Analyzing Big Data with Dynamic Quantum Clustering
M. Weinstein, F. Meirer, A. Hume, Ph. Sciau, G. Shaked, R. Hofstetter,, E. Persi, A. Mehta, and D. Horn

TL;DR
Dynamic Quantum Clustering (DQC) is a novel, visualization-based methodology for exploring high-dimensional big data, uncovering hidden structures and unexpected information without prior hypotheses across diverse scientific fields.
Contribution
This paper introduces DQC as a new data analysis paradigm that reveals complex structures in big datasets often missed by traditional clustering methods.
Findings
DQC effectively uncovers small, meaningful data subsets.
Big, complex datasets contain hidden structures detectable by DQC.
DQC is applicable across multiple scientific disciplines.
Abstract
How does one search for a needle in a multi-dimensional haystack without knowing what a needle is and without knowing if there is one in the haystack? This kind of problem requires a paradigm shift - away from hypothesis driven searches of the data - towards a methodology that lets the data speak for itself. Dynamic Quantum Clustering (DQC) is such a methodology. DQC is a powerful visual method that works with big, high-dimensional data. It exploits variations of the density of the data (in feature space) and unearths subsets of the data that exhibit correlations among all the measured variables. The outcome of a DQC analysis is a movie that shows how and why sets of data-points are eventually classified as members of simple clusters or as members of - what we call - extended structures. This allows DQC to be successfully used in a non-conventional exploratory mode where one searches…
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Taxonomy
TopicsTime Series Analysis and Forecasting · Complex Systems and Time Series Analysis · Complex Network Analysis Techniques
