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stationary points help! (1 Viewer)
- Thread starter lolzlolz
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ExtremelyBoredUser
Bored Uni Student
take the derivative
dy/dx = 3x^2 - 2ax + b (is the derivative of y )
and now at x = -1, 2 the gradient is 0 at is a stationary point (remember that the derivative can be considered as the gradient to y).
hence
dy/dx = 0;
3(-1)^2 - 2a(-1) + b = 0
3(2)^2 - 2a(2) + b = 0
Now you get a pair of simultaneous equations
2a + b = - 3 : Equation (1)
4a - b = 12 : Equation (2)
Using elimination method for these equations:
2a + b = - 3
4a - b = 12
-------------------
6a =9
a = 3/2 = 1.5
and from eqn 2,
b = 4a - 12
b = 4(1.5) - 12 = -6
Just did this mentally so double check for errors.
Edit: originally solved equation for x = -1, 3 as stat points.
Last edited:
solutions say a is 1.5 and b is -6
ExtremelyBoredUser
Bored Uni Student
LOL NO hold on i misread, its x=2 and x =-1 for stat points, oops. I'll quickly edit the sols haha oops
ExtremelyBoredUser
Bored Uni Student
The same process anyways, I updated my original post now, should be straightfroward.
at x = a,b there is stat points. stat points are gradient = 0 so find the derivative and substitute the respective x coordinates into the derivative function then make that equal to 0. You should get 2 simultaneous equations and then rest is just algebra.