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1,017 results for “freshwater fish”
Data from: Trophic response to ecological conditions of habitats: evidence from trophic variability of freshwater fish
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Data from: No evidence for host specialization or host-race formation in the European bitterling (Rhodeus amarus), a fish that parasitizes freshwater mussels
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Figure 9 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 9 DFA performed for three combined samples, Squalius tenellus, S. microlepis phenotype 1 and phenotype 2 A based on 32 standardised direct measurements and 12 counts (specimens A–K excluded) B based on 52 proportional measurements (as in Table 2) and counts (specimens A–K excluded) C same analysis as (B) but specimens A–K in Table 5 included.
Figure 7 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 7 DFA performed for two combined samples of Squalius microlepis phenotype 1 and phenotype 2 A based on 32 standardised direct measurements and 12 counts B based on 52 proportional measurements (as in Table 2) and counts. Specimens A–K in Table 5 not included.
Figure 8 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 8 A CA performed for two combined samples of Squalius microlepis phenotype 1 and phenotype 2, based on 52 proportional measurements (as in Table 2) and counts. Specimens A–K in Table 5 not included.
Figure 6 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 6 Squalius microlepis phenotype 1, karst systems near Vrgorac A phenotype 1, NMW 49423, 276.1 mm SL, 'Vergoraz [See Jessero]' (specimen E) B phenotype 2, NMW 49425, 178 mm SL, 'See bei Gradač & Vrgorač' (specimen C); C, NMW 49428, 165.8 mm SL, 'Lago di Dusino', intermediate between phenotypes 1 and 2 (specimen A: external appearance as in phenotype 2 but 15 gill rakers as in phenotype 1).
Figure 4 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 4 Squalius microlepis phenotype 2 A SMNH 443, 255.7 mm SL, Bosnia and Herzegovina: Tihaljina River at Tihaljina B MNCN_ICTIO 294.472-294.473, 140.1 mm SL, Bosnia and Herzegovina: Trebižat River at Grabovnik-Vašarovići C alive specimen, ZISP 54994, 147.2 mm SL, Bosnia and Herzegovina: Matica (Vrljika) River at Drinovci.
Figure 5 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 5 Lateral view to show characters superficially distinguishing phenotypes of Squalius microlepis s. l. ASqualius microlepis phenotype 2: MNCN_ICTIO 294.784-294.800, 128.0 mm SL (Tihaljina) BSqualius microlepis phenotype 1: NMW 12729-32, 119.5 mm SL ('Imotski'). Key: Arrow a – posterior end of lower jaw, line b – upper head profile, arrow c – body profile just behind head; vertical d – shorter head in S. microlepis phenotype 2, vertical e – shorter prepelvic distance in S microlepis phenotype 2; line f – dorso-hypural distance if reported forward.
Figure 3 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 3 Squalius microlepisA NMW 49415, lectotype, 150.8 mm SL, "Imosky" B phenotype 1: alive specimen, MNCN_ICTIO 296.096-296.097, 147.6 mm SL, Bosnia and Herzegovina: Krenica Lake at Drinovci.
Figure 1 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 1 Map showing localities of examined specimens: S. tenellus, S. microlepis phenotype 1, and S. microlepis phenotype 2, shadowed areas showing ranges of S. tenellus (blue) and S. microlepis (yellow); 1 – Ričice Reservoir, 2 – Ričina River, Posušje, 3 – Lower Matica River, 4 – Krenica Lake, 5 – Vrgoračka Matica River system (Vrgoračko Polje, Polje Jezero), 6 – Baćina lakes.
Figure 11 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 11 Specimen MZUF 13512 (identified as S. microlepis by Kolombatović), Cetina River. Photo credit: Saulo Bambi, Sistema Museale dell'Università degli Studi di Firenze, Sez. di Zoologia "La Specola", Italy.
Figure 10 from: Bogutskaya NG, Diripasko OA, Zupančič P, Jelić D, Naseka A (2019) Phenotypic diversity in an endangered freshwater fish Squalius microlepis (Actinopterygii, Leuciscidae). ZooKeys 897: 115-147. https://doi.org/10.3897/zookeys.897.38768
Figure 10 A locality where two phenotypes of Squalius microlepis co-occur: Tihaljina River at Tihaljina, Bosnia and Herzegovina (7 July 2011).
Fig. 3 in Plasticity in the shape and growth pattern of asteriscus otolith of black prochilodus Prochilodus nigricans (Teleostei: Characiformes: Prochilodontidae) freshwater Neotropical migratory fish
Fig. 3. Cluster analysis based on the euclidean distances of the wavelet functions by shape analysis of asteriscus otoliths Prochilodus nigricans between rivers. S (Solimões); J (Japurá) and N (Negro).
Fig. 2 in Plasticity in the shape and growth pattern of asteriscus otolith of black prochilodus Prochilodus nigricans (Teleostei: Characiformes: Prochilodontidae) freshwater Neotropical migratory fish
Fig. 2. Canonical variate analysis of the first 5 PC compo- nents and fish length data of the Prochilodus nigricans for all localities, with 95% confidence. Solimões (blue); Japurá (red) and Negro (green).
Fig. 9 in Defining the reproductive period of freshwater fish species using the Gonadosomatic Index: a proposed protocol applied to ten species of the Patos Lagoon basin
Fig. 9. Monthly variation of Parapimelodus nigribarbis GSI values (adult females only) in Guaíba Lake (white) and Casamento Lake (dark gray), Rio Grande do Sul, Brazil (median, 25-75% quartiles and lower-upper GSI limits by month and site). Three GSI cut-off values were tested with rspect to the maximum GSI recorded for each species, for delimitation of reproductive months: 20% (G20), 30% (G30) and 40% (G40).
Fig. 11 in Defining the reproductive period of freshwater fish species using the Gonadosomatic Index: a proposed protocol applied to ten species of the Patos Lagoon basin
Fig. 11. Monthly variation of Pachyurus bonariensis GSI values (adult females only) in Guaíba Lake (white) and Casamento Lake (dark gray), Rio Grande do Sul, Brazil (median, 25-75% quartiles and lower-upper GSI limits by month and site). Three GSI cut-off values were tested with respect to the maximum GSI recorded for each species, for delimitation of reproductive months: 20% (G20), 30% (G30) and 40% (G40).
Fig. 1 in Defining the reproductive period of freshwater fish species using the Gonadosomatic Index: a proposed protocol applied to ten species of the Patos Lagoon basin
Fig. 1. Sampling locations in a. Guaíba Lake and b. Casamento Lake in Rio Grande do Sul, southern Brazil.
Fig. 8 in Defining the reproductive period of freshwater fish species using the Gonadosomatic Index: a proposed protocol applied to ten species of the Patos Lagoon basin
Fig. 8. Monthly variation of Loricariichthys anus GSI values (adult females only) in Guaíba Lake (white) and Casamento Lake (dark gray), Rio Grande do Sul, Brazil (median, 25- 75% quartiles and lower-upper GSI limits by month and site). Three GSI cut-off values were tested with respect to the maximum GSI recorded for each species, for delimitation of reproductive months: 20% (G20), 30% (G30) and 40% (G40).
Fig. 6 in Defining the reproductive period of freshwater fish species using the Gonadosomatic Index: a proposed protocol applied to ten species of the Patos Lagoon basin
Fig. 6. Monthly variation of Oligosarcus robustus GSI values (adult females only) in Guaíba Lake (white) and Casamento Lake (dark gray), Rio Grande do Sul, Brazil (median, 25-75% quartiles and lower-upper GSI limits by month and site). Three GSI cut-off values were tested with respect to the maximum GSI recorded for each species, for delimitation of reproductive months: 20% (G20), 30% (G30) and 40% (G40).
Fig. 7 in Defining the reproductive period of freshwater fish species using the Gonadosomatic Index: a proposed protocol applied to ten species of the Patos Lagoon basin
Fig. 7. Monthly variation of Hoplosternum littorale GSI values (adult females only) in Guaíba Lake (white) and Casamento Lake (dark gray), Rio Grande do Sul, Brazil (median, 25-75% quartiles and lower-upper GSI limits by month and site). Three GSI cut-off values were tested with respect to the maximum GSI recorded for each species, for delimitation of reproductive months: 20% (G20), 30% (G30) and 40% (G40).
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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.
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