Proceedings of the Sixth International Workshop on Health Text Mining and Information Analysis 2015
DOI: 10.18653/v1/w15-2609
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Creating a rule based system for text mining of Norwegian breast cancer pathology reports

Abstract: National cancer registries collect cancer related information from multiple sources and make it available for research. Part of this information originates from pathology reports, and in this pre-study the possibility of a system for automatic extraction of information from Norwegian pathology reports is investigated. A set of 40 pathology reports describing breast cancer tissue samples has been used to develop a rule based system for information extraction. To validate the performance of this system its outpu… Show more

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Cited by 17 publications
(14 citation statements)
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“…Yala et al [63] extracted breast cancer-related information from pathology notes for the following types: The gold classification labels were created in previous breast cancer studies. Weegar and Dalianis [64] created a pilot rule-based system for information extraction from breast cancer pathology notes in Norwegian -sentinel nodes, axillary nodes, tumor size, histological grade, ER, PR, Ki67, pT. The system was trained and tested on a very small dataset and conceived as a pilot study to generate fodder for a more sophisticated system whose architecture is presented by the authors.…”
Section: Ie and Normalizationmentioning
confidence: 99%
“…Yala et al [63] extracted breast cancer-related information from pathology notes for the following types: The gold classification labels were created in previous breast cancer studies. Weegar and Dalianis [64] created a pilot rule-based system for information extraction from breast cancer pathology notes in Norwegian -sentinel nodes, axillary nodes, tumor size, histological grade, ER, PR, Ki67, pT. The system was trained and tested on a very small dataset and conceived as a pilot study to generate fodder for a more sophisticated system whose architecture is presented by the authors.…”
Section: Ie and Normalizationmentioning
confidence: 99%
“…Only a few limited studies focused on non-English medical text, and many of them used similar rules-based and machine learning–based approaches. 4,7 Studies of extraction from medical Cyrillic languages are even rarer. 8-10 Although applications of deep learning for the specific task of medical text extraction are limited, they have recently been used for extracting International Classification of Diseases for Oncology, 3rd revision (ICD-O-3) codes with limited accuracy (F 1 score of 0.722).…”
Section: Introductionmentioning
confidence: 99%
“…Information by WHO about the neglected tropical disease [13]. Text mining of cancer pathology report A rule based system is developed for comparing manual encoding pathology report to validate the performance of rule based system [2]. Information of WHO classification on leprosy [6].…”
Section: Literature Reviewmentioning
confidence: 99%