作AH//BC, 延長BG交於H, AH/BC=AG/GC=1/2, AF/FD=AH/BD=AH/(2/3BC)=3/2AH/BC=3/2*1/2=3/4,
即AF=3/7AD, 設三角形ABC麵積為S, 所以S_ABF=3/7S_ABD=3/7*2/3S=2/7S, 同理S_BJC=S_AEC=2/7S
所以S_EFJ=S-3*2/7S=S/7=5
應該有很多解法,拋磚引玉,這裏是我的解法
本帖於 2024-03-04 17:12:11 時間, 由普通用戶 萬斤油 編輯
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