\(a^2+b^2\ge2ab\)

\(\Rightarrow a^2-2ab+b^2\ge0\)

\(\Rightarrow\left(a-b\right)^2\ge0\) (luôn đúng)

Vậy \(a^2+b^2\ge2ab\)

Áp dụng vào ta được :

\(a^2+1\ge2a\)

\(b^2+1\ge2b\)

\(c^2+1\ge2c\)

\(\Rightarrow\left(a^2+1\right)\left(b^2+1\right)\left(c^2+1\right)\ge2a.2b.2c=8abc\)(ĐPCM)

a/ x² + xy + y² + 1

= [x² + 2.x.\(\dfrac{y}{2}\) + (\(\dfrac{y}{2}\) )² ] + \(\dfrac{3y^2}{4}\) + 1

= ( x + \(\dfrac{y}{2}\) )² + \(\dfrac{3y^2}{4}\) + 1

Vì \(\left(x+\dfrac{y}{2}\right)^2\) \(\ge\) 0 với mọi x;y

và \(\dfrac{3y^2}{4}\ge0\) với mọi x;y

=> \(\left(x+\dfrac{y}{2}\right)^2+\dfrac{3y^2}{4}\ge0\) với mọi x;y

=> \(\left(x+\dfrac{y}{2}\right)^2+\dfrac{3y^2}{4}+1>0\)

a) Ta có:

\(n\left(2n-3\right)-2n\left(n+1\right)\)

\(=2n^2-3n-2n^2-2n\)

\(=-5n\)

Vì \(-5n⋮5\) với n thuộc Z

\(\Rightarrow n\left(2n-3\right)-2n\left(n+1\right)⋮5\) với n thuộc Z

b) Ta có:

\(\left(n^2+3n-1\right)\left(n+2\right)-n^3+2\)

\(=n^3+3n^2-n+2n^2+6n-2-n^3+2\)

\(=5n^2+5n\)

\(=5\left(n^2+n\right)\)

Vì \(5\left(n^2+n\right)⋮5\)

\(\Rightarrow\left(n^2+3n-1\right)\left(n+2\right)-n^3+2⋮5\)

c) Ta có:

\(\left(xy-1\right)\left(x^{2003}+y^{2003}\right)-\left(xy+1\right)\left(x^{2003}-y^{2003}\right)\)

\(=\left(xy+1-2\right)\left(x^{2003}+y^{2003}\right)-\left(xy+1\right)\left(x^{2003}-y^{2003}\right)\)

\(=\left(xy+1\right)\left(x^{2003}+y^{2003}\right)-2\left(x^{2003}+y^{2003}\right)-\left(xy+1\right)\left(x^{2003}-y^{2003}\right)\)

\(=\left(xy+1\right)\left(x^{2003}+y^{2003}-x^{2003}+y^{2003}\right)-2\left(x^{2003}+y^{2003}\right)\)

\(=2\left(xy+1\right)y^{2003}-2\left(x^{2003}+y^{2003}\right)\)

Vì \(2\left(xy+1\right)y^{2003}⋮2\)

\(2\left(x^{2003}+y^{2003}\right)⋮2\)

\(\Rightarrow2\left(xy+1\right)y^{2003}-2\left(x^{2003}+y^{2003}\right)⋮2\)

\(\Rightarrow\left(xy-1\right)\left(x^{2003}+y^{2003}\right)-\left(xy+1\right)\left(x^{2003}-y^{2003}\right)⋮2\)

xem lại đề

đề kiểu gì vậy bạn (1+2+3+...+n)^2 còn có chút hợp lí

BĐT Cosi cho 2 số a,b >0: 
a + b >= 2căn(ab) 

di từ: ( √a - √b)² ≥ 0 ( voi moi a , b ≥ 0 ) 

<=> a + b - 2√(ab) ≥ 0 

<=> a + b ≥ 2√(ab) 
dau "=" xay ra khi √a - √b = 0 <=> a = b 

Ta có:\(\left(\sqrt{a}-\sqrt{b}\right)^2\ge0\)\(\forall a,b\ge0\)

\(\Leftrightarrow a+b-2\sqrt{ab}\ge0\)

\(\Leftrightarrow a+b\ge2\sqrt{ab}\left(đpcm\right)\)

A=1-1/2+1/2-1/3+...+1/n-1/n+1

=1-1/n+1

=n/n+1 không là số nguyên

\(\left(1-x\right)\left(x^{31}+x^{30}+...+x+1\right)=\left(1-x\right)\left(1+x\right)\left(1+x^2\right).....\left(1+x^{16}\right)\)

VP = 1 - x³²

Đặt  \(A=x^{31}+x^{30}+..+x+1\Leftrightarrow xA=x^{32}+x^{31}+.......+x^2+x\)

VT = \(A-xA=\left(1-x\right)A=1-x^{32}\)= VP   (dpcm)