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Identifying superior wheat cultivars in participatory research on resource poor farms

机译:在资源贫乏农场参与性研究中确定优质小麦品种

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Improving livelihood of resource poor farmers is an important goal of wheat research in developing countries. Although remarkable success has been achieved to date in developing widely adapted wheat cultivars, many resource poor farmers in marginal areas in developing world have not benefited. Participatory research could greatly enhance identifying cultivars according to the choice of the poor farmers. This study was conducted to examine how farmers' selection criteria could assist breeders in identifying superior wheat cultivars, and determine if a new statistical analysis tool, GGE biplot, could be effectively used in selection of improved cultivar based on quantitative (grain yield) and qualitative data (farmers' preference score). The field experiments were conducted in 3 years (2003-2005) in three mid-hill districts in the central Nepal involving resource poor wheat farmers. Sixteen wheat genotypes, including a long-term and a current commercial cultivar, were used in the study. Data were collected on agronomic traits considered important by the participating farmers. These included days to heading and maturity, plant height, effective tiller number, spike length, kernel per spike, 1000-kernel weight and grain yield. Farmers also qualitatively scored each genotype for multiple traits based on their preference. In general, the farmers used the same traits in selecting a superior cultivar that are used by breeders. However, relative importance of different traits differed, not necessarily following in line with the breeder preference. The cultivar superiority based on quantitative agronomic data (breeders' criteria) and qualitative preference scores (farmers' criteria) often showed synergies, however, there were differences as well. This indicates farmers' ability to choose superior cultivars based on qualitative observation compared to tedious quantitative data recording in the on-station testing. In the first year, a greater number of farmers selected improved check as a better choice than recent advanced breeding lines. In the 2nd and 3rd years, the farmers preferred genotypes other than the checks. This underlines the importance of testing of advanced materials in farmers' fields in multiple years. Principal component analysis using GGE-biplot was useful in identifying superior genotypes based on both quantitative and qualitative data recorded across environments. This approach could be useful in analyzing data from participatory agricultural research conducted under highly diverse farmers' field conditions where it is easier to record observations on qualitative than quantitative scale. This technique can also be extended to on-farm participatory testing of other technologies. The findings bear implications for a broad range of participatory research and technology evaluation and verification.
机译:改善资源贫乏的农民的生计是发展中国家小麦研究的重要目标。尽管迄今为止,在开发适应广泛的小麦品种方面取得了显著成功,但发展中国家边缘地区许多资源贫乏的农民并未从中受益。参与式研究可以根据贫困农民的选择极大地增强对品种的识别。这项研究的目的是检验农民的选择标准如何协助育种者确定优质小麦品种,并确定是否可以基于定量(单产)和定性方法有效地使用新的统计分析工具GGE双图来选择改良的品种数据(农民的偏好得分)。在尼泊尔中部的三个中山地区进行了为期3年(2003-2005年)的田间试验,涉及资源贫乏的小麦农民。该研究使用了16种小麦基因型,包括长期和当前的商业品种。收集了参与农户认为重要的农艺性状的数据。其中包括抽穗和成熟的天数,株高,有效分till数,穗长,每个穗粒,1000粒重和谷物产量。农民还根据自己的喜好对每种基因型的多个性状定性打分。通常,农民在选择育种者使用的优良品种时使用相同的性状。但是,不同性状的相对重要性不同,不一定遵循育种者的偏好。基于定量农艺数据(育种者的标准)和定性偏好评分(农民的标准)的品种优势通常表现出协同作用,但是也存在差异。这表明与现场测试中繁琐的定量数据记录相比,农民基于定性观察选择优质品种的能力。在第一年中,与最近的先进育种品系相比,更多的农民选择改良支票作为更好的选择。在第2年和第3年,除了检查以外,农民更喜欢基因型。这强调了多年来在农民田间测试先进材料的重要性。基于跨环境记录的定量和定性数据,使用GGE-biplot进行的主成分分析可用于识别优良基因型。这种方法可用于分析在高度多样化的农民田间条件下进行的参与性农业研究的数据,在这种情况下,定性观察要比定量规模的记录容易。该技术还可以扩展到其他技术的农场参与测试。这些发现对广泛的参与性研究以及技术评估和验证具有启示意义。

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