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Representation Learning for Tabular Data: A Comprehensive Survey.

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    This summary is machine-generated.

    This survey explores tabular representation learning, focusing on Deep Neural Networks (DNNs) for classification and regression. It categorizes models by generalization and discusses advancements in tabular machine learning.

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    Area of Science:

    • Machine Learning
    • Data Science
    • Artificial Intelligence

    Background:

    • Tabular data is prevalent in machine learning for classification and regression.
    • Deep Neural Networks (DNNs) show promise in tabular data through representation learning.

    Purpose of the Study:

    • To systematically survey the field of tabular representation learning.
    • To cover background, challenges, benchmarks, and DNNs' pros and cons.
    • To organize existing methods based on generalization capabilities.

    Main Methods:

    • Categorization of models into specialized, transferable, and general.
    • Hierarchical taxonomy for specialized models (features, samples, objectives).
    • Exploration of strategies for feature and sample representations.

    Main Results:

    • Detailed strategies for high-quality representations in specialized models.
    • Pre-training and fine-tuning approaches for transferable models.
    • Adaptation strategies for general tabular foundation models across datasets.

    Conclusions:

    • Discussion of ensemble methods and extensions like open-environment learning and multimodal learning.
    • Overview of tabular understanding tasks.
    • Provides a comprehensive resource for tabular representation learning research.