mk biết kết quả

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1

       \(A=5x^2+7y^2-3xy\)

\(+\)

        \(B=6x^2+9y^2-8xy\)

        \(P=11x^2+16y^2-11xy\)

         \(A=5x^2+7y^2-3xy\)

\(-\)

         \(B=6x^2+9y^2-8xy\)

         \(Q=-x^2-2y^2+5xy\)

Giải hết dùm mình nha

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

\(P-Q=\left(3x^2+5xy-7y\right)-\left(7x^2y+5xy-9y\right)\)

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

              \(=3x^2+\left(5xy-5xy\right)+\left(-7y+9y\right)+-7x^2y\)

               \(=3x^2+2y+-7x^2y\)

Bài 1:1)
f(x)=x+7x2−6x3+3x4+2x2+6x−2x4+1=7x+9x2+x4−6x3+1f(x)=x+7x2−6x3+3x4+2x2+6x−2x4+1=7x+9x2+x4−6x3+1
Sắp xếp: x4−6x3+9x2+7x+1x4−6x3+9x2+7x+1
2) bậc đa thức : 4
hệ số tự do : 1
hệ số cao nhất : 9
3)f(−1)=x4−6x3+9x2+7x+1=(−1)4−6.(−1)3+9.(−1)2+7.(−1)+1=1−(−6)+9+(−7)+1=10f(−1)=x4−6x3+9x2+7x+1=(−1)4−6.(−1)3+9.(−1)2+7.(−1)+1=1−(−6)+9+(−7)+1=10
mấy câu kia tương tự
Bài 2:
1.P=A+B=5x2−3xy+7y2+6x2−8xy+9y2=11x2−11xy+16y2P=A+B=5x2−3xy+7y2+6x2−8xy+9y2=11x2−11xy+16y2

Q=A−B=5x2−3xy+7y2−(6x2−8xy+9y2)=5x2−3xy+7y2−6x2+8xy−9y2=−x2+5xy−2y2Q=A−B=5x2−3xy+7y2−(6x2−8xy+9y2)=5x2−3xy+7y2−6x2+8xy−9y2=−x2+5xy−2y2
2.M=P−Q=11x2−11xy+16y2−(−x2+5xy−2y2)=11x2−11xy+16y2+x2−5xy+2y2=12x2−16xy+18y2M=P−Q=11x2−11xy+16y2−(−x2+5xy−2y2)=11x2−11xy+16y2+x2−5xy+2y2=12x2−16xy+18y2
Thay x=-1 và y=-2 có:
12x2−16xy+18y2=12.(−1)2−16.(−1).(−2)+18.(−2)2=5212x2−16xy+18y2=12.(−1)2−16.(−1).(−2)+18.(−2)2=52

3.T=M−N=12x2−16xy+18y2−3x2+16xy−14y2=9x2+4y2T=M−N=12x2−16xy+18y2−3x2+16xy−14y2=9x2+4y2
Ta có : 9x2 >0 và 4y2 >0 => T>0
=> T luôn nhận giá trị dương với mọi giá trị x, y