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Soft Hoeffding Tree: A Transparent and Differentiable Model on Data Streams

  • 2025
  • OriginalPaper
  • Chapter
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Abstract

The Soft Hoeffding Tree (SoHoT) is a groundbreaking model designed for data streams, combining the interpretability of Hoeffding trees with the differentiability of soft trees. This innovative approach addresses the challenges of real-time AI by enabling transparent and adaptive decision-making. The chapter highlights the unique routing function of SoHoT, which allows for dynamic structure adaptation and interpretable predictions. Additionally, it introduces a metric to measure feature importance, showcasing the model's transparency. The experimental results demonstrate SoHoT's superior performance in estimating class probabilities and its balanced trade-off between transparency and performance. This chapter is a must-read for professionals seeking to advance the field of real-time, interpretable machine learning models.

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Title
Soft Hoeffding Tree: A Transparent and Differentiable Model on Data Streams
Authors
Kirsten Köbschall
Lisa Hartung
Stefan Kramer
Copyright Year
2025
DOI
https://doi.org/10.1007/978-3-031-78977-9_11
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