Let f be a positive function. Let I1=in...

Let `f` be a positive function. Let `I_1=int_(1-k)^k xf([x(1-x)]dx ,` `I_2=int_(1-k)^kf[x(1-x)]dx ,w h e r e2k-1> 0. T h e n(I_1)/(I_2)i s` 2 (b) `k` (c) `1/2` (d) 1

A

`2`

B

`k`

C

`1/2`

D

`1`

Text Solution

Verified by Experts

The correct Answer is:

C

Given `f` is a positive function and
`I_(1)=int_(1-k)^(k)xf[x(1-x)]dx`
`I_(2)=int_(1-k)^(k)f[(1-x)]dx`
Now `I_(1)=int_(1-k)^(k)xf[(1--x)]dx`………………1
`=int_(1-k)^(k)(1-x)f[(1-x)x]dx`………………2
[ Using the property `int_(a)^(b)f(x)dx=int_(a)^(b)f(a+b-x)dx`]
Adding 1 and 2 we get
`2I_(1)=int_(1-k)^(k)f[x(1-x)]dx=I_(2)` or `(I_(1))/(I_(2))=1/2`

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