arXiv:2601.12941eess.IVcond-mat.mtrl-sci2026-01被引 1

开源工具Pyvale可快速处理千兆像素图像的二维数字图像相关分析。

PYVALE: A Fast, Scalable, Open-Source 2D Digital Image Correlation (DIC) Engine Capable of Handling Gigapixel Images

  • 采用多线程可靠性引导算法,兼顾精度与速度。
  • 千兆像素图像对可在5分钟内完成分析,内存占用约50GB。
  • 适合科研人员在集群上做高精度材料变形测量与流程自动化。

数字图像相关(DIC)是一种广泛应用的全场测量技术,但现有开源与商业软件普遍存在操作系统限制、不支持集群部署及难以扩展至扫描电子显微镜DIC(SEM-DIC)中常见的千兆像素级图像问题。Pyvale是一款开源软件包,用于传感器模拟、不确定性量化、布局优化与校准验证,核心为一个专为独立使用和工作流集成设计的2D DIC模块。其提供用户友好的Python接口,底层由高性能编译代码实现,采用多线程、可靠性引导的DIC算法。开源MIT许可使其可在计算集群与自动化流程中广泛部署。基准测试使用公开的2D DIC挑战2.0数据集表明,Pyvale的计量性能与现有商业及开源代码相当。在高性能桌面工作站上,可于5分钟内完成千兆像素图像对的关联分析,内存峰值约为50 GB。结论:Pyvale具备坚实的计量基础,结合对SEM-DIC的可扩展性,为持续的社区驱动开发奠定了基础,未来有望推动开源DIC发展并融入实验设计与验证工作流。

原文摘要 · Abstract (English)

Background: Digital Image Correlation (DIC) is a widely used full-field measurement technique, but both open-source and commercial packages often have limitations such as operating-system restrictions, lack of support for deployment on computing clusters, and poor scalability to gigapixel-scale images common in Scanning Electron Microscopy DIC (SEM-DIC). Objective: Pyvale is an open-source software package designed for sensor simulation, uncertainty quantification, placement optimization, and calibration/validation. A key component of this is the development of a dedicated 2D DIC module intended for standalone use and integration within broader workflows. Methods: Pyvale provides a user-friendly Python interface with performant compiled routines underneath. At its core is a multithreaded, reliability-guided DIC algorithm. Its open-source MIT license enables wide deployment, including on computing clusters and in automated pipelines. Results: Benchmarking with the publicly available 2D DIC challenge 2.0 dataset shows that Pyvale achieves metrological performance comparable to existing commercial and open-source DIC codes. It can correlate gigapixel-scale image pairs in under 5 minutes on high-specification desktop workstations, with memory peaking at approximately 50 GB. Conclusions: Pyvale's strong metrological foundation, coupled with its scalability for SEM-DIC, positions it as a platform for sustained, community-driven development. Its design and licensing provide a foundation for future improvements in open-source DIC and integration into experimental design and validation workflows.

图像相关开源工具材料测量高通量分析

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