Lla-VAP: LSTM Ensemble of Llama and VAP for Turn-Taking Prediction

December 24, 2024 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Hyunbae Jeon, Frederic Guintu, Rayvant Sahni arXiv ID 2412.18061 Category cs.SD: Sound Cross-listed cs.CL, cs.HC, eess.AS Citations 1 Venue arXiv.org Last Checked 4 months ago
Abstract
Turn-taking prediction is the task of anticipating when the speaker in a conversation will yield their turn to another speaker to begin speaking. This project expands on existing strategies for turn-taking prediction by employing a multi-modal ensemble approach that integrates large language models (LLMs) and voice activity projection (VAP) models. By combining the linguistic capabilities of LLMs with the temporal precision of VAP models, we aim to improve the accuracy and efficiency of identifying TRPs in both scripted and unscripted conversational scenarios. Our methods are evaluated on the In-Conversation Corpus (ICC) and Coached Conversational Preference Elicitation (CCPE) datasets, highlighting the strengths and limitations of current models while proposing a potentially more robust framework for enhanced prediction.
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