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Weird 2U Question in Cranbrook Trial (1 Viewer)

studybuddy09

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Got this question on Friday's 2009 test and I've been arguing with my friends over the answer

The question was find p so that 0<(=) x <(=) pi

when sinx=px

i wrote that p>0 because i thought about the quadrants and for x to satisfy domain it must be in the first and second quadrant, while another mate of mine (scardizzle) reckons its all real p


I dont really know

Pls Help

Studybuddy09
 

Trebla

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I'm not exactly sure what the question is asking for...is that the full question?

It's asking for values of p which satisfy 0 ≤ x ≤ π given that sin x = px. My interpretation is that it's looking for possible values of p for which the solution to sin x = px lies within 0 to π with end points inclusive.

If that's the correct interpretation then the answer would be all real p, because the solution x = 0 lies within 0 to π inclusive and also satisfies sin x = px regardless of what value p actually is...
 

Enigmanation

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If the values of p are to be such that y=px will intercept with y=sinx (0<= x <= pi) then p>=0. p cannot be all real numbers as this would include p<0, and y=-x or any straight line with a negative gradient will not intercept with y=sinx between 0 and pi.
 

Trebla

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The key thing is that the interval 0 ≤ x ≤ π INCLUDES x = 0. This means that say y = - x works because x = 0 satisifies sin x = - x (in other words they intersect at the origin)...
 

Enigmanation

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Oh my bad, cant believe i didn't realise that, yes your completely spot on. All real p.
 

scardizzle

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The key thing is that the interval 0 ≤ x ≤ π INCLUDES x = 0. This means that say y = - x works because x = 0 satisifies sin x = - x (in other words they intersect at the origin)...
yeh that's what i was thinking, it always intersects at x = 0 hence there will always be a solution reqardless of p, i think study buddy misinterpreted the question.
 

cutemouse

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How many marks was it?

Knowing who wrote the trial, I'd say it's been pilfered from somewhere. heh
 

scardizzle

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How many marks was it?

Knowing who wrote the trial, I'd say it's been pilfered from somewhere. heh
it was worth 2 marks

Omg, I don't even understand the question
it's pretty much asking what can p be for there to be a solution for sinx = px or alternativley sinx - px = 0

when x= 0

0 - 0 = 0 regardless of p

well atleast that's what i reasoned we'll probably find out the proper solution tomorrow
 
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