Review: Synergy between mechanistic modelling and data-driven models for modern animal production systems in the era of big data

被引:43
作者
Ellis, J. L. [1 ]
Jacobs, M. [2 ]
Dijkstra, J. [3 ]
van Laar, H. [2 ]
Cant, J. P. [1 ]
Tulpan, D. [1 ]
Ferguson, N. [4 ]
机构
[1] Univ Guelph, Dept Anim Biosci, Guelph, ON N1G 2W1, Canada
[2] Trouw Nutr, Innovat Dept, NL-5830 AE Boxmeer, Netherlands
[3] Wageningen Univ, Anim Nutr Grp, NL-6708 WD Wageningen, Netherlands
[4] Trouw Nutr, Innovat Dept, Puslinch, ON N0B 2J0, Canada
关键词
digital agriculture; mechanistic modelling; machine learning; hybridization; animal production; ARTIFICIAL NEURAL-NETWORKS; CLASSIFICATION; AGRICULTURE; GROWTH; RUMEN;
D O I
10.1017/S1751731120000312
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
Mechanistic models (MMs) have served as causal pathway analysis and 'decision-support' tools within animal production systems for decades. Such models quantitatively define how a biological system works based on causal relationships and use that cumulative biological knowledge to generate predictions and recommendations (in practice) and generate/evaluate hypotheses (in research). Their limitations revolve around obtaining sufficiently accurate inputs, user training and accuracy/precision of predictions on-farm. The new wave in digitalization technologies may negate some of these challenges. New data-driven (DD) modelling methods such as machine learning (ML) and deep learning (DL) examine patterns in data to produce accurate predictions (forecasting, classification of animals, etc.). The deluge of sensor data and new self-learning modelling techniques may address some of the limitations of traditional MM approaches - access to input data (e.g. sensors) and on-farm calibration. However, most of these new methods lack transparency in the reasoning behind predictions, in contrast to MM that have historically been used to translate knowledge into wisdom. The objective of this paper is to propose means to hybridize these two seemingly divergent methodologies to advance the models we use in animal production systems and support movement towards truly knowledge-based precision agriculture. In order to identify potential niches for models in animal production of the future, a cross-species (dairy, swine and poultry) examination of the current state of the art in MM and new DD methodologies (ML, DL analytics) is undertaken. We hypothesize that there are several ways via which synergy may be achieved to advance both our predictive capabilities and system understanding, being: (1) building and utilizing data streams (e.g. intake, rumination behaviour, rumen sensors, activity sensors, environmental sensors, cameras and near IR) to apply MM in real-time and/or with new resolution and capabilities; (2) hybridization of MM and DD approaches where, for example, a ML framework is augmented by MM-generated parameters or predicted outcomes and (3) hybridization of the MM and DD approaches, where biological bounds are placed on parameters within a MM framework, and the DD system parameterizes the MM for individual animals, farms or other such clusters of data. As animal systems modellers, we should expand our toolbox to explore new DD approaches and big data to find opportunities to increase understanding of biological systems, find new patterns in data and move the field towards intelligent, knowledge-based precision agriculture systems.
引用
收藏
页码:S223 / S237
页数:15
相关论文
共 59 条
[1]  
Ackoff R. L., 1989, J APPL SYSTEMS ANAL, V16, P3
[2]   Statistical modelling of artificial neural networks using the multi-layer perceptron [J].
Aitkin, M ;
Foxall, R .
STATISTICS AND COMPUTING, 2003, 13 (03) :227-239
[3]   Improved estimation of bovine weight trajectories using Support Vector Machine Classification [J].
Alonso, Jaime ;
Villa, Alfonso ;
Bahamonde, Antonio .
COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2015, 110 :36-41
[4]  
[Anonymous], 2017, Feature visualization
[5]   Artificial neural networks: fundamentals, computing, design, and application [J].
Basheer, IA ;
Hajmeer, M .
JOURNAL OF MICROBIOLOGICAL METHODS, 2000, 43 (01) :3-31
[6]   Precision agriculture and sustainability [J].
Bongiovanni R. ;
Lowenberg-Deboer J. .
Precision Agriculture, 2004, 5 (4) :359-387
[7]   A validation of technologies monitoring dairy cow feeding, ruminating, and lying behaviors [J].
Borchers, M. R. ;
Chang, Y. M. ;
Tsai, I. C. ;
Wadsworth, B. A. ;
Bewley, J. M. .
JOURNAL OF DAIRY SCIENCE, 2016, 99 (09) :7458-7466
[8]   Communicating complex ecological models to non-scientist end users [J].
Cartwright, Samantha J. ;
Bowgen, Katharine M. ;
Collop, Catherine ;
Hyder, Kieran ;
Nabe-Nielsen, Jacob ;
Stafford, Richard ;
Stillman, Richard A. ;
Thorpe, Robert B. ;
Sibly, Richard M. .
ECOLOGICAL MODELLING, 2016, 338 :51-59
[9]   Opportunities and obstacles for deep learning in biology and medicine [J].
Ching, Travers ;
Himmelstein, Daniel S. ;
Beaulieu-Jones, Brett K. ;
Kalinin, Alexandr A. ;
Do, Brian T. ;
Way, Gregory P. ;
Ferrero, Enrico ;
Agapow, Paul-Michael ;
Zietz, Michael ;
Hoffman, Michael M. ;
Xie, Wei ;
Rosen, Gail L. ;
Lengerich, Benjamin J. ;
Israeli, Johnny ;
Lanchantin, Jack ;
Woloszynek, Stephen ;
Carpenter, Anne E. ;
Shrikumar, Avanti ;
Xu, Jinbo ;
Cofer, Evan M. ;
Lavender, Christopher A. ;
Turaga, Srinivas C. ;
Alexandari, Amr M. ;
Lu, Zhiyong ;
Harris, David J. ;
DeCaprio, Dave ;
Qi, Yanjun ;
Kundaje, Anshul ;
Peng, Yifan ;
Wiley, Laura K. ;
Segler, Marwin H. S. ;
Boca, Simina M. ;
Swamidass, S. Joshua ;
Huang, Austin ;
Gitter, Anthony ;
Greene, Casey S. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2018, 15 (141)
[10]   Monitoring chicken flock behaviour provides early warning of infection by human pathogen Campylobacter [J].
Colles, Frances M. ;
Cain, Russell J. ;
Nickson, Thomas ;
Smith, Adrian L. ;
Roberts, Stephen J. ;
Maiden, Martin C. J. ;
Lunn, Daniel ;
Dawkins, Marian Stamp .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2016, 283 (1822)