Soru # 132a1

Soru # 132a1
Anonim

Cevap:

Lütfen aşağıya bakın

Açıklama:

# ASÇ = 1-sin4x + yatağı ((3pi) / 4-2x) * cos4x #

# = 1-sin4x + (yatağı ((3pi) / 4) * cot2x + 1) / (cot2x-yatağı ((3pi) / 4)) * cos4x #

# = 1-sin4x + ((yatağı (pi-pi / 4) * cot2x + 1) / (cot2x-yatağı (pi-pi / 4))) * cos4x #

# = 1-sin4x + (- yatağı (pi / 4) * cot2x + 1) / (cot2x - (- yatağı (pi / 4))) * cos4x #

# = 1-sin4x + (1-cot2x) / (1 + cot2x) * cos4x #

# = 1-sin4x + (1- (cos2x) / (sin2x)) / (1 + (cos2x) / (sin2x)) * cos4x #

# = 1-sin4x + (sin2x-cos2x) / (sin2x + cos2x) * cos4x #

# = 1 + (2 (sin2x * cos4x-cos4x * cos2x-sin4x * sin2x-sin4x * cos2x)) / (2 (sin2x + cos2x)) #

# = 1 + (sin (4x + 2x) -sin (4x-2x) -cos (4x + 2x) -cos (4x-2x) -cos (4x-2x) + cos (+ 2x, 4x) -sin (4x + 2x) -sin (4x-2x)) / (2 (sin2x + cos2x) #

# = 1 + (sin6x-sin2x-cos6x-cos2x-cos2x + cos6x-sin6x-sin (2x)) / (2 (sin2x + cos2x) #

# = ((2 (sin2x + cos2x)) / (2 (sin2x + cos2x))) 1.-iptal

# = 1-1 = 0 = RHS #