với mọi x;y;z . chứng minh rằng x2 + y2 + z2 ≥ xy = yz + zx
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Bài 1:
\(a,A=2x^2+2x+1=\left(x^2+2x+1\right)+x^2=\left(x+1\right)^2+x^2\\ Mà:\left(x+1\right)^2\ge0\forall x\in R\\ \Rightarrow\left(x+1\right)^2+x^2>0\forall x\in R\\ Vậy:A>0\forall x\in R\)
2:
a: =-(x^2-3x+1)
=-(x^2-3x+9/4-5/4)
=-(x-3/2)^2+5/4 chưa chắc <0 đâu bạn
b: =-2(x^2+3/2x+3/2)
=-2(x^2+2*x*3/4+9/16+15/16)
=-2(x+3/4)^2-15/8<0 với mọi x
hơi ngán dạng này :((((
a, \(x^2-3x+5=x^2-2.\frac{3}{2}x+\frac{9}{4}-\frac{9}{4}+5=\left(x-\frac{3}{2}\right)^2+\frac{11}{4}\ge\frac{11}{4}>0\forall x\)
b,
\(x^2-\frac{1}{3}x+\frac{5}{4}=x^2-2.\frac{1}{6}+\frac{1}{36}-\frac{1}{36}+\frac{5}{4}=\left(x-\frac{1}{6}\right)^2+\frac{11}{9}>0\forall x\)
c,
\(x-x^2-3=-\left(x^2-2.\frac{1}{2}x+\frac{1}{4}\right)+\frac{1}{4}-3=-\left(x-\frac{1}{2}\right)^2-\frac{11}{4}< 0\forall x\)d,
\(x-2x^2-\frac{5}{2}=-2\left(x^2-\frac{1}{2}x+\frac{5}{4}\right)=-2\left(x^2-2.\frac{1}{4}+\frac{1}{16}-\frac{1}{16}+\frac{5}{4}\right)=-2\left[\left(x-\frac{1}{4}\right)^2+\frac{19}{16}\right]=-2\left(x-\frac{1}{4}\right)^2-\frac{19}{8}< 0\forall x\)P/s : ko chắc lém :)))
1) \(A=x^2+2x+2=\left(x+1\right)^2+1\ge1>0\left(\forall x\right)\)
2) \(B=x^2+6x+11=\left(x+3\right)^2+2\ge2>0\left(\forall x\right)\)
3) \(C=4x^2+4x-2=\left(2x+1\right)^2-2\ge-2\) chưa chắc nhỏ hơn 0
4) \(D=-x^2-6x-11=-\left(x+3\right)^2-2\le-2< 0\left(\forall x\right)\)
5) \(E=-4x^2+4x-2=-\left(2x-1\right)^2-1\le-1< 0\left(\forall x\right)\)
1. \(A=x^2+2x+2=\left(x+1\right)^2+1\)
Vì \(\left(x+1\right)^2\ge0\forall x\)\(\Rightarrow\left(x+1\right)^2+1\ge1\)
=> Đpcm
2. \(B=x^2+6x+11=\left(x+3\right)^2+2\)
Vì \(\left(x+3\right)^2\ge0\forall x\)\(\Rightarrow\left(x+3\right)^2+2\ge2\)
=> Đpcm
3. \(C=4x^2+4x-2=-\left(4x^2-4x+2\right)\)
\(=-\left(4\left(x-\frac{1}{2}\right)^2+1\right)\)
Vì \(\left(x-\frac{1}{2}\right)^2\ge0\forall x\Rightarrow4\left(x-\frac{1}{2}\right)^2+1\ge1\)
\(\Rightarrow-\left(4\left(x-\frac{1}{2}\right)^2+1\right)\le1\)
=> Đpcm
4,5 làm tương tự
a: \(x^2+x+1=x^2+x+\dfrac{1}{4}+\dfrac{3}{4}\)
\(=\left(x+\dfrac{1}{2}\right)^2+\dfrac{3}{4}>=\dfrac{3}{4}>0\forall x\)
b: \(4y^2+2y+1\)
\(=4\left(y^2+\dfrac{1}{2}y+\dfrac{1}{4}\right)\)
\(=4\left(y^2+2\cdot y\cdot\dfrac{1}{4}+\dfrac{1}{16}+\dfrac{3}{16}\right)\)
\(=4\left(y+\dfrac{1}{4}\right)^2+\dfrac{3}{4}>=\dfrac{3}{4}>0\forall y\)
c: \(-2x^2+6x-10\)
\(=-2\left(x^2-3x+5\right)\)
\(=-2\left(x^2-3x+\dfrac{9}{4}+\dfrac{11}{4}\right)\)
\(=-2\left(x-\dfrac{3}{2}\right)^2-\dfrac{11}{2}< =-\dfrac{11}{2}< 0\forall x\)
`#3107.101107`
a)
`x^2 + x + 1`
`= (x^2 + 2*x*1/2 + 1/4) + 3/4`
`= (x + 1/2)^2 + 3/4`
Vì `(x + 1/2)^2 \ge 0` `AA` `x`
`=> (x + 1/2)^2 + 3/4 \ge 3/4` `AA` `x`
Vậy, `x^2 + x + 1 > 0` `AA` `x`
b)
`4y^2 + 2y + 1`
`= [(2y)^2 + 2*2y*1/2 + 1/4] + 3/4`
`= (2y + 1/2)^2 + 3/4`
Vì `(2y + 1/2)^2 \ge 0` `AA` `y`
`=> (2y + 1/2)^2 + 3/4 \ge 3/4` `AA` `y`
Vậy, `4y^2 + 2y + 1 > 0` `AA` `y`
c)
`-2x^2 + 6x - 10`
`= -(2x^2 - 6x + 10)`
`= -2(x^2 - 3x + 5)`
`= -2[ (x^2 - 2*x*3/2 + 9/4) + 11/4]`
`= -2[ (x - 3/2)^2 + 11/4]`
`= -2(x - 3/2)^2 - 11/2`
Vì `-2(x - 3/2)^2 \le 0` `AA` `x`
`=> -2(x - 3/2)^2 - 11/2 \le 11/2` `AA` `x`
Vậy, `-2x^2 + 6x - 10 < 0` `AA `x.`
a) Ta có:
\(x^2-x+1\)
\(=x^2-2\cdot\dfrac{1}{2}\cdot x+\dfrac{1}{4}+\dfrac{3}{4}\)
\(=\left(x-\dfrac{1}{2}\right)^2+\dfrac{3}{4}\)
Mà: \(\left(x-\dfrac{1}{2}\right)^2\ge0\) và \(\dfrac{3}{4}>0\) nên
\(\left(x-\dfrac{1}{2}\right)^2+\dfrac{3}{4}>0\forall x\)
\(\Rightarrow x^2-x+1>0\forall x\)
a. \(x^2+3x+5\)
\(=x^2+2.x^2.\dfrac{3}{2}+\dfrac{9}{4}+\dfrac{11}{4}\)
\(=\left(x+\dfrac{3}{2}\right)^2+\dfrac{11}{4}\ge\dfrac{11}{4}\)
=> đpcm
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