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July 1, 20246 citationsOpen Access

Large Language Models are Zero-Shot Recognizers for Activities of Daily Living

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GCGabriele CivitareseMFMichele FioriPCPriyankar Choudhary

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Abstract

The sensor-based recognition of Activities of Daily Living (ADLs) in smart home environments enables several applications in the areas of energy management, safety, well-being, and healthcare. ADLs recognition is typically based on deep learning methods requiring large datasets to be trained. Recently, several studies proved that Large Language Models (LLMs) effectively capture common-sense knowledge about human activities. However, the effectiveness of LLMs for ADLs recognition in smart home environments still deserves to be investigated. In this work, we propose ADL-LLM, a novel LLM-based ADLs recognition system. ADLLLM transforms raw sensor data into textual representations, that are processed by an LLM to perform zero-shot ADLs recognition. Moreover, in the scenario where a small labeled dataset is available, ADL-LLM can also be empowered with few-shot prompting. We evaluated ADL-LLM on two public datasets, showing its effectiveness in this domain.

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Cite This Study

Civitarese et al. (2024) studied this question.

synapsesocial.com/papers/68e61df7b6db6435875b012chttps://doi.org/10.48550/arxiv.2407.01238
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Also Consider

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