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Dataset results
143 results for “rupestris”
Potentilla rupestris L. (BR0000011068266)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Potentilla rupestris L. (BR0000011070092)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Potentilla rupestris L. (BR0000011068679)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Potentilla rupestris L. (BR0000011068136)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Responses of dry meadow Kobresia myosuroides and Carex rupestris to Nitrogen fertilization for East of Tvan, 2013 - 2015
A common response of plant communities to increased nitrogen (N) deposition is a shift in species’ abundances. Multiple factors have been proposed to explain the changes in abundance, notably competition and soil acidification. We hypothesized that a plant species that decreased in abundance with elevated N would have lower ectomycorrhizal fungi, altered root-associated bacteria communities, and/or greater susceptibility to Al toxicity than a species that increased in abundance with increasing N deposition. We examined changes in plant–microbe associations and Al toxicity in two dominant species from an alpine dry meadow community subjected to long-term low-level N addition. Carex rupestris has increased in cover over time with N addition and Kobresia myosuroides has decreased. We conducted field sampling of soil microbes from treatment plots and tested whether field levels of Al have toxic effects on sedge species in a greenhouse study. Declines in ectomycorrhizal infection of Cenococcum geophilum occurred on Kobresia with increasing N treatment. In contrast, neither Al level nor changes in bacteria community composition corresponded with the change in cover of sedge species. Decreased ectomycorrhizal infection may have contributed to the decrease in abundance of Kobresia. This study contributes to an understanding of the types of plant–soil interactions that may influence how plant species respond to N deposition and rejects Al toxicity and changes in bacteria composition as factors that likely play a role in changes in sedge abundance. Citations: Potter, T. S., Owens, W. M., Bowman, W. D. (2019). Do plant–microbe interactions and aluminum tolerance influence alpine sedge species’ responses to nitrogen deposition?. Ecosphere, 10(7), e02775.
Figure 2 in Biology of jungle perch, Kuhlia rupestris, identification of threats and knowledge gaps to improve local and global management
Figure 2. – Diet of K. rupestris in northern Queensland (Pusey et al., 2004).
Kuhlia rupestris, juvenile. © E. Vigneux. Source: Keith et al., 1999. in Biology of jungle perch, Kuhlia rupestris, identification of threats and knowledge gaps to improve local and global management
Kuhlia rupestris, juvenile. © E. Vigneux. Source: Keith et al., 1999.
North Temperate Lakes site, station Allequash Lake, study of animal abundance of Ambloplites rupestris in units of numberPerEffort on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from North Temperate Lakes (NTL) contains animal abundance of Ambloplites rupestris measurements in numberPerEffort units and were aggregated to a yearly timescale.
North Temperate Lakes site, station Big Muskellunge Lake, study of animal abundance of Ambloplites rupestris in units of numberPerEffort on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from North Temperate Lakes (NTL) contains animal abundance of Ambloplites rupestris measurements in numberPerEffort units and were aggregated to a yearly timescale.
North Temperate Lakes site, station Crystal Lake, study of animal abundance of Ambloplites rupestris in units of numberPerEffort on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from North Temperate Lakes (NTL) contains animal abundance of Ambloplites rupestris measurements in numberPerEffort units and were aggregated to a yearly timescale.
North Temperate Lakes site, station Lake Mendota, study of animal abundance of Ambloplites rupestris in units of numberPerEffort on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from North Temperate Lakes (NTL) contains animal abundance of Ambloplites rupestris measurements in numberPerEffort units and were aggregated to a yearly timescale.
North Temperate Lakes site, station Lake Monona, study of animal abundance of Ambloplites rupestris in units of numberPerEffort on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from North Temperate Lakes (NTL) contains animal abundance of Ambloplites rupestris measurements in numberPerEffort units and were aggregated to a yearly timescale.
North Temperate Lakes site, station Sparkling Lake, study of animal abundance of Ambloplites rupestris in units of numberPerEffort on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from North Temperate Lakes (NTL) contains animal abundance of Ambloplites rupestris measurements in numberPerEffort units and were aggregated to a yearly timescale.
North Temperate Lakes site, station Trout Lake, study of animal abundance of Ambloplites rupestris in units of numberPerEffort on a yearly timescale
The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from North Temperate Lakes (NTL) contains animal abundance of Ambloplites rupestris measurements in numberPerEffort units and were aggregated to a yearly timescale.
FIGURE 1 in Passiflora rupestris, a new synonym of Passiflora pohlii (Passifloraceae sensu stricto)
FIGURE 1. Geographic distribution of Passiflora pohlii Mast. (•), with insertion of new synonym P. rupestris Bernacci, Mezzonato & Salimena (★).
On following pages: 5. Greater Guinea Pig (Cavia magna); 6. Santa Catarina's Guinea Pig (Cavia intermedia); 7. Southern Mountain Cavy (Microcavia australis); 8. Northern Mountain Cavy (Microcavia niata); 9. Shipton's Mountain Cavy (Microcavia shiptoni); 10. Spix's Yellow-toothed Cavy (Galea spixii); 11. Eastern Yellow-toothed Cavy (Galea flavidens); 12. Highland Yellow-toothed Cavy (Galea musteloides); 13. Southern Highland Yellow-toothed Cavy (Galea comes); 14. Lowland Yellow-toothed Cavy (Galea leucoblephara); 15. Greater Capybara (Hydrochoerus hydrochaeris); 16. Lesser Capybara (Hydrochoerus isthmius); 17. Rock Cavy (Kerodon rupestris); 18. Acrobatic in Caviidae
On following pages: 5. Greater Guinea Pig (Cavia magna); 6. Santa Catarina's Guinea Pig (Cavia intermedia); 7. Southern Mountain Cavy (Microcavia australis); 8. Northern Mountain Cavy (Microcavia niata); 9. Shipton's Mountain Cavy (Microcavia shiptoni); 10. Spix's Yellow-toothed Cavy (Galea spixii); 11. Eastern Yellow-toothed Cavy (Galea flavidens); 12. Highland Yellow-toothed Cavy (Galea musteloides); 13. Southern Highland Yellow-toothed Cavy (Galea comes); 14. Lowland Yellow-toothed Cavy (Galea leucoblephara); 15. Greater Capybara (Hydrochoerus hydrochaeris); 16. Lesser Capybara (Hydrochoerus isthmius); 17. Rock Cavy (Kerodon rupestris); 18. Acrobatic
Subspecies and Distribution. C.i.intermediusMerriam,1889—SWUSAandNMexico(SonoranDesertofWArizonaacrossSArizonaandNSonora,ChihuahuanDesertofC&SNewMexico,WTexas,andNChihuahua). C.i.aterDice,1929—SWUSA(restrictedtotheCarrizozolavafieldofSCNewMexico). C.i.beardiWeckerly,Gennaro&Best,1988—SWUSA(restrictedtothePedroArm-endarizlavafieldofSNewMexico). C.i.eninitusBenson,1934—SWUSA(SCUtahandNArizona). C.i.lithophilusHuey,1937NWMexico(NWSonora). C.i.minimusBurt,1932—NWMexico(Turner[=Datil]I,GulfofCalifornia,Sonora). C.i.phasmaGoldman,1918—SWUSAandNWMexico(restricteddistributioninextremeSWArizonaandextremeNWSonora). C. i. rupestris Benson, 1932 — SW USA (restricted to the Afton lava field of S New Mexico). in Heteromyidae
Subspecies and Distribution. C.i.intermediusMerriam,1889—SWUSAandNMexico(SonoranDesertofWArizonaacrossSArizonaandNSonora,ChihuahuanDesertofC&SNewMexico,WTexas,andNChihuahua). C.i.aterDice,1929—SWUSA(restrictedtotheCarrizozolavafieldofSCNewMexico). C.i.beardiWeckerly,Gennaro&Best,1988—SWUSA(restrictedtothePedroArm-endarizlavafieldofSNewMexico). C.i.eninitusBenson,1934—SWUSA(SCUtahandNArizona). C.i.lithophilusHuey,1937NWMexico(NWSonora). C.i.minimusBurt,1932—NWMexico(Turner[=Datil]I,GulfofCalifornia,Sonora). C.i.phasmaGoldman,1918—SWUSAandNWMexico(restricteddistributioninextremeSWArizonaandextremeNWSonora). C. i. rupestris Benson, 1932 — SW USA (restricted to the Afton lava field of S New Mexico).
On following pages: 3. Natal Red Rock Hare (Pronolagus crassicaudatus); 4. Smith's Red Rock Hare (Pronolagus rupestris Rabbit (Bunolagus monticularis); 8. Pygmy Rabbit (Brachylagus idahoensis); 9. Sumatran Striped Rabbit (Nesolagus Jose Brush Rabbit (Sylvilagus mansuetus); 13. Desert Cottontail (Sylvilagus audubonii); 14. Mountain Cottontail (Sylvilagus); 5. Hewitt's Red Rock Hare (Pronolagus saundersiae); 6. Volcano Rabbit (Romerolagus diazi); 7. Riverine netscheri); 10. Annamite Striped Rabbit (Nesolagus timminsi); 11. Brush Rabbit (Sylvilagus bachmani); 12. San nuttalli); 15. New England Cottontail (Sylvilagus transitionalis). in Leporidae
On following pages: 3. Natal Red Rock Hare (Pronolagus crassicaudatus); 4. Smith's Red Rock Hare (Pronolagus rupestris Rabbit (Bunolagus monticularis); 8. Pygmy Rabbit (Brachylagus idahoensis); 9. Sumatran Striped Rabbit (Nesolagus Jose Brush Rabbit (Sylvilagus mansuetus); 13. Desert Cottontail (Sylvilagus audubonii); 14. Mountain Cottontail (Sylvilagus); 5. Hewitt's Red Rock Hare (Pronolagus saundersiae); 6. Volcano Rabbit (Romerolagus diazi); 7. Riverine netscheri); 10. Annamite Striped Rabbit (Nesolagus timminsi); 11. Brush Rabbit (Sylvilagus bachmani); 12. San nuttalli); 15. New England Cottontail (Sylvilagus transitionalis).
On following pages: 4. Black-and-rufous Sengi (Rhynchocyon petersi); 5. Gray-faced Sengi (Rhynchocyon udzungwensis proboscideus); 8. Etendeka Round-eared Sengi (Macroscelides micus); 9. Fourtoed Sengi (Petrodromus tetradactylus (Elephantulus revoilii; 13. Dusky-footed Sengi (Elephantulus fuscipes); 14. Short-snouted Sengi (Elephantulus brachyrhynchus Sengi (Elephantulus rupestris); 18. Eastern Rock Sengi (Elephantulus myurus); 19. Cape Rock Sengi (Elephantulus); 6. Namib Round-eared Sengi (Macroscelides flavicaudatus); 7. Karoo Round-eared Sengi (Macroscelides); 10. North African Sengi (Petrosaltator rozeti); 11. Rufous Sengi (Elephantulus rufescens); 12. Somali Sengi); 15. Dusky Sengi (Elephantulus fuscus); 16. Bushveld Sengi (Elephantulus intufi); 17. Western Rock edwardii); 20. Karoo Rock Sengi (Elephantulus pilicaudus). in Macroscelididae
On following pages: 4. Black-and-rufous Sengi (Rhynchocyon petersi); 5. Gray-faced Sengi (Rhynchocyon udzungwensis proboscideus); 8. Etendeka Round-eared Sengi (Macroscelides micus); 9. Fourtoed Sengi (Petrodromus tetradactylus (Elephantulus revoilii; 13. Dusky-footed Sengi (Elephantulus fuscipes); 14. Short-snouted Sengi (Elephantulus brachyrhynchus Sengi (Elephantulus rupestris); 18. Eastern Rock Sengi (Elephantulus myurus); 19. Cape Rock Sengi (Elephantulus); 6. Namib Round-eared Sengi (Macroscelides flavicaudatus); 7. Karoo Round-eared Sengi (Macroscelides); 10. North African Sengi (Petrosaltator rozeti); 11. Rufous Sengi (Elephantulus rufescens); 12. Somali Sengi); 15. Dusky Sengi (Elephantulus fuscus); 16. Bushveld Sengi (Elephantulus intufi); 17. Western Rock edwardii); 20. Karoo Rock Sengi (Elephantulus pilicaudus).
On following pages: 423. Tate's Rice Rat (Hylaeamystate); 424. Sowbug Rice Rat (Hylaeamys oniscus); 425. Bolivian Rice Rat (Hylaeamys acritus); 426. Atlantic Forest Rice Rat (Hylaeamys laticeps); 427. Fulvous Pygmy Rice Rat (Oligoryzomys fulvescens); 428. Costa Rican Pygmy Rice Rat (Oligoryzomys costaricensis); 429. Sprightly Pygmy Rice Rat (Oligoryzomys vegetus); 430. Delicate Pygmy Rice Rat (Oligoryzomys delicatus); 431. Grayish Pygmy Rice Rat (Oligoryzomys griseolus); 432. Hairy Pygmy Rice Rat (Oligoryzomys messorius); 433. Tschudi''s Pygmy Rice Rat (Oligoryzomys destructor); 434. Sandy Pygmy Rice Rat (Oligoryzomys arenalis); 435. Andean Pygmy Rice Rat (Oligoryzomys andinus); 436. Small-eared Pygmy Rice Rat (Oligoryzomys microtis); 437. Utiariti Pygmy Rice Rat (Oligoryzomys utiaritensis); 438. Straw-colored Pygmy Rice Rat (Oligoryzomys stramineus); 439. Mato Grosso Pygmy Rice Rat (Oligoryzomys mattogrossae); 440. Moojen's Pygmy Rice Rat (Oligoryzomys moojeni); 441. Highlands Pygmy Rice Rat (Oligoryzomys rupestris); 442. Black-footed Pygmy Rice Rat (Oligoryzomys nigripes); 443. San Javier's Pygmy Rice Rat (Oligoryzomys brendae); 444. Chacoan Pygmy Rice Rat (Oligoryzomys chacoensis); 445. Fornes's Pygmy Rice Rat (Oligoryzomys fornesi); 446. Yellow Pygmy Rice Rat (Oligoryzomys flavescens); 447. Long-tailed Pygmy Rice Rat (Oligoryzomys longicaudatus); 448. Painted Bristly Mouse (Neacomys pictus); 449. Narrow-footed Bristly Mouse (Neacomys tenuipes); 450. Guianan Bristly Mouse (Neacomys guianae); 451. Paracou Bristly Mouse (Neacomys paracou); 452. Dubost's Bristly Mouse (Neacomys dubosti); 453. Large Bristly Mouse (Neacomys spinosus); 454. Pleasant Bristly Mouse (Neacomys amoenus), 455. Vargas Llosa''s Bristly Mouse (Neacomys vargasllosai); 456. Minute Bristly Mouse (Neacomys minutus); 457. Musser's Bristly Mouse (Neacomys musseri). in Cricetidae
On following pages: 423. Tate's Rice Rat (Hylaeamystate); 424. Sowbug Rice Rat (Hylaeamys oniscus); 425. Bolivian Rice Rat (Hylaeamys acritus); 426. Atlantic Forest Rice Rat (Hylaeamys laticeps); 427. Fulvous Pygmy Rice Rat (Oligoryzomys fulvescens); 428. Costa Rican Pygmy Rice Rat (Oligoryzomys costaricensis); 429. Sprightly Pygmy Rice Rat (Oligoryzomys vegetus); 430. Delicate Pygmy Rice Rat (Oligoryzomys delicatus); 431. Grayish Pygmy Rice Rat (Oligoryzomys griseolus); 432. Hairy Pygmy Rice Rat (Oligoryzomys messorius); 433. Tschudi''s Pygmy Rice Rat (Oligoryzomys destructor); 434. Sandy Pygmy Rice Rat (Oligoryzomys arenalis); 435. Andean Pygmy Rice Rat (Oligoryzomys andinus); 436. Small-eared Pygmy Rice Rat (Oligoryzomys microtis); 437. Utiariti Pygmy Rice Rat (Oligoryzomys utiaritensis); 438. Straw-colored Pygmy Rice Rat (Oligoryzomys stramineus); 439. Mato Grosso Pygmy Rice Rat (Oligoryzomys mattogrossae); 440. Moojen's Pygmy Rice Rat (Oligoryzomys moojeni); 441. Highlands Pygmy Rice Rat (Oligoryzomys rupestris); 442. Black-footed Pygmy Rice Rat (Oligoryzomys nigripes); 443. San Javier's Pygmy Rice Rat (Oligoryzomys brendae); 444. Chacoan Pygmy Rice Rat (Oligoryzomys chacoensis); 445. Fornes's Pygmy Rice Rat (Oligoryzomys fornesi); 446. Yellow Pygmy Rice Rat (Oligoryzomys flavescens); 447. Long-tailed Pygmy Rice Rat (Oligoryzomys longicaudatus); 448. Painted Bristly Mouse (Neacomys pictus); 449. Narrow-footed Bristly Mouse (Neacomys tenuipes); 450. Guianan Bristly Mouse (Neacomys guianae); 451. Paracou Bristly Mouse (Neacomys paracou); 452. Dubost's Bristly Mouse (Neacomys dubosti); 453. Large Bristly Mouse (Neacomys spinosus); 454. Pleasant Bristly Mouse (Neacomys amoenus), 455. Vargas Llosa''s Bristly Mouse (Neacomys vargasllosai); 456. Minute Bristly Mouse (Neacomys minutus); 457. Musser's Bristly Mouse (Neacomys musseri).
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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.