Question
Let x2≠nπ−1,nϵN. Then, the value of ∫x√2sin(x2+1)−sin2(x2+1)2sin(x2+1)+sin2(x2+1)dx is equal to
Answer: Option B
:
B
We have, ∫x√2sin(x2+1)−sin2(x2+1)2sin(x2+1)+sin2(x2+1)dx=∫x√2sin(x2+1)−2sin(x2+1)cos(x2+1)2sin(x2+1)+2sin(x2+1)cos(x2+1)dx=∫x√1−cos(x2+1)1+cos(x2+1)dx=∫xtan(x2+12)dx=∫tan(x2+12)d(x2+12)=log|sec(x2+12)|+C
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:
B
We have, ∫x√2sin(x2+1)−sin2(x2+1)2sin(x2+1)+sin2(x2+1)dx=∫x√2sin(x2+1)−2sin(x2+1)cos(x2+1)2sin(x2+1)+2sin(x2+1)cos(x2+1)dx=∫x√1−cos(x2+1)1+cos(x2+1)dx=∫xtan(x2+12)dx=∫tan(x2+12)d(x2+12)=log|sec(x2+12)|+C
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