Dynamically Controlled Environment Agriculture: Integrating Machine Learning and Mechanistic and Physiological Models for Sustainable Food Cultivation



Ver los resultados en:
https://tapipedia.org/sites/default/files/acsestengg.1c00269.pdf
DOI: 
10.1021/acsestengg.1c00269
Licencia de recurso: 
Derechos sujetos al permiso del propietario
Tipo: 
Artículo de revista
Revista: 
ACS EST Engg.
Número: 
1
Páginas: 
3-19
Volumen: 
2
Año: 
2022
Autor (es): 
Cohen A. R.
Chen G.
Berger E. M.
Warrier S.
Lan G.
Grubert E.
Dellaert F.
Chen Y.
Descripción: 

Inefficiencies and imprecise input control in agriculture have caused devastating consequences to ecosystems. Urban controlled environment agriculture (CEA) is a proposed approach to mitigate the impacts of cultivation, but precise control of inputs (i.e., nutrient, water, etc.) is limited by the ability to monitor dynamic conditions. Current mechanistic and physiological plant growth models (MPMs) have not yet been unified and have uncovered knowledge gaps of the complex interplay among control variables. Moreover, because of their specificity, MPMs are of limited utility when extended to additional plant species or environmental conditions. Simultaneously, although machine learning (ML) can uncover latent interactions across conditions, phenotyping bottlenecks have hindered successful application. To bridge these gaps, we propose an integrative approach whereby MPMs are used to construct the foundations of ML algorithms, reducing data requirements and costs, and ML is used to elucidate parameters and causal inference in MPM. This review highlights research about control and automation in CEA, synthesizing literature into a framework whereby ML, MPM, and biofeedback inform what we call dynamically controlled environment agriculture (DCEA). We highlight synergistic characteristics of MPM and ML to illustrate that a DCEA framework could contribute to urban resilience, human health, and optimized productivity and nutritional content.

Año de publicación: 
2021
Palabras clave: 
Artificial intelligence
Phenotyping
Automation
Precision agriculture
Plant growth modeling
Sensors
Machine learning