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Incorporating biological knowledge into evaluation of causal regulatory hypotheses
Lonnie Chrisman1, Pat Langley, Stephen Bay
1Institute for the Study of Learning and Expertise, 2164 Staunton Court, Palo Alto, CA 94306, USA. lonnie@apres.stanford.edu
Pacific Symposium on Biocomputing. Pacific Symposium on Biocomputing
|February 27, 2003
Abstract:
Biological data can be scarce and costly to obtain. The small number of samples available typically limits statistical power and makes reliable inference of causal relations extremely difficult. However, we argue that statistical power can be increased substantially by incorporating prior knowledge and data from diverse sources. We present a Bayesian framework that combines information from different sources and we show empirically that this lets one make correct causal inferences with small sample sizes that otherwise would be impossible.