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Re: x<y, x^2+y^2 [#permalink]
1
We do not know the definite values of \(x\) or \(y\).

Both the quantities will vary accordingly with the sign of \(x\) & \(y\)

Answer D
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Re: x<y, x^2+y^2 [#permalink]
Hello from the GRE Prep Club BumpBot!

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Re: x<y, x^2+y^2 [#permalink]
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