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  4. KINLI: Time Series Forecasting for Monitoring Poultry Health in Complex Pen Environments
 
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2025
Journal Article
Title

KINLI: Time Series Forecasting for Monitoring Poultry Health in Complex Pen Environments

Abstract
We analyze how to perform accurate time series forecasting for monitoring poultry health in a complex pen environment. To this end, we make use of a novel dataset consisting of a collection of real-world sensor data in the housing of turkeys. The dataset comprises features such as food intake, water intake, and various environmental values, which come with high variance, sensor defects, and unreliable timestamps. In this paper, we investigate different state-of-the-art forecasting algorithms to predict different features, as well as a variety of deep learning models such as different transformer models and time series foundational models. We evaluate both their forecasting accuracy as well as the efforts required to run the models in the first place. Our findings show that some of these aforementioned algorithms are able to produce satisfactory forecasting results on this highly challenging dataset while still remaining easy to use, which is key in a tech-distant industry such as poultry farming.
Author(s)
Pack, Christopher Ingo  orcid-logo
Fraunhofer-Institut für Angewandte Informationstechnik FIT  
Zeiser, Tim
University of Applied Sciences Offenburg
Beecks, Christian  
Fraunhofer-Institut für Angewandte Informationstechnik FIT  
Lutz, Theo
University of Applied Sciences Offenburg
Journal
Animals  
Open Access
File(s)
Download (31.22 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.3390/ani15213180
10.24406/publica-6698
Additional link
Full text
Language
English
Fraunhofer-Institut für Angewandte Informationstechnik FIT  
Keyword(s)
  • animal farming

  • deep learning

  • large language models

  • time series

  • time series forecasting

  • transformers

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