers

Answered by jpaul57
3

Answer:

LHS =2sin2B + 4cos(A+B)sinAsinB + cos2(A+B) .................1

cos2(A+B) = 2cos2(A+B) - 1                                                             [using formula ,cos2a=2cos2a - 1]

putting this in 1

LHS= 2sin2B+4cos(A+B)sinAsinB + 2cos2(A+B) - 1

     =2sin2B - 1 + 2cos(A+B)[cos(A+B) + 2sinAsinB]

     =2sin2B - 1 +2cos(A+B)[cosAcosB -sinAsinB +2sinAsinB]                         [using formula,cosA+B =COSACOSB-SINASINB]

     =2sin2B - 1 + 2cos(A+B)[cos(A-B)]                                                [using formula ,cosACOSB +SINASINB=COSA-B]

     =2sin2B - 1 + 2[cos2A -sin2B]                                                            [COS(A+B)COS(A-B)=COS2A-SIN2B]

     =2cos2A-1

     =cos2A = RHS

hence proved

Hope this helps!!

Step-by-step explanation:

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