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13 September, 05:00

integrate t sec^2 (2t) dt

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  1. 13 September, 08:00
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    F = t ⇨ df = dt

    dg = sec² 2t dt ⇨ g = (1/2) tan 2t



    integral of t sec² 2t dt = (1/2) t tan 2t - (1/2) integral of tan 2t dt

    u = 2t ⇨ du = 2 dt

    As integral of tan u = - ln (cos (u)), you get:

    integral of t sec² 2t dt = (1/4) ln (cos (u)) + (1/2) t tan 2t + constant

    integral of t sec² 2t dt = (1/2) t tan 2t + (1/4) ln (cos (2t)) + constant

    integral of t sec² 2t dt = (1/4) (2t tan 2t + ln (cos (2t))) + constant ⇦ answer
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