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	<title>Non-Contiguous Pattern Avoidance in Binary Trees | Dairyko | The Electronic Journal of Combinatorics</title>
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	<meta name="DC.Creator.PersonalName" content="Michael Dairyko"/>
	<meta name="DC.Creator.PersonalName" content="Lara Pudwell"/>
	<meta name="DC.Creator.PersonalName" content="Samantha Tyner"/>
	<meta name="DC.Creator.PersonalName" content="Casey Wynn"/>
	<meta name="DC.Date.created" scheme="ISO8601" content="2012-08-23"/>
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	<meta name="DC.Description" xml:lang="en" content="In this paper we consider the enumeration of binary trees avoiding non-contiguous binary tree patterns. We begin by computing closed formulas for the number of trees avoiding a single binary tree pattern with 4 or fewer leaves and compare these results to analogous work for contiguous tree patterns. Next, we give an explicit generating function that counts binary trees avoiding a single non-contiguous tree pattern according to number of leaves and show that there is exactly one Wilf class of k-leaf tree patterns for any positive integer k.  In addition, we give a bijection between between certain sets of pattern-avoiding trees and sets of pattern-avoiding permutations.  Finally, we enumerate binary trees that simultaneously avoid more than one tree pattern."/>
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						<meta name="DC.Subject" xml:lang="en" content="Binary tree"/>
								<meta name="DC.Subject" xml:lang="en" content="Pattern avoidance"/>
				<meta name="DC.Title" content="Non-Contiguous Pattern Avoidance in Binary Trees"/>
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	<div id="articleTitle"><h3>Non-Contiguous Pattern Avoidance in Binary Trees</h3></div>
	<div id="authorString"><em>Michael Dairyko, Lara Pudwell, Samantha Tyner, Casey Wynn</em></div>
	<br />
			<div id="articleAbstract">
		<h4>Abstract</h4>
		<br />
		<div>In this paper we consider the enumeration of binary trees avoiding non-contiguous binary tree patterns. We begin by computing closed formulas for the number of trees avoiding a single binary tree pattern with 4 or fewer leaves and compare these results to analogous work for contiguous tree patterns. Next, we give an explicit generating function that counts binary trees avoiding a single non-contiguous tree pattern according to number of leaves and show that there is exactly one Wilf class of k-leaf tree patterns for any positive integer k.  In addition, we give a bijection between between certain sets of pattern-avoiding trees and sets of pattern-avoiding permutations.  Finally, we enumerate binary trees that simultaneously avoid more than one tree pattern.</div>
		<br />
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		<h4>Keywords</h4>
		<br />
		<div>Binary tree; Pattern avoidance</div>
		<br />
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