Graphing the derivative HSC question (1 Viewer)

BlueGas

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Okay so this is the first derivative, now what do I do?

 

kawaiipotato

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Label that new curve as g (x) to avoidconfusion and then repeat the steps you did before to find g'(x) (which is the second derivative of the original curve)
 

BlueGas

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Same steps? Okay lemme try this.

- At x = -2 there's a minimum, so g'(-2)=0? Because whatever stationary points there are they become intercepts
- To the left of x = -2 g''(x) > 0 so it'll start from the bottom of the graph
- At x = 1 there's a maximum so g'(1)=0 (same thing from the first point)
- At x = 3 I don't really know what to do for that I think it's not counted because it's already an "intercept"
- So basically this will look like a parabola? An upside down one?
 

InteGrand

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Same steps? Okay lemme try this.

- At x = -2 there's a minimum, so g'(-2)=0? Because whatever stationary points there are they become intercepts
- To the left of x = -2 g''(x) > 0 so it'll start from the bottom of the graph
- At x = 1 there's a maximum so g'(1)=0 (same thing from the first point)
- At x = 3 I don't really know what to do for that I think it's not counted because it's already an "intercept"
- So basically this will look like a parabola? An upside down one?
So was my steps/working out correct?
 
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BlueGas

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And I think the point of inflexion is at one, but at the same time there's a maximum too, so I wonder what happens then.
 

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