cs.AI updates on arXiv.org 10月15日 13:08
SG-XDEAT:表格数据监督学习新框架
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本文提出了一种名为SG-XDEAT的新型框架,用于表格数据的监督学习。该框架采用双重编码器,并集成交叉维度自注意、交叉编码自注意和自适应稀疏自注意机制,通过实证研究表明其性能优于基准。

arXiv:2510.12659v1 Announce Type: cross Abstract: We propose SG-XDEAT (Sparsity-Guided Cross Dimensional and Cross-Encoding Attention with Target Aware Conditioning), a novel framework designed for supervised learning on tabular data. At its core, SG-XDEAT employs a dual-stream encoder that decomposes each input feature into two parallel representations: a raw value stream and a target-conditioned (label-aware) stream. These dual representations are then propagated through a hierarchical stack of attention-based modules. SG-XDEAT integrates three key components: (i) Cross-Dimensional self-attention, which captures intra-view dependencies among features within each stream; (ii) Cross-Encoding self-attention, which enables bidirectional interaction between raw and target-aware representations; and (iii) an Adaptive Sparse Self-Attention (ASSA) mechanism, which dynamically suppresses low-utility tokens by driving their attention weights toward zero--thereby mitigating the impact of noise. Empirical results on multiple public benchmarks show consistent gains over strong baselines, confirming that jointly modeling raw and target-aware views--while adaptively filtering noise--yields a more robust deep tabular learner.

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表格数据 监督学习 自注意机制 SG-XDEAT 数据编码
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