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400 results for “Cultivar”
Figure 2 in Host status and susceptibility of Cannabis sativa cultivars to root-knot nematodes
Figure 2: Hemp plant dry weights (g) for inoculated (+) and uninoculated (-) plants with a mixed population of root-knot species and six European hemp cultivars. Factor levels not connected by the same letter are significantly different according to Tukey's HSD with P ≤ 0.05 (Trial 1).
Figure 1 in Host status and susceptibility of Cannabis sativa cultivars to root-knot nematodes
Figure 1: Root galls caused by RKN (M. javanica and M. incognita mixed population) on hemp roots (cv. Carmagnola Selezionata, left) compared to cucumber roots (cv. Dasher II, middle) (Trial 1) and cv. Cherry Blossom x T1 (right; Trial 2) (Photos J. Coburn).
Figure 5 in Host status and susceptibility of Cannabis sativa cultivars to root-knot nematodes
Figure 5: Hemp plant dry weights (g) for two cannabigerol (CBG) hemp cultivars and a nematicide in naturally RKN-infested soil. P values (P ≤ 0.05) represent significant differences between cultivars by treatment (PG = Gold, PP= Panacea; NA = naturally infested soil, V = Velum, ST = steamed soil.). Velum was applied at 0.48 kg a.i./Ha. Factor levels not connected by the same letter are significantly different according to Tukey's HSD with P ≤ 0.05 (Trial 4).
Figure 6 in Host status and susceptibility of Cannabis sativa cultivars to root-knot nematodes
Figure 6: Cannabis sativa (cv. Panacea) 60 days after planting in RKN-infested field soil. (Left) naturally infested soil, (middle) nematicide-treated (fluopyram) soil, (right) steamed soil (Photo J. Coburn).
Figure 4 in Host status and susceptibility of Cannabis sativa cultivars to root-knot nematodes
Figure 4: Hemp plant dry weights (g) for RKN inoculated (+) and uninoculated (-) plants with two CBD and two Chinese fiber hemp cultivars. Factor levels not connected by the same letter are significantly different according to Tukey's HSD with P ≤ 0.05 (Trial 3).
Figure 6 in Evaluation of Meloidogyne incognita and Rotylenchulus reniformis nematode-resistant cotton cultivars with supplemental Corteva Agriscience nematicides
Figure 6: Field trial R. reniformis eggs per gram of root collected from four root systems. LS means for PHY 332 W3FE (R) and PHY 340 W3FE (S) cotton and nematicide combination at 40 DAP in 2021. P-value for Type III fixed effects for the Variety x Nematicide interaction was 0.0441. Nematicide treatments included no-nematicide control, Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha), C-LV (0.28 +1.24 L/ha), Reklemel (0.56 L/ha) + Vydate C-LV (2.5 L/ha), Reklemel (1.13 L/ha) + Vydate C-LV (5.0 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), BIOST Nematicide 100, Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (0.56 L/ha) + Vydate C-LV (2.5 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (1.13 L/ha) + Vydate C-LV (5.0 L/ha).
Figure 1 in Evaluation of Meloidogyne incognita and Rotylenchulus reniformis nematode-resistant cotton cultivars with supplemental Corteva Agriscience nematicides
Figure 1: M. incognita PHY 340 W3FE susceptible variety on the left and the resistant PHY 360 W3FE on the right at 106 DAP.
Figure 5 in Evaluation of Meloidogyne incognita and Rotylenchulus reniformis nematode-resistant cotton cultivars with supplemental Corteva Agriscience nematicides
Figure 5: Field trial R. reniformis eggs per gram of root collected from four root systems LS means for PHY 332 W3FE (R) and PHY 340 W3FE (S) cotton and nematicide combination at 40 DAP in 2020. P-value for Type III fixed effects for the Variety x Nematicide interaction was 0.0178. Nematicide treatments included no-nematicide control, Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha), C-LV (0.28 +1.24 L/ha), Reklemel (0.56 L/ha) + Vydate C-LV (2.5 L/ha), Reklemel (1.13 L/ha) + Vydate C-LV (5.0 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), BIOST Nematicide 100, Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (0.56 L/ha) + Vydate C-LV (2.5 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (1.13 L/ha) + Vydate C-LV (5.0 L/ha).
Figure 2 in Evaluation of Meloidogyne incognita and Rotylenchulus reniformis nematode-resistant cotton cultivars with supplemental Corteva Agriscience nematicides
Figure 2: Field trial M. incognita eggs per gram of root collected from four root systems LS means for PHY 360 W3FE (R) and PHY 340 W3FE (S) cotton and nematicide combination at 40 DAP in 2020. P-value for Type III fixed effects for the Variety x Nematicide interaction was 0.0368. Nematicide treatments included no-nematicide control, Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha), C-LV (0.28 +1.24 L/ha), Reklemel (0.56 L/ha) + Vydate C-LV (2.5 L/ha), Reklemel (1.13 L/ha) + Vydate C-LV (5.0 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), BIOST Nematicide 100, Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (0.56 L/ha) + Vydate C-LV (2.5 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (1.13 L/ha) + Vydate C-LV (5.0 L/ha).
Figure 3 in Evaluation of Meloidogyne incognita and Rotylenchulus reniformis nematode-resistant cotton cultivars with supplemental Corteva Agriscience nematicides
Figure 3: Field trial M. incognita eggs per gram of root collected from four root systems LS means for PHY 360 W3FE (R) and PHY 340 W3FE (S) cotton and nematicide combination at 40 DAP in 2021. P-value for Type III fixed effects for the Variety x Nematicide interaction was 0.0272. Nematicide treatments included no-nematicide control, Reklemel (0.21 L/ha) + Vydate C-LV (0.88 L/ha) Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha, Reklemel (0.56 L/ha) + Vydate C-LV (2.5 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), BIOST Nematicide 100, Reklemel (0.21 L/ ha) + Vydate C-LV (0.88 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (0.28 L/ha) + Vydate C-LV (1.24 L/ha), BIOST Nematicide 100 (0.026 mg ai/seed), Reklemel (0.56 L/ha) + Vydate C-LV (2.50 L/ha).
Figure 4 in Evaluation of Meloidogyne incognita and Rotylenchulus reniformis nematode-resistant cotton cultivars with supplemental Corteva Agriscience nematicides
Figure 4: Auburn University's Tennessee Valley Research Extension Center showing the nematode susceptible PHY 340 W3FE on the left and the R. reniformis-resistant PHY 332 W3FE on the right 102 DAP.
Fig. 1 in G R A I N Y I E L D A N D I T S F O R M I N G Pa R A M E T E R S Variations Of Oat Cultivars
Fig. 1. Meteorological conditions during experimental years: ■ 2012, ■ 2013, □ 2014 ■ LTA, *LTA – Long term average value of temperature 2012, 2013, 2014 Long term average value of precipitation.
Figura 9 in Teores foliares de macro e micronutrientes em cultivares de abacaxizeiro submetidas à adubação foliar
Figura 9. Teor foliar de manganês (Mn) em cultivares de abacaxizeiro micropropagadas, submetidas a formulações de adubo foliar, em função do tempo de amostragem. Cultivares: AJB – BRS Ajubá; FAN – IAC Fantástico; IMP – BRS Imperial; PER – Pérola; VIT – BRS Vitória.
Figura 3 in Teores foliares de macro e micronutrientes em cultivares de abacaxizeiro submetidas à adubação foliar
Figura 3. Teor foliar de fósforo (P) em cultivares de abacaxizeiro micropropagadas, submetidas a composições de adubo foliar, em função do tempo de amostragem. Cultivares: AJB – BRS Ajubá; FAN – IAC Fantástico; IMP – BRS Imperial; PER – Pérola; VIT – BRS Vitória.
Figura 1 in Teores foliares de macro e micronutrientes em cultivares de abacaxizeiro submetidas à adubação foliar
Figura 1. Precipitação pluvial mensal acumulada (mm mês-1), temperatura média mensal (ºC) e umidade relativa do ar (%), registradas durante a condução do experimento, nos anos agrícolas de 2015 e 2016 em Boa Vista (RR).
Figura 5 in Teores foliares de macro e micronutrientes em cultivares de abacaxizeiro submetidas à adubação foliar
Figura 5. Teor foliar de cálcio (Ca) em cultivares de abacaxizeiro micropropagadas, submetidas a formulações de adubo foliar, em função do tempo de amostragem. Cultivares: AJB – BRS Ajubá; FANT – IAC Fantástico; IMP – BRS Imperial; PER – Pérola; VIT – BRS Vitória.
Figure 1 in Molecular profiling of bacterial blight resistance in Malaysian rice cultivars
Figure 1. UPGMA dendrogram showed the patterns of resistance to bacterial blight in Malaysia rice varieties, based on scoring of 13 SSR and 1 STS.
Figure 1 in Effect of a short-cycle apple tree cultivar on oriental fruit moth (Lepidoptera: Tortricidae) development and larval behavior
Figure 1. Average number of Grapholita molesta males captured monthly by pheromone-bait traps in 'Eva' and 'Gala' apple orchards during seven years in Porto Amazonas, Paraná, Brazil.
Figure 3 in Exogenous application of bio-stimulant and growth retardant improved the productivity of cotton cultivars under different planting arrangement
Figure 3. Influence of MLE and MC on bolls per plant of cotton genotypes cultivated under different planting arrangement in Multan (a) and Shujabad (b).
Figure 2 in Exogenous application of bio-stimulant and growth retardant improved the productivity of cotton cultivars under different planting arrangement
Figure 2. Influence of MLE and MC on flowers per plant of cotton genotypes cultivated under different planting arrangement in Multan (a) and Shujabad (b).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.