香港寵物小精靈村落 論壇
標題:
Similar Triangles
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作者:
anthony
時間:
16/11/2005 07:36 PM
標題:
Similar Triangles
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In the above figure, AB,EF and DC are perpendicular to BC. Prove that
(a)△CEF~△CAB
(b)△BEF~△BDC
(c)1/a+1/b=1/c
我已經證明了(a)及(b),但是不懂得證明(c),希望大家可以幫幫忙,多謝。
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Last edited by anthony on 2005-11-17 at 06:50 PM
]
作者:
宇文水靈
時間:
16/11/2005 10:33 PM
Since, △CEF~△CAB,
EF/AB=CF/CB
i.e. c/a=CF/CB
c/a=( BC-BF)/CB
cBC= aBC-aBF
aBF= BC(a-c)
BF/BC=(a-c) /a------------------(1)
△BEF~△BDC
EF/DC=BF/BC
c/b=BF/BC--------------------(2)
From (1) & (2), c/b=BF/BC=(a-c)/a
c/b= (a-c)/a
ac=ab-cb-------------(*)
Divide (*) by abc, 1/b= 1/c- 1/a
1/a+1/b=1/c
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