解不等式|x-|2x+1||> 1
兩邊平方,去絕對值 x-|2x+1|1^2=1 x-|2x+1|1 x-1|2x+1|兩邊再平方,去絕對值 (x-1)^22x+1 x^2-2x+12x+1 x^24x若x為正,則兩邊除以x,符號不變 x4若x為負,則x可為任何值
1步步展開~x-|2x+1|1或x-|2x+1|x+1再繼續展開
