ARIMAX 建模:哈斯鳄梨呼吸速率对环境因素的响应

Anabel Morales-Solis, Artemio Pérez-López, M. E. Ramírez-Guzman, Teodoro Espinosa-Solares, Irán Alia-Tejacal
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摘要

这项研究探讨了随机事件如何影响哈斯鳄梨的呼吸速率,而不是确定性模型,目的是为延长其货架期制定更好的策略。了解这些因素可以提高采后管理策略的准确性。带有外生变量的自回归综合移动平均(ARIMA)模型(ARIMAX)是另一种随机概率模型,能够模拟呼吸作用等复杂的、受外部影响的现象。本研究旨在阐明温度、相对湿度和环境光照度这三个外生变量对哈斯鳄梨果实呼吸速率的影响。呼吸速率和外源变量的数据是在连续气流原型中使用传感器和数据采集系统获得的。采用 Box-Jenkins 方法构建 ARIMA 模型。温度、相对湿度、环境光照度和呼吸速率变量分别调整为 ARIMA 模型(3,1,2)、ARIMA 模型(1,1,2)、ARIMA 模型(1,1,2)和 ARIMA 模型(1,1,3)。ARIMAX (1,1,3)模型是从预先白化的呼吸速率序列中得到的。从传递函数中检测到的影响表明,温度、相对湿度和环境光照度变量每增加一个单位,呼吸速率分别增加 0.34%、1.52% 和 0.99%。由此可见,ARIMAX 模型在解释哈斯鳄梨果实受外界因素影响的生理反应方面是可靠的。在今后的研究中,打算将这一随机建模程序推广到测量动态负载对水果在运输过程中呼吸代谢的影响,因为在运输过程中,新鲜产品的质量会受到相当大的损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ARIMAX Modelling: Response of Hass Avocado Respiration Rate to Environmental Factors
This research explores how random events influence the respiration rate in Hass avocado beyond deterministic models in order to develop better strategies for extending its shelf life. Understanding these factors can enhance the accuracy of postharvest management strategies. The Autoregressive Integrated Moving Average (ARIMA) model with exogenous variables (ARIMAX) is an alternative stochastic probability model which is capable of modeling complex, externally influenced phenomena such as respiration. This study aimed to elucidate the effect of three exogenous variables, namely temperature, relative humidity, and ambient illumination, on the respiration rate of Hass avocado fruits. Data on the respiration rate and exogenous variables were obtained using sensors coupled to a data acquisition system in a prototype of continuous airflow. The Box–Jenkins methodology was employed to construct the ARIMA models. The temperature, relative humidity, ambient illumination, and respiration rate variables were adjusted to the ARIMA models (3,1,2), ARIMA (1,1,2), ARIMA (1,1,2), and ARIMA (1,1,3), respectively. The ARIMAX (1,1,3) models were obtained from the pre-whitened respiration rate series. The impact detected in the transfer functions indicates increases in the respiration rate of 0.34%, 1.52%, and 0.99% for each unit increase in the temperature, relative humidity, and ambient illumination variables, respectively. In this regard, ARIMAX modeling is reliable for explaining the physiological response of Hass avocado fruits due to external factors. In future research, it is intended to extrapolate this stochastic modeling procedure to measure the effect of dynamic loads on the respiratory metabolism of fruits during transportation, where there is a considerable loss in the quality of fresh products.
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