西瓜(Citrullus lanatus, Thunb.)影响因素预测Matsum。& Nakai)使用数据挖掘生成

K. Karadas, İbrahim Hakkı Kadi̇rhanoğullari, Meryem Konu Kadirhanogullari
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引用次数: 0

摘要

本研究的目的是评价影响Diyarbakır省西瓜产量的因素。数据采用数据挖掘回归树方法中的卡方自动交互检测器(穷举CHAID)算法,采用简单随机抽样法对土耳其Diyarbakır省80名西瓜农户进行调查。在所建立的模型中,因变量为WY(西瓜产量),自变量确定为R(地区)、AF(农民年龄)、EL(受教育程度)、CA(栽培面积)、FD(施肥日期)、FA(施肥量)、DS(喷施日期)、as(喷施量)、NI(灌溉次数)、IT(灌溉时间)、AN(锚固编号)、HT(收获时间)。研究结果表明,对西瓜产量有显著影响的因素;测定了AN, NI, HT, CA, R。平均每公顷西瓜产量为4488.9公斤,锄数是影响西瓜产量最大的变量。因此,为了获得更高的单产,西瓜生产者应锚定4次以上,在2小时内灌溉5至6次,并在5月施肥。此外,确定Çermik、Eğil、yeeni ehir和Bismil为西瓜生产的较适宜区域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Prediction of The Factors Affecting Watermelon (Citrullus lanatus (Thunb.) Matsum. & Nakai) Yield Using Data Mining
The aim of this study was to evaluate the factors of affecting watermelon yield in Diyarbakır province. The data was obtained from surveying of 80 watermelon farmers in Diyarbakır province, Turkey by Simple Random Sampling Method using the Chi-square automatic interaction detector (EXHAUSTIVE CHAID) algorithm of the Data Mining Regression Tree methods. In the model created, the dependent variable was WY (watermelon yield), and the independent variables were determined as R (region), AF (age of farmer), EL (education level), CA (cultivation are), FD (fertilization date), FA (amount of fertilization), DS (date of spraying), AS (amount of spraying), NI (number of irrigation), IT (irrigation time), AN (anchor number), HT (harvest time). As a result of the study, the factors that significantly affect the yield of watermelon; AN, NI, HT, CA, R has been determined. An average of 4488.9 kg watermelon yield per decare was obtained and the number of hoes was the variable that most affected the watermelon yield. As a result in order to get a higher yield per unit area, watermelon producers should anchor number more than 4 times, irrigate 5 to 6 times at less than 2 hours, and apply fertilizer in May. In addition, Çermik, Eğil, Yenişehir and Bismil were determined as more suitable regions for watermelon production.
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