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RECOMB
2010
Springer

naiveBayesCall: An Efficient Model-Based Base-Calling Algorithm for High-Throughput Sequencing

13 years 6 months ago
naiveBayesCall: An Efficient Model-Based Base-Calling Algorithm for High-Throughput Sequencing
Immense amounts of raw instrument data (i.e., images of fluorescence) are currently being generated using ultra high-throughput sequencing platforms. An important computational challenge associated with this rapid advancement is to develop efficient algorithms that can extract accurate sequence information from raw data. To address this challenge, we recently introduced a novel model-based base-calling algorithm that is fully parametric and has several advantages over previously proposed methods. Our original algorithm, called BayesCall, significantly reduced the error rate, particularly in the later cycles of a sequencing run, and also produced useful base-specific quality scores with a high discrimination ability. Unfortunately, however, BayesCall is too computationally expensive to be of broad practical use. In this paper, we build on our previous model-based approach to devise an efficient base-calling algorithm that is orders of magnitude faster than BayesCall, while still maintai...
Wei-Chun Kao, Yun S. Song
Added 18 Oct 2010
Updated 18 Oct 2010
Type Conference
Year 2010
Where RECOMB
Authors Wei-Chun Kao, Yun S. Song
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