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Question
Evaluate:
`int_(-π/2)^(π/2) |sinx|dx`
Sum
Solution
I = `int_(-π/2)^(π/2) |sinx|dx`
When x < 0, sin x < 0
∴ |sin x| = – sin x
and when x > 0, sin x > 0
∴ |sin x| = sin x
∴ I = `int_(-π/2)^0 -sinx dx + int_0^(π/2) sinx dx`
= `[cosx]_(-π/2)^0 + [-cosx]_0^(π/2)`
= (1 – 0) + (0 + 1)
= 2
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Methods of Evaluation and Properties of Definite Integral
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