• Congratulations to the Class of 2024 on your results!
    Let us know how you went here
    Got a question about your uni preferences? Ask us here

Can anyone help me with this quadratic inequality ? (1 Viewer)

Drongoski

Well-Known Member
Joined
Feb 22, 2009
Messages
4,255
Gender
Male
HSC
N/A
(2-x)(x+1) >=0

Are you supposed to graph these on a parabola ?? :/
If you expand the LHS this becomes: -x2 + x + 2 > 0

The LHS is a quadratic in 'x'; if you sketch y = -x2 + x + 2 you get an upside-down parabola intersecting the x-axis at x = -1 and at x = 2. When you look at the graph it becomes blindingly clear that the part of the graph is > 0 (i.e. positive; i.e. above the x-axis) for the interval -1 < x < 2
 
Last edited:

SeCKSiiMiNh

i'm a fireball in bed
Joined
Mar 6, 2008
Messages
2,618
Location
island of screaming orgasms
Gender
Male
HSC
2009
(2-x)(x+1) >=0

Are you supposed to graph these on a parabola ?? :/
my teacher taught me this method, which works fine imo.

you need to sketch the parabola.

x intercepts are 2 and -1 and since x^2 is positive, the parabola is concave upwards.

from the inequality, (2-x)(x+1) is greater than or equal 0, so you need to highlight the part of the graph ABOVE the x-axis. in the case that it is LESS than zero, you need the highlight the part of the graph BELOW the x-axis.
looking at the highlighted bit, you can note the you highlighted the part on the graph where x is less than or equal to -1 and the part where x is greater than or equal to 2. and those are your answers.

sorry if this sounds confusing.:uhoh:

but in short, sketch, shade and write your answer.

and it'll work for cubic equations as well
 
Last edited:

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top