Yu, Jialin, Cristea, Alexandra I., Harit, Anoushka, Sun, Zhongtian, Aduragba, Olanrewaju Tahir, Shi, Lei, Moubayed, Noura Al (2022) INTERACTION: A Generative XAI Framework for Natural Language Inference Explanations. In: 2022 International Joint Conference on Neural Networks (IJCNN). . IEEE ISBN 978-1-7281-8671-9. (doi:10.1109/IJCNN55064.2022.9892336) (The full text of this publication is not currently available from this repository. You may be able to access a copy if URLs are provided) (KAR id:108676)
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Official URL: https://doi.org/10.1109/IJCNN55064.2022.9892336 |
Abstract
XAI with natural language processing aims to produce human-readable explanations as evidence for AI decision-making, which addresses explainability and transparency. However, from an HCI perspective, the current approaches only focus on delivering a single explanation, which fails to account for the diversity of human thoughts and experiences in language. This paper thus addresses this gap, by proposing a generative XAI framework, INTERACTION (explain aNd predicT thEn queRy with contextuAl CondiTional varIational autO-eNcoder). Our novel framework presents explanation in two steps: (step one) Explanation and Label Prediction; and (step two) Diverse Evidence Generation. We conduct intensive experiments with the Transformer architecture on a benchmark dataset, e-SNLI [1]. Our method achieves competitive or better performance against state-of-the-art baseline models on explanation generation (up to 4.7% gain in BLEU) and prediction (up to 4.4% gain in accuracy) in step one; it can also generate multiple diverse explanations in step two.
Item Type: | Conference or workshop item (Proceeding) |
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DOI/Identification number: | 10.1109/IJCNN55064.2022.9892336 |
Subjects: | Q Science > Q Science (General) > Q335 Artificial intelligence |
Divisions: | Divisions > Division of Computing, Engineering and Mathematical Sciences > School of Computing |
Depositing User: | Zhongtian Sun |
Date Deposited: | 06 Feb 2025 16:28 UTC |
Last Modified: | 10 Feb 2025 22:23 UTC |
Resource URI: | https://kar.kent.ac.uk/id/eprint/108676 (The current URI for this page, for reference purposes) |
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