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De-identification

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

Papers

Showing 126150 of 174 papers

TitleStatusHype
NLNDE: The Neither-Language-Nor-Domain-Experts' Way of Spanish Medical Document De-Identification0
D\'esidentification de donn\'ees texte produites dans un cadre de relation client (De-identification of customer relationship text data )0
MASK: A flexible framework to facilitate de-identification of clinical textsCode1
Closing the Gap: Joint De-Identification and Concept Extraction in the Clinical DomainCode0
CIAGAN: Conditional Identity Anonymization Generative Adversarial NetworksCode1
Face Identity Disentanglement via Latent Space MappingCode1
A Semi-supervised Approach for De-identification of Swedish Clinical Text0
CodE Alltag 2.0 --- A Pseudonymized German-Language Email Corpus0
Deepfakes for Medical Video De-Identification: Privacy Protection and Diagnostic Information Preservation0
Comparing Rule-based, Feature-based and Deep Neural Methods for De-identification of Dutch Medical RecordsCode1
Live Face De-Identification in Video0
Building a De-identification System for Real Swedish Clinical Text Using Pseudonymised Clinical Text0
Towards De-identification of Legal Texts0
Synthesis of Realistic ECG using Generative Adversarial NetworksCode1
De-Identification of Emails: Pseudonymizing Privacy-Sensitive Data in a German Email Corpus0
Augmenting a De-identification System for Swedish Clinical Text Using Open Resources and Deep Learning0
Feature Robustness in Non-stationary Health Records: Caveats to Deployable Model Performance in Common Clinical Machine Learning TasksCode0
KU\_ai at MEDIQA 2019: Domain-specific Pre-training and Transfer Learning for Medical NLI0
Reversible Privacy Preservation using Multi-level Encryption and Compressive Sensing0
Scrubbing Sensitive PHI Data from Medical Records made Easy by SpaCy -- A Scalable Model Implementation Comparisons0
Adversarial Learning of Privacy-Preserving Text Representations for De-Identification of Medical RecordsCode0
Audio De-identification - a New Entity Recognition Task0
Towards Automatic Generation of Shareable Synthetic Clinical Notes Using Neural Language ModelsCode0
AnonymousNet: Natural Face De-Identification with Measurable Privacy0
Publicly Available Clinical BERT EmbeddingsCode0
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