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342 results for “sorghum”
Fig. 6 in The effects of light-emitting diode and conventional lighting on sorghum physiology and sugarcane aphid interaction
Fig. 6. Mean ± SE stomatal conductance (mol H2O m−2 s−1) at 15 d af- ter infestation under light-emitting diode and conventional lights. Bars with different letters are significantly different (Kruskal-Wallis ANOVA, df = 3; H> 24.13; P <0.01).
Fig. 4 in The effects of light-emitting diode and conventional lighting on sorghum physiology and sugarcane aphid interaction
Fig. 4. Mean ± SE number of sugarcane aphids per plant 15 d afer infestation when grown for resistant (TX-2783 and DKS-37-07) and susceptible (TX-7000 and KS-585) sorghum cultivars grown under either conventional or light-emitting diodes. P-values represent results of a Student's t-test (df = 22) for each variety.
Fig. 1 in Identification of predatory and parasitoid insect species associated with Melanaphis sacchari (Hemiptera: Aphididae), a sorghum pest in Nuevo León, Mexico
Fig. 1. Melanaphis sacchari predators and parasitoids found in Nuevo León, Mexico. (A) Allograpta sp. in adult status, (B) Chilocorus cacti (lef), and Chilocorus stigma (right), (C) Olla v-nigrum, (D) Chrysoperla sp., (E) Allograpta sp. (lef) in larval status, and Cycloneda sanguinea (right), (F) Hippodamia convergens, (G) Ocyptamus dimidiatus, (H) Scymnus sp., (I) Pachyneuron sp., (J) Aphidius sp., (K) Melanaphis sacchari mummies.
Fig. 1 in Potential population growth of Melanaphis sacchari (Zehntner) (Hemiptera: Aphididae) under six constant temperatures on grain sorghum (Sorghum bicolor L.)
Fig. 1. Age-specific survivorship (proportion of alive individuals per day) of Melanaphis sacchari under 6 constant temperatures on grain sorghum.
Fig. 2 in Potential population growth of Melanaphis sacchari (Zehntner) (Hemiptera: Aphididae) under six constant temperatures on grain sorghum (Sorghum bicolor L.)
Fig. 2. Melanaphis sacchari constant temperature dependent development rate Lactin model estimation. Solid line representing the predicted values by Logan-Lactin model and dots represent the observed values.
Modelling environmental suitability of sorghum, wheat and maize in Europe under climate change (Code & data)
<p><span>Wheat and maize play an important role as crops for human consumption and animal feed in Europe. To guarantee food security and the stability of the agricultural sector in Europe, it is crucial to determine how climate change will impact the environmental suitability and thus the potential geographic distribution of these crops. Sorghum, a crop that originates in Africa, has seen a recent increase in cultivation in Europe. Due to its tolerance to more extreme climate conditions and its versatility of use, it might inherit a high potential as an alternative crop. </span></p> <p><span>Occurrence data of sorghum, wheat and maize as well as several environmental variables were used as input data for an ensemble modelling approach that averages machine learning models for species distribution modelling (SDM). CHELSA served as a source for present bioclimatic conditions and future climate scenarios, namely SSP126 and SSP370 for the period 2041-2070, and HSWD supplied soil variables, since both climate and soil influence crop development. A set of models was evaluated to select the best performing models for the ensemble modelling. The ensemble models were extrapolated to the future scenarios to predict geographic shifts of suitable cultivation areas due to climate change and analyze sorghum’s potential as an alternative crop. </span></p> <p><span>Under the climate scenarios, the three crops saw a shift of suitability in Europe with losses in Southern Europe and expansions of suitable environmental conditions in the northeast of Europe. Sorghum was the crop with the highest potential to replace maize and wheat in Southern Europe in areas where they lose suitability under climate change. Therefore, sorghum confirmed its function as an alternative crop. It also was the crop that benefits consistently from climate change, growing its total suitable area in Europe under both climate scenarios. Maize loses total suitable area in Europe in both climate scenarios but kept the highest amount of total suitable area in Europe in all projected time periods. </span></p> <p><span>The outcome of this study is of high importance for European farmers and policy makers as it enables them to apply effective adaptation and mitigation strategies that will support crop production under future climate conditions. <br></span></p>
Fig. 2 in LED grow lights alter sorghum growth and sugarcane aphid (Hemiptera: Aphididae) plant interactions in a controlled environment
Fig. 2. Growth characteristics of grain sorghum grown under conventional lighting (A) from within an environmental chamber, fitted with a W2238 LED grow panel (B and C, see Fig. 1 for light spectrum measured), and for sorghum cv MORHC 858, DKS 37-07, TX 2783, and WSH117 afer 21 d in a growth chamber fitted with a W2238 LED grow panel.
Fig. 3 in LED grow lights alter sorghum growth and sugarcane aphid (Hemiptera: Aphididae) plant interactions in a controlled environment
Fig. 3. Number of true leaves on 4 different sorghum entries grown under conventional and LED light sources.
Fig. 4 in LED grow lights alter sorghum growth and sugarcane aphid (Hemiptera: Aphididae) plant interactions in a controlled environment
Fig. 4. Plant height (cm) for 2 different sorghum entries grown under conventional and LED light sources.
Fig. 1 in LED grow lights alter sorghum growth and sugarcane aphid (Hemiptera: Aphididae) plant interactions in a controlled environment
Fig. 1. Light emission spectrum of the W2238 LED grow panel over the visible spectrum and into the near infrared. The inset spectrum is zoomed vertically to show details of any weaker emissions.
Figure 2 in Multiple resistance to primary pests of grain sorghum hybrids: Spodoptera frugiperda (Lepidoptera: Noctuidae), Diatraea saccharalis (Lepidoptera: Crambidae), and Diceraeus melacanthus (Hemiptera: Pentatomidae)
Figure 2 Dendrogram of cluster analysis based on the Euclidean distance and grouping by UPGMA regarding scores of damage by Spodoptera frugiperda larvae on grain sorghum hybrids at 7 and 14 days after infestation.
Figure 5 in Multiple resistance to primary pests of grain sorghum hybrids: Spodoptera frugiperda (Lepidoptera: Noctuidae), Diatraea saccharalis (Lepidoptera: Crambidae), and Diceraeus melacanthus (Hemiptera: Pentatomidae)
Figure 5 Scores of injury on sorghum plants caused by S. frugiperda (a); D. saccharalis (b); and D. melacanthus (c).
Figure 1 in Multiple resistance to primary pests of grain sorghum hybrids: Spodoptera frugiperda (Lepidoptera: Noctuidae), Diatraea saccharalis (Lepidoptera: Crambidae), and Diceraeus melacanthus (Hemiptera: Pentatomidae)
Figure 1 Green-belly stink bug injury based on the damage rating scale adapted by Roza-Gomes et al. (2011) (0-4) to maize injury.
Sorghum halepense (L.) Pers. (BR0000012638574)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Sorghum halepense (L.) Pers. (BR0000012333127)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Sorghum halepense (L.) Pers. (BR0000012634989)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Sorghum halepense (L.) Pers. (BR0000011616597)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Sorghum halepense (L.) Pers. (BR0000012615766)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Sorghum halepense (L.) Pers. (BR0000011616702)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Sorghum halepense (L.) Pers. (BR0000012519286)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
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Allen Brain Atlas
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OpenNeuro
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