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Domain adaptation and federated learning for ultrasonic monitoring of beer fermentation

Bowler, Alexander L.; Pound, Michael P.; Watson, Nicholas J.

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Authors

Alexander L. Bowler

Nicholas J. Watson



Abstract

Beer fermentation processes are traditionally monitored through sampling and off-line wort density measurements. In-line and on-line sensors would provide real-time data on the fermentation progress whilst minimising human involvement, enabling identification of lagging fermentations or prediction of ethanol production end points. Ultrasonic sensors have previously been used for in-line and on-line fermentation monitoring and are increasingly being combined with machine learning models to interpret the sensor measurements. However, fermentation processes typically last many days and so impose a significant time investment to collect data from a sufficient number of batches for machine learning model training. This expenditure of effort must be multiplied if different fermentation processes must be monitored, such as varying formulations in craft breweries. In this work, three methodologies are evaluated to use previously collected ultrasonic sensor data from laboratory scale fermentations to improve machine learning model accuracy on an industrial scale fermentation process. These methodologies include training models on both domains simultaneously, training models in a federated learning strategy to preserve data privacy, and fine-tuning the best performing models on the industrial scale data. All methodologies provided increased prediction accuracy compared with training based solely on the industrial fermentation data. The federated learning methodology performed best, achieving higher accuracy for 14 out of 16 machine learning tasks compared with the base case model.

Citation

Bowler, A. L., Pound, M. P., & Watson, N. J. (2021). Domain adaptation and federated learning for ultrasonic monitoring of beer fermentation. Fermentation, 7(4), Article 253. https://doi.org/10.3390/fermentation7040253

Journal Article Type Article
Acceptance Date Oct 29, 2021
Online Publication Date Nov 1, 2021
Publication Date Nov 1, 2021
Deposit Date Nov 23, 2021
Publicly Available Date Nov 23, 2021
Journal Fermentation
Print ISSN 2311-5637
Electronic ISSN 2311-5637
Publisher MDPI AG
Peer Reviewed Peer Reviewed
Volume 7
Issue 4
Article Number 253
DOI https://doi.org/10.3390/fermentation7040253
Public URL https://nottingham-repository.worktribe.com/output/6784319
Publisher URL https://www.mdpi.com/2311-5637/7/4/253

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