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GUEST LECTURER
Ming Yuan
AFFILIATION
ISyE
ABSTRACT
Among the first microarray experiments were those measuring expression over time, and time course experiments remain common. Most methods to analyze time course data attempt to group genes sharing similar temporal profiles within a single biological condition. However, with time course data in multiple conditions, a main goal is to identify differential expression patterns over time. I will present a Hidden Markov modeling approach designed specifically to address this question. Simulation studies show a substantial increase in sensitivity without an increase in the false discovery rate when compared to a marginal analysis at each time point. Results from three case studies will be discussed.
DATE & TIME
Thursday, September 15, 2005 -- 11:00 AM
DURATION
1 hour
LOCATION
Executive Classroom #228
CONTACT PERSON
Ming Yuan