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  <title><![CDATA[Ph.D. Dissertation Defense - Keerthi Arumugam]]></title>
  <body><![CDATA[<p><strong>Title</strong><em>:&nbsp; </em><em>Covert Communication Over Multi-user Channels</em></p>

<p><strong>Committee:</strong></p>

<p>Dr. Matthieu Bloch, ECE, Chair , Advisor</p>

<p>Dr. John Barry, ECE</p>

<p>Dr. Mary Ann Weitnauer, ECE</p>

<p>Dr. Mark Davenport, ECE</p>

<p>Dr. Sebastian Pokutta, ISyE</p>

<p><strong>Abstract: </strong></p>

<p>The&nbsp;objective&nbsp;of&nbsp;the&nbsp;proposed&nbsp;research&nbsp;is to characterize&nbsp;the&nbsp;maximum rate at which information can be transmitted reliably to a legitimate receiver over certain multi-user channels while simultaneously escaping detection from one or more adversaries.&nbsp;Specifically, we investigate&nbsp;the&nbsp;fundamental limits&nbsp;of&nbsp;covert communication over the following multi-user channel models&nbsp;&mdash; a K-user discrete memoryless multiple-access channel (MAC) monitored by a single warden,&nbsp;a discrete memoryless broadcast channel in which one of the receivers is a warden trying to detect the presence of a covert message, and a relay channel model in which the relay aids covert transmission amidst two non-colluding wardens each monitoring the transmitter and the relay, respectively. In all three models, we observe that the covert throughput is subject to the square-root law.&nbsp; Also, building upon a previous result that codeword-level asynchronism results in an improved&nbsp;covert throughput that circumvents the square-root law, we analyze the impact on the covert throughput as a result of&nbsp;symbol-level asynchronism at the receiver and the warden.&nbsp;</p>
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