SOTAVerified

De-identification

De-identification is the task of detecting privacy-related entities in text, such as person names, emails and contact data.

Papers

Showing 7180 of 174 papers

TitleStatusHype
Open video data sharing in developmental and behavioural science0
Accurate clinical and biomedical Named entity recognition at scaleCode3
Towards Privacy-Preserving Person Re-identification via Person Identify Shift0
End-to-end speech recognition modeling from de-identified data0
The NLP Sandbox: an efficient model-to-data system to enable federated and unbiased evaluation of clinical NLP models0
MAPA Project: Ready-to-Go Open-Source Datasets and Deep Learning Technology to Remove Identifying Information from Text Documents0
Cross-Clinic De-Identification of Swedish Electronic Health Records: Nuances and Caveats0
Downstream Task Performance of BERT Models Pre-Trained Using Automatically De-Identified Clinical Data0
Language Resources to Support Language Diversity – the ELRA Achievements0
Spanish Datasets for Sensitive Entity Detection in the Legal Domain0
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