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JAMB - Mathematics (2018 - No. 59)

From a point R, 300m north of P, a man walks eastwards to a place; Q which is 600m from P. Find the bearing of P from Q correct to the nearest degree
026\(^o\)
045\(^o\)
210\(^o\)
240\(^o\)

स्पष्टीकरण

Cos θ = \(\frac{adj}{hyp}\)

  = \(\frac{300}{600}\)

  = 0.5

  θ = Cos - 10.5

  = 60

  ∠ RPQ = ∠ PQs

  So the bearing of P from Q is 180 + 60 = 240\(^o\)

  Answer is D

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