Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
20
datasets available to search
ShareScore release 0.9.0
Dataset results
20 results for “Mimus”
Fig. 7 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 7. (a) Lectotype of Enteromius alberti (Poll, 1939) (MRAC 64723) with 74.3 mm SL. (b) Fresh specimen of E. alberti (RMCA 2018.008.P.0248 HP 3246) with 62.4 mm SL.
Fig. 4 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 4. Scatterplots of PC2 against PC1 of the PCA on (a) 24 log-transformed measurements (n = 69) and (b) on 15 meristics (n = 62). Specimens of group A, the filled circles (●) represent the genetically analysed specimens, the open circles (Ǫ) indicate the additional specimens. Specimens of E. alberti (Poll, 1939) (lectotype) (♦), E. alberti (paralectotypes) (◊), specimens from Tshambi (), E. cercops (Whitehead, 1960) (holotype) (▲), E. cercops (paratypes) (), E. mimus (Boulenger, 1912) (lectotype) (▼), E. mimus (paralectotypes) (▼), E. perince (R̹ppell, 1835) (syntypes) (+) and E. stigmatopygus (Boulenger, 1903) (syntypes) (×).
Fig. 6 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 6. Scatterplot of PC2 against PC1 of the PCA (n = 83) on 24 log-transformed measurements. For group B, the filled squares (■) represent the specimens used for the genetic analysis, the open squares (□) indicate the additional specimens of the Lake Edward system and the two specimens from Tshambi. Specimens of E. mimus (Boulenger, 1912) (lectotype) (▼) and E. mimus (paralectotypes) (▼).
Fig. 2 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 2. Scatterplot of PC2 against PC1 of a PCA on 24 log-transformed measurements on 71 specimens of Enteromius Cope, 1867. Specimens of the genetic groups A (●) (n = 21) and B (■) (n = 50) are indicated separately.
Fig. 5 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 5. Scatterplots of PC2 against PC1 of (a) the PCA (n = 105) on 24 log-transformed measurements and (b) the PCA (n = 95) on 15 meristics. Specimens of group B, the filled squares (■) represent the genetic analysed specimens, the open squares (□) indicate the additional specimens. Specimens of E. alberti (Poll, 1939) (lectotype) (♦), E. alberti (paralectotypes) (◊), specimens from Tshambi (), E. cercops (Whitehead, 1960) (holotype) (▲), E. cercops (paratypes) (), E. mimus (Boulenger, 1912) (lectotype) (▼), E. mimus (paralectotypes) (▼), E. perince (R̹ppell, 1835) (syntypes) (+) and E. stigmatopygus (Boulenger, 1903) (syntypes) (×).
Fig. 1 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 1. Haplotype network of 651-bp-long COI sequences (n = 137) of the specimens of Enteromius Cope, 1867 with a smooth, flexible last unbranched dorsal fin ray from the Lake Edward system. Each circle represents a haplotype, with the size of the circles indicating the number of individuals with this haplotype and the colour indicating the different parts of the basin. Each bar represents a mutation between two haplotypes.
Fig. 3 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 3. Scatterplots of (a) interorbital width (IOW), (b) pre-pelvic distance (PrPelD), (c) body depth (BD), (d) maximum caudal peduncle depth (MxCPD), (e) minimum caudal peduncle depth (MnCPD), (f) head width (HW), and (g) head depth (HD) in % SL against SL (in mm) on 72 specimens of Enteromius Cope, 1867. The genetic groups A (●) (n = 22) and B (■) (n = 50) are indicated separately. The dashed lines indicate the size class used for the MWU tests.
Shortgrass Steppe site, station USGS Breeding Bird Survey Route 17305, Nunn, CO, study of animal abundance of Mimus polyglottos in units of numberPerSightingEffort 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 Shortgrass Steppe (SGS) contains animal abundance of Mimus polyglottos measurements in numberPerSightingEffort units and were aggregated to a yearly timescale.
Shortgrass Steppe site, station USGS Bird Breeding Survey area 17901, Rockport, CO, study of animal abundance of Mimus polyglottos in units of numberPerSightingEffort 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 Shortgrass Steppe (SGS) contains animal abundance of Mimus polyglottos measurements in numberPerSightingEffort units and were aggregated to a yearly timescale.
FIGURES 7–12. Rhophitulus mimus n in Three new bee species of Rhophitulus Ducke (Hymenoptera, Apidae, Protandrenini) from Argentina and Brazil
FIGURES 7–12. Rhophitulus mimus n. sp.: 7, female (holotype), head in frontal view. 8, female (holotype), lateral view. 9, male, head in frontal view. 10, male, lateral view. 11, female (holotype), mesosoma in dorsal view. 12, male, mesosoma in dorsal view.
Octopus mimus SPAdes preassembly
<p>.</p>
On following pages: 558. Arguedas''s Grass Mouse (Akodon josemariarguedasi); 559. Junin Grass Mouse (Akodon juninensis); 560. Puno Grass Mouse (Akodon subfuscus); 561. Cloud Forest Grass Mouse (Akodon torques); 562. Silent Grass Mouse (Akodon surdus); 563. Kotosh Grass Mouse (Akodon kotosh); 564. White-bellied Grass Mouse (Akodon albiventen; 565. Bolivian Grass Mouse (Akodon boliviensis); 566. Lindbergh's Grass Mouse (Akodon lindberghi); 567. Cursorial Grass Mouse (Akodon curson; 568. Montane Grass Mouse (Akodon montensis); 569. Altiplano Grass Mouse (Akodon lutescens); 570. Thespian Grass Mouse (Akodon mimus); 571. Koford's Grass Mouse (Akodon kofordl); 572. Smoky Grass Mouse (Akodon fumeus); 573. Day's Grass Mouse (Akodon dayi); 574. Cochabamba Grass Mouse (Akodon siberiae); 575. Unicolored Grass Mouse (Akodon caenosus); 576. Tarija Grass Mouse (Akodon pervalens), 577. Gray-bellied Grass Mouse (Akodon simulator); 578. Budin's Grass Mouse (Akodon budini); 579. Variable Grass Mouse (Akodon varius); 580. Caparao Grass Mouse (Akodon mystax); 581. Parana Grass Mouse (Akodon paranaensis); 582. Sao Paulo Grass Mouse (Akodon sanctipaulensis); 583. Forest Grass Mouse (Akodon sylvanus); 584. Spegazzini's Grass Mouse (Akodon spegazzinii); 585. Toba Grass Mouse (Akodon toba); 586. Azara's Grass Mouse (Akodon azarae); 587 Philip Myers's Grass Mouse (Akodon philipmyersi); 588. Reig's Grass Mouse (Akodon reigi); 589. Polop's Grass Mouse (Akodon polopi); 590. Dolores Grass Mouse (Akodon dolores); 591. Intelligent Grass Mouse (Akodon iniscatus). in Cricetidae
On following pages: 558. Arguedas''s Grass Mouse (Akodon josemariarguedasi); 559. Junin Grass Mouse (Akodon juninensis); 560. Puno Grass Mouse (Akodon subfuscus); 561. Cloud Forest Grass Mouse (Akodon torques); 562. Silent Grass Mouse (Akodon surdus); 563. Kotosh Grass Mouse (Akodon kotosh); 564. White-bellied Grass Mouse (Akodon albiventen; 565. Bolivian Grass Mouse (Akodon boliviensis); 566. Lindbergh's Grass Mouse (Akodon lindberghi); 567. Cursorial Grass Mouse (Akodon curson; 568. Montane Grass Mouse (Akodon montensis); 569. Altiplano Grass Mouse (Akodon lutescens); 570. Thespian Grass Mouse (Akodon mimus); 571. Koford's Grass Mouse (Akodon kofordl); 572. Smoky Grass Mouse (Akodon fumeus); 573. Day's Grass Mouse (Akodon dayi); 574. Cochabamba Grass Mouse (Akodon siberiae); 575. Unicolored Grass Mouse (Akodon caenosus); 576. Tarija Grass Mouse (Akodon pervalens), 577. Gray-bellied Grass Mouse (Akodon simulator); 578. Budin's Grass Mouse (Akodon budini); 579. Variable Grass Mouse (Akodon varius); 580. Caparao Grass Mouse (Akodon mystax); 581. Parana Grass Mouse (Akodon paranaensis); 582. Sao Paulo Grass Mouse (Akodon sanctipaulensis); 583. Forest Grass Mouse (Akodon sylvanus); 584. Spegazzini's Grass Mouse (Akodon spegazzinii); 585. Toba Grass Mouse (Akodon toba); 586. Azara's Grass Mouse (Akodon azarae); 587 Philip Myers's Grass Mouse (Akodon philipmyersi); 588. Reig's Grass Mouse (Akodon reigi); 589. Polop's Grass Mouse (Akodon polopi); 590. Dolores Grass Mouse (Akodon dolores); 591. Intelligent Grass Mouse (Akodon iniscatus).
FIGURES 588–598. Anibontes mimus Chamberlin 1924. 588–594, Male. 595–598, Female. 588. Palp, retrolateral view. 589. Palp, prolateral view. 590. Embolus, prolateral view. 591. Radical division, retrolateral view. 592. 595. Habitus, dorsal view. 593. Sternum, ventral view. 594. Chelicerae, anterior view. 596. Epigynum, dorsal view. 597. Internal genitalia, ventral view. 598 in Taxonomic revision of the spider genera Agyneta and Tennesseellum (Araneae, Linyphiidae) of North America north of Mexico with a study of the embolic division within Micronetinae sensu Saaristo & Tanasevitch 1996
FIGURES 588–598. Anibontes mimus Chamberlin 1924. 588–594, Male. 595–598, Female. 588. Palp, retrolateral view. 589. Palp, prolateral view. 590. Embolus, prolateral view. 591. Radical division, retrolateral view. 592. 595. Habitus, dorsal view. 593. Sternum, ventral view. 594. Chelicerae, anterior view. 596. Epigynum, dorsal view. 597. Internal genitalia, ventral view. 598. Internal genitalia, dorsal view.
Fig. 10 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 10. Overview of the sample locations of E. alberti (Poll. 1939) (●) and E. cf. mimus (Boulenger, 1912) (■), including the specimens from Tshambi, in the Lake Edward system. The location of the lectotype and the paralectotypes of E. alberti (♦). The approximate location of the lectotype and the paralectotypes of E. mimus (Boulenger, 1912) (▼) and the holotype and paratypes of E. cercops (Whitehead, 1960) (▲) are indicated in the inset.
Fig. 9 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 9. Fresh specimen of E. cf. mimus (Boulenger, 1912) (RMCA 2016.035.P.0125-0139 HP547) with 45.2 mm SL.
Figure 4 from: Morais R, Araújo LC, Silva GR, Duca C (2019) Multiple nesting attempts and long breeding seasons of Mimus gilvus (Aves: Mimidae) in southeastern Brazil. Zoologia 36: 1-8. https://doi.org/10.3897/zoologia.36.e25717
Figure 4 Number of nests and clutch size of Mimusgilvus from 2010 to 2015 in a Restinga habitat (sand-coastal plain), southeastern Brazil.
Figure 3 from: Morais R, Araújo LC, Silva GR, Duca C (2019) Multiple nesting attempts and long breeding seasons of Mimus gilvus (Aves: Mimidae) in southeastern Brazil. Zoologia 36: 1-8. https://doi.org/10.3897/zoologia.36.e25717
Figure 3 Plant species used for nest construction by Mimusgilvus in a Restinga habitat (sand-coastal plain), southeastern Brazil.
Figure 2 from: Morais R, Araújo LC, Silva GR, Duca C (2019) Multiple nesting attempts and long breeding seasons of Mimus gilvus (Aves: Mimidae) in southeastern Brazil. Zoologia 36: 1-8. https://doi.org/10.3897/zoologia.36.e25717
Figure 2 Average monthly rainfall in millimeters during the years 2010 to 2015 in the Municipality of Guarapari, southeastern Brazil.
Figure 1 from: Morais R, Araújo LC, Silva GR, Duca C (2019) Multiple nesting attempts and long breeding seasons of Mimus gilvus (Aves: Mimidae) in southeastern Brazil. Zoologia 36: 1-8. https://doi.org/10.3897/zoologia.36.e25717
Figure 1 Number of active nests with eggs or nestlings of Mimusgilvus during the breeding seasons from 2010 to 2015 in a Restinga habitat (sand-coastal plain), southeastern Brazil. Roman numerals mean tens: I = 1-10 days; II = 11-20 days; III 21-30 (or 31) days.
Fig. 8 in Revalidation of Enteromius alberti and presence of Enteromius cf. mimus (Cypriniformes: Cyprinidae) in the Lake Edward system, East Africa
Fig. 8. Lectotype of Enteromius mimus (Boulenger, 1912) (BMNH 1912.3.22.99) with 43.6 mm SL.
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)
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.