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If AACBZECD=AADCE, ZCAB = 63⁰,52°, and ZDEC = 5xDEx = [?]CB
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If AACBZECD=AADCE, ZCAB = 63⁰,52°, and ZDEC = 5xDEx = [?]CB

If AACBZECD=AADCE, ZCAB = 63⁰,52°, and ZDEC = 5xDEx = [?]CB-example-1
User Vlad Alivanov
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given:


\angle CAB=63^0,\text{ }\angle ECD=52^0\text{ , }\angle DEC=5x

Find: x

Explanation:


\begin{gathered} \angle ECD=\angle BCA=52^0 \\ \angle CAB+\angle ABC+\angle BCA=180^0 \\ 63^0+\angle ABC+52^0=180^0 \\ \angle ABC=65^0 \end{gathered}
\begin{gathered} \angle ABC=\angle CDE \\ \angle CDE+\angle DEC+\angle ECD=180^0 \\ 65^0+5x+52^0=180^0 \\ 5x=63^0 \\ x=12.6^0 \end{gathered}

User Jtsnr
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