ANGEL_cometa is a tool specifically designed for biomedical entity linking, with a focus on identifying and linking disease mentions within COMETA datasets.
To use this model, you need to set up a virtual environment and the inference code.
Start by cloning our
ANGEL GitHub repository
.
Then, run the following script to set up the environment:
bash script/environment/set_environment.sh
Then, if you want to run the model on a single sample, no preprocessing is required.
Simply execute the run_sample.sh script:
bash script/inference/run_sample.sh cometa
To modify the sample with your own example, refer to the
Direct Use
section in our GitHub repository.
If you're interested in training or evaluating the model, check out the
Fine-tuning
section and
Evaluation
section.
Training
Training Data
The model was trained on the COMETA dataset, which includes annotated disease entities.
Training Procedure
Positive-only Pre-training: Initial training using only positive examples, following the standard approach.
Negative-aware Training: Subsequent training incorporated negative examples to improve the model's discriminative capabilities.
Evaluation
Testing Data
The model was evaluated using COMETA dataset.
Metrics
Accuracy at Top-1 (Acc@1): Measures the percentage of times the model's top prediction matches the correct entity.
Scores
Dataset
BioSYN
(Sung et al., 2020)
SapBERT
(Liu et al., 2021)
GenBioEL
(Yuan et al., 2022b)
ANGEL
(Ours)
COMETA
71.3
75.1
80.9
82.8
The scores of GenBioEL were reproduced.
Citation
If you use the ANGEL_cometa model, please cite:
@article{kim2024learning,
title={Learning from Negative Samples in Generative Biomedical Entity Linking},
author={Kim, Chanhwi and Kim, Hyunjae and Park, Sihyeon and Lee, Jiwoo and Sung, Mujeen and Kang, Jaewoo},
journal={arXiv preprint arXiv:2408.16493},
year={2024}
}
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