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If x+y+z=pi/2, then prove that |[sinx,...

If `x+y+z=pi/2,` then prove that `|[sinx,siny,sinz],[cosx,cosy,cosz],[cos^3x,cos^3 y,cos^3z]|=0`

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`L.H.S. = |[sinx,siny,sinz],[cosx,cosy,cosz],[cos^3x,cos^3y,cos^3z]|`
By expending the determinant along `R_3`,
`=sum cos^3x[sinycosz - cosysinz]`
`=sum cos^3xsin(y-z)`
As, `x+y+z = pi/2`, so the determinant becomes,
`=sum cos^3(pi/2-(y+z))sin(y-z)`
`=sum sin^3(y+z)sin(y-z)`
`=sum sin^2(y+z) sin(y+z)sin(y-z)`
...
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