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English(EN) Stability of Measure-to-Measure Transformers on Sub-Gaussian Data

新理论探讨 measure-to-measure transformers 的稳定性

研究人员发表了一项关于 measure-to-measure transformers 的理论研究,分析了它们在 sub-Gaussian 数据上的数学性质。研究表明,这些 transformers 将 sub-Gaussian 输入映射到 sub-Gaussian 输出,确保了复合 softmax 算子的明确性。此外,该研究确定了 transformers 相对于 1-Wasserstein 距离表现出 Hölder 连续性,并为经验近似中的误差传播提供了估计。该工作还研究了 cross-attention 机制的均值场类似物,详细说明了其两个输入参数的独特 Hölder 正则性和样本复杂度,最终为 measure-to-measure transformers 提供了近似保证。 AI

影响 为理解 transformer 在特定数据分布下的稳定性和误差传播提供了理论框架。

排序理由 该集群包含一篇详细介绍 transformer 理论研究的学术论文。[lever_c_demoted from research: ic=1 ai=1.0]

在 arXiv cs.LG 阅读 →

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新理论探讨 measure-to-measure transformers 的稳定性

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该集群包含一篇详细介绍 transformer 理论研究的学术论文。[lever_c_demoted from research: ic=1 ai=1.0]
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报道来源 [1]

  1. arXiv cs.LG TIER_1 English(EN) · Frank Cole, Nicholas H. Nelsen, Takashi Furuya ·

    亚高斯数据上度量到度量Transformer的稳定性

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