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862 results for “marine fish”
Figure 1. – Eastern English Channel spatial grid using a in Spatiotemporal patterns in marine fish and cephalopods communities across scales: using an autoregressive spatiotemporal clustering model. A study of fish and cephalopods of the Eastern English Channel
Figure 1. – Eastern English Channel spatial grid using a triangular mesh at a 522 km2 (A), 782 km2 (B) and 1043 km2 (C) average scale with the geographic coordinates in WGS84 of all the English Channel groundfish hauls survey from 1995 to 2014 (blue). The red points are the vertices used to define the mesh.
Figure 10 in Spatiotemporal patterns in marine fish and cephalopods communities across scales: using an autoregressive spatiotemporal clustering model. A study of fish and cephalopods of the Eastern English Channel
Figure 10. – Alosa sp. from low (blue) to high (red) median densities of numbers/ km2 in log scale for 522 km2 for the Eastern English Channel.
Figure 4 in Spatiotemporal patterns in marine fish and cephalopods communities across scales: using an autoregressive spatiotemporal clustering model. A study of fish and cephalopods of the Eastern English Channel
Figure 4. – Spatial hierarchical clustering at a 522 km2 scale. The rectangle outlines the communities that where find statistically significant by ASTEC given the approximately unbiased p-values expressed in percentage (red). The light grey numbers represent the edge number of the tree.
Figure 9 in Spatiotemporal patterns in marine fish and cephalopods communities across scales: using an autoregressive spatiotemporal clustering model. A study of fish and cephalopods of the Eastern English Channel
Figure 9. – Eastern English Channel absolute spatiotemporal community from low (blue) to high (red) median densities of numbers/ km2 in log scale for communities, AST522c1 (A), AST522c2 (B).
Figure 8 in Spatiotemporal patterns in marine fish and cephalopods communities across scales: using an autoregressive spatiotemporal clustering model. A study of fish and cephalopods of the Eastern English Channel
Figure 8. – Eastern English Channel spatiotemporal community from low (blue) to high (red) median densities of numbers/ km2 in log scale for communities ST522c1 (A), ST522c2 (B).
Figure S6 in Spatiotemporal patterns in marine fish and cephalopods communities across scales: using an autoregressive spatiotemporal clustering model. A study of fish and cephalopods of the Eastern English Channel
Figure S6. – Eastern English Channel spatiotemporal community from low (blue) to high (red) median densities of numbers/ km2 in log scale for communities ST782c1 (A), ST782c2 (B), ST1043c1 (C), ST1043c2 (D).
Figure S1 in Spatiotemporal patterns in marine fish and cephalopods communities across scales: using an autoregressive spatiotemporal clustering model. A study of fish and cephalopods of the Eastern English Channel
Figure S1. – Spatial correlation matrix at a 782 km2 (A) and 1043 km2 (B) scale displaying correlation from strongly negative (dark blue) to strongly positive (dark red).
Figure 5 in At the crossroads: early Miocene marine fishes of the proto-Mediterranean Sea
Figure 5. Paleogeographic map of the proto-Mediterranean, showing its connections to the Paratethys, Atlantic, and Indo-Pacific realms, and the location of the Mesohellenic Basin (MHB) and the Felli section (modified after early Burdigalian scheme of Popov et al., 2004), and list of the species identified at Felli color-coded to indicate their paleobiogeographic distribution.
Figure 3 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 3. – Distribution of total abundance of dusky grouper Epinephelus marginatus and brown meagre Sciaena umbra with depth by protection status recorded at Scandola MNR in 2012 and 2018. Dark colour: integral reserve (IR), medium colour: buffer zone (BZ), light colour: unprotected zones (UP).
Figure 4. – 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 4. – Mean abundance per 750 m2 of the dusky grouper Epinephelus marginatus (A) and the brown meagre Sciaena umbra (B) according to sites and protection status 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, ***: p <0.001, ns: not significant. Standard deviations, not indicated for clarity, are given in Tables II and IV.
Figure 7 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 7. – Size structure of the brown meagre Sciaena umbra at Scandola in 2012 and 2018, according to protection status. IR: integral reserve, BZ: buffer zone, UP: unprotected area.
Figure 6 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 6. – Size structure of the dusky grouper Epinephelus marginatus at Scandola MNR in 2012 and 2018, according to protection status. IR: integral reserve, BZ: buffer zone, UP: unprotected area.
Fig. 2. Colobomatus mylionus Fukui, 1965 in New records of Colobomatus mylionus Fukui, 1965 and Clavellisa chinensis (Yü, 1933) (Crustacea: Copepoda) parasitic on marine fish of Korea
Fig. 2. Colobomatus mylionus Fukui, 1965, adult female from Shinji-do Island, Korea. A. habitus, ventral view. B. small mid-frontal process of cephalosome. C. caudal ramus, proximolateral seta of caudal rami. D. antennule. E. buccal area, showing position of antenna (a), maxillule (me), maxilla (ma), maxilliped (mp), and labium (la). F. leg 1. G. leg 2. H. leg 3. Scale bars: A = 500 μm; B-H = 100 μm.
Fig. 1 in New records of Colobomatus mylionus Fukui, 1965 and Clavellisa chinensis (Yü, 1933) (Crustacea: Copepoda) parasitic on marine fish of Korea
Fig. 1. Distribution of records of parasitic copepods in Korea. A. Colobomatus mylionus Fukui, 1965. B. Clavellisa chinensis (Yü, 1933).
Figure 4 from: Mendoza-Franco EF, Rosado TMC, Duarte AAD, Rodríguez RER (2018) Morphological and molecular (28S rRNA) data of monogeneans (Platyhelminthes) infecting the gill lamellae of marine fishes in the Campeche Bank, southwest Gulf of Mexico. ZooKeys 783: 125-161. https://doi.org/10.3897/zookeys.783.26218
Figure 4 Euryhaliotrema sp. (CNHE 10220) from Lutjanussynagris from Santiaguillo Reef, Veracruz, México: A copulatory complex (dorsal view) B ventral anchor C dorsal anchor. Scale bar: 20 µm for all figures. Abbreviation: Ap = accessory piece.
Figure 3 from: Mendoza-Franco EF, Rosado TMC, Duarte AAD, Rodríguez RER (2018) Morphological and molecular (28S rRNA) data of monogeneans (Platyhelminthes) infecting the gill lamellae of marine fishes in the Campeche Bank, southwest Gulf of Mexico. ZooKeys 783: 125-161. https://doi.org/10.3897/zookeys.783.26218
Figure 3 Haliotrematoidesmagnigastrohamus from Lutjanussynagris from Campeche Bank, Mexico: A haptoral armament B vagina. Scale bars: 20 µm (A); 10 µm (B). Abbreviations: As = accessory sclerite; Pr = Prostatic reservoir.
Figure 6 from: Mendoza-Franco EF, Rosado TMC, Duarte AAD, Rodríguez RER (2018) Morphological and molecular (28S rRNA) data of monogeneans (Platyhelminthes) infecting the gill lamellae of marine fishes in the Campeche Bank, southwest Gulf of Mexico. ZooKeys 783: 125-161. https://doi.org/10.3897/zookeys.783.26218
Figure 6 Molecular phylogeny of the Microcotylidae and Diclidophoridae estimated by methods of Bayesian inference (BI) and maximum likelihood (ML) using partial sequences of the 28S rRNA gene (D1–D3). Species newly sequenced for this study are in bold. Species belonging to Polystomatidae were used as outgroups. The species name is followed by the GenBank sequence ID. Posterior probabilities of the BI followed by ML are given above the branches.
Figure 7 from: Mendoza-Franco EF, Rosado TMC, Duarte AAD, Rodríguez RER (2018) Morphological and molecular (28S rRNA) data of monogeneans (Platyhelminthes) infecting the gill lamellae of marine fishes in the Campeche Bank, southwest Gulf of Mexico. ZooKeys 783: 125-161. https://doi.org/10.3897/zookeys.783.26218
Figure 7 Choricotyle spp. from Haemulonplumieri from Campeche Bank, Mexico: Choricotyle sp. 1. (A), clamp (B), genital atrium (F), hook. Choricotyle sp. 2. (C), clamp (D), genital atrium (G), hook. Choricotyle sp. 3. (E), clamp. Scale bars: 100 µm and 20 µm for all figures, except E 50 µm and F, G 10 µm. Abbreviations: Ca = concentric arcs; Sc = sucker; Fi = filament; Mp = posterior portion of the medial sclerite; sh = shank.
Figure 5 from: Mendoza-Franco EF, Rosado TMC, Duarte AAD, Rodríguez RER (2018) Morphological and molecular (28S rRNA) data of monogeneans (Platyhelminthes) infecting the gill lamellae of marine fishes in the Campeche Bank, southwest Gulf of Mexico. ZooKeys 783: 125-161. https://doi.org/10.3897/zookeys.783.26218
Figure 5 Microcotylearchosargi from Archosargusrhomboidalis from Campeche Bank, Mexico: genital atrium. Scale bar: 50 µm. Abbreviations: Gp = genital pore; Ds = deeper spines within the body; Pc = posterolateral cavities of the atrium, Mco = male copulatory organ.
Figure 2 from: Mendoza-Franco EF, Rosado TMC, Duarte AAD, Rodríguez RER (2018) Morphological and molecular (28S rRNA) data of monogeneans (Platyhelminthes) infecting the gill lamellae of marine fishes in the Campeche Bank, southwest Gulf of Mexico. ZooKeys 783: 125-161. https://doi.org/10.3897/zookeys.783.26218
Figure 2 Haliotrematoidesheteracantha from Lutjanussynagris from Campeche Bank, Mexico: vaginae. Scale bar: 30 µm. Abbreviations: Pr = Prostatic reservoir.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.