问题标题:
如图所示,在△ABC和△ADE众,AB=AC,AD=AE,∠DAB=∠EAC,AD,AE交BC于点F,G.求证DE‖B如图所示,在△ABC和△ADE中,AB=AC,AD=AE,∠DAB=∠EAC,AD,AE交BC于点F,G.求证DE‖BC
问题描述:
如图所示,在△ABC和△ADE众,AB=AC,AD=AE,∠DAB=∠EAC,AD,AE交BC于点F,G.求证DE‖B
如图所示,在△ABC和△ADE中,AB=AC,AD=AE,∠DAB=∠EAC,AD,AE交BC于点F,G.求证DE‖BC
宫宝丽回答:
∵∠B=∠C,AB=AC,∠DAB=∠EAC
∴△ABF≌△ACG(ASA)
∴AF=AG,
即△AFG也是等腰三角形
∴∠AFG=∠AGF
又∵∠DAE=∠FAG,∠D=∠E
∴180°-2∠AFG=180°-2∠D
即∠AFG=∠D
∴FG//DE
∴BC//DE
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