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[几何] 几何

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king12123

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king12123 posted 2015-8-29 13:19 |Read mode
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isee

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isee posted 2015-8-29 16:47
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请楼主发一个标答看看。谢谢。
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king12123

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original poster king12123 posted 2015-8-29 20:09
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isee

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isee posted 2015-8-31 10:52

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Last edited by isee 2017-6-20 17:06

king12123 发表于 2015-8-29 20:09
    高,实在是高!

======
2017年6月20日录为文字

    题:在三角形ABC中,角ABC为直角,点M为边AC的中点,AT垂直于AC,TM的延长线与BC交于点D,联结TB,证明:角ABT=角CAD。

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由M为AC的中点,知TA,TM,TC,TE为调和线束。
设TA的延长线与直线BC交于点F,则点F,D,C,E为调和点列。
设点P为点D在直线AT上的投影,则点F,P,A,T为调和点列。
又角ABC为90度,则角PBA=角ABT。
注意到,角PBA=角PDA,又由PD平行于AC,知角ABT=角CAD。
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其妙

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其妙 posted 2015-8-31 13:45
连内角平分线定理也参与调和点列了!
可以用解析法吗?
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isee

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isee posted 2015-9-1 14:22
连内角平分线定理也参与调和点列了!
可以用解析法吗?
其妙 发表于 2015-8-31 13:45

    2楼链接里,原帖的楼主就是用的解析法。。。不过,链接里的楼主没有发过程。。。
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