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प्रश्न
In the following figure, AD is the median of ΔABC. The bisectors of ∠ADB and ∠ADC meet AB and AC in points E and F, respectively. Prove that: EF || ВС.
बेरीज
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उत्तर
Given:
In △ABC, AD is the median. The bisectors of ∠ADB and ∠ADC meet AB and AC at E and F, respectively.
Since AD is the median of △ABC,
BD = DC
⇒ Now, in △ADB, DE bisects ∠ADB.
So, by the Angle Bisector Theorem,
`(AE)/(EB) = (AD)/(DB)` ...(1)
⇒ Also, in △ADC, DF bisects ∠ADC,
So, by the Angle Bisector Theorem,
`(AF)/(FC) = (AD)/(DC)` ...(2)
But BD = DC. Hence, from (1) and (2),
`(AE)/(EB) = (AF)/(FC)`
Therefore, the points E and F divide the sides AB and AC in the same ratio.
So, by the converse of the Basic Proportionality Theorem,
EF || BC
Hence proved.
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