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calculus (1 Viewer)

Mu5hi

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Draw neat sketch of the following graphs
2x^2-4x-6

dx/dy=4x-4

4(x-1) <------------is this right

when i use box for maximum/minimum

do i put x value as 4 or 1? (for the first point)
 

Gibbatron

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If you draw a quick graph, you can see its a parabola, and therefore only has one stationary point.
 

zazzy1234

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Draw neat sketch of the following graphs
2x^2-4x-6

dx/dy=4x-4

4(x-1) <------------is this right

when i use box for maximum/minimum

do i put x value as 4 or 1? (for the first point)
you put 1, due to the fact that x=1 not 4 =)
 

addikaye03

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Draw neat sketch of the following graphs
2x^2-4x-6

dx/dy=4x-4

4(x-1) <------------is this right

when i use box for maximum/minimum

do i put x value as 4 or 1? (for the first point)
dx/dy=4x-4 <----- that's supposed to be dy/dx, think of what its saying, change in y with respect to a change in x, since the RHS values are in terms of x this is the correct way of writing it. From here:

When dy/dx=0 ( a stationary point occurs)

4x-4=0

4(x-1)=0 [factorising]

x-1=0 [dividing 0 by 4]

therefore x=1

so when you set up the box you put x=1 as a point ( have a point either side of this) and its dy/dx value is 0.

Do you understand now?
 

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