We present a two-phase strategy for optimizing a multidimensional, nonconvex function arising during genetic mapping of quantitative traits. Such traits are believed to be affected by multiple so called quantitative trait loci (QTL), and searching for d QTL results in a d-dimensional optimization problem with a large number of local optima. We combine the global algorithm DIRECT with a number of local optimization methods that accelerate the final convergence, and adapt the algorithms to problem-specific features. We also improve the evaluation of the QTL mapping objective function to enable exploitation of the smoothness properties of the optimization landscape. Our best two-phase method is demonstrated to be accurate in at least six dimensions and up to ten times faster than currently used QTL mapping algorithms.
Efficient algorithms for multidimensional global optimization in genetic mapping of complex traits.
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作者:Ljungberg Kajsa, Mishchenko Kateryna, Holmgren Sverker
| 期刊: | Advances and Applications in Bioinformatics and Chemistry | 影响因子: | 0.000 |
| 时间: | 2010 | 起止号: | 2010;3:75-88 |
| doi: | 10.2147/AABC.S9240 | ||
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