2007 AMC 8 Problems/Problem 22

Revision as of 19:55, 21 November 2011 by Problems17213 (talk | contribs) (Wrote solution)

Algebraic: The shortest segments would be perpendicular to the square. The lemming went $x$ meters horizontally and $y$ meters vertically. No matter how much it went, the lemming would have been $x$ and $y$ meters from the sides and $10-x$ and $10-y$ meters from the remaining two. To find the average, add the lengths of the four segments and divide by four: $\frac {x+10-x+y+10-y}{4} = 5$


Solution: 5 (C)