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首页> 外文期刊>Asian Journal of Crop Science >Estimation of Genotypic and Phenotypic Correlations Coefficients for Yield Related Traits of Rice under Sodic Soil
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Estimation of Genotypic and Phenotypic Correlations Coefficients for Yield Related Traits of Rice under Sodic Soil

机译:苏打水条件下水稻产量相关性状的基因型和表型相关系数估计

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Background and Objective: Global demand for food is rising because of population growth, increasing affluence and changing dietary habits. Rice is the major source of calories of more than half of the total global population. It is the world?s third largest crop after maize and wheat. This research sought to determine the correlations between grain yield and its contributing traits and to measure the direct and indirect effects on grain yield in rice. Materials and Methods: On the basis of relationship of grain yield with yield contributing traits, the best genotype can be selected and utilized in breeding program. The estimates of genotypic and phenotypic correlation coefficients between eleven characters were computed together and also the direct and indirect effects of 11 characters viz., days to 50% flowering, days to maturity, plant height (cm), panicle bearing tillers per plant, panicle length (cm), spikelets per panicle, spikelet fertility (%), biological yield per plant (g), harvest-index (%), L/B ratio and grain yield per plant (g) on grain yield per plant estimated by path coefficient analysis using phenotypic and genotypic correlations. Results: According to results, the estimates of genotypic correlation coefficients between eleven characters were generally similar in sign but higher in magnitude than the corresponding phenotypic correlation coefficients. The highest positive both phenotypic and genotypic direct effect on grain yield per plant was exerted by biological yield per plant followed by harvest-index. In contrast, high order of negative both phenotypic and genotypic indirect effects were extended by biological yield per plant on grain yield per plant via harvest index, spikelets per panicle (-0.123) and plant height (-0.103). The direct effects of remaining nine characters were too low to be considered important and the rest of the estimates of indirect effects obtained in path analysis were negligible. The estimate of residual factors (0.091) obtained in both the path analysis was low whether it is direct or indirect. Conclusion: This represents highly favorable situation for obtaining high response to selection in improving yield and yield components in rice.
机译:背景和目标:由于人口增长,富裕程度增加和饮食习惯改变,全球对食物的需求正在上升。大米是卡路里的主要来源,占全球总人口的一半以上。它是世界上仅次于玉米和小麦的第三大作物。这项研究试图确定谷物产量及其贡献性状之间的相关性,并测量对水稻籽粒产量的直接和间接影响。材料和方法:根据谷物产量与产量贡献性状的关系,可以选择最佳基因型,并将其用于育种程序。一起计算了11个字符之间的基因型和表型相关系数的估计值,还计算了11个字符的直接和间接作用,即开花至50%的天数,成熟天数,株高(cm),每株穗分till,穗长度(cm),每穗小穗,小穗受精率(%),每株植物的生物产量(g),收获指数(%),L / B比和每株植物的谷物产量(g),通过路径估算的每株植物的谷物产量表型和基因型相关系数分析。结果:根据结果,11个字符之间的基因型相关系数的估计值在符号上通常相似,但在数量级上高于相应的表型相关系数。表型和基因型直接对单株产量的最高正效应是由每株植物的生物产量和随后的收获指数所决定的。相反,通过收成指数,每穗小穗数(-0.123)和株高(-0.103),每株植物的生物产量对每株植物的谷物产量产生的负面影响是表型和基因型间接影响的高阶。剩下的9个字符的直接影响太低,以至于不被认为是重要的,在路径分析中获得的其余间接影响的估计值可以忽略不计。无论是直接的还是间接的,在两种路径分析中获得的残差因子(0.091)的估计值都很低。结论:这代表了在提高水稻产量和产量构成方面获得对选择的高响应的高度有利的局面。

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