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Titlebook: Computational Intelligence Methods for Bioinformatics and Biostatistics; 16th International M Paolo Cazzaniga,Daniela Besozzi,Luca Manzoni

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Improving the Fusion of Outbreak Detection Methods with Supervised Learningon the trade-off between the detection rate of outbreaks and the chances of raising a false alarm. Recent research has shown that the use of machine learning for the fusion of multiple statistical algorithms improves outbreak detection. Instead of relying only on the binary outputs (. or .) of the s
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Learning Cancer Drug Sensitivities in Large-Scale Screens from Multi-omics Data with Local Low-Rank ylation) has become an invaluable source of information for assessing the expected performance of individual drugs and their combinations. Merging relevant information from the omics data modalities provides the statistical basis for determining suitable therapies for specific cancer patients. Diffe
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Random Sample Consensus for the Robust Identification of Outliers in Cancer Data areas such as computer vision, extensive testing and applications to clinical data, particularly in oncology, are still lacking. We applied this technique to synthetic and biomedical datasets, publicly available at The Cancer Genome Atlas (TCGA) and the UC Irvine Machine Learning Repository, to ide
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,Zufällige Mosaike und Ebenenprozesse,measures demonstrates the explorative nature of the genetic algorithm (useful in this parameter space to support the modeller). Correlations between parameters are drawn out that might otherwise be missed. Clustering highlights the uniformity of the best genetic algorithm results..Prediction of gend
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https://doi.org/10.1007/978-3-0348-7029-0ies. In particular, we apply the upward and downward query extension methods to obtain a finer or coarser granularity of the requested information. We define diverse use cases with which a user can perform a query specifying particular attributes related to metadata or genomic data, even if they are
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Hans Weinrichter,Franz Hlawatschcases; (.) Average/Maximum loss (e.g., . loss) per scan discriminates them, comparing the reconstructed/ground truth images. The results show that we can reliably detect AD at a very early stage with Receiver Operating Characteristics-Area Under the Curve (ROC-AUC) 0.780 while also detecting AD at a
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Hans Weinrichter,Franz Hlawatschormed experiments on synthetic data to evaluate our proposed approach and the adaptations in a controlled setting and used the reported cases for the disease . and . from 2001 until 2018 all over Germany to evaluate on real data. The experimental results show a substantial improvement on the synthet
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