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	<event:Event rdf:about="http://ebiquity.umbc.edu/event/html/id/314/Multivariate-Time-Series-Analysis-of-Physiological-and-Clinical-Data">
		<rdfs:label><![CDATA[Multivariate Time Series Analysis of Physiological and Clinical Data]]></rdfs:label>
		<event:title><![CDATA[Multivariate Time Series Analysis of Physiological and Clinical Data]]></event:title>
		<event:speaker>
<person:Collaborator rdf:about="http://ebiquity.umbc.edu/person/html/Patti/Ordonez"><person:name><![CDATA[Patti Ordonez]]></person:name><rdfs:label><![CDATA[Patti Ordonez]]></rdfs:label></person:Collaborator>
		</event:speaker>
		<event:startDate rdf:datatype="&xsd;dateTime">2009-09-23T14:00:00-05:00</event:startDate>
		<event:endDate rdf:datatype="&xsd;dateTime">2009-09-23T15:00:00-05:00</event:endDate>
		<event:location><![CDATA[ITE 325 B]]></event:location>
		<event:abstract><![CDATA[<a href ="http://www.csee.umbc.edu/~ordopa1/">Patricia Ordóñez Rozo</a> will talk abut her
PhD research
<br><br>
Multivariate Time Series Amalgams (MTSAs) provide an integrated,
multivariate approach to representing clinical and physiological
data. The hybrid representation automates the personalization of
baselines and thresholds based on a patient’s medical history while
also incorporating traditional baselines and thresholds. The
visualization of this representation captures the rate of change of
provider-selected parameters and the relationships among them. It
groups parameters according to their influence on four vital organs:
the heart, lung, kidney, and liver. A novel similarity metric for this
representation, inspired by wavelets and Symbolic Aggregate
Approximation (SAX), is the cornerstone to the development of a search
engine for large medical databases. ]]></event:abstract>
		<event:host>
<person:ProfessorEmeritus rdf:about="http://ebiquity.umbc.edu/person/html/Tim/Finin"><person:name><![CDATA[Tim Finin]]></person:name><rdfs:label><![CDATA[Tim Finin]]></rdfs:label></person:ProfessorEmeritus>
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