How do you solve x^2+2x<0?

1 Answer
geerky42
Mar 29, 2018

-2< x < 0

Explanation:

Leading degree is 2 which tells us that x^2+2x is quadratic function and leading coefficient is 1 which tells us that parabola opens upward.

Now we can find roots to give us more details.

Let x^2+2x = 0

x(x+2)=0

x = 0 \or x+2=0

x = 0 \or x=-2

This tells us that parabola passes x-axis at -2 and then again at 0.

So since parabola opens upward, it would below x-axis at anywhere between -2 and 0 exclusive, as seen in graph:
graph{ x^2+2x [-3, 1, -2, 1]}Thus x^2+2x < 0 at -2 < x < 0.

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