đpcm<=>(\(\frac{a}{b+c+d}\)-\(\frac{1}{3}\))+(\(\frac{b}{a+c+d}\)-\(\frac{1}{3}\))+(\(\frac{c}{a+b+d}\)-\(\frac{1}{3}\))+(\(\frac{d}{a+b+c}\)-\(\frac{1}{3}\))\(\ge\)0

Xét giá trị của các dấu ngoặc,dễ thấy chúng đều lớn hơn hoặc bằng 0

Vậy thì bất đẳng thức trên là đúng hay đpcm là đúng

khoannnnnnnn, bn: Lê Hồ Trọng Tín ơi:

nếu a=1,b=2,c=1,d=1 thì: \(\frac{1}{2+1+1}=\frac{1}{4}-\frac{1}{3}\ge0???\)

mọe, t-i-k đúng nhầm :(((

@Akai Haruma

\(bdt\Leftrightarrow\frac{a-b}{b+c}+\frac{b-c}{c+d}+\frac{c-d}{a+d}+\frac{d-a}{a+b}\ge0\)

\(\Leftrightarrow\left(\frac{a-b}{b+c}+1\right)+\left(\frac{b-c}{c+d}+1\right)+\left(\frac{c-d}{d+a}+1\right)+\left(\frac{d-a}{a+b}+1\right)\ge4\)

\(\Leftrightarrow\frac{a+c}{b+c}+\frac{b+d}{c+d}+\frac{a+c}{d+a}+\frac{b+d}{a+b}\ge4\)

\(\Leftrightarrow\left(a+c\right)\left(\frac{1}{b+c}+\frac{1}{d+a}\right)+\left(b+d\right)\left(\frac{1}{c+d}+\frac{1}{a+b}\right)\ge4\)(*)

Theo Cauchy-Schwarz:

\(\frac{1}{b+c}+\frac{1}{d+a}\ge\frac{4}{a+b+c+d};\frac{1}{c+d}+\frac{1}{a+b}\ge\frac{4}{a+b+c+d}\)

Khi đó:\(\left(\cdot\right)\ge\left(a+c\right).\frac{4}{a+b+c+d}+\left(b+d\right).\frac{4}{a+b+c+d}=4\)

Xét BĐT phụ  \(\frac{a^3}{a^2+b^2}\ge\frac{2a-b}{2}\)\(\Leftrightarrow b\left(a-b\right)^2\ge0\)

Tương tự ta có:

\(\frac{b^3}{b^2+c^2}\ge\frac{2b-c}{2};\frac{c^3}{c^2+d^2}\ge\frac{2c-d}{2};\frac{d^3}{d^2+a^2}\ge\frac{2d-a}{2}\)

Cộng lại theo vế ta có:

\(VT\ge\frac{2a-b}{2}+\frac{2b-c}{2}+\frac{2c-d}{2}+\frac{2d-a}{2}\)

\(=\frac{2a-b+2b-c+2c-d+2d-a}{2}=\frac{a+b+c+d}{2}\)

Vậy BĐT đc chứng minh

1) Áp dụng bunhiacopxki ta được \(\sqrt{\left(2a^2+b^2\right)\left(2a^2+c^2\right)}\ge\sqrt{\left(2a^2+bc\right)^2}=2a^2+bc\), tương tự với các mẫu ta được vế trái \(\le\frac{a^2}{2a^2+bc}+\frac{b^2}{2b^2+ac}+\frac{c^2}{2c^2+ab}\le1< =>\)\(1-\frac{bc}{2a^2+bc}+1-\frac{ac}{2b^2+ac}+1-\frac{ab}{2c^2+ab}\le2< =>\)

\(\frac{bc}{2a^2+bc}+\frac{ac}{2b^2+ac}+\frac{ab}{2c^2+ab}\ge1\)<=> \(\frac{b^2c^2}{2a^2bc+b^2c^2}+\frac{a^2c^2}{2b^2ac+a^2c^2}+\frac{a^2b^2}{2c^2ab+a^2b^2}\ge1\)  (1) 

áp dụng (x² +y² +z²)(m²+n²+p²) \(\ge\left(xm+yn+zp\right)^2\)

(2a²bc +b²c² + 2b²ac+a²c² + 2c²ab+a²b²). VT\(\ge\left(bc+ca+ab\right)^2\)   <=> (ab+bc+ca)². VT \(\ge\left(ab+bc+ca\right)^2< =>VT\ge1\)  ( vậy (1) đúng)

dấu '=' khi a=b=c

4b, \(\frac{a^3}{a^2+b^2}+\frac{b^3}{b^2+c^2}+\frac{c^3}{c^2+a^2}=1-\frac{ab^2}{a^2+b^2}+1-\frac{bc^2}{b^2+c^2}+1-\frac{ca^2}{a^2+c^2}\)

\(\ge3-\frac{ab^2}{2ab}-\frac{bc^2}{2bc}-\frac{ca^2}{2ac}=3-\frac{\left(a+b+c\right)}{2}=\frac{3}{2}\)

\(K=\frac{a}{a+b+c}+\frac{b}{a+b+d}+\frac{c}{b+c+d}+\frac{d}{a+c+d}\)

Ta có : \(\frac{a}{a+b+c}< \frac{a+d}{a+b+c+d};\frac{b}{a+b+d}< \frac{b+c}{a+b+c+d}\)

\(\frac{c}{c+b+d}< \frac{a+c}{a+b+c+d};\frac{d}{c+a+d}< \frac{b+d}{a+b+c+d}\)

\(\Rightarrow K=\frac{a}{a+b+c}+\frac{b}{a+b+d}+\frac{c}{c+b+d}+\frac{d}{a+c+d}< \frac{a+d}{a+b+c+d}+\frac{b+c}{a+b+c+d}+\frac{c+a}{a+b+c+d}+\frac{d+b}{a+b+c+d}=\frac{1}{2}\)

\(\Rightarrow K^{10}< \left(\frac{1}{2}\right)^{10}=\frac{1}{2^{10}}< 1< 2020\)

Vậy ....