vì (x-1/5)²⁰⁰⁴≥0 với mọi x

(y+0,4)¹⁰⁰≥0 với mọi y

(z-3)⁶⁷⁸≥0 với mọi z

=>(x-1/5)²⁰⁰⁴+(y+0.4)¹⁰⁰+(x-3)⁶⁷⁸≥0 với mọi x,y,z

nên \(\left\{{}\begin{matrix}\left(x-\dfrac{1}{5}\right)^{2004}=0\\\left(y+0,4\right)^{100}=0\\\left(z-3\right)^{678}=0\end{matrix}\right.=>\left\{{}\begin{matrix}x=\dfrac{1}{5}\\y=-0,4\\z=3\end{matrix}\right.\)

nhận thấy:(x-1/5)^2004>0

(y+0,4)^100>0

(z-3)^678>0

=>(x-1/5)^2004+(y+0,4)^100+(z-3)^678>0

mà theo đề:(x-1/5)^2004+(y+0,4)^100+(z-3)^678=0

=>(x-1/5)^2004=(y+0,4)^100=(z-3)^678=0

+)(x-1/5)^2004=0=>x-1/5=0=>x=1/5

+)(y+0,4)^100=0=>y+0,4=0=>y=-0,4

+)(z-3)^678=0=>z-3=0=>z=3

vậy..

tick nhé

Hoàng Phúc trả lời đúng rồi đó

x=0,2

y=0,4

z=3

k nha.

thanks 

chtt có thật sao mk  ko biết đấy!!!!!!!!!!!!!!!!!! 

Vì (x-1/5)²⁰⁰⁴ ≥ 0 ; (y+0.4)¹⁰⁰ ≥ 0 ; (z-3)⁶⁷⁸ ≥ 0 với mọi x,y,z

Để (x-1/5)²⁰⁰⁴+(y+0.4)¹⁰⁰+(z-3)⁶⁷⁸=0 <=> (x-1/5)²⁰⁰⁴ = 0 ; (y+0.4)¹⁰⁰ = 0 ; (z-3)⁶⁷⁸ = 0

=> x-1/5 = 0 ; y+0.4=0 ; z-3=0

=> x=1/5 ; y=-0.4 ; z=3

Bn chấp nhận kết bn mình nha

1/

a/ \(x^2+\left(y-10\right)^2=0\)

vì: \(\left\{{}\begin{matrix}x^2\ge0\forall x\\\left(y-10\right)^4\ge0\forall y\end{matrix}\right.\)

=> Dấu ''='' xảy ra khi \(\left\{{}\begin{matrix}x=0\\y-10=0\Rightarrow y=10\end{matrix}\right.\)

vậy......

b/ \(\left(0,5x-5\right)^{20}+\left(y^2-0,25\right)^{10}\le0\)

vì: \(\left\{{}\begin{matrix}\left(0,5x-5\right)^{20}\ge0\forall x\\\left(y^2-0,25\right)^2\ge0\forall y\end{matrix}\right.\)=> \(\left(0,5x-5\right)^{20}+\left(y^2-0,25\right)^{10}\ge0\)

=> Dấu ''='' xảy ra khi :

\(\left\{{}\begin{matrix}0,5x-5=0\\y^2-0,25=0\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}x=\dfrac{5}{0,5}=10\\y^2=0,25\Rightarrow\left[{}\begin{matrix}y=0,5\\y=-0,5\end{matrix}\right.\end{matrix}\right.\)

Vậy........

2/ Ta có: \(2011\equiv1\left(mod10\right)\)

\(2011^{201}\equiv1^{201}\equiv1\left(mod10\right)\);

Có: \(1997^3\equiv3\left(mod10\right)\)

\(\left(1997^3\right)^4\equiv3^4\equiv1\left(mod10\right)\)

\(\left(1997^{12}\right)^{14}\equiv1^{14}\equiv1\left(mod10\right)\) hay \(1997^{168}\equiv1\left(mod10\right)\)

=> \(2011^{201}-1997^{168}\equiv1-1\equiv0\left(mod10\right)\)

hay \(2011^{201}-1997^{168}\) chia hết cho 10

=> Đpcm

cho tao tiền hẳn nắm đấy đi

ngáo à

I . Trắc Nghiệm

1B . 2D . 3C . 5A

II . Tự luận

2,a,Ta có: A+(x\(^2\)y-2xy\(^2\)+5xy+1)=-2x\(^2\)y+xy\(^2\)-xy-1

\(\Leftrightarrow\) A=(-2x\(^2\)y+xy\(^2\)-xy-1) - (x\(^2\)y-2xy\(^2\)+5xy+1)

=-2x\(^2\)y+xy\(^2\)-xy-1 - x\(^2\)y+2xy\(^2\)-5xy-1

=(-2x\(^2\)y - x\(^2\)y) + (xy\(^2\)+ 2xy\(^2\)) + (-xy - 5xy ) + (-1 - 1)

= -3x\(^2\)y + 3xy\(^2\) - 6xy - 2

b, thay x=1,y=2 vào đa thức A

Ta có A= -3x\(^2\)y + 3xy\(^2\) - 6xy - 2

= -3 . 1\(^2\) . 2 + 3 .1 . 2\(^2\) - 6 . 1 . 2 -2

= -6 + 12 - 12 - 2

= -8

3,Sắp xếp

f(x) =9-x\(^5\)+4x-2x\(^3\)+x\(^2\)-7x\(^4\)

=9-x\(^5\)-7x\(^4\)-2x\(^3\)+x\(^2\)+4x

g(x) = x\(^5\)-9+2x\(^2\)+7x\(^4\)+2x\(^3\)-3x

=-9+x\(^5\)+7x\(^4\)+2x\(^3\)+2x\(^2\)-3x

b,f(x) + g(x)=(9-x\(^5\)-7x\(^4\)-2x\(^3\)+x\(^2\)+4x) + (-9+x\(^5\)+7x\(^4\)+2x\(^3\)+2x\(^2\)-3x)

=9-x\(^5\)-7x\(^4\)-2x\(^3\)+x\(^2\)+4x-9+x\(^5\)+7x\(^4\)+2x\(^3\)+2x\(^2\)-3x

=(9-9)+(-x\(^5\)+x\(^5\))+(-7x\(^4\)+7x\(^4\))+(-2x\(^3\)+2x\(^3\))+(x\(^2\)+2x\(^2\))+(4x-3x)

= 3x\(^2\) + x

g(x)-f(x)=(-9+x\(^5\)+7x\(^4\)+2x\(^3\)+2x\(^2\)-3x) - (9-x\(^5\)-7x\(^4\)-2x\(^3\)+x\(^2\)+4x)

=-9+x\(^5\)+7x\(^4\)+2x\(^3\)+2x\(^2\)-3x-9+x\(^5\)+7x\(^4\)+2x \(^3\)-x\(^2\)-4x

=(-9-9)+(x\(^5\)+x\(^5\))+(7x\(^4\)+7x\(^4\))+(2x\(^3\)+2x\(^3\))+(2x\(^2\)-x\(^2\))+(3x-4x)

= -18 + 2x\(^5\) + 14x\(^4\) + 4x\(^3\) + x\(^2\) - x