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967 results for “cerrado”
FIG. 2 in Bryophytes from Martírios-Andorinhas Mountain Ridge, a highly impacted Amazonia-Cerrado transition zone in southeastern Pará, Brazil
FIG. 2. — Vegetation types and substrates of bryophytes of the Martírios-Andorinhas Mountain Ridge: A-C, savanna; D, secondary forest; E, gallery forest; F, riparian forest; G, soil; H, decaying wood; I, living tree trunk; J-L, rock.
FIG. 1 in Bryophytes from Martírios-Andorinhas Mountain Ridge, a highly impacted Amazonia-Cerrado transition zone in southeastern Pará, Brazil
FIG. 1. — Maps showing the location of the Martírios-Andorinhas Mountain Ridge. Source: Museu Paraense Emílio Goeldi – UAS.
Pasture Condidition map (10m) of the Brazilian Cerrado
<p>Pasture Condition map of 2020 for the Brazilian Cerrado made by Remote Sensing and GIS Lab (LAPIG/UFG). The production of this map used the cloud computing power of the Google Earth Engine cloud platform coupled with data from ESA's Sentinel 2 A/B satellite and the Random Forest algorithm to produce a pasture map and a pasture conditions map. The training samples used were based on ~60,000 samples with spectral behavior correlated with Embrapa field data using the Time-Weighted Dynamic Time Warping (TWDTW) algorithm developed by the Instituto Nacional de Pesquisas Espaciais (INPE).</p> <p>The classes presented in the map are related to:</p> <ul> <li>1 - Signs of Severe Degradation process</li> <li>2 - Signs of Moderate Degradation process</li> <li>3 - Signs of Absent Degradation</li> </ul>
Figure 4 in Use of commercial biostimulator in the ex situ cultivation of a native medicinal plant of Cerrado: Campomanesia adamantium
Figure 4. Two-dimensional graphic of the production data, chemical attributes of substrate, macro and micronutrients of dry mass of aerial parts in different doses of biostimulator. PC1 and PC2 correspond to the Principal Components Leaf dry mass (LDM); Stem dry mass (SDM); Total dry mass (TDM); Leaf area (LA); Dickson quality index (DQI); Root length (RL); Potential of hydrogen (pH); Organic matter (OM); Sum of bases (SB); Cation exchange capacity (CEC); Base saturation (V%); Phosphorus of substrate (P); Calcium of substrate (Ca); Calcium of root (R Ca); Magnesium of substrate (Mg); Copper of substrate (Cu); Copper of shoot (AP Cu); Copper of root (R Cu); Manganese of substrate (Mn); Iron of substrate (Fe); Iron of shoot (AP Fe); Zinc of substrate (Zn); Zinc of shoot (AP Zn) and Zinc of root (R Zn).
Figure 1 in Use of commercial biostimulator in the ex situ cultivation of a native medicinal plant of Cerrado: Campomanesia adamantium
Figure 1. Two-dimensional graphic of the chemical and microbiological attributes in different doses of biostimulator. PC1 and PC2 correspond to the Principal Components Potential of hydrogen (pH); Organic matter (OM); Phosphorus (P); Calcium (Ca); Magnesium (Mg); Copper (Cu); Manganese (Mn); Iron (Fe); Zinc (Zn); Sum of bases (SB); Cation exchange capacity (CEC); Base saturation (V%); microbial biomass carbon (Cmic); Basal respiration (BSR); Metabolic quocient (qCO ).
Figure 3 in Use of commercial biostimulator in the ex situ cultivation of a native medicinal plant of Cerrado: Campomanesia adamantium
Figure 3. Number of leaves of 'guavira' plants according to doses of the biostimulator and epochs of evaluation, * indicates significant difference (p <0.05).
Figure 2 in Use of commercial biostimulator in the ex situ cultivation of a native medicinal plant of Cerrado: Campomanesia adamantium
Figure 2. Photosynthetic activity of 'guavira' plants. A. Photochemical efficiency of photosystem II (Fv/Fm); B. absorbed energy conversion efficiency (F v /F 0); C. chlorophyll index and D. chlorophyll b of 'guavira' plants grown on substrate with different doses of biostimulator, *indicates significant difference (p <0.05) between biostimulator.
Figura 2 in CArActeriZAção florísticA e cHAve dendrológicA PArA esPécies em áreA de CerrAdão nA trAnsição CerrAdo-PAntAnAl, MAto Grosso, BrAsil
Figura 2. Dendrograma de agrupamento realizado pelo método de Jaccard da similaridade florística do fragmento estudado e outros estudos em área de Cerradão. Δ. Presente Estudo; 1. Gomes et al. (2004); 2. Marimon-Junior & Haridasan (2005); 3. Souza et al. (2011); 4. Camilotti et al. (2011); 5. Pinheiro & Durigan (2012); 6. Bueno et al. (2013); 7. Casella & Silva-Júnior (2013); 8. Otoni et al. (2013); 9. Rodrigues & Araújo (2013) – Fragmento 1; 10. Rodrigues & Araújo (2013) – Fragmento 2; 11. Giácomo et al. (2015).
Fig. 1. Mapa com a in BriófitAs de áreA sob o domínio fitogeográfico do CerrAdo e novAs ocorrênciAs PArA o MArAnhão e região Nordeste do BrAsil
Fig. 1. Mapa com a localização da área de coleta do povoado Buriti Corrente, município de Caxias, Maranhão, Brasil.
Figure 1 in Edessa rufomarginata (Hemiptera: Pentatomidae) feeding on Solanum lycocarpum (Solanaceae) in rupestrian fields of the Brazilian Cerrado biome
Figure 1. Edessa rufomarginata (Hemiptera: Pentatomidae) adults on leaf (A), immature on leaf (B), adults on stems (C), and in fruit (D) of Solanum lycocarpum (Solanaceae) plants in Diamantina, Minas Gerais State, Brazil.
Figure 3 in Relations between soil attributes and the abundance of Bacillus thurigiensis in the Cerrado of Maranhão state, Brazil
Figure 3. Similarity dendrogram between iBt, chemical and physical soil attributes in the Maranhão eastern Cerrado. Notes: A: Group 1 (G1) in the red line cluster, Group 2 (G2) in the green line cluster, Group 3 (G3) in the purple line cluster. B: Legend of the abbreviations SM: São Mateus do Maranhão; AT: Alto Alegre; CT: Coroatá; TB: Timbiras; CD: Codó. Source: Authors.
Figure 2 in Relations between soil attributes and the abundance of Bacillus thurigiensis in the Cerrado of Maranhão state, Brazil
Figure 2. Biplot showing the association between iBt, chemical and physical attributes in soil samples in the Maranhão eastern Cerrado. Note: High Cos2 values are associated with a color scale and proximity to the circle of correlations; the warmer the color (red) and closer to the circle of correlation the greater the importance of these variables for the interpretation of these components. iBt: index of Bacillus thuringiensis; OM: organic matter; P: phosphorus; K: potassium; Na: sodium; Ca: calcium; Mg: magnesium; Al: aluminum; H+Al: potencial acidity; SB: sum of bases; CEC: cation exchange capacity; BS: base saturation; m: aluminum saturation.
Figure 3 in Diversity of cellulolytic and xylanolytic fungi associated with the digestive tract of aquatic insect larvae in streams of the Amazon Forest and Cerrado in Brazil
Figure 3. Percentage of fungal isolates from the DT of Stenochironomus (Diptera: Chironomidae) from trunks in Amazon Forest (A), trunks in Cerrado (B) and leaves in Cerrado (C) producers and non-producers of xylanase (Xyl) and cellulase (CMCase).
Figure 2 in Diversity of cellulolytic and xylanolytic fungi associated with the digestive tract of aquatic insect larvae in streams of the Amazon Forest and Cerrado in Brazil
Figure 2. Principal component analysis (PCA) of the physicochemical parameters of the streams sampled in the Amazon Forest - Amazonas (A) and Cerrado - Tocantins (T) in the north of Brazil.
Figure 1 in Diversity of cellulolytic and xylanolytic fungi associated with the digestive tract of aquatic insect larvae in streams of the Amazon Forest and Cerrado in Brazil
Figure 1. Map of the sampling sites of Stenochironomus (Diptera:Chironomidae) in low-order streams in the Adolpho Ducke Forest Reserve in the state of Amazonas (Amazon Forest Biome) and at the Lajeado State Park (LSP) in the state of Tocantins, (Cerrado Biome) Brazil.
Figure 2 in Diversity and enzymatic capabilities of fungi associated with the digestive tract of larval stages of a shredder insect in Cerrado and Amazon Forest, Brazil
Figure 2. Percentage of fungal isolates from the DT of Triplectides (Trichoptera: Leptoceridae) in Cerrado (A) and Amazon Forest (B) biomes producers and non-producers of xylanase (Xyl) and cellulase (CMCase).
Figure 3 in Perception of fungi by farmers in the Cerrado
Figure 3. Non-metric multidimensional scaling (nMDS), based on the Gower similarity index, that was carried out with the answers given by the research participants about their ability to identify fungi or fungal structures. Most respondents noted specimens with characteristics that reminded them of something they had already seen on their property and/or cultures, such as corticoid fungus (No. 9, in the images in detail), vegetative mycelium (No. 13), fungus lichenized (no. 16), and endophytic fungi (no. 5 and 10). These were recognized either because of plant diseases or the fungi they saw growing in compost or wood, which were more easily associated with being fungi. Organisms that did not clearly show these characteristics (such as non-fungal or crusted lichens) were mistakenly classified as fungi or received the "I don't know" option as an answer.
Figure 1 in Perception of fungi by farmers in the Cerrado
Figure 1. Setup of the organism plates presented to the research participants to assess knowledge of the Fungi Kingdom. The plate was composed of different biological structures, both belonging to the Fungi Kingdom (c), as well as to other groups (a, b), in order to encourage participants to reason and bring up previous knowledge about the group. The background knowledge was accumulated in different capacities by the participant (lectures, courses, conversations with acquaintances/family members, television programs, among other communication/learning vehicles). Numbers 1 to 20 represent the different materials collected. Source: prepared by the authors.
Figure 2 in Perception of fungi by farmers in the Cerrado
Figure 2. Different moments from the interviews about mycological knowledge carried out between agricultural producers of settlement projects in the City of Goiás, Goiás. (a-d) research participants are presented to the organism plates; (e) participant showing places where he has already found fungi; (f-h) moments of explanations about fungi; (i-l) different places where the interviews were conducted, that is, where the interviewees market their products: Municipal market (i) and the Organic Products Fair (j-l).
Figure 4 in Perception of fungi by farmers in the Cerrado
Figure 4. Comparison of the total number of correct and wrong answers in distinguishing fungal representatives between different living for conventional and in transition farmers with respect to their agroecological practices. Different letters in each set of responses represent statistically significant differences (P <0.05) after analysis of variance (Fanova: 30.34, P-value: <0.0001).
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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
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
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.