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English(EN) A Comprehensive Review of Large Language Models for Nanophotonics: From Surrogate Modeling to Autonomous Design

基础模型和LLM推动纳米光子学设计和发现

研究人员开发了MOCLIP,一个用于纳米光子学逆向设计的基礎模型,利用对比学习整合了几何和光谱表示。该模型实现了高通量零样本预测,能够快速设计超表面,并展示了在光学信息存储方面的潜力。一篇相关的评述探讨了大语言模型(LLMs)在纳米光子学中的应用,超越了传统神经网络,转向基于LLM的方法,这些方法能够生成代码并协调模拟工作流程以实现自主科学发现。 AI

影响 这些在纳米光子学基础模型和LLM方面取得的进展,有望加速光学器件的设计,并实现新的自主科学发现形式。

排序理由 该集群描述了一篇介绍纳米光子学基础模型的新研究论文,以及一篇关于同一领域LLM应用的评述论文。

在 Hugging Face Daily Papers 阅读 →

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基础模型和LLM推动纳米光子学设计和发现

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该集群描述了一篇介绍纳米光子学基础模型的新研究论文,以及一篇关于同一领域LLM应用的评述论文。
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paper, model release, product
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High
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50 days old
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报道来源 [2]

  1. arXiv cs.AI TIER_1 English(EN) · S. Rodionov, A. Burguete-Lopez, M. Makarenko, Q. Wang, F. Getman, A. Fratalocchi ·

    MOCLIP:大规模纳米光子逆向设计的基础模型

    arXiv:2511.18980v2 Announce Type: replace-cross Abstract: Foundation models (FM) are transforming artificial intelligence by enabling generalizable, data-efficient solutions across different domains for a broad range of applications. However, the lack of large and diverse dataset…

  2. Hugging Face Daily Papers TIER_1 English(EN) ·

    面向纳米光子学的大型语言模型综合评述:从代理建模到自主设计

    Metasurfaces have revolutionized the development of photonic devices by enabling unprecedented precision in light manipulation. However, their design processes are often constrained by computationally expensive simulations and complex high-dimensional design spaces. Although deep…