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PyOPV: An Open-Source Python Package for Ophthalmic Visual Field Data Management.

Shahin Hallaj1,2, Michael V Boland3, William Halfpenny1,2

  • 1Division of Ophthalmology Informatics and Data Science, Viterbi Family Department of Ophthalmology and Shiley Eye Institute, Hamilton Glaucoma Center, University of California San Diego, La Jolla, CA.

Journal of Glaucoma
|February 26, 2026
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Summary
This summary is machine-generated.

PyOPV is a new Python software that helps glaucoma researchers manage and analyze ophthalmic visual field DICOM data. It converts files into usable formats, improving data accessibility and research scalability.

Keywords:
OMOP CDMOPV DICOMPyOPVinteroperabilityophthalmic informaticsstandard automated perimetryvisual field data

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Area of Science:

  • Ophthalmic informatics
  • Medical image analysis
  • Data interoperability in vision research

Background:

  • Standardization of ophthalmic visual field (OPV) data is crucial for research.
  • Existing DICOM data formats present interoperability and accessibility challenges for vision researchers.
  • A need exists for robust tools to manage and analyze OPV DICOM files.

Purpose of the Study:

  • To introduce PyOPV, a novel Python-based software package for managing and analyzing OPV DICOM data.
  • To address limitations in data interoperability and accessibility for vision research.
  • To provide tools for DICOM compliance checking, parsing, and conversion of OPV data.

Main Methods:

  • PyOPV was developed using Python 3.8.2, leveraging DICOM Supplement 146 for compliance checking.
  • The software was designed and tested using OPV DICOM files from three different vendors.
  • Functionalities were validated at two independent institutions using sample data.

Main Results:

  • PyOPV successfully extracted and converted OPV DICOM data into Pandas DataFrames and JSON formats.
  • Validation showed excellent agreement with existing institutional workflows, demonstrating data accuracy.
  • Significant interoperability issues were identified, with 17%-51% of required DICOM tags missing across vendors.

Conclusions:

  • PyOPV offers an efficient solution for handling ophthalmic visual field data, enhancing research scalability.
  • The software bridges a critical gap in data interoperability, enabling bulk processing from diverse sources.
  • PyOPV supports integration into large-scale health data warehouses, advancing ophthalmic informatics and clinical research.