Clustering data by reordering them
Clustering data by reordering them
Grouping elements into families to analyse them separately is a standard analysis procedure in many areas of sciences. We propose herein a new algorithm based on the simple idea that members from a family look like each other, and don't resemble elements foreign to the family. After reordering the data according to the distance between elements, the analysis is automatically performed with easily-understandable parameters. Noise is explicitly taken into account to deal with the variety of problems of a data-driven world. We applied the algorithm to sort biomolecules conformations, gene sequences, cells, images, and experimental conditions.
Axel Descamps、Sélène Forget、Aliénor Lahlou、Claire Lavergne、Camille Berthelot、Guillaume Stirnemann、Rodolphe Vuilleumier、Nicolas Chéron
生物科学研究方法、生物科学研究技术
Axel Descamps,Sélène Forget,Aliénor Lahlou,Claire Lavergne,Camille Berthelot,Guillaume Stirnemann,Rodolphe Vuilleumier,Nicolas Chéron.Clustering data by reordering them[EB/OL].(2025-03-24)[2025-05-15].https://arxiv.org/abs/2503.19067.点此复制
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