chứng minh rằng với mọi số thực a,b,c thỏa mãn điều kiện a + b + c = 1 thì$ \frac{1}{3^{a}} + \frac{1}{3^{b}} + \frac{1}{3^{c}} \geq 3(\frac{a}{3^{a}} + \frac{b}{3^{b}} + \frac{c}{3^{c}})$
mình sửa rồi đó bạn b có thể giải giúp mình đk hông? –  noty.yuni12 19-05-13 12:35 PM
đề sai kìa bạn ơi... 3^a mới đúng –  ♂Vitamin_Tờ♫ 19-05-13 09:57 AM
Em có thể xem thêm tại đây

Không mất tính tổng quát, giả sử: $a\ge b\ge c \Rightarrow \dfrac{1}{3^a}\le\dfrac{1}{3^b}\le\dfrac{1}{3^c}$.
Ta có:
$(a-b)(\dfrac{1}{3^a}-\dfrac{1}{3^b})\le0 \Leftrightarrow \dfrac{a}{3^a}+\dfrac{b}{3^b}\le\dfrac{b}{3^a}+\dfrac{a}{3^b}$
$(a-c)(\dfrac{1}{3^a}-\dfrac{1}{3^c})\le0 \Leftrightarrow \dfrac{a}{3^a}+\dfrac{c}{3^c}\le\dfrac{c}{3^a}+\dfrac{a}{3^c}$
$(b-c)(\dfrac{1}{3^b}-\dfrac{1}{3^c})\le0 \Leftrightarrow \dfrac{b}{3^b}+\dfrac{c}{3^c}\le\dfrac{b}{3^c}+\dfrac{c}{3^b}$
Cộng 3 BĐT trên lại ta được:
       $2(\dfrac{a}{3^a}+\dfrac{b}{3^b}+\dfrac{c}{3^c})\le\dfrac{b}{3^a}+\dfrac{a}{3^b}+\dfrac{c}{3^a}+\dfrac{a}{3^c}+\dfrac{b}{3^c}+\dfrac{c}{3^b}$
$\Leftrightarrow 3(\dfrac{a}{3^a}+\dfrac{b}{3^b}+\dfrac{c}{3^c})\le(a+b+c)(\dfrac{1}{3^a}+\dfrac{1}{3^b}+\dfrac{1}{3^c})$
$\Leftrightarrow 3(\dfrac{a}{3^a}+\dfrac{b}{3^b}+\dfrac{c}{3^c})\le\dfrac{1}{3^a}+\dfrac{1}{3^b}+\dfrac{1}{3^c}$
Dấu bằng xảy ra khi: $a=b=c=\dfrac{1}{3}$
Mình chứng minh theo cách chứng minh Chebyshev mà :D –  khangnguyenthanh 19-05-13 11:58 PM
Oh. Neu ma dung ngay Chebychev vs hai day don dieu ngc chieu cung dk nhi???????? –  thiensugacoi_95 19-05-13 06:20 PM

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