Papers › An Explainable Probabilistic Classifier for Categorical Data Inspired to Quantum Physics

An Explainable Probabilistic Classifier for Categorical Data Inspired to Quantum Physics

26 May 2021arXiv:2105.13988archive 2025-07-28

Emanuele Guidotti, Alfio Ferrara

This paper presents Sparse Tensor Classifier (STC), a supervised classification algorithm for categorical data inspired by the notion of superposition of states in quantum physics. By regarding an observation as a superposition of features, we introduce the concept of wave-particle duality in machine learning and propose a generalized framework that unifies the classical and the quantum probability. We show that STC possesses a wide range of desirable properties not available in most other machine learning methods but it is at the same time exceptionally easy to comprehend and use. Empirical evaluation of STC on structured data and text classification demonstrates that our methodology achieves state-of-the-art performances compared to both standard classifiers and deep learning, at the additional benefit of requiring minimal data pre-processing and hyper-parameter tuning. Moreover, STC provides a native explanation of its predictions both for single instances and for each target label globally.

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BIG-bench Machine LearningText Classificationtext-classification

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Text Classification 20NEWS Sparse Tensor Classifier Accuracy 87.3 #7 of 16 Archive leaderboard report
Text Classification 20NEWS Sparse Tensor Classifier F-measure 86.6 #7 of 16 Archive leaderboard report
Text Classification 20NEWS Sparse Tensor Classifier Precision 87.1 #7 of 16 Archive leaderboard report
Text Classification 20NEWS Sparse Tensor Classifier Recall 86.6 #7 of 16 Archive leaderboard report

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