如图,AB⊥CD,AC⊥AE,AB=AD,AC=AE,AH⊥BC于H,HA的延长线交DE于G.求证:GD=GE
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如图,AB⊥CD,AC⊥AE,AB=AD,AC=AE,AH⊥BC于H,HA的延长线交DE于G.求证:GD=GE
如图,AB⊥CD,AC⊥AE,AB=AD,AC=AE,AH⊥BC于H,HA的延长线交DE于G.求证:GD=GE
如图,AB⊥CD,AC⊥AE,AB=AD,AC=AE,AH⊥BC于H,HA的延长线交DE于G.求证:GD=GE
在BC上截取BG'=AG
∵∠BAD=∠CAE=∠AHB=∠AHC=90°
∴∠BAH+∠ABC=∠BAH+∠DAG=∠CAH+∠BCA=∠CAH+∠EAG=90°
∴∠CBA=∠DAG,∠BCA=∠EAG
又∵AB=AD,AG=BG'
∴△ABG'≌△ADG(SAS)
∴DG=AG',∠DGA=∠BG'A
∴∠EGA=∠CG'A
又∵∠BCA=∠EAG,AC=AE
∴△ACG'≌△AEG(AAS)
∴GE=AG'=GD
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