1999 AMC 8 Problems/Problem 23: Difference between revisions

Revision as of 14:28, 17 June 2011

Since the squares have side length $3$ , the area of the entire square is $9$ .

The segments divide the square into 3 equal parts, so the area of each part is $3$ .

The base of a triangle is $3$ , so the height must be $2$ .

$3-2=1$ .

$CM=\sqrt {3^2+2^2$ (Error compiling LaTeX. Unknown error_msg)} = $\sqrt 13$

Revision as of 14:26, 17 June 2011 view source Mrdavid445 (talk \| contribs) 336 edits Created page with "Since the squares have side length <math>3</math>, the area of the entire square is <math>9</math>. The segments divide the square into 3 equal parts, so the area of each part i..."		Revision as of 14:28, 17 June 2011 view source Mrdavid445 (talk \| contribs) 336 edits No edit summary Newer edit →
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	<math>3-2=1</math>.		<math>3-2=1</math>.

	<math>CM=\sqrt 3^2+2^2</math> = <math>\sqrt 13</math>		<math>CM=\sqrt {3^2+2^2</math>} = <math>\sqrt 13</math>