Observational analysis identifies adaptable sorghum varieties in tidal swamplands and sandy soils, highlighting traits like grain weight and forage yield.
<ns3:p>Background Sorghum has potential as a source of material for food, bioenergy, and animal feed, making it a worthy candidate for promotion. This cereal thrives in regions characterized by low moisture and dry conditions. To address the diminishing availability of arable dry land, it may be necessary to explore the cultivation of sorghum insorghum in tidal swamplands and sandy soils. Methods Twelve sorghum varieties were evaluated in tidal swamplands during the rainy and dry seasons, as well as in sandy soil during the dry season, using two levels of organic fertilizers to create six test environments. The experiments were arranged in a completely randomized block design with three replications. To choose sorghum varieties with features that closely resemble an idealized sorghum variety, the Multi-trait Genotype-Ideotype Distance Index (MGIDI) was utilized. Simultaneously, genotype plus genotype-environment interaction (GGE) biplots were employed to determine the best circumstances for choosing broadly adaptable varieties that exhibit desirable features, as well as to find varieties that thrive environmental contexts. Result Based on the MGIDI ranking on the average across environment, two varieties, i.e., <ns3:italic>Numbu</ns3:italic> and <ns3:italic>Kawali</ns3:italic> were selected. However selected varieties in each environment were differ due to significant variety-environment interaction. In terms of grain weight, the <ns3:italic>Soper 7 Agritan</ns3:italic> variety exhibits adaptability across diverse environments, while the <ns3:italic>Numbu</ns3:italic> variety likewise demonstrates versatility in various environmental conditions. When evaluating forage yield, several adaptable varieties have emerged. Tidal swamplands treated with a high application of organic fertilizer, as well as sandy soils, provide optimal environments for selecting broadly adaptable varieties that focus on both grain and forage yields. Conclusion Adaptable varieties differ for various groups of environments and different traits under consideration. Optimal environments for identifying broadly adaptable varieties varied by trait. The multitrait genotype-ideotype distance index proves to be a valuable tool for selecting varieties based on multiple traits. In parallel, the GGE biplot effectively identifies adaptable varieties based on individual traits.</ns3:p>
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Susilawati et al. (2025) studied this question.
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