作物学报 ›› 2023, Vol. 49 ›› Issue (10): 2854-2860.doi: 10.3724/SP.J.1006.2023.23064
• 研究简报 • 上一篇
杨雪宁1,2(), 张永强1(), 张选泽1, 马宁1, 张俊梅3
YANG Xue-Ning1,2(), ZHANG Yong-Qiang1(), ZHANG Xuan-Ze1, MA Ning1, ZHANG Jun-Mei3
摘要:
作物生长模型APSIM广泛应用于作物估产和农业生产管理中, 在观测数据有限的情况下, 开展留一交叉验证是提高模型模拟能力的关键途径。本研究以内蒙古十大孔兑地区春玉米为研究对象, 量化分析了APSIM-Maize模型模拟2012—2019年间玉米产量对关键参数的敏感性, 并根据参数敏感性强弱对APSIM-Maize模型进行交叉验证与参数率定, 提高了模型模拟能力。主要结果为: (1) 影响春玉米产量的敏感性参数由强到弱依次是: 蒸腾效率系数、辐射利用效率、开花到成熟的积温、出苗到拔节的积温、开花到灌浆的积温、潜在灌浆速率、光周期和最大穗粒数; (2) 交叉验证时, APSIM-Maize模型各参数变异系数在1.06%~23.32%之间波动, 总体上模型参数变异性小, 可靠性高; (3) APSIM-Maize模型经过参数率定后的模拟产量与实测产量具有较好的一致性(R2 = 0.72, RMSE = 401.5 kg hm-2), 模型在十大孔兑地区春玉米产量的评估中表现出较好的适应性。本研究为在农田试验数据有限情况下提高模型率定参数的可靠性提供了新的研究思路和科学依据。
[1] |
Hao S, Ryu D, Western A, Perry E, Bogena H, Franssen H J H. Performance of a wheat yield prediction model and factors influencing the performance: a review and meta-analysis. Agric Syst, 2021, 194: 103278.
doi: 10.1016/j.agsy.2021.103278 |
[2] |
He D, Wang E, Wang J, Robertson M J. Data requirement for effective calibration of process-based crop models. Agric For Meteorol, 2017, 234/235: 136-148.
doi: 10.1016/j.agrformet.2016.12.015 |
[3] | Makowski D, Wallach D, Tremblay M. Using a Bayesian approach to parameter estimation; comparison of the GLUE and MCMC methods. Agron Sustain Dev, 2002, 22: 191-203. |
[4] |
Sheng M, Liu J, Zhu A X, Rossiter D G, Liu H, Liu Z, Zhu L. Comparison of GLUE and DREAM for the estimation of cultivar parameters in the APSIM-maize model. Agric For Meteorol, 2019, 278: 107659.
doi: 10.1016/j.agrformet.2019.107659 |
[5] |
Ramirez Villegas J, Koehler A K, Challinor A J. Assessing uncertainty and complexity in regional-scale crop model simulations. Eur J Agron, 2017, 88: 84-95.
doi: 10.1016/j.eja.2015.11.021 |
[6] |
Her Y, Chaubey I. Impact of the numbers of observations and calibration parameters on equifinality, model performance, and output and parameter uncertainty. Hydrol Proc, 2015, 29: 4220-4237.
doi: 10.1002/hyp.10487 |
[7] | 李波, 孙翔龙, 姚名泽, 鲍慧, 王俊皓. 温室秸秆不同还田量条件下DSSAT-CROPGRO-Tomato模型的调参与验证. 生态学杂志, 2021, 40: 908-918. |
Li B, Sun X L, Yao M Z, Bao H, Wang J H. Parameter estimation and verification of the DSSAT-CROPGRO-Tomato model under the condition of different amounts of staw returned to the field in the greenhouse. Chin J Ecol, 2021, 40: 908-918. (in Chinese with English abstract) | |
[8] |
Chipanshi A, Zhang Y, Kouadio L, Newlands N, Davidson A, Hill H, Warren R, Qian B, Daneshfar B, Bedard F, Reichert G. Evaluation of the Integrated Canadian Crop Yield Forecaster (ICCYF) model for in-season prediction of crop yield across the Canadian agricultural landscape. Agric For Meteorol, 2015, 206: 137-150.
doi: 10.1016/j.agrformet.2015.03.007 |
[9] |
Mkhabela M S, Bullock P, Raj S, Wang S, Yang Y. Crop yield forecasting on the Canadian prairies using MODIS NDVI data. Agric For Meteorol, 2011, 151: 385-393.
doi: 10.1016/j.agrformet.2010.11.012 |
[10] |
Qian B, De Jong R, Warren R, Chipanshi A, Hill H. Statistical spring wheat yield forecasting for the Canadian prairie provinces. Agric For Meteorol, 2009, 149: 1022-1031.
doi: 10.1016/j.agrformet.2008.12.006 |
[11] |
Nurulhuda K, Muharam F M, Shahar N a N, Hashim M F C, Ismail M R, Keesman K J, Zulkafli Z. ORYZA (v3) rice crop growth modeling for MR269 under nitrogen treatments: assessment of cross-validation on parameter variability. Comput Electron Agric, 2022, 195: 106809.
doi: 10.1016/j.compag.2022.106809 |
[12] |
赵子龙, 李波, 丰雪, 姚名泽, 解影, 邢经纬, 李长信. 温室环境不同灌水水平条件下DSSAT-CROPGRO-Tomato模型的调参与验证. 应用生态学报, 2018, 29: 2017-2027.
doi: 10.13287/j.1001-9332.201806.012 |
Zhao Z L, Li B, Feng X, Yao M Z, Xie Y, Xing J W, Li C X. Parameter estimation and verification of DSSAT-CROPGRO- Tomato model under different irrigation levels in greenhouse. J Appl Ecol, 2018, 29: 2017-2027. (in Chinese with English abstract) | |
[13] | 陈召霞, 徐新刚, 徐良骥, 杨贵军, 邢会敏, 贺鹏. 基于新型植被指数的冬小麦覆盖度遥感估算. 麦类作物学报, 2016, 36: 939-944. |
Chen Z X, Xu X G, Xu L J, Yang G J, Xing H M, He P. Estimating vegetation coverage of winter wheat based on new vegetation index. J Triticeae Crops, 2016, 36: 939-944. (in Chinese with English abstract) | |
[14] |
Keating B A, Carberry P S, Hammer G L, Probert M E, Smith C J. An overview of APSIM, a model designed for farming systems simulation. Eur J Agron, 2003, 18: 267-288.
doi: 10.1016/S1161-0301(02)00108-9 |
[15] | He L, Zha G, Jin N, Zhuang W, Yu Q. Global sensitivity analysis of APSIM-Wheat parameters in different climate zones and yield levels. Trans CSAE, 2015, 31: 148-157. |
[16] |
Saxton K E, Rawls W J, Romberger J S, Papendick R I. Estimating generalized soil-water characteristics from texture. Soil Sci Soc Am J, 1986, 50: 1031-1036.
doi: 10.2136/sssaj1986.03615995005000040039x |
[17] |
游松财, 邸苏闯, 袁晔. 黄土高原地区土壤田间持水量的计算. 自然资源学报, 2009, 24: 545-552.
doi: 10.11849/zrzyxb.2009.03.020 |
You S C, Di S C, Yuan Y. Calculation of filed capacity in the Loess Plateau region. J Nat Resour, 2009, 24: 545-552. (in Chinese with English abstract) | |
[18] |
Saltelli A, Tarantola S, Chan K P S. A quantitative model- independent method for global sensitivity analysis of model output. Technometrics, 1999, 41: 39-56.
doi: 10.1080/00401706.1999.10485594 |
[19] | 宋明丹, 冯浩, 李正鹏, 高建恩. 基于Morris和EFAST的CERES-Wheat模型敏感性分析. 农业机械学报, 2014, 45(10): 124-131. |
Song M D, Feng H, Li Z P, Gao J E. Global sensitivity analyses of DSSAT-CERES-Wheat model using Morris and EFAST methods. Trans CSAM, 2014, 45(10): 124-131. (in Chinese with English abstract) | |
[20] |
Li J, Wang L, Luo Z, Wang E, Wang G, Zhou H, Li H, Xu S. Reducing N2O emissions while maintaining yield in a wheat-maize rotation system modelled by APSIM. Agric Syst, 2021, 194: 103277.
doi: 10.1016/j.agsy.2021.103277 |
[21] |
Ren X, Sun D, Wang Q. Modeling the effects of plant density on maize productivity and water balance in the Loess Plateau of China. Agric Water Manag, 2016, 171: 40-48.
doi: 10.1016/j.agwat.2016.03.014 |
[22] | Wang N, Wang E, Wang J, Zhang J, Zheng B, Huang Y, Tan M. Modelling maize phenology, biomass growth and yield under contrasting temperature conditions. Agric For Meteorol, 2018, 250-251: 319-329. |
[23] | Iman R L, Conover W J. A measure of top-down correlation. Technometrics, 1987, 29: 351-357. |
[24] |
Confalonieri R, Bellocchi G, Tarantola S, Acutis M, Donatelli M, Genovese G. Sensitivity analysis of the rice model WARM in Europe: Exploring the effects of different locations, climates and methods of analysis on model sensitivity to crop parameters. Environ Model Software, 2010, 25: 479-488.
doi: 10.1016/j.envsoft.2009.10.005 |
[25] |
Ahmed M, Akram M N, Asim M, Aslam M, Hassan F U, Higgins S, Stöckle C O, Hoogenboom G. Calibration and validation of APSIM-Wheat and CERES-Wheat for spring wheat under rainfed conditions: Models evaluation and application. Comput Electron Agric, 2016, 123: 384-401.
doi: 10.1016/j.compag.2016.03.015 |
[26] |
Kheir A M S, Alkharabsheh H M, Seleiman M F, Al-Saif A M, Ammar K A, Attia A, Zoghdan M G, Shabana M M A, Aboelsoud H, Schillaci C. Calibration and validation of AQUACROP and APSIM models to optimize wheat yield and water saving in arid regions. Land, 2021, 10: 1375.
doi: 10.3390/land10121375 |
[27] | Wang Y, Lyu J, Wang Y, Sun H, Hannaford J, Su Z, Barker L J, Qu Y. Drought risk assessment of spring maize based on APSIM crop model in Liaoning province, China. Internation J Disast Risk Reduct, 2020, 45: 101483. |
[28] |
Levitan N, Gross B. Utilizing collocated crop growth model simulations to train agronomic satellite retrieval algorithms. Remote Sens, 2018, 10: 1968.
doi: 10.3390/rs10121968 |
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