11/08/27 15:42:42.51
4(a+b)(b+c)(c+a)-(a+2b)(b+2c)(c+2a)
={4(b+c)*a^2 + 4(b+c)^2*a + 4bc(b+c)} - {2(b+2c)*a^2 + (b+2c)(4b+c)*a + 2bc(b+2c)}
=2b*a^2 + (4b^2+8bc+4c^2-4b^2-9bc-2c^2)*a + 2b^2c
=2b*a^2 + (-bc+2c^2)*a + 2b^2c
=2(ba^2+cb^2+ac^2)-abc
=6*(1/3)*(ba^2+cb^2+ac^2)-abc
≧6*abc-abc (相加相乗平均 等号成立はba^2=cb^2=ac^2⇔a=b=c)
=5abc>0