设a,b,c是正实数,求证:1/2a+1/2b+1/2c≥1/(b+c)+1/(c+a)+1/(a+

发布时间:2021-02-21 14:53:57

设a,b,c是正实数,求证:1/2a+1/2b+1/2c≥1/(b+c)+1/(c+a)+1/(a+b).

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======以下答案可供参考======
供参考答案1:
要证:1/2a+1/2b+1/2c≥1/(b+c)+1/(c+a)+1/(a+b).
只需证明:1/(a+b)1/a+1/b=(a+b)/ab>=2(a+b)/(a+b)^2=2/(a+b)>1/(a+b) 证毕!【当且仅当a=b时取=。】
1/2a+1/2b+1/2c=1/a+1/b+1/a+1/c+1/c+1/b
>=2[1/(b+c)+1/(c+a)+1/(a+b)]
>1/(b+c)+1/(c+a)+1/(a+b).
即:1/2a+1/2b+1/2c≥1/(b+c)+1/(c+a)+1/(a+b).
证毕!!供参考答案2:
我们显然有1/4a+1/4b=(a+b)/4ab≥1/(a+b)
同理1/4b+1/4c≥1/(b+c)
1/4c+1/4a≥1/(a+c)
两边相加即原不等式。
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