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Question Number 47788 by behi83417@gmail.com last updated on 14/Nov/18

Commented by behi83417@gmail.com last updated on 14/Nov/18

ABCD:square. ∡AEC=θ,∡BED=ϕ. show that: (S_(BE^▲ D) /S_(AE^▲ C) )=((tgϕ)/(tgθ))

$${ABCD}:{square}. \\ $$$$\measuredangle{AEC}=\theta,\measuredangle{BED}=\varphi. \\ $$$${show}\:{that}:\:\:\:\:\frac{{S}_{{B}\overset{\blacktriangle} {{E}D}} }{{S}_{{A}\overset{\blacktriangle} {{E}C}} }=\frac{{tg}\varphi}{{tg}\theta} \\ $$

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