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abstract

iEat: Human-food interaction with bio-impedance sensing

Published: 08 October 2023 Publication History

Abstract

We explore an atypical use of bio-impedance by leveraging the unique temporal impedance patterns caused by the dynamic circuit changes between a pair of electrodes due to the body motions, and interactions with metal utensils and food during dining activities. Specifically, we present iEat, a wearable impedance-sensing device for automatic food intake monitoring without using external devices such as smart utensils. Using only one impedance channel with one electrode on each wrist, iEat detects food intake activities (e.g. cutting, putting food in the mouth with or without utensils, drinking, etc.) and food types from a defined category. At idle, iEat measures the normal body impedance between the wrists; while eating, new parallel circuits will be formed between the hands through the utensils and food. To quantitatively evaluate iEat in real-world settings, a food intake experiment was conducted including 40 meals performed by ten volunteers in a realistic table-dining environment. With a light-weight convolutional neural network and leaving one subject out cross-validation, iEat could detect five food intake-related activities with 86.27 % average accuracy, and classify eight types of foods with 77.73 % average accuracy.

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  • (2024)iFace: Hand-Over-Face Gesture Recognition Leveraging Impedance SensingProceedings of the Augmented Humans International Conference 202410.1145/3652920.3652923(131-137)Online publication date: 4-Apr-2024

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Published In

cover image ACM Conferences
UbiComp/ISWC '23 Adjunct: Adjunct Proceedings of the 2023 ACM International Joint Conference on Pervasive and Ubiquitous Computing & the 2023 ACM International Symposium on Wearable Computing
October 2023
822 pages
ISBN:9798400702006
DOI:10.1145/3594739
Permission to make digital or hard copies of part or all of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for third-party components of this work must be honored. For all other uses, contact the Owner/Author.

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Association for Computing Machinery

New York, NY, United States

Publication History

Published: 08 October 2023

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Author Tags

  1. Automatic Dietary Monitoring
  2. Bio-impedance Sensing
  3. Human-food Interaction

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  • Abstract
  • Research
  • Refereed limited

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  • BMBF

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UbiComp/ISWC '23

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Overall Acceptance Rate 764 of 2,912 submissions, 26%

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Cited By

View all
  • (2024)iFace: Hand-Over-Face Gesture Recognition Leveraging Impedance SensingProceedings of the Augmented Humans International Conference 202410.1145/3652920.3652923(131-137)Online publication date: 4-Apr-2024

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