1.

\(x^2+y^2+z^2\ge2xy+2yz-2zx\)

\(\Leftrightarrow x^2+y^2+z^2-2xy-2yz+2zx\ge0\)

\(\Leftrightarrow\left(x-y+z\right)^2\ge0\) (luôn đúng)

Dấu "=" xảy ra khi \(x+z=y\)

2.

\(x^2+y^2+z^2+3\ge2\left(x+y+z\right)\)

\(\Leftrightarrow x^2-2x+1+y^2-2y+1+z^2-2z+1\ge0\)

\(\Leftrightarrow\left(x-1\right)^2+\left(y-1\right)^2+\left(z-1\right)^2\ge0\) (luôn đúng)

Dấu "=" xảy ra khi \(x=y=z=1\)

ta có : \(x^2+y^2+z^2+x^2y^2z^2-4xyz+y^2z^2-2yz+1\ge0\)

\(\Leftrightarrow\left(y^2-2yz+z^2\right)+\left(x^2-2xyz+y^2z^2\right)+\left(x^2y^2z^2-2xyz+1\right)\ge0\)

\(\Leftrightarrow\left(y-z\right)^2+\left(x-yz\right)^2+\left(xyz-1\right)^2\ge0\) (đúng \(\forall x;y;z\))

\(\Rightarrow\) (đpcm)

a) xy+xz-2y-2z=x(y+z)-2(y+z)=(y+z)(x-2)

b) \(x^2-6xy+9y^2-25z^2=\left(x-3y\right)^2-\left(5z\right)^2=\left(x-3y-5z\right)\left(x-3y+5z\right)\)

c) \(x^2-2x+2y-xy=x\left(x-2\right)+y\left(2-x\right)=x\left(x-2\right)-y\left(x-2\right)=\left(x-2\right)\left(x-y\right)\)

d) \(\left(x^2+1\right)^2-4x^2=\left(x^2+1-2x\right)\left(x^2+1+2x\right)=\left(x-1\right)^2\left(x+1\right)^2\)

e)\(x^2-y^2+2yz-z^2=x^2-\left(y^2-2yz+z^2\right)=x^2-\left(y-z\right)^2=\left(x+y-z\right)\left(x-y+z\right)\)

mơn bn nhìu

mình làm đc rồi nhé!!! tks m.n :)))

Áp dụng BĐT bunyakovsky:

\(\left(x^2+y^2+2z^2+2t^2\right)\left(1+1+\dfrac{1}{2}+\dfrac{1}{2}\right)\ge\left(x+y+z+t\right)^2\)

Lại có: theo AM-GM:\(\left(x+y+z+t\right)^2\ge4\left(x+z\right)\left(y+t\right)\)

\(\Rightarrow4VT\le3\Leftrightarrow VT\le\dfrac{3}{4}\)

Dấu = xảy ra khi \(x=y=2z=2t=\dfrac{1}{\sqrt{3}}\)

P/s : Nếu đề mà cho là (x+y)(z+t) thì die :v

dùng máy tính bỏ túi fx-570es plus là ra ngay

B= \(\left[\left(x+\frac{1}{2}\right)^2+\frac{3}{4}\right]^2\)

ta thấy : \(\left(x+\frac{1}{2}\right)^2\ge0\)

=> \(\left(x+\frac{1}{2}\right)^2+\frac{3}{4}\ge\frac{3}{4}\)

=>\(\left[\left(x+\frac{1}{2}\right)^2+\frac{3}{4}\right]^2\ge\frac{9}{16}\)

=> min B=9/16 kh x=-1/2

C= \(x^2-2xy+y^2+1\)= \(\left(x-y\right)^2+1\)

ta có \(\left(x-y\right)^2\ge0\)=>\(\left(x-y\right)^2+1\ge1\)

=> Min C=1 khi x=y

cảm ơn bạn nhìu nhak

Bài 1:

Ta có:

\(x^2+xy+y^2=\frac{3}{4}(x^2+2xy+y^2)+\frac{1}{4}(x^2-2xy+y^2)\)

\(=\frac{3}{4}(x+y)^2+\frac{1}{4}(x-y)^2\geq \frac{3}{4}(x+y)^2\)

\(\Rightarrow \sqrt{x^2+xy+y^2}\geq \frac{\sqrt{3}(x+y)}{2}\)

Hoàn toàn tương tự:

\(\sqrt{y^2+yz+z^2}\geq \frac{\sqrt{3}(y+z)}{2}; \sqrt{z^2+xz+x^2}\geq \frac{\sqrt{3}(x+z)}{2}\)

Cộng theo vế các BĐT trên:

\(\Rightarrow \sqrt{x^2+xy+y^2}+\sqrt{y^2+yz+z^2}+\sqrt{z^2+xz+x^2}\geq \sqrt{3}(x+y+z)\)

Ta có đpcm.

Dấu "=" xảy ra khi $x=y=z$

Bài 2:

BĐT cần chứng minh tương đương với:

$4(a^9+b^9)-(a+b)(a^3+b^3)(a^5+b^5)\geq 0$

$\Leftrightarrow 4(a+b)(a^8-a^7b+a^6b^2-a^5b^3+a^4b^4-a^3b^5+a^2b^6-ab^7+b^8)-(a+b)(a^8+a^3b^5+a^5b^3+b^8)\geq 0$

$\Leftrightarrow 4(a^8-a^7b+a^6b^2-a^5b^3+a^4b^4-a^3b^5+a^2b^6-ab^7+b^8)-(a^8+a^3b^5+a^5b^3+b^8)\geq 0$

$\Leftrightarrow 3a^8+3b^8+4a^6b^2+4a^2b^6+4a^4b^4-(4a^7b+4ab^7+5a^5b^3+5a^3b^5)\geq 0$

$\Leftrightarrow (a-b)^2(a^2-ab+b^2)(3a^4+5a^3b+7a^2b^2+5ab^3+3b^4)\geq 0$

BĐT trên luôn đúng vì:

$(a-b)^2\geq 0, \forall a,b$

$a^2-ab+b^2=(a-\frac{b}{2})^2+\frac{3}{4}b^2\geq 0, \forall a,b$

$3a^4+5a^3b+7a^2b^2+5ab^3+3b^4=3(a^4+b^4+2a^2b^2)+a^2b^2+5ab(a^2+b^2)$

$=3(a^2+b^2)^2+5ab(a^2+b^2)+a^2b^2$

$=(a^2+b^2)(3a^2+3b^2+5ab)+a^2b^2=(a^2+b^2)[3(a+\frac{5}{6}b)^2+\frac{11}{12}b^2]+a^2b^2\geq 0$ với mọi $a,b$

Do đó ta có đpcm.

Dấu "=" xảy ra khi $a=b$ hoặc $a+b=0$