Asked by Maddison
I have to simplify these please help im not sure how
things in parenthesis are exponets
-x(2)+8x-12 over
x-2
2a(3)+a(2)-3a over
6a(3)+5a(2)-6a
3x(2)+2x-1 over
x(2)+3x+2
a(2)-11a+30 over
a(2)-9a+18
2y(3)-12y(2)+2y over
y(2)-6y+1
things in parenthesis are exponets
-x(2)+8x-12 over
x-2
2a(3)+a(2)-3a over
6a(3)+5a(2)-6a
3x(2)+2x-1 over
x(2)+3x+2
a(2)-11a+30 over
a(2)-9a+18
2y(3)-12y(2)+2y over
y(2)-6y+1
Answers
Answered by
Anonymous
Use ^ and then the number to designate powers.
-x^2 + 8x - 12
-1(x^2 - 8x + 12)
-1(x-6)(x-2)
The x-2 in the denominator can canceled with the x-2 in the numerator and you are left with -1(x-6).
(2a^3 + a^2 - 3a)/(6a^3 + 5a^2 - 6a)
Factor out a out of the numerator and denominator and you are left with
(2a^2 + a - 3)/(6a^2 + 5a - 6)
Factor
((2x+3)(x-1))/((2x+3)(3x-2))
2x+3 in the numerator and denominator cancels out and you are left with (x-1)/(3x-2).
All of those problems can be done with factoring of the numerator and denominator and cancel out the common factors.
-x^2 + 8x - 12
-1(x^2 - 8x + 12)
-1(x-6)(x-2)
The x-2 in the denominator can canceled with the x-2 in the numerator and you are left with -1(x-6).
(2a^3 + a^2 - 3a)/(6a^3 + 5a^2 - 6a)
Factor out a out of the numerator and denominator and you are left with
(2a^2 + a - 3)/(6a^2 + 5a - 6)
Factor
((2x+3)(x-1))/((2x+3)(3x-2))
2x+3 in the numerator and denominator cancels out and you are left with (x-1)/(3x-2).
All of those problems can be done with factoring of the numerator and denominator and cancel out the common factors.
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