图16,AB=AC,AD=AE,AB、DC交于点M,AC、BE交于点N,角DAB=角EAC,求证AM=AN.
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图16,AB=AC,AD=AE,AB、DC交于点M,AC、BE交于点N,角DAB=角EAC,求证AM=AN.图16,AB=AC,AD=AE,AB、DC交于点M,AC、BE交于点N,角DAB=角EAC,
图16,AB=AC,AD=AE,AB、DC交于点M,AC、BE交于点N,角DAB=角EAC,求证AM=AN.
图16,AB=AC,AD=AE,AB、DC交于点M,AC、BE交于点N,角DAB=角EAC,求证AM=AN.
图16,AB=AC,AD=AE,AB、DC交于点M,AC、BE交于点N,角DAB=角EAC,求证AM=AN.
∵角DAB=角EAC
∴角DAC=∠EAB,
又AB=AC,AD=AE
∴△ADC≌△AEB
∴∠B=∠C又AB=AC,∠MAN为公共角
∴△AMC≌△ANB
∴AM=AN
18:(1)∵CD⊥AB,BE⊥AC,AO平分∠BAC,
∴OE=OD(角平分线的性质)
∵CD⊥AB,BE⊥AC
∴∠CEO=∠BDO=90°∠COE=∠BOD(对顶角)
在△COE和△BOD中∠COE=∠BODOD=OE∠CEO=∠BDO
∴△COE≌△BOD
∴OB=OC(全等三角形的对应边相等)
(2)证明:∵CD⊥AB于D点,BE⊥AC于点E
∴∠BDO=∠CEO=90°在△BDO和△CEO中 {∠BDO=∠CEO∠BOD=∠COEOB=OC
∴△BDO≌△CEO(AAS)
∴OD=OE
∵OD⊥AB,OE⊥AC,OA=OA
∴直角三角形AOD≌直角三角形AOE
∴∠1=∠2.
角DAB =角EAC,所以角DAC =角EAB,所以整个等于三角形ADC的三角形自动包围曝光,所以AM = AN;
回答补角DAB =角EAC,所以角DAC =角EAB(边角边(SAS))
回答补角DAB =角EAC,所以角DAC =角EAB,AB = AC,AD = AE(角边缘
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