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Deception Indicators Prediction for Lie Detection in Dialogues
Existing techniques for identifying lies from the dialogue give a final decision without explanations. We design 4 deception indicators based on existing theory to lie detection. We design a new module, the deception indicators prediction module, to help lie detection in dialogues, and construct a l...
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Main Author: | |
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Format: | Conference Proceeding |
Language: | English |
Subjects: | |
Online Access: | Request full text |
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Summary: | Existing techniques for identifying lies from the dialogue give a final decision without explanations. We design 4 deception indicators based on existing theory to lie detection. We design a new module, the deception indicators prediction module, to help lie detection in dialogues, and construct a large labeled dataset from real financial service platforms. Based on this, we further propose a BERT-LSTM model which can both capture global information and preserve temporal features, making it highly advantageous for handling data with temporal characteristics for both deception indicator prediction and lie detection, such as conversations. Experimental results show the effectiveness of our model. |
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ISSN: | 2157-8982 |
DOI: | 10.1109/IHMSC62065.2024.00022 |