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In the diagram above, |PQ| = |PR| = |RS| and ∠RPS = 32°. Find the value of ∠QPR

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From the figure, < PSR = 32° (base angles of an isos. triangle)

\n\n

\$\\therefore\$ < PRS = 180° - (32° + 32°) = 116° (sum of angles in a triangle)

\n\n

< QRP = 180° - 116° = 64° (angle on a straight line)

\n\n

< PQR = 64° (base angles of an isos. triangle)

\n\n

< QPR = 180° - (64° + 64°) = 52°

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WAEC - Mathematics (1990 - No. 29)

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