arXiv Open Access 2025

Archival Faces: Detection of Faces in Digitized Historical Documents

Marek Vaško Adam Herout Michal Hradiš
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Abstrak

When digitizing historical archives, it is necessary to search for the faces of celebrities and ordinary people, especially in newspapers, link them to the surrounding text, and make them searchable. Existing face detectors on datasets of scanned historical documents fail remarkably -- current detection tools only achieve around 24% mAP at 50:90% IoU. This work compensates for this failure by introducing a new manually annotated domain-specific dataset in the style of the popular Wider Face dataset, containing 2.2k new images from digitized historical newspapers from the 19th to 20th century, with 11k new bounding-box annotations and associated facial landmarks. This dataset allows existing detectors to be retrained to bring their results closer to the standard in the field of face detection in the wild. We report several experimental results comparing different families of fine-tuned detectors against publicly available pre-trained face detectors and ablation studies of multiple detector sizes with comprehensive detection and landmark prediction performance results.

Topik & Kata Kunci

Penulis (3)

M

Marek Vaško

A

Adam Herout

M

Michal Hradiš

Format Sitasi

Vaško, M., Herout, A., Hradiš, M. (2025). Archival Faces: Detection of Faces in Digitized Historical Documents. https://arxiv.org/abs/2504.00558

Akses Cepat

Lihat di Sumber
Informasi Jurnal
Tahun Terbit
2025
Bahasa
en
Sumber Database
arXiv
Akses
Open Access ✓