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1,549 results for “invertebrate”
Figure 3 from: Bigatti G, Signorelli J (2018) Marine invertebrate biodiversity from the Argentine Sea, South Western Atlantic. ZooKeys 791: 47-70. https://doi.org/10.3897/zookeys.791.22587
Figure 3 Distribution of main taxonomic marine invertebrate groups. The parenthesys after the province indicates the percentage of species mentioned as living in each province. The parenthesys after the phyllum initials indicates the number of species mentioned in the literature.
Figure 1 from: Bigatti G, Signorelli J (2018) Marine invertebrate biodiversity from the Argentine Sea, South Western Atlantic. ZooKeys 791: 47-70. https://doi.org/10.3897/zookeys.791.22587
Figure 1 Cumulative curve for valid marine invertebrate species reported as living in the Argentine Sea (South Western Atlantic). Each dot in the figure represents the year when the taxa was described (and subsequently reported in the literature as living in the Argentine Sea).
Figure 2 from: Bigatti G, Signorelli J (2018) Marine invertebrate biodiversity from the Argentine Sea, South Western Atlantic. ZooKeys 791: 47-70. https://doi.org/10.3897/zookeys.791.22587
Figure 2 Number of valid marine invertebrate species described per decade that were subsequently mentioned in the literature as living in the Argentine Sea.
Figure 3 from: Nissen BD, Devitt TJ, Bendik NF, Gluesenkamp AG, Gibson R (2018) New occurrence records for stygobiontic invertebrates from the Edwards and Trinity aquifers in west-central Texas, USA. Subterranean Biology 28: 1-13. https://doi.org/10.3897/subtbiol.28.29282
Figure 3 ASphalloplanamohri Hyman, 1938 from Cold Spring, Travis Co., Texas, USA BCaecidoteareddelli (Steeves, 1968) from Rocket River Cave, Coryell Co., Texas, USA CStygobromusbalconis (Hubricht, 1943) from Autumn Woods Well, Hays Co., Texas, USA. All photographs by Dr. Jean K. Krejca, Zara Environmental LLC. Images not to scale.
Figure 1 from: Nissen BD, Devitt TJ, Bendik NF, Gluesenkamp AG, Gibson R (2018) New occurrence records for stygobiontic invertebrates from the Edwards and Trinity aquifers in west-central Texas, USA. Subterranean Biology 28: 1-13. https://doi.org/10.3897/subtbiol.28.29282
Figure 1 Sample Sites. Sampling map showing the extent of the Barton Springs Segment of the Edwards (Balcones Fault Zone) Aquifer and its hydrozones in Hays, Travis, and Blanco counties, Texas, USA. Sampling sites are numbered as follows: 1 Bamberger Ranch Spring 2 Red's Spring 3 Emerald Spring 4 Bello Spring 5 Ben McCulloch Spring 6 Sky Ranch Tract - State Well No. 5857507 7 Sweetwater Spring 4 8 Sweetwater Spring 1 9 Hays County Ranch Tract - State Well No. 5849939 10 Old San Antonio Spring 11 Ed's Crossing Tract - State Well No. 58499SH 12 Blowing Sink Cave 13 Blowing Sink Tract - State Well No. 5850411 14 Barton Creek Greenbelt - State Well No. 5842820 15 Cold Spring 16 Eliza Spring 17 Treadwell Spring. Boundaries of aquifer hydrozones courtesy of the Barton Springs Edwards Aquifer Conservation District. Wells are identified primarily by the Texas Water Development Board (TWDB) well-numbering system (Nordstrom and Quincy 1999).
Figure 9 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 9 Notiothemisjonesi, copulation within the male territory in the bed of the Mikwa Stream near Chingombe, Zambia (phot. B. Daraż).
Figure 8 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 8 Notogomphuscf.zernyi, a teneral female from the Mikwa Stream, near Chingombe, Zambia, with details of the thoracic pattern in dorsal and lateral views (a–c), a subgenital plate (d) and the pattern of the proximal segments of abdomen in dorsal view (e); arrows indicate the pale distal part of the middorsal stripe (phot. B. Daraż).
Figure 7 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 7 Heliaeschnatrinervulata from Chingombe, Zambia: male (a–d) and female (e), with recognisable diagnostic morphological traits such as: relatively open venation (a, e) with a low number of cross-veins (e.g. Ax and Mx), the pale frons with a barely marked cross-bar of T-mark (b, e), wing bases without dark subcostal rays (a, e) but with distinct amber tint in the female (e) and shape of male cerci (c, d) (phot. B. Daraż).
Figure 6 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 6 Heliaeschnafuliginosa, a female from the Mikwa Stream, near Chingombe, Zambia, with some recognisable diagnostic traits: the thoracic pattern, wing rays and wing venation (phot. B. Daraż).
Figure 5 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 5 Gynacanthaimmaculifrons from Chingombe, Zambia: a male b head with a diagnostic almost unmarked postfrons c male appendages in dorsal view d female (phot. B. Daraż).
Figure 4 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 4 Gynacantha sp., a female from Chingombe, Zambia: a head, thorax and proximal segments of abdomen in lateral view b and c distal segments of abdomen with stiletto-like cerci in dorsal and lateral view (phot. B. Daraż).
Figure 3 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 3 Frons in dorsal view, with a potentially diagnostic T-mark, of the individuals collected in Chingombe, Zambia: a male of Gynacanthavesiculatab female of Gynacanthavillosac female of Gynacantha sp. (phot. R. Bernard).
Figure 2 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 2 Gynacanthavillosa, a female from Chingombe, Zambia: a a general dorsal view b distal segments of abdomen with remaining proximal parts of cerci c head with a T-mark on the frons d a general lateral view (phot. B. Daraż).
Figure 1 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 1 Allocnemismarshalli ovipositing in tree roots in a small mountain stream near Chingombe, Zambia (phot. B. Daraż).
Figure 10 from: Bernard R, Daraż B (2018) New records of dragonflies (Odonata) in Zambia. African Invertebrates 59(2): 165-193. https://doi.org/10.3897/afrinvertebr.59.29021
Figure 10 Distribution of selected dragonfly species in the southern Afrotropics (between the Equator and the southern border of Zimbabwe): aHeliaeschnafuliginosabGynacanthavesiculatacHeliaeschnatrinervulatadGynacanthaimmaculifronseNotiothemisjonesifAllocnemismarshalligNotogomphuszernyihMastigogomphusdissimilis. The black dot – the new locality. Other points – other data according to literature and Odonata Database of Africa (J. Kipping pers. comm., Clausnitzer et al. 2012) and recent unpublished data (B. Brink and H. Kageler pers. comm.), mostly drawn from the ADDO (African Dragonflies and Damselflies Online) website: blue – pre-1990 records; green – vetted since-1990 records; red – identification and/or locality uncertain.
Figure 6 from: ichuette ME, Simões LB, Zepon T, von Schimonsky DM, Gallão JE (2019) Richness and taxonomic distinctness of cave invertebrates from the northeastern state of Goiás, central Brazil: a vulnerable and singular area. Subterranean Biology 29: 1-33. https://doi.org/10.3897/subtbiol.29.30418
Figure 6 Simple linear regression between richness and Taxonomic distinctness (TD) values of caves from A São Domingos and B Posse karst areas. Legend: SBer= São Bernardo cave system, Ang= Lapa Angélica, Bez= Lapa do Bezerra, SMat= São Mateus cave system, TR_I= Terra Ronca I cave, TR_II= Terra Ronca II cave, PPom= Pau Pombo cave, Rus= Russão cave system, Bom= Bombas cave system, Dor= Doralino cave system, NEsp= Nova Esperança cave, Rev= Revolucionários cave.
Figure 2 from: ichuette ME, Simões LB, Zepon T, von Schimonsky DM, Gallão JE (2019) Richness and taxonomic distinctness of cave invertebrates from the northeastern state of Goiás, central Brazil: a vulnerable and singular area. Subterranean Biology 29: 1-33. https://doi.org/10.3897/subtbiol.29.30418
Figure 2 A Richness and B abundance of subterranean terrestrial invertebrate (by Class) from the São Domingos and Posse karst areas, state of Goiás, and from both regions combined.
Figure 5 from: ichuette ME, Simões LB, Zepon T, von Schimonsky DM, Gallão JE (2019) Richness and taxonomic distinctness of cave invertebrates from the northeastern state of Goiás, central Brazil: a vulnerable and singular area. Subterranean Biology 29: 1-33. https://doi.org/10.3897/subtbiol.29.30418
Figure 5 Taxonomic distinctness (TD) for caves from A São Domingos and B Posse karst areas. Horinzontal line presents the expected TD for the region and funnel graph means 95% confidence limits. Legend: SBer= São Bernardo cave system, Ang= Lapa Angélica, Bez= Lapa do Bezerra, SMat= São Mateus cave system, TR_I= Terra Ronca I cave, TR_II= Terra Ronca II cave, PPom= Pau Pombo cave, Rus= Russão cave system, Bom= Bombas cave system, Dor= Doralino cave system, NEsp= Nova Esperança cave, Rev= Revolucionários cave.
Figure 1 from: ichuette ME, Simões LB, Zepon T, von Schimonsky DM, Gallão JE (2019) Richness and taxonomic distinctness of cave invertebrates from the northeastern state of Goiás, central Brazil: a vulnerable and singular area. Subterranean Biology 29: 1-33. https://doi.org/10.3897/subtbiol.29.30418
Figure 1 Map showing sampled caves from the São Domingos karst area (blue circles) within Terra Ronca State Park (PETeR, green area) and from the Posse karst area (red diamonds). FD, Federal District.
Figure 3 from: ichuette ME, Simões LB, Zepon T, von Schimonsky DM, Gallão JE (2019) Richness and taxonomic distinctness of cave invertebrates from the northeastern state of Goiás, central Brazil: a vulnerable and singular area. Subterranean Biology 29: 1-33. https://doi.org/10.3897/subtbiol.29.30418
Figure 3 Fauna from caves of northeastern Goiás, central Brazil: AHeterophrynuslongicornis (Amblypygi) preying a cricket Endecous sp. (Orthoptera: Phalangopsidae) BNesticodesrufipes (Araneae: Theridiidae) CScolopendraviridicornis (Chilopoda: Scolopendromorpha) DChernetidae (Pseudoscorpiones) EFlirteabatman (Opiliones: Cosmetidae) FStenochrusportoricensis (Schizomida: Hubbardiidae).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.