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4,243 results for “seasonality”
FIGURE 3 in Stigmaphyllon caatingicola (Malpighiaceae), a new species from Seasonally Dry Tropical Forests in Brazil
FIGURE 3. Map of the distribution of Stigmaphyllon caatingicola (circles) and Stigmaphyllon urenifolium (squares).
FIGURE 1 in Stigmaphyllon caatingicola (Malpighiaceae), a new species from Seasonally Dry Tropical Forests in Brazil
FIGURE 1. Stigmaphyllon caatingicola: A. adaxial leaf surface, B. detail of inflorescence, C. detail of flower, D. samaroid mericarp from S. urenifolium (left) and S. caatingicola (right, scale 1 cm), E. detail of stem surface, F. habitat within SDTF in anthropomorphically modified Caatinga (white arrow shows a tree with S. caatingicola climbing) (R.F.Almeida 577, holotype).
Seasonal monitoring of Drosophila suzukii and its non-crop hosts in Wuhu, Eastern China
<p><i>Drosophila</i><i> suzukii</i> (Matsumura) (Diptera: Drosophilidae) is a serious pest that prefers fresh fruits native to Southeast Asia. In our study apple cider vinegar bait traps were used to capture and monitor the population dynamics of this native pest in Wuhu City, China, from May/June, 2017 to May, 2018. The research was conducted at 15 locations in two fruit orchards in Wuhu. Traps caught more adults in general in Meiling blueberry orchard than in Xicun mixed orchard, and the highest trap counts occurred near harvest time (October). Females had more mature eggs from September to November and the number of mature eggs declined thereafter. We found several non-crop hosts of this pest, which can provide food and reproductive resources for <i>D. suzukii</i>, are common in forests and field margins. By comparing the number of captured adults in the Meiling and Xicun orchards, we found that blueberry was preferred by <i>D. suzukii </i>among the fruits in our search. Fruit ripening time differed among crops and therefore fly populations moved between crop and non-crop habitats during the year or had varying population dynamics on different crops in different seasons. The <i>D. suzukii</i> population and the number of mature eggs decreased in summer and winter but increased in spring and autumn. <i>Drosophila suzukii</i> had higher survival rates on blueberry than other fruits and <i>D. suzukii </i>could use four non-crop species growing around the orchards as host plants.</p>
Figure 6 in Taxonomic revision of the seasonal killifish genus Nothobranchius from Zanzibar, East Africa (Cyprinodontoidei: Aplocheilidae)
Figure 6. Nothobranchius melanospilus (Pfeffer 1896), live exemplars: (a) UFRJ 6515, male, 32.6 mm SL; (b) UFRJ 6515, female, 31.1 mm SL.
Figure 4 in Taxonomic revision of the seasonal killifish genus Nothobranchius from Zanzibar, East Africa (Cyprinodontoidei: Aplocheilidae)
Figure 4. Geographical distribution of Nothobranchius guentheri (Pfeffer 1893), circles, and Nothobranchius melanospilus (Pfeffer 1896), squares.
Figure 5 in Taxonomic revision of the seasonal killifish genus Nothobranchius from Zanzibar, East Africa (Cyprinodontoidei: Aplocheilidae)
Figure 5. Nothobranchius melanospilus (Pfeffer 1896), BMNH 2016.12.2.1, lectotype, female, 35.2 mm SL.
Figure 3 in Taxonomic revision of the seasonal killifish genus Nothobranchius from Zanzibar, East Africa (Cyprinodontoidei: Aplocheilidae)
Figure 3. Diagrammatic representation of the latero-sensory system and frontal squamation on the dorsal surface of the head in: (a) Nothobranchius melanospilus, UFRJ 6874, male, 39.8 mm SL; (b) Nothobranchius guentheri, UFRJ 8416, male, 34.1 mm SL; asss: anterior section of the anterior supraorbital series; anss: posterior rostral neuromast; psss: posterior section of the anterior supraorbital series; poss: posterior supraorbital series; prn: posterior rostral neuromast. Scale bar: 2 mm.
Figure 2 in Taxonomic revision of the seasonal killifish genus Nothobranchius from Zanzibar, East Africa (Cyprinodontoidei: Aplocheilidae)
Figure 2. Nothobranchius guentheri (Pfeffer 1893), live exemplars: (a) UFRJ 8420, male, 33.1 mm SL; (b) UFRJ 8420, female, 29.3 mm SL.
Figure 2 in Seasonal and diel variation of shrimp (Crustacea, Decapoda) on sandbanks of a tropical floodplain river
Figure 2. Seasonal variation of mean number of sergestid (empty bars) and palaemonid (filled bars) shrimp in diurnal (A) and nocturnal (B) samples from sandbanks of the Cinaruco River during 1999 (mean + SE). n= 7, except in November when only six sandbanks were sampled. No samples were taken during January or from July to October. A smoothed hydrograph of the Cinaruco River is superimposed to show water level variation during 1999.
Figure 4 in Seasonal and diel variation of shrimp (Crustacea, Decapoda) on sandbanks of a tropical floodplain river
Figure 4. Abundance (mean + SE) of Acetes paraguayensis and palaemonids during day and night for variable levels of submerged vegetation (A) and ridge-and-trough topography (B). Absent, moderate and abundant submerged vegetation and ridge-and-trough topography in the sandbanks are represented by black, light grey and dark grey bars, respectively. Plots were generated by pooling all sampling dates and sandbanks.
Figure 3 in Seasonal and diel variation of shrimp (Crustacea, Decapoda) on sandbanks of a tropical floodplain river
Figure 3. Abundance (mean + SE) of Acetes paraguayensis (empty bars) and palaemonids (filled bars) from sandbanks of the Cinaruco River during 1999 (pooling all sampling dates together) n = 7, except sandbank 3 (sampled only six times).
Figure 1 in Seasonal and diel variation of shrimp (Crustacea, Decapoda) on sandbanks of a tropical floodplain river
Figure 1. Locations of sampling sites on Cinaruco River near Laguna Larga (LL). Sampled sandbanks are shown with codes from S1 to S7. This NASA LandSat image was taken during the dry season of 2000.
Figure 6 in Seasonal occurrence and adaptation of the exotic Glycaspis brimblecombei Moore (Hemiptera: Aphalaridae) in Italy
Figure 6. Growth rate percentage of mean per leaf of eggs and nymphs in Naples. Trends with polynomial approximation.
Figure 7 in Seasonal occurrence and adaptation of the exotic Glycaspis brimblecombei Moore (Hemiptera: Aphalaridae) in Italy
Figure 7. Growth rate percentage of mean per leaf of eggs and nymphs in Rome. Trends with polynomial approximation.
Figure 5 in Seasonal occurrence and adaptation of the exotic Glycaspis brimblecombei Moore (Hemiptera: Aphalaridae) in Italy
Figure 5. Box–whiskers plot of samples of Naples and Rome. The stripe shows the median, the box the interquartiles and the whiskers extend to the minimum and maximum of (A) eggs, (B) nymph stages 1 and 2, and (C) nymph stages 3–5.
Figure 4. Q-Q in Seasonal occurrence and adaptation of the exotic Glycaspis brimblecombei Moore (Hemiptera: Aphalaridae) in Italy
Figure 4. Q-Q plot of mean per leaf distributions of (A) eggs, (B) nymph stages 1 and 2 and (C) nymph stages 3–5.
Figure 12 in Seasonal occurrence and adaptation of the exotic Glycaspis brimblecombei Moore (Hemiptera: Aphalaridae) in Italy
Figure 12. The linear regressions between mean per leaf of (A) eggs, (B) nymph stages 1 and 2, and (C) nymph stages 3–5 and the average temperature in Naples and between mean per leaf of (D) eggs, (E) nymph stages 1 and 2, and (F) nymph stages 3–5 and the average temperature in Rome.
Figure 4 in Seasonal population fluctuation and spatial distribution of Orthoptera in two grassland areas of Attica - Greece
Figure 4. Mean number of Chorthippus bornhalmi per sample in the mountain station through a 2-year study.
Figure 3 in Seasonal population fluctuation and spatial distribution of Orthoptera in two grassland areas of Attica - Greece
Figure 3. Mean number of Dociostaurus maroccanus per sample in the lowland station through a 2-year study.
Figure 1 in Seasonal population fluctuation and spatial distribution of Orthoptera in two grassland areas of Attica - Greece
Figure 1. Mean number of individuals per sample of Acrididae, Tettigoniidae and Gryllidae families in the lowland station through a 2-year study.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.