Hãy nhập câu hỏi của bạn vào đây, nếu là tài khoản VIP, bạn sẽ được ưu tiên trả lời.
1a, M(x)=\(x^4+x^2+1\)
b,M(-1)=(-1)\(^4\)+(-1)\(^2\)+1
=3
M(1)=(1)\(^4\)+(1)\(^2\)+1
=3
2a,P(x)=\(6x^4-3x^3+2x^2+2010\)
Q(x)=\(-3x^4+2x^3-5x^2-2011\)
b,P(x)+Q(x)=6x\(^4\)-3x\(^3\)+2x\(^2\)+2010-3x\(^4\)+2x\(^3\)-5x\(^2\)-2011
=(6x\(^4\)-3x\(^4\))+(-3x\(^3\)+2x\(^3\))+(2x\(^2\)-5x\(^2\))+(2010-2011)
= 3x\(^4\)-x\(^3\)-3x\(^2\)-1
P(x)-Q(x)=(6x\(^4\)-3x\(^3\)+2x\(^2\)+2010)-(-3x\(^4\)+2x\(^3\)-5x\(^2\)-2011)
=6x\(^4\)-3x\(^3\)+2x\(^2\)+2010+3x\(^4\)-2x\(^3\)+5x\(^2\)+2011
=(6x\(^4\)+3x\(^4\))+(-3x\(^3\)-2x\(^3\))+(2x\(^2\)+5x\(^2\))+(2010+2011)
= \(9x^4-5x^3+7x^2+4021\)
3a,P(x)=0<=>4x-1/2=0<=>4x=1/2<=>x=1/8
vậy 1/8 là n\(_o\) của P(x)
b,Q(x)=0<=>(x-1)(x+1)=0
<=>\(\left\{{}\begin{matrix}x-1=0\\x+1=0\end{matrix}\right.\)<=>\(\left\{{}\begin{matrix}x=1\\x=-1\end{matrix}\right.\)
vậy 1 và -1 là n\(_o\) của Q(x)
c,A(x)=0<=>-12x+18=0<=>-12x=-18<=>x=3/2
vậy 3/2 là n\(o\) của A(x)
d,B(x)=0<=>\(-x^2+16\)=0<=>-x\(^2\)=16<=>-(x)\(^2\)=-(\(\pm\)4)\(^2\)
<=>x=\(\pm\)4
vậy \(\pm\)4 là n\(_o\)củaB(x)
e,C(x)=0<=>3x\(^2\)+12=0<=>3x\(^2\)=-12<=>x\(^2\)=-4<=>x\(^2\)=-(4)\(^2\)
<=>x=4
vậy 4 là n\(_o\) của C(x)
Câu 1 : M(x) = 6x3 + 2x4 - x2 + 3x2 - 2x3 - x4 + 1 - 4x3
= ( 6x3 - 2x3 - 4x3 ) + ( 2x4 - x4 ) + ( 3x2 - x2 ) + 1
= x4 + 2x2 + 1
Có : \(x^4\ge0\forall x\)
\(x^2\ge0\forall x\Rightarrow2x^2\ge0\)
=> \(x^4+2x^2+1\ge1>0\forall x\)
=> M(x) vô nghiệm ( đpcm )
Câu 2 : A(x) = m + nx + px( x - 1 )
A(0) = 5 <=> m + n.0 + p.0( 0 - 1 ) = 5
<=> n + 0 + 0 = 5
<=> m = 5
A(1) = -2 <=> 5 + 1n + 1p( 1 - 1 ) = -2
<=> 5 + n + 0 = -2
<=> 5 + n = -2
<=> n = -7
A(2) = 7 <=> 5 + (-7) . 2 + 2p( 2 - 1 ) = 7
<=> 5 - 14 + 2p . 1 = 7
<=> -9 + 2p = 7
<=> 2p = 16
<=> p = 8
Vậy A(x) = 5 + (-7)x + 8x( x - 1 )
Bài 1:
a)
\(F+G+H=(x^3-2x^2+3x+1)+(x^3+x-1)+(2x^2-1)\)
\(=2x^3+4x-1\)
b)
\(F-G+H=0\)
\(\Leftrightarrow (x^3-2x^2+3x+1)-(x^3+x-1)+(2x^2-1)=0\)
\(\Leftrightarrow 2x+1=0\)
\(\Leftrightarrow x=-\frac{1}{2}\)
Bài 2:
a)
\(A=-4x^5-x^3+4x^2-5x+9+4x^5-6x^2-2\)
\(=(-4x^5+4x^5)-x^3+(4x^2-6x^2)-5x+(9-2)\)
\(=-x^3-2x^2-5x+7\)
\(B=-3x^4-2x^3+10x^2-8x+5x^3\)
\(=-3x^4+(5x^3-2x^3)+10x^2-8x\)
\(=-3x^4+3x^3+10x^2-8x\)
b)
\(P=A+B=(-x^3-2x^2-5x+7)+(-3x^4+3x^3+10x^2-8x)\)
\(=-3x^4+(3x^3-x^3)+(10x^2-2x^2)-(8x+5x)+7\)
\(=-3x^4+2x^3+8x^2-13x+7\)
\(P(-1)=-3.(-1)^4+2(-1)^3+8(-1)^2-12(-1)+7=23\)
\(Q=A-B=(-x^3-2x^2-5x+7)-(-3x^4+3x^3+10x^2-8x)\)
\(=3x^4-(x^3+3x^3)-(2x^2+10x^2)+(8x-5x)+7\)
\(=3x^4-4x^3-12x^2+3x+7\)
Bài 1 :
A + B = 4x2 - 5xy + 3y2 + 3x2 + 2xy - y2
= ( 4x2 + 3x2 ) - ( 5xy - 2xy ) + ( 3y2 - y2 )
= 7x2 - 3xy + 2y2
A - B = 4x2 - 5xy + 3y2 - ( 3x2 + 2xy - y2 )
= 4x2 - 5xy + 3y2 - 3x2 - 2xy + y2
= ( 4x2 - 3x2 ) - ( 5xy + 2xy ) + ( 3y2 + y2 )
= x2 - 7xy + 4y2
Bài 2 :
a) M + (5x2 - 2xy) = 6x2 + 9xy - y2
M = 6x2 + 9xy - y2 - (5x2 - 2xy)
M = 6x2 + 9xy - y2 - 5x2 + 2xy
M = ( 6x2 - 5x2 ) + ( 9xy + 2xy ) - y2
M = x2 + 11xy - y2
Vậy M = x2 + 11xy - y2
b) (3xy - 4y2) - N = x2 - 7xy + 8y2
N = 3xy - 4y2 - x2 - 7xy + 8y2
N = ( 3xy - 7xy ) - ( 4y2 - 8y2 ) - x2
N = -4xy + 4y2 - x2
Vậy N = -4xy + 4y2 - x2
3, Cho đa thức
A(x)+B(x) = (3x4-\(\dfrac{3}{4}\)x3+2x2-3)+(8x4+\(\dfrac{1}{5}\)x3-9x+\(\dfrac{2}{5}\))
= 3x4-\(\dfrac{3}{4}\)x3+2x2-3+8x4+\(\dfrac{1}{5}\)x3-9x+\(\dfrac{2}{5}\)
= (3x4+8x4)+(-3/4x3+1/5x3)+(-3+2/5)+2x2-9x
= 11x4 -0.55x3-2.6+2x2-9x
A(x)-B(x)=(3x4-\(\dfrac{3}{4}\)x3+2x2-3)-(8x4+\(\dfrac{1}{5}\)x3-9x+\(\dfrac{2}{5}\))
= 3x4-\(\dfrac{3}{4}\)x3+2x2-3-8x4-\(\dfrac{1}{5}\)x3+9x-\(\dfrac{2}{5}\)
= (3x4-8x4)+(-3/4x3-1/5x3)+(-3-2/5)+2x2+9x
= -5x4-0.95x3-3.4+2x2+9x
B(x)-A(x)=(8x4+\(\dfrac{1}{5}\)x3-9x+\(\dfrac{2}{5}\))-(3x4-\(\dfrac{3}{4}\)x3+2x2-3)
=8x4+\(\dfrac{1}{5}\)x3-9x+\(\dfrac{2}{5}\)-3x4+\(\dfrac{3}{4}\)x3-2x2+3
=(8x4-3x4)+(1/5x3+3/4x3)+(2/5+3)-9x-2x2
= 5x4+0.95x3+2.6-9x-2x2
Bài 1: Ta có: \(\left\{{}\begin{matrix}A=\left(-3x^5y^3\right)^4\ge0\\B=2x^2z^4\ge0\end{matrix}\right.\) với mọi x
Để $A+B=0$ thì \(\left\{{}\begin{matrix}\left(-3x^5y^3\right)^4=0\\2x^2z^4=0\end{matrix}\right.\)
\(\Rightarrow\left[{}\begin{matrix}x=0\\y=0\\z=0\end{matrix}\right.\)
Bài 2: Ta có: \(\left|x-5\right|\ge0\) với mọi x
\(\Rightarrow-3\left|x-5\right|\le0\) với mọi x
Để biểu thức lớn nhất,thì \(-3\left|x-5\right|=0\)
\(\Rightarrow\left|x-5\right|=0\)
Vậy x=5
\(\Rightarrow x=5\)
Câu 1:
Ta có: \(M\left(x\right)=6x^3+2x^4-x^2+3x^2-2x^3-x^4+1-4x^3\)
\(=x^4+2x^2+1\)
\(=\left(x^2+1\right)^2\ge1\forall x\)
hay M(x) vô nghiệm(đpcm)
Câu 2:
Ta có: A(0)=5
\(\Leftrightarrow m+n\cdot0+p\cdot0\cdot\left(0-1\right)=5\)
\(\Leftrightarrow m=5\)
Ta có: A(1)=-2
\(\Leftrightarrow m+n\cdot1+p\cdot1\cdot\left(1-1\right)=-2\)
\(\Leftrightarrow5+n=-2\)
hay n=-2-5=-7
Ta có: A(2)=7
\(\Leftrightarrow5+\left(-7\right)\cdot2+p\cdot2\cdot\left(2-1\right)=7\)
\(\Leftrightarrow-9+2p=7\)
\(\Leftrightarrow2p=16\)
hay p=8
Vậy: Đa thức A(x) là 5-7x+8x(x-1)
\(=5-7x+8x^2-8x\)
\(=8x^2-15x+5\)