Would the following working help?
Domain of π(π₯) is π₯ β₯ β1.
π(β1) = β1, so π(π₯) intersects the curve at (β1,β1)
π(π₯) decreases as π₯ increases, hence (β1,β1) must be the only point of intersection.
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inverse functions MC help (1 Viewer)
- Thread starter jimmysmith560
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Domain of π(π₯) is π₯ β₯ β1.
π(β1) = β1, so π(π₯) intersects the curve at (β1,β1)
π(π₯) decreases as π₯ increases, hence (β1,β1) must be the only point of intersection.
In terms of this question, consider the following working:
β΄ Straight line with gradient 1, hence D
Another approach is as follows:
It is because
You can verify this by drawing the graph of
We know that:
sin x = cos(pi/2 - x) #Note: This is one of the complementary angle there are 5 other identities(Use wikipedia if need be). The co in cosine means complementary. Similarly co has the same meaning with cot and cosec
=> -sin x = -cos(pi/2 -x)
=> sin(-x) = -cos(pi/2 - x) # -sin(x) = sin(-x) because sine is an odd function
=> sin(u) = -cos(pi/2 + u) # let u = -x
=> sin(x) = -cos(pi/2 + x) # Since u is dummy variable you can just replace it with x
=> -sin(x) = cos(pi/2 + x)
You can also apply the trick with u with function like sin(-3x+45) = -sin(3x-45) [This is because sine is odd].