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Represent the following set of points in the XY plane :

$\{ ( x , y ) \; | \; |x| + |y| = 1 \}$

What i got:

1) if $x > 0, y > 0 : x = 1 - y$

2) if $x > 0, y < 0 : x = 1 + y$

3) if $x < 0, y > 0 : x = y - 1$

4) if $x < 0, y < 0 : x = -y -1$

Any help to solve this question would be greatly appreciated.

Thank you,

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    What you have works. You can check this by noting that if x or y<0, then -x or -y is positive, and thus you can use -x or -y for |x| or |y| in the original equation. If x or y>0, then use x or y in the original equation. What's your question exactly?2012-06-10

1 Answers 1

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Take each case without the absolute value:$\,\,\,y=1-x$$\;\;\;\;\;\;\;\;\;\;\;\;\;\;\;\;\;\;\;y=1-(-x)=1+x$$-y=1-x$$-y=1+x$so you can see we get four straight lines intersecting each with other two.

Well, now just draw these lines and get your nice... rhomboid (you could know this even before drawing anything from the above equations).

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    This seems to be a matter of terminology/language. I've no problem in calling the figure a rhombus and not a rhomboid if most authors do agree on this, but the fact is that a parallelogram with all its sides of equal length is a rhombus and thus a square is a rhombus. It doesn't really matter, I think, for this particular question.2012-06-10