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Evaluating the Efficacy of AI Techniques in Textual Anonymization: A Comparative Study

About

In the digital era, with escalating privacy concerns, it's imperative to devise robust strategies that protect private data while maintaining the intrinsic value of textual information. This research embarks on a comprehensive examination of text anonymisation methods, focusing on Conditional Random Fields (CRF), Long Short-Term Memory (LSTM), Embeddings from Language Models (ELMo), and the transformative capabilities of the Transformers architecture. Each model presents unique strengths since LSTM is modeling long-term dependencies, CRF captures dependencies among word sequences, ELMo delivers contextual word representations using deep bidirectional language models and Transformers introduce self-attention mechanisms that provide enhanced scalability. Our study is positioned as a comparative analysis of these models, emphasising their synergistic potential in addressing text anonymisation challenges. Preliminary results indicate that CRF, LSTM, and ELMo individually outperform traditional methods. The inclusion of Transformers, when compared alongside with the other models, offers a broader perspective on achieving optimal text anonymisation in contemporary settings.

Dimitris Asimopoulos, Ilias Siniosoglou, Vasileios Argyriou, Sotirios K. Goudos, Konstantinos E. Psannis, Nikoleta Karditsioti, Theocharis Saoulidis, Panagiotis Sarigiannidis• 2024

Related benchmarks

TaskDatasetResultRank
Question AnsweringNQ (test)--
143
Question AnsweringPopQA (test)
Accuracy19.92
122
Private information retentionPopQA D_special (test)
r_pri1.8
20
Private information retentionNQ D_special (test)
r_pri4.93
20
Private information retentionTQA D_special (test)
r_pri3.99
20
Private information retentionHQA D_special (test)
r_pri1.76
20
Question AnsweringHQA (test)
Accuracy12.84
11
De-Anonymization ResistancePopQA (test)
r_connect0.0221
10
De-Anonymization ResistanceTQA (test)
r_connect2.93
10
De-Anonymization ResistanceNQ (test)
r_connect3.41
10
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