JSM 2011 Online Program

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Abstract Details

Activity Number: 227
Type: Topic Contributed
Date/Time: Monday, August 1, 2011 : 2:00 PM to 3:50 PM
Sponsor: Biometrics Section
Abstract - #301146
Title: Measuring Reproducibility of High-Throughput Experiments
Author(s): Qunhua Li*+ and James Ben Brown and Haiyan Huang and Peter J. Bickel
Companies: University of California at Berkeley and University of California at Berkeley and University of California at Berkeley and University of California at Berkeley
Address: Dept of Statistics, Berkeley, CA, 94720-3860,
Keywords: reproducibility ; copula ; mixture model ; irreproducible discovery rate ; high-throughput experiment ; genomics
Abstract:

Reproducibility is essential to reliable scientific discovery in high- throughput experiments. In this work, we propose a unified approach to measure the reproducibility of findings identified from replicate experiments and identify putative discoveries using reproducibility. Unlike the usual scalar measures of reproducibility, our approach creates a curve, which quantitatively assesses when the findings are no longer consistent across replicates. Our curve is fitted by a copula mixture model, from which we derive a quantitative reproducibility score, which we call the "irreproducible discovery rate" (IDR) analogous to the FDR. This score can be computed at each set of paired replicate ranks and permits the principled setting of thresholds both for assessing reproducibility and combining replicates.

Since our approach permits an arbitrary scale for each replicate, it provides useful descriptive measures in a wide variety of situations to be explored. We study the performance of the algorithm using simulations and give a heuristic analysis of its theoretical properties. We demonstrate the effectiveness of our method in a ChIP-seq experiment.


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