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Question
画图 $y = 2sqrt3{x^2}$,$y = x$
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交点为$(0,0)$和$(4,4)$
$y=2\sqrt[3]{x^2}$是过原点,在$\mathbb{R}$上单调递减于$(-\infty,0)$,单调递增于$(0,+\infty)$的偶函数曲线;$y=x$是过一、三象限的直线