x∧2+y\sqrt{xy}=336 and y∧2+x\sqrt{xy}=112 then x+y= where x y – InterviewSolution

1.	x∧2+y\sqrt{xy}=336 and y∧2+x\sqrt{xy}=112 then x+y= where x y are positive real number
Answer» x∧2+y\sqrt{xy}=336 and y∧2+x\sqrt{xy}=112 then x+y= where x y are positive real number

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