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Augmenting Large Language Models via Vector Embeddings to Improve Domain-Specific Responsiveness
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Privacy-Preserving Deep Learning NLP Models for Cancer Registries.

Mohammed Alawad1, Hong-Jun Yoon1, Shang Gao1

  • 1Computational Sciences and Engineering Division, Health Data Sciences Institute, Oak Ridge National Laboratory, Oak Ridge, TN, 37831.

IEEE Transactions on Emerging Topics in Computing
|September 19, 2022
PubMed
Summary
This summary is machine-generated.

Deep learning (DL) models can extract cancer characteristics from pathology reports. Privacy-preserving transfer learning enables secure DL model distribution among cancer registries, achieving performance comparable to centralized models.

Keywords:
NLPPrivacy-preservingcancer pathology reportsinformation extractionmulti-task CNNtransfer learning

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Area of Science:

  • Computational pathology
  • Medical informatics
  • Artificial intelligence in healthcare

Background:

  • Population cancer registries process vast amounts of unstructured pathology reports annually.
  • Deep learning (DL) requires large labeled datasets for effective model training.
  • Privacy and confidentiality concerns hinder data sharing between cancer registries, impeding DL adoption.

Purpose of the Study:

  • To propose and evaluate privacy-preserving transfer learning approaches for distributing DL natural language processing (NLP) models among cancer registries.
  • To enable the extraction of key cancer characteristics without sharing sensitive patient data.

Main Methods:

  • A multitask convolutional neural network (MT-CNN) NLP model was developed to extract six cancer characteristics.
  • Privacy-preserving transfer learning techniques were employed for model distribution.
  • The proposed methods were compared against conventional transfer learning, single-registry models, and a centralized model using 410,064 pathology documents from two registries.

Main Results:

  • Transfer learning approaches, including data sharing and model distribution, significantly outperformed single-registry models.
  • The best privacy-preserving model distribution approach achieved performance statistically indistinguishable from the centralized model (micro/macro-F1 scores of 0.823/0.580 vs. 0.827/0.585).

Conclusions:

  • Privacy-preserving transfer learning is a viable strategy for distributing DL NLP models across cancer registries.
  • This approach effectively addresses data privacy concerns while enabling collaborative model development and improving cancer data extraction accuracy.