Publikationen von G Rätsch
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  Zeitschriftenartikel (20)
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           The SHOGUN Machine Learning Toolbox. Journal of Machine Learning Research 11, S. 1799 - 1802 (2010)
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           Statistical Tests for Detecting Differential RNA-Transcript Expression from Read Counts. Nature Precedings 2010, S. 1 - 11 (2010)
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           mGene: Accurate SVM-based gene finding with an application to nematode genomes. Genome Research 19 (11), S. 2133 - 2143 (2009)
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           mGene.web: a web service for accurate computational gene finding. Nucleic Acids Research (London) 37 (Supplement 2), S. W312 - W316 (2009)
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           Prototype Classification: Insights from Machine Learning. Neural computation 21 (1), S. 272 - 300 (2009)
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           Support Vector Machines and Kernels for Computational Biology. PLoS Computational Biology 4 (10), e1000173 (2008)
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           At-TAX: A Whole Genome Tiling Array Resource for Developmental Expression Analysis and Transcript Identification in Arabidopsis thaliana. Genome Biology 9 (7), R112, S. 1 - 16 (2008)
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           The Need for Open Source Software in Machine Learning. The Journal of Machine Learning Research 8, S. 2443 - 2466 (2007)
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           Common Sequence Polymorphisms Shaping Genetic Diversity in Arabidopsis thaliana. Science 317 (5836), S. 338 - 342 (2007)
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           PALMA: mRNA to Genome Alignments using Large Margin Algorithms. Bioinformatics 23 (15), S. 1892 - 1900 (2007)
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           Improving the Caenorhabditis elegans Genome Annotation Using Machine Learning. PLoS Computational Biology 3 (2 ), S. 0313 - 0322 (2007)
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           Large Scale Multiple Kernel Learning. The Journal of Machine Learning Research 7, S. 1531 - 1565 (2006)
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           Image Reconstruction by Linear Programming. IEEE Transactions on Image Processing 14 (6), S. 737 - 744 (2005)
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           Matrix Exponentiated Gradient Updates for On-line Learning and Bregman Projection. The Journal of Machine Learning Research 6, S. 995 - 1018 (2005)
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           Constructing descriptive and discriminative nonlinear features: Rayleigh coefficients in kernel feature spaces. IEEE Transactions on Pattern Analysis and Machine Intelligence 25 (5), S. 623 - 628 (2003)
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           A New Discriminative Kernel from Probabilistic Models. Neural computation 14 (10), S. 2397 - 2414 (2002)
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           Constructing Boosting algorithms from SVMs: an application to one-class classification. IEEE Transactions on Pattern Analysis and Machine Intelligence 24 (9), S. 1184 - 1199 (2002)
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           Sparse Regression Ensembles in Infinite and Finite Hypothesis Spaces. Machine Learning 48, S. 193 - 221 (2002)
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           An Introduction to Kernel-Based Learning Algorithms. IEEE Transactions on Neural Networks 12 (2), S. 181 - 201 (2001)
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           Input space versus feature space in kernel-based methods. IEEE Transactions on Neural Networks 10 (5), S. 1000 - 1017 (1999)