If intsinx d(secx)=f(x)-g(x)+c ,t h e n ...

If `intsinx d(secx)=f(x)-g(x)+c ,t h e n` `f(x)=secx` (b) `f(x)=tanx` `g(x)=2x` (d) `g(x)=x`

`g(x)` is odd

`2(n)=0, n epsilonN`

`g(2n)=0,n epsilonN`

`g(x)` is non-periodic

Text Solution

Verified by Experts

The correct Answer is:

`g(x)=int_(0)^(x)f(t)dt`
`g(-x)=int_(0)^(-x)f(t)dt=-int_(0)^(x)f(-t)dt=int_(0)^(x)f(t)dt` as `f(-t)=-f(t)`
or `g(-x)=g(x)`
Thus `g(x)` is even
Also `g(x+2)=int_(0)^(x+2)f(t)dt`

`=int_(0)^(2)f(t)dt+int_(2)^(2+x)f(t)dt`
`g(2)+int_(0)^(x)f(t+2)dt`
`=g(2)+int_(0)^(x)f(t)dt`
`=g(2)+g(x)`
Now `g(2) =int_(0)^(2)f(t)dt int_(0)^(1)f(t)dt+int_(1)^(2)f(t)dt`
`=int_(0)^(1)f(t)dt+int_(-1)^(0)f(t+2)dt`
`=int_(0)^(1)f(t)dt+int_(-1)^(0)f(t)dt`
`=int_(-1)^(1)f(t)dt=0` as `f(t)` is odd
`g(2)=0implies g(x+2)=g(x)`.
i.e. `g(x)` is periodic with period 2.
`:. g(4)0` or `g(6)=0, g(2n)=0, n epsilon N`.

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