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Prelim 2016 Maths Help Thread (1 Viewer)

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Paradoxica

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Now, for a more serious solution.....

make the substitution x = y-3

The function, in terms of y

3 - y + √y

Complete the square:

13⁄4 - (1⁄2-√y)²

back substitute to return x

13⁄4 - (1⁄2-√(x+3))²

The maximum value of the expression occurs when the negative term is as small as possible (in this case, 0)

So the maximum value is 13⁄4

The minimum value occurs when the negative term is as large as possible. Since there is no upper bound on this term, the minimum does not exist.

So the function range goes from -∞ to 13⁄4
 

drsabz101

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Can someone draw the situation, I know how to draw the two given lines, but not the 'M' and 'n'? snipping.PNG
 

InteGrand

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how do u find the locus of p?
It's the pair of intersecting lines that bisect the angles made by the two given lines (they go through the point of intersection of those two lines).

If you want the equations of the lines, the way they'd expect you to do it is to use the "perpendicular distance formula" and then equate the distances of P to each of the two given lines.
 

drsabz101

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why do we need to consider a positive and negative case?
 

drsabz101

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can someone draw a diagram labeling the locus, I am not getting this ( i am self-teaching)
 

InteGrand

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can someone draw a diagram labeling the locus, I am not getting this ( i am self-teaching)
Draw the two lines going through the point of intersection of the given lines and bisecting the angles made by these two given lines. This is the locus.
 
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