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Skeptyks

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If a question says 'derive the equation of the tangent to the curve
at the point (2ap, ap^2), does that mean to go through the whole process or can i just chuck the equation straight in?
 

Alkanes

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Usually its 2 marks for this question. So process would do. If it was 1 mark just write down the equation.
 

Skeptyks

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Thanks also, for the question "Find the equation of the chord XY on the parabola x^2 = 8y where X = (4t, 2t^2) and Y = (4r, 2r^2)".
Now, the equation of the chord is but I have no idea how to put that information into it so instead, I should find the gradient and then use the point gradient formula blablabla?
EDIT: Solved dw but still need an answer from below.
 
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SpiralFlex

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If a question says 'derive the equation of the tangent to the curve
at the point (2ap, ap^2), does that mean to go through the whole process or can i just chuck the equation straight in?
You need to derive it unless it says "DO NOT prove this result."
 

Skeptyks

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Ahh k thanks, got it ^^. For that question just above, what do I do?

EDIT2: Since it says find the equation, I have to make it into cartesian form correct? (I don't have the answers on me ><)
 
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SpiralFlex

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The answer should be in terms of and . Use your method you have just suggested. You should get:

 
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Skeptyks

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Aww man, i got x after that bracket, is that wrong?
 

Skeptyks

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One more question, find the equation of the chord of contact of tangents drawn from the external point (3,-1) to the parabola .
I know the equation is but I have no clue how to derive it.
 

SpiralFlex

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I drew a pretty diagram for you.



Let's find the gradient:







Now,








We can prove that the tangents intersect at this point. If you want I can prove by differentiating it first then finding equations for tangents at P and Q but I am sure you know how to do that, so for now accept it.



Let's define the external intersection point as . We can see that they are the exact same points.






Now,



So we can substitute these values into our original equation.






 
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Skeptyks

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I drew a pretty diagram for you.



Let's find the gradient:







Now,








We can prove that the tangents intersect at this point. If you want I can prove by differentiating it first then finding equations for tangents at P and Q but I am sure you know how to do that, so for now accept it.



Let's define the external intersection point as . We can see that they are the exact same points.






Now,



So we can substitute these values into our original equation.






Thankyou! Took me a bit to figure out how to derive it with the given co-ordinate but I think I got it now :D Thanks for spending the time + effort.
 

SpiralFlex

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Thankyou! Took me a bit to figure out how to derive it with the given co-ordinate but I think I got it now :D Thanks for spending the time + effort.
Anything for a delicious, I mean delightful human.
 

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