f(x)=sin[x]+[s in x],0<x<pi/2 where [.] ...

`f(x)=sin[x]+[s in x],0

`{{:(0",",0ltxlt1),(1+sin1",",1lexlt(pi)/(4)):}`

`{{:((1)/(sqrt(2))",",0ltxlt(pi)/(4)),(1+(1)/(2)+(1)/(sqrt2)+(sqrt3)/(2)",",(pi)/(4)lexlt(pi)/(4)):}`

`{{:(0",",0ltxlt1),(sin1",",1lexlt(pi)/(2)):}`

`{{:(0",",0ltxlt(pi)/(2)),(1",",(pi)/(4)ltxlt1),(sin1",",1lexle(pi)/(4)):}`

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Verified by Experts

The correct Answer is:

`0ltxlt(pi)/(2)`
`therefore" "[x]={{:(0,"if,0ltxlt1),(1,if,1lexlt(pi)/(2)):}`
`rArr" "sin[x]={{:(sin0=0,if,0ltxlt1),(sin1,if,1lexlt(pi)/(2)):}`
we have `0sinxlt1` when `0ltxlt(pi)/(2).`
`therefore" "[sinx]=0" for "0ltxlt(pi)/(2)`
`therefore" "sin[x]+[sinx]=({:(0,if,0ltxlt1),(sin1,if,1lexlt(pi)/(2)):}`

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