DocumentCode :
1607853
Title :
A time-varying model for DNA sequencing data
Author :
Haan, Nicholas M. ; Godsill, Simon J.
Author_Institution :
Dept. of Eng., Cambridge Univ., UK
fYear :
2001
fDate :
6/23/1905 12:00:00 AM
Firstpage :
245
Lastpage :
248
Abstract :
Methods for determining the letters of our genetic code, known as DNA sequencing, currently depend on clever use of electrophoresis to generate data sets indicative of the underlying sequence. Typically the subsequent off-line data processing is carried out using a combination of heuristic methods with little mathematical rigour. We present a novel model which is able to accurately predict the effect of the many biological processes which are involved, and moreover, which is usable on-line. Off-line methods have been hampered by the need for processing in as little time as possible after the data is generated; performing the processing on-line has enabled a more advanced algorithm to be used with associated improved performance. The algorithm is framed within a Bayesian probabilistic framework, thereby allowing representation of the random nature of the generative process, and relies on new advances in the burgeoning field of sequential Monte Carlo methods to perform non-linear filtering and model selection operations
Keywords :
Bayes methods; DNA; Monte Carlo methods; medical signal processing; probability; Bayesian probabilistic method; DNA sequencing data; biological processes prediction; data sets; electrophoresis; genetic code; heuristic methods; model selection; off-line data processing; sequential Monte Carlo methods; time-varying model; Bayesian methods; Biological processes; Biological system modeling; DNA; Data processing; Electrokinetics; Filtering algorithms; Genetics; Predictive models; Sequences;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Statistical Signal Processing, 2001. Proceedings of the 11th IEEE Signal Processing Workshop on
Print_ISBN :
0-7803-7011-2
Type :
conf
DOI :
10.1109/SSP.2001.955268
Filename :
955268
Link To Document :
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