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15 June, 05:32

2sinxcosx=sinx in the interval of [0,2pi]

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  1. 15 June, 05:59
    0
    Use the double angle function sin2x = 2sinxcosx.

    2sinxcosx + sinx = 0

    For the first part of the problem, consider the solutions on the interval where sinx = 0

    x = 0, pi

    Now consider the solutions where sinx does NOT equal zero.

    2sinxcosx + sinx = 0

    2sinxcosx = - sinx

    2cosx = - 1

    cosx = - 1/2

    x = 2pi/3, 4pi/3
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