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xray-data-science-best-practices

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更新时间2026年4月30日 18:28

Python and Jupyter notebook performance optimization guidelines for X-ray data science (XRR, SAXS, WAXS, XRD, XAS, NEXAFS). This skill should be used when writing, reviewing, or refactoring Python data science code to ensure optimal performance patterns and correct physics-based analysis. Triggers on tasks involving X-ray data analysis, reflectivity fitting, spectroscopic analysis, or scientific computing workflows.

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