Let f(x)+f(y)=f(xsqrt(1-y^2)+ysqrt(1-x^2...

Let `f(x)+f(y)=f(xsqrt(1-y^2)+ysqrt(1-x^2))[f(x)` is not identically zero]. Then `f(4x^3-3x)+3f(x)=0` `f(4x^3-3x)=3f(x)` `f(2xsqrt(1-x^2)+2f(x)=0` `f(2xsqrt(1-x^2)=2f(x)`

A

`f(4x^(3)-3x)+3f(x)=0`

B

`f(4x^(3)-3x)=3f(x)`

C

`f(2x sqrt(1-x^(2)))+2f(x)=0`

D

`f(2x sqrt(1-x^(2)))=2f(x)`

Text Solution

Verified by Experts

The correct Answer is:

A, D

Given `f(x)+f(y)=(xsqrt(1-y^(2))+ysqrt(1-x^(2))) " (1)" `
Replace y by x. Then `2f(x)=f(2xsqrt(1-x^(2)))`
`3f(x)=f(x)+2f(x)`
`=f(x)+f(2xsqrt(1-x^(2)))`
`=f(x sqrt(1-4x^(2)(1-x^(2)))+2xsqrt(1-x^(2))sqrt(1-x^(2)))`
`=f(xsqrt((2x^(2)-1)^(2))+2x(1-x^(2)))`
`=f(x|2x^(2)-1|+2x-2x^(3))`
`=f(2x^(3)-x+2x-2x^(3)) or f(x-2x^(3)+2x-2x^(3))`
`=f(x) or f(3-4x^(3))`
` :. f(x)=0 or 3f(x)=f(3x-4x^(3))`
Consider `3f(x)=f(3x-4x^(3))`
Replacing x by -x, we get
`3f(-x)=f(4x^(3)-3x) " (2)" `
Also, from (1),`f(x)+f(-x)=f(0)`.
Putting `x=y-0` in (1), we have `f(0)=0 " or " f(x)+f(-x)=0.`
Thus, f(x) is an odd function.
Now, from (2), `-3f(x) =f(4x^(3) -3x)`
or `f(4x^(3)-3x)=3f(x)=0`

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