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4 December, 01:30

Find all solutions in the interval [0, 2π).

2 sin2x = sin x

Answers:

x = π/3, 2π/3

x = π/2, 3π/2, π/3, 2π/3

x = 0, π, π/6, 5π/6

x = π/6, 5π/6

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Answers (1)
  1. 4 December, 04:58
    0
    2sin^2 (x) = sinx

    we switch sinx from left to right and take sinx in front of brackets.

    sinx * (2sinx - 1) = 0

    now we need to solve 2 cases.

    first:

    sinx = 0

    that is for x = 0 and x = pi

    second:

    2sinx - 1 = 0

    2sinx = 1

    sinx = 1/2

    x = pi/6 or 5pi/6

    the case we had here is something like a*b=0 so either a=0 or b=0 thats why we solved problem this way.

    At the end comparing our results with options we can see that answer is third option.
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