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多模态超分辨率:发现隐藏物理及其在聚变等离子体中的应用。

Multimodal super-resolution: discovering hidden physics and its application to fusion plasmas.

作者信息

Jalalvand Azarakhsh, Kim SangKyeun, Seo Jaemin, Hu Qiming, Curie Max, Steiner Peter, Nelson Andrew Oakleigh, Na Yong-Su, Kolemen Egemen

机构信息

Princeton University, Princeton, NJ, USA.

Princeton Plasma Physics Laboratory, Princeton, NJ, USA.

出版信息

Nat Commun. 2025 Sep 26;16(1):8506. doi: 10.1038/s41467-025-63492-1.

Abstract

Understanding complex physical systems often requires integrating data from multiple diagnostics, each with limited resolution or coverage. We present a machine learning framework that reconstructs synthetic high-temporal-resolution data for a target diagnostic using information from other diagnostics, without direct target measurements during the inference. This multimodal super-resolution technique improves diagnostic robustness and enables monitoring even in case of measurement failures or degradation. Applied to fusion plasmas, our method targets edge-localized modes (ELMs), which can damage plasma-facing materials. By reconstructing super-resolution Thomson Scattering data from complementary diagnostics, we uncover fine-scale plasma dynamics and validate the role of resonant magnetic perturbations (RMPs) in ELM suppression through magnetic island formation. The approach provides new observation supporting the plasma profile flattening due to these islands. Our results demonstrate the framework's ability to generate high-fidelity synthetic diagnostics, offering a powerful tool for ELM control development in future reactors like ITER. The approach is broadly transferable to other domains facing sparse, incomplete, or degraded diagnostic data, opening new avenues for discovery.

摘要

理解复杂的物理系统通常需要整合来自多种诊断方法的数据,每种诊断方法的分辨率或覆盖范围都有限。我们提出了一种机器学习框架,该框架利用来自其他诊断方法的信息为目标诊断重建合成的高时间分辨率数据,在推理过程中无需直接进行目标测量。这种多模态超分辨率技术提高了诊断的稳健性,即使在测量失败或退化的情况下也能进行监测。应用于聚变等离子体时,我们的方法以边缘局域模(ELM)为目标,ELM会损坏面向等离子体的材料。通过从互补诊断中重建超分辨率汤姆逊散射数据,我们发现了精细尺度的等离子体动力学,并验证了共振磁扰动(RMP)通过磁岛形成在抑制ELM中的作用。该方法提供了新的观测结果,支持了由于这些磁岛导致的等离子体轮廓变平。我们的结果证明了该框架生成高保真合成诊断的能力,为未来像国际热核聚变实验堆(ITER)这样的反应堆中的ELM控制开发提供了一个强大的工具。该方法可广泛应用于面临稀疏、不完整或退化诊断数据的其他领域,开辟了新的发现途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/559f/12475251/b9066530ba6b/41467_2025_63492_Fig1_HTML.jpg

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