Improving the Sensitivity of Statistical Testing for Clusterability with Mirrored-Density Plots (Unknown language)
- New search for: Thrun, Michael C.
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Machine Learning Methods in Visualisation for Big Data
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19-23
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2020
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- Conference paper / Electronic Resource
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Title:Improving the Sensitivity of Statistical Testing for Clusterability with Mirrored-Density Plots
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- New search for: The Eurographics Association
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Publication date:2020
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Size:5 pages
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Type of media:Conference paper
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Type of material:Electronic Resource
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Language:Unknown language
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Table of contents conference proceedings
The tables of contents are generated automatically and are based on the data records of the individual contributions available in the index of the TIB portal. The display of the Tables of Contents may therefore be incomplete.
- 1
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Progressive Multidimensional Projections: A Process Model based on Vector QuantizationVentocilla, Elio Alejandro / Martins, Rafael M. / Paulovich, Fernando V. / Riveiro, Maria | 2020
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ModelSpeX: Model Specification Using Explainable Artificial Intelligence MethodsSchlegel, Udo / Cakmak, Eren / Keim, Daniel A. | 2020
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Visual Analysis of the Impact of Neural Network Hyper-ParametersJönsson, Daniel / Eilertsen, Gabriel / Shi, Hezi / Zheng, Jianmin / Ynnerman, Anders / Unger, Jonas | 2020
- 19
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Improving the Sensitivity of Statistical Testing for Clusterability with Mirrored-Density PlotsThrun, Michael C. | 2020
- 25
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Visual Interpretation of DNN-based Acoustic Models using Deep AutoencodersGrósz, Tamás / Kurimo, Mikko | 2020