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Updated: Aug 9, 2025

Chromosomal Spread Preparation of Human Embryonic Stem Cells for Karyotyping
Published on: September 4, 2009
An Open Dataset of Annotated Metaphase Cell Images for Chromosome Identification
Jenn-Jhy Tseng1, Chien-Hsing Lu1, Jun-Zhou Li2
1Department of Obstetrics, Gynecology and Women's Health, Taichung Veterans General Hospital, No. 1650 Sec. 4 Taiwan Blvd. Xitun Dist., Taichung, 407, Taiwan.
Abstract:
Chromosomes are a principal target of clinical cytogenetic studies. While chromosomal analysis is an integral part of prenatal care, the conventional manual identification of chromosomes in images is time-consuming and costly. This study developed a chromosome detector that uses deep learning and that achieved an accuracy of 98.88% in chromosomal identification. Specifically, we compiled and made available a large and publicly accessible database containing chromosome images and annotations for training chromosome detectors. The database contains five thousand 24 chromosome class annotations and 2,000 single chromosome annotations. This database also contains examples of chromosome variations. Our database provides a reference for researchers in this field and may help expedite the development of clinical applications.
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