因为:(b+c)/4+a^2/(b+c)≥2√(b+c)[a^2/(b+c)]/4=a;
同理:(c+a)/4+b^2/(c+a)≥b;
(a+b)/4+c^2/(a+b)≥c
以上三式相加得:
(a+b+c)/2+a^2/(b+c)+b^2/(c+a)+c^2/(a+b)≥a+b+c)
移项即:
a^2/(b+c)+b^2/(c+a)+c^2/(a+b)≥1/2(a+b+c)
参考http://zhidao.baidu.com/link?url=4BqJprS-WujJwiyLkxatJG-nlYBrgs0IY0Qi0ED8D8odBxRG5eDVxh6ikt9GYNiDjJMlr-R3FuDcMgyUcIIifa