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Fig. 2 in Microphysogobio zhangi Sun & Zhao 2022, n. sp.
Fig. 2. Synergus gilletti Pujade-Villar and Lobato-Vila sp. nov.: (a) Female head in frontal view, (b) female head in ventral view, (c) female head in dorsal view, (d) male head in dorsal view, (e) tarsal claw, (f) female antenna, (g) F1 and F2 of male antenna. © 2017 Academia Sinica, Taiwan
Fig. 3 in Microphysogobio zhangi Sun & Zhao 2022, n. sp.
Fig. 3. Synergus gilletti Pujade-Villar and Lobato-Vila sp. nov.: (a) Mesosoma in dorsal view, (b) mesosoma in lateral view, (c) propodeum, (d) female metasoma in lateral view. © 2017 Academia Sinica, Taiwan
Fig. 1 in Microphysogobio zhangi Sun & Zhao 2022, n. sp.
Fig. 1. Synergus cibriani Pujade-Villar and Lobato-Vila sp. nov.: (a) Female head in frontal view, (b) mesosoma in dorsal view, (c) female head in dorsal view, (d) male head in dorsal view, (e) mesosoma in lateral view, (f) female antenna, (g) first segments of male antenna, (h) propodeum, (i) tarsal claw, (j) female metasoma in lateral view, (k) detail of the metasomal micropunctures (female), (l) detail of the metasomal micropunctures (male).
Fig. 6 in Microphysogobio zhangi Sun & Zhao 2022, n. sp.
Fig. 6. Total evaporative water loss (TEWL) and share of heat dissipated by evaporation (%He) in Passeriformes at TA TA = Tlc and at TA TA = Tuc as function of body mass. © 2017 Academia Sinica, Taiwan
Fig. 2 in Microphysogobio zhangi Sun & Zhao 2022, n. sp.
Fig. 2. (A) energy expenditure at rest (SMR, BMR, kJ per day, left scales) and the energy equivalent of lost body mass (q, kJ per g, right scales) as the functions of ambient temperature (TA, °C). Each symbol is a mean for several measurements in several birds at a given TA, vertical bars are SD. (B) Evaporative heat loss (He, kJ per day, right scale), non-evaporative heat loss (Hs, kJ per day, right scales) as the functions of ambient temperature (TA, °C) and percentage of heat loss through evaporation (He, %, left scales) as the functions of ambient temperature (TA, °C) in the Goal Tits (Parus ater) in winter.
Fig. 9. N in Microphysogobio bicolor
Fig. 9. N. kurdistanensis sp. nov., male 7 mm (ZCRU Amph. 1077). (A) PL I; (B) PL II; (C) PL III; (D) U I; (E) U II; (F) U III; (G) EP I-III; (H) T. Scale bars: 1 = 0.5 mm (EP I-III, T); 2 = 1 mm (PL I-III, U I-II); 3 = 2 mm (U III). © 2017 Academia Sinica, Taiwan
Fig. 5. N in Microphysogobio bicolor
Fig. 5. N. kurdistanensis sp. nov., male 12 mm (holotype, ZCRU Amph. 1076). (A) PL I; (B) PL II; (C) PL III; (D) U I; (E) U II; (F) U III; (G) EP I-III; (H) T. Scale bars: 1 = 0.5 mm (EP I-III, T); 2 = 1 mm (PL I-III, U I-II); 3 = 2 mm (U III).
Fig. 1 in Microphysogobio bicolor
Fig. 1. (A) The sampling localities in Kurdistan Province, Iran (study area). (●), Shoei Cave; (▲), Darvish-Olya Cave; the numbers demarcate the main cities namely: 1, Baneh; 2, Marivan; 3, Sanandaj. (B) Entrance of Shoei cave. (C) Entrance of Darvish-Olya cave. (D) Niphargus kurdistanensis sp. nov., holotype, lateral view. Specimen collected from Shoei cave.
Fig. 8. N in Microphysogobio bicolor
Fig. 8. N. kurdistanensis sp. nov., male 7 mm (ZCRU Amph. 1077). (A) P III; (B) P IV; (C) P V; (D) P VI; (E) P VII. Scale bars: 1 mm (P III- P VII). © 2017 Academia Sinica, Taiwan
Fig. 7. N in Microphysogobio bicolor
Fig. 7. N. kurdistanensis sp. nov., male 7 mm (ZCRU Amph. 1077). (A) GN I; (B) GN II; (C) MXP; (D) LB; (E) MX II. Scale bars: 1 = 0.5 mm (LB, MXP, MX II); 2 = 1 mm (GN I-II).
Fig. 6. N in Microphysogobio bicolor
Fig. 6. N. kurdistanensis sp. nov., male 7 mm (ZCRU Amph.1077). (A) AI; (B) AII; (C) H; (D-E) MX I; (F) LMND; (G) RMND; (H) MNDP. Scale bars: 1 = 0.25 mm (LMND, RMND); 2 = 0.5 mm (H, MX I, MNDP); 3 = 1 mm (AI-AII).
Fig. 4. N in Microphysogobio bicolor
Fig. 4. N. kurdistanensis sp. nov., male 12 mm (holotype, ZCRU Amph. 1076). (A) P III; (B) P IV; (C) P V; (D) P VI; (E) P VII. Scale bars: 1 mm (P III- P VII).
Fig. 11 in Microphysogobio bicolor
Fig. 11. Bayesian consensus tree of 41 Niphargus species (40 taxa from Esmaeili-Rineh et al. 2015b), based on the COI sequences. Species are identified and named according to available taxonomic descriptions. Posterior probabilities are indicated on main branches. © 2017 Academia Sinica, Taiwan
Fig. 10 in Microphysogobio bicolor
Fig. 10. Bayesian consensus tree of 53 Niphargus species (52 taxa from Esmaeili-Rineh et al. 2015b, 2017a), based on the 28S ribosomal DNA sequences. Species are identified and named according to available taxonomic descriptions. Posterior probabilities are indicated on main branches.
Fig. 2. N in Microphysogobio bicolor
Fig. 2. N. kurdistanensis sp. nov., male 12 mm (holotype, ZCRU Amph.1076). (A) AI; (B) AII; (C) H; (D-E) MX I; (F) LMND; (G) RMND; (H) MNDP. Scale bars: 1 = 0.25 mm (LMND, RMND); 2 = 0.5 mm (H, MX I, MNDP); 3 = 1 mm (AI-AII).
Fig. 3. N in Microphysogobio bicolor
Fig. 3. N. kurdistanensis sp. nov., male 12 mm (holotype, ZCRU Amph. 1076). (A) GN I; (B) GN II; (C) MXP; (D) LB; (E) MX II. Scale bars: 1 = 0.5 mm (LB, MXP, MX II); 2 = 1 mm (GN I-II). © 2017 Academia Sinica, Taiwan
Fig. 3 in Microphysogobio bicolor
Fig. 3. (a-b) Montipora sp. from Abu-Musa Island; (c-d) close-up of corallites. Scale bar = 1 mm.
Fig. 5 in Microphysogobio bicolor
Fig. 5. (a-b) Pavona cactus from Sirri Islands; (c-d) close-up of corallites. Scale bar = 1 mm.
FIGURE 3 in A new species, Microphysogobio wulonghensis (Teleostei: Cypriniformes: Cyprinidae), from Shandong Province, China
FIGURE 3. Distribution of Microphysogobio wulonghensis sp. nov. and similar species. Hollow cross, M. hsinglungshanensis; solid square M. anudarini; solid circle, M. chinssuensis; solid star, M. wulonghensis sp. nov.; solid triangle, M. linghensis; hollow square, M. rapidus; hollow circle, M. yaluensis; asterisk M. amurensis.
FIGURE 2 in A new species, Microphysogobio wulonghensis (Teleostei: Cypriniformes: Cyprinidae), from Shandong Province, China
FIGURE 2. Lateral and ventral views of Microphysogobio wulonghensis sp. nov. Holotype, ASIZB 176476, 41.2 mm SL: a, lateral and ventral views; b1, photograph of upper and lower lips; b2, illustration of upper and lower lips.
ScienceDex guides
Understand access before you commit
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)
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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.