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Question

Ifcot(2tan1 1+xx141+x+x14)dx=q.xp4p+C, x > 0 (where p & q are relatively prime and C is constant of integration), then

A
p=5
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B
p+2q=13
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C
pq=1
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D
q=5
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Solution

The correct options are
A p=5
B p+2q=13
C pq=1
Put x=tan4θI=cot(2tan1secθtanθsecθ+tanθ )dxI=cot(2tan11sin θ1+sin θ )dxI=(cot(2tan1(cosθ2sinθ2)2(cosθ2+sinθ2)2 )dx(cot(2tan1(tanπ4tanθ21+tanθ2tanπ4 )))dx=cot(2tan1tan(π4θ2))dx=cot(π2θ)dx=tanθ dx=x14dx=4 x545+C
On comparing, we get p=5 and q=4 .

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