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mthrun's Projects

abcanalysis icon abcanalysis

ABC Analysis computes optimal limits by exploiting the mathematical properties pertaining to distribution of analyzed items. The data containing positive values is divided into three disjoint subsets A, B and C, with subset A comprising very profitable values, i.e. largest data values ("the important few").

adaptgauss icon adaptgauss

Multimodal distributions can be modelled as a mixture of components. The model is derived using the Pareto Density Estimation (PDE) for an estimation of the pdf. PDE has been designed in particular to identify groups/classes in a dataset. Precise limits for the classes can be calculated using the theorem of Bayes.

corona2020 icon corona2020

Open source code for the extended abstract of the journal track of the 29th International Joint Conference on Artificial Intelligence (IJCAI 2020)

databionicswarm icon databionicswarm

The Databionic swarm is an unsupervised machine learning method for cluster analysis and the visualization of structures of high-dimensional data.

datavisualizations icon datavisualizations

A collection of various visualizations methods is provided. The flagship is explorative data science using distribution analysis and PDE-optimized violin plots.

dbt.flowcytometry icon dbt.flowcytometry

Databionics Toolbox for the Analysis of Fluorescence-Activated Cell Sorting (FACS) Data

drquality icon drquality

Several quality measurements for investigating the performance of dimensionality reduction methods are provided here. In addition a new quality measurement called Gabriel classification error is made accessible.

explainableai4timeseries2020 icon explainableai4timeseries2020

An explainable AI (XAI) frame based on swarm intelligence is introduced and applied on the use case of multivariate time series in order to explain states of water bodies.

fcps icon fcps

The Fundamental Clustering Problems Suite (FCPS) summaries 54 state-of-the-art clustering algorithms, common cluster challenges and estimations of the number of clusters as well as the testing for cluster tendency.

imageprocessing icon imageprocessing

ImageProcessing package for the lecture about deep learning for Object detection

meetings icon meetings

Code snippets from the meetings of the Marburg R User Group

pdebayes icon pdebayes

Nonparametric naiv bayes classifier using pareto density estimation as well as a parametric naiv bayes classifier using robustly estimated mean and standard deviation.

projectionbasedclustering icon projectionbasedclustering

A clustering approach for every projection method based on the generalized U*-matrix visualization of a topographic map

scatterdensity icon scatterdensity

The tool allows the user to perform two variants of two-dimensional density estimation, namely SDH and PDE.

tsat icon tsat

Time Series Analysis Tools (TSAT) can be used to describe event-pattern detection as a part of Complex event processing (CEP) for categorial time series and gives several approaches for numerical times series, like Filtering through FFT, WVT or predictions (e.g. compound model).

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