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Stability of the hypocotyl length of soybean cultivars using neural networks and traditional methods

机译:用神经网络和传统方法稳定性大豆品种胚乳长度

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摘要

ABSTRACT: The length of the hypocotyl has been highlighted as a potential descriptor of the soybean crop. However, there is no information available in the published literature about its behavior over several planting times. The present study aimed to identify soybean cultivars with stability and predictability of hypocotyl length behavior through neural networks and traditional adaptability and stability methodologies. We analyzed 16 soybean cultivars in 6 planting seasons under greenhouse conditions. In each season, a randomized block design with 4 replications was adopted. The experimental unit was composed of 3 plants. The plot mean was used in the analysis. Hypocotyl length data were analyzed by analysis of variance and Tukey’s test. Then analyses were carried out using the Traditional Method, Plaisted and Peterson, Wricke, Eberhart and Russell, and Artificial Neural Networks. A significant effect (p<0.01 by the F test) was identified for Cultivars versus Planting Season and Planting Seasons and Cultivars. Cultivars BRS810C, BRSMG760SRR, TMG1175RR, and BMX Tornado RR showed lower averages, high stability, and general adaptability regarding soybean hypocotyl length whereas the cultivar BG4272 presented higher mean, high stability, and general adaptability. Identification of soybean cultivars of predictable and stable behavior as to hypocotyl length contributes to Soybean Improvement as it further our knowledge on the potential descriptor and the possibility of increasing the number of descriptors.
机译:摘要:脊髓岩的长度被突出显示为大豆作物的潜在描述符。但是,发表文献中没有任何信息,关于其在几次种植时间的行为。本研究旨在通过神经网络和传统的适应性和稳定性方法鉴定具有稳定性和预测性的大豆品种。我们在温室条件下分析了6种种植季节的16种豆制品种。在每个季节中,采用了一个随机块设计,采用了4份复制。实验单元由3株植物组成。绘图均值用于分析。通过分析方差和Tukey的测试分析缺口长度数据。然后使用传统的方法,解放和彼得松,Wricke,Eberhart和Russell,以及人工神经网络进行分析。对于品种与种植季节和种植季节和品种,鉴定出显着效果(F试验的P <0.01)。品种BRS810C,BRSMG760SRR,TMG1175RR和BMX Tornado RR显示出较低的平均值,高稳定性和关于大豆胚囊长度的一般适应性,而栽培品种BG4272呈现出更高的平均值,高稳定性和一般适应性。鉴定大豆品种的可预测和稳定行为与缺口长度有助于大豆改善,因为它进一步了解了对潜在描述符的知识以及增加描述符数量的可能性。

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