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701 results for “distribution patterns”
Fig. 1 in Distribution Patterns And Genetic Variability Of Three Stream-Dwelling Fish Species
Fig. 1. Map of sampling sites. (bold = sampling sites of genetic surveys) (drawn with grey: lowland sections of streams) Latitudes and longitudes: top (of box): 48°05'N; bottom: 47°21'N; left: 20°16'E;
Figs 7–12 in A Most Unusual Animal Distribution Pattern: A New Siphonocryptid Millipede From Taiwan (Diplopoda, Siphonocryptida)
Figs 7–12. Scanning electron micrographs of Hirudicryptus spp.: 7–8 = caudal edge of midbody terga with pattern of tubercles: 7 = H. canariensis (LOKSA, 1967), 8 = H. taiwanensis sp. n.; 9–10 = left lateral edge of midbody segments with peritreme: 9 = H. canariensis (LOKSA, 1967) with ozopores (o), 10 = H. taiwanensis sp. n.; 11–12: caudal margin of last tergum: 11 = H. canariensis
Figs 2–6 in A Most Unusual Animal Distribution Pattern: A New Siphonocryptid Millipede From Taiwan (Diplopoda, Siphonocryptida)
Figs 2–6. Hirudicryptus taiwanensis sp. n.: 2 = holotype body pattern, dorsal view, 3 = holotype head, frontal view, 4 = paratype from Shiji, head and collum in frontal view (right antenna broken), scanning electron micrograph, 5 = head, right fronto-lateral view, scanning electron micrograph, 6 = holotype,
Fig. 1 in Revision Of Invasion History, Distributional Patterns, And New Records Of Corophiidae (Crustacea: Amphipoda) In Hungary
Fig. 1. Records of Chelicorophium sowinskyi: a = 1917–1960, b = 1991–2009; C. curvispinum: c = 1917–1960, d = 1991–2009; e = C. maeoticum, f = C. robustum in Hungary. Legends: A = River Danube, B = River Tisza, C = River Dráva, D = River Bodrog, E = River Körös, F = canal network of Kiskunság, G = canal network of Nagykunság, H = Lake Balaton
Fig. 2 in Relationships between morphology, diet and spatial distribution: testing the effects of intra and interspecific morphological variations on the patterns of resource use in two Neotropical Cichlids
Fig. 2. Head of Satanoperca pappaterra (a) and Crenicichla britskii (b), showing differences in the mouth protrusion.
Figure 1 in Oocyte distribution, ovarian organization, and spawning pattern in Lutjanus griseus
Figure 1. – Phase-specific variation of oocyte size frequency in ovaries from female Lutjanus griseus in the early developing subphase; spawning capable phase; actively spawning subphase; and past-spawner subphase. Oocytes undergoing germinal vesicle breakdown (GVBD) and hydrated (H) were observed during the actively spawning subphase, but their diameter could not be determined since nucleus was not visible. PG = primary growth oocyte (mean diameter = 47.1 ± 15.1 μm, n = 46730); CA = cortical alveolar oocyte (128.3 ± 29.5 μm, n = 3148); Vtg1 = primary vitellogenic oocyte (190.3 ± 28 μm, n = 709); Vtg2 = secondary vitellogenic oocyte (258.32 ± 29 μm, n = 631) and Vtg3 = tertiary vitellogenic oocyte (298.58 ± 28.2 μm, n = 935); OM (GVM) = oocyte undergoing germinal vesicle migration (274.47 ± 21.2 μm, n = 6). Postovulatory follicles were present in ovaries of past-spawner females.
Figure 1 in Ecological factors determining the distribution patterns of Cyrtanthus nutans R.A.Dyer (Amaryllidaceae) in northwestern KwaZulu-Natal, South Africa
Figure 1. Range and distribution of C. nutans in five main areas within northwestern KwaZuluNatal (Area 1 = Dundee central; Area 2 = eastern Dundee; Area 3 = northeastern Dundee; Area 4 = Rorkes Drift and Area 5 = Wasbank).
Figure 4 in Impact of alien fishes on the distribution pattern of indigenous freshwater fishes of Punjab, Pakistan
Figure 4. Analysis of aliens' fish species impact on the diversity of native fish species through PCA.
Figure 1 in Impact of alien fishes on the distribution pattern of indigenous freshwater fishes of Punjab, Pakistan
Figure 1. Map of sampling sites along with four sampling sites i.e. Head Qadirabad (HQ), Head Baloki (HB), Islam Headworks (IH) and Rasul Barrage (RB).
Fig. 1 in Effects of the antennal sensilla distribution pattern on the behavioral responses of Tribolium castaneum (Coleoptera: Tenebrionidae)
Fig. 1. Tribolium castaneum antennal ultrastructure observations. Dorsal view of the whole antenna with 11 antennal segments with a black line indicating where antennae were cut. Sensilla basiconica were found only on the last 3 segments of the antennae and sensilla trichodea on all antennal segments.
Fig. 3 in Effects of the antennal sensilla distribution pattern on the behavioral responses of Tribolium castaneum (Coleoptera: Tenebrionidae)
Fig. 3. SEM photomicrographs of 6 types (A1, B1, C1, D1, E1, F1) of sensilla basiconica (SB) showing lateral view of the antennae of Tribolium castaneum. TEM photomicrographs 6 types (A2, B2, C2, D2, E2, F2) of sensilla basiconica (SB) showing the thin wall and continuous pores and dendrites. CW = cuticle wall, P = pores, D = dendrites, SBI = sensilla basiconica type 1, SBII = sensilla basiconica type II, SBIII = sensilla basiconica type III, SB IV = sensilla basiconica type IV, SBV = sensilla basiconica type V, SBVI = sensilla basiconica type VI.
Figures 14–17 in The geographic pattern of distribution of the genus Rhopalurus Thorell, 1876 in the Guayana-Amazon region (Scorpiones: Buthidae)
Figures 14–17: Rhopalurus pintoi kourouensis ssp. n. 14. Carapace. 15. Metasoma and telson, lateral aspect. 16–17. Metasoma and telson, dorsal and ventral aspects.
Figures 10–13 in The geographic pattern of distribution of the genus Rhopalurus Thorell, 1876 in the Guayana-Amazon region (Scorpiones: Buthidae)
Figures 10–13: Rhopalurus pintoi kourouensis ssp. n. 10. Chela, dorso-external aspect, showing trichobothria and very intense setation. 11. Chela, idem, represented without setation. 12–13. Patella and femur, dorsal aspect. Again an important setation can be observed.
Figures 5–9 in The geographic pattern of distribution of the genus Rhopalurus Thorell, 1876 in the Guayana-Amazon region (Scorpiones: Buthidae)
Figures 5–9: Rhopalurus crassicauda paruensis ssp. n., male holotype. 5–7. Chela, dorso-external, ventral and internal aspects, showing trichobothria. 8–9. Tarsi of leg IV, lateral and ventral aspects, showing setation.
Figure 4 in The geographic pattern of distribution of the genus Rhopalurus Thorell, 1876 in the Guayana-Amazon region (Scorpiones: Buthidae)
Figure 4: Present distribution of savannah formations in South America (after Sarmiento, 1984). Arrows indicated distinct savannah fragments inhabited by Rhopalurus species. 1. Llanos of the Magdalena (R. caribensis); 2. Llanos of Orinoco (R. laticauda); 3. Savannahs of the Rio Branco-Rupununi (R. pintoi & R. crassicauda); 4. Campos de Paru (R. crassicauda paruensis ssp. n.); 5. Coastal savannahs of the Guayanas (R. pintoi kourouensis ssp. n.).
Figure 1 in The geographic pattern of distribution of the genus Rhopalurus Thorell, 1876 in the Guayana-Amazon region (Scorpiones: Buthidae)
Figure 1: Presumed dispersal tracks of Rhopalurus spp., between 18,000 and 13,000 years BP. A and B illustrate possible corridors between North-South and East-West savannah formations which coalesced during past dry periods (base map after Ab'Saber, 1977).
Figure 2. – Mean abundance per 750 m2 in Changes in distribution patterns of two vulnerable fish species (Epinephelus marginatus and Sciaena umbra) in the Scandola marine reserve (Corsica, NW Mediterranean): a possible effect of increased boat tourism
Figure 2. – Mean abundance per 750 m2 (± SE) of the dusky grouper Epinephelus marginatus (A) and the brown meagre Sciaena umbra (B) according to protection level at Scandola in 2012 and 2018. IR: integral reserve, BZ: buffer zone, UP: unprotected zone. Interannual difference are indicated for each protection level, *: significant at p <0.05, ns: not significant.
Figure 1 in Changes in distribution patterns of two vulnerable fish species (Epinephelus marginatus and Sciaena umbra) in the Scandola marine reserve (Corsica, NW Mediterranean): a possible effect of increased boat tourism
Figure 1. – Location of sites surveyed for dusky grouper and brown meagre populations inside and outside the Scandola MNR (Corsica, NW Mediterranean), according to protection status in summer 2012 and 2018. Dark blue arrows = integral reserve (IR), light blue arrows = buffer zone (BZ), red arrows = unprotected zones (UP). Blue stars = surveyed only in 2012, red star = site surveyed only in 2018.
Figure 5 in Changes in distribution patterns of two vulnerable fish species (Epinephelus marginatus and Sciaena umbra) in the Scandola marine reserve (Corsica, NW Mediterranean): a possible effect of increased boat tourism
Figure 5. – Size structure of Epinephelus marginatus and Sciaena umbra at Scandola in 2012 and 2018. Size classes = 10 cm for the dusky grouper and 5 cm for the brown meagre.
Figure 2 in Soil BON Earthworm - A global initiative on earthworm distribution, traits, and spatiotemporal diversity patterns
Figure 2. Information on studies that will be resampled globally by the Soil BON Earthworm consortium. (A) Global distribution of studies, with the distribution of sites along longitude and latitude, (B) distribution of ecosystem types among studies, (C) localization of sites among terrestrial biomes defined by Mean Annual Temperature (MAT, °C) and Mean Annual Precipitation (MAP, mm), with the distribution of MAT and MAP values, (D) distribution of time span with blue and green colors representing the variable distribution before and after resampling, respectively, (E) Temporal coverage of individual studies.
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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.