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James Ruse 2012 MX2 Trial Q11(d) Geometrical Complex Numbers Question (1 Viewer)

ProdigyInspired

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Now, from i), AOC is found to be



What I'm getting confused at is ii). The solution makes sense until they make an expression for
Ok so, is , Arg is - which they never use again for some reason.
Then they use pythagoras to say that is
how'd they get the expression for ?
 

integral95

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Re: JR 2012 4U Trial 11d) Geometrical Complex Numbers Question



Now, from i), AOC is found to be



What I'm getting confused at is ii). The solution makes sense until they make an expression for
Ok so, is , Arg is - which they never use again for some reason.
Then they use pythagoras to say that is
how'd they get the expression for ?
Yeah the part that says is incorrect lol, skip that part.
 
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integral95

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Re: JR 2012 4U Trial 11d) Geometrical Complex Numbers Question

I would explain by saying that the vector OC (gamma)is OA (alpha) rotated anti-clockwise by 2pi/3 and scaled by root 2
 

ProdigyInspired

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Re: JR 2012 4U Trial 11d) Geometrical Complex Numbers Question

So If I do this



How would I go proving the scale?

Would this be right?
 

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