$解:(1)①當(dāng)x≥1時(shí)�,原方程可化為:$
$2x-2-x=4,解得x=6$
$②當(dāng)x<1時(shí)���,原方程可化為:$
$2-2x-x=4����,解得x=-\frac {2}{3}$
$所以原方程的解是x=6或x=-\frac {2}{3}$
$(2)①當(dāng)x≥1時(shí),原方程可化為: 2x-2-x=4���,解得x=6$
$②當(dāng)0≤x<1時(shí)����,原方程可化為:$
$2-2x-x=4���,解得x=-\frac {2}{3}��,不合題意$
$③當(dāng)x<0時(shí)���,原方程可化為2-2x+x=4$
$解得x=-2$
$所以原方程的解為x=6或x=-2$
