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4,481 results for “research journal”
Fig 4 from: Woo B (2020) First natural history observations of the canyon pygmy mole cricket, Ellipes monticolus (Orthoptera: Tridactylidae). Journal of Orthoptera Research 29(1): 1-7. https://doi.org/10.3897/jor.29.33413
Fig 4 Subgenital plate (ventral view) of female Ellipes monticolus. Arrow denotes the diagnostic short, broad protrusion at the median of the caudal margin.
Fig 4 from: Bhaskar D, Easa PS, Rowell CHF (2020) Mopla guttata (Acrididae: Catantopinae) rediscovered in the Western Ghats, Kerala, India. Journal of Orthoptera Research 29(1): 17-23. https://doi.org/10.3897/jor.29.35664
Fig 4 Mopla guttata, male. A. Whole animal alive; the odd position of the right tibia is due to specimen being injured in capture. B. Oblique frontal view to show frontal ridge, for comparison with Fig. 2. Photo credit: D. Bhaskar and L.D.C. Fishpool.
Fig 7 from: Woo B (2020) First natural history observations of the canyon pygmy mole cricket, Ellipes monticolus (Orthoptera: Tridactylidae). Journal of Orthoptera Research 29(1): 1-7. https://doi.org/10.3897/jor.29.33413
Fig 7 Underside of right tegmen of male Ellipes monticolus, showing stridulatory apparatus (scraper).
Data of the article "Journal research data sharing policies: a study of highly-cited journals in neuroscience, physics, and operations research"
<p>The journals’ author guidelines and/or editorial policies were examined on whether they take a stance with regard to the availability of the underlying data of the submitted article. The mere explicated possibility of providing supplementary material along with the submitted article was not considered as a research data policy in the present study. Furthermore, the present article excluded source codes or algorithms from the scope of the paper and thus policies related to them are not included in the analysis of the present article.</p> <p>For selection of journals within the field of neurosciences, Clarivate Analytics’ InCites Journal Citation Reports database was searched using categories of neurosciences and neuroimaging. From the results, journals with the 40 highest Impact Factor (for the year 2017) indicators were extracted for scrutiny of research data policies. Respectively, the selection journals within the field of physics was created by performing a similar search with the categories of physics, applied; physics, atomic, molecular & chemical; physics, condensed matter; physics, fluids & plasmas; physics, mathematical; physics, multidisciplinary; physics, nuclear and physics, particles & fields. From the results, journals with the 40 highest Impact Factor indicators were again extracted for scrutiny. Similarly, the 40 journals representing the field of operations research were extracted by using the search category of operations research and management. </p> <p>Journal-specific data policies were sought from journal specific websites providing journal specific author guidelines or editorial policies. Within the present study, the examination of journal data policies was done in May 2019. The primary data source was journal-specific author guidelines. If journal guidelines explicitly linked to the publisher’s general policy with regard to research data, these were used in the analyses of the present article. If journal-specific research data policy, or lack of, was inconsistent with the publisher’s general policies, the journal-specific policies and guidelines were prioritized and used in the present article’s data. If journals’ author guidelines were not openly available online due to, e.g., accepting submissions on an invite-only basis, the journal was not included in the data of the present article. Also journals that exclusively publish review articles were excluded and replaced with the journal having the next highest Impact Factor indicator so that each set representing the three field of sciences consisted of 40 journals. The final data thus consisted of 120 journals in total. </p> <p>‘Public deposition’ refers to a scenario where researcher deposits data to a public repository and thus gives the administrative role of the data to the receiving repository. ‘Scientific sharing’ refers to a scenario where researcher administers his or her data locally and by request provides it to interested reader. Note that none of the journals examined in the present article required that all data types underlying a submitted work should be deposited into a public data repositories. However, some journals required public deposition of data of specific types. Within the journal research data policies examined in the present article, these data types are well presented by the Springer Nature policy on “Availability of data, materials, code and protocols” (Springer Nature, 2018), that is, DNA and RNA data; protein sequences and DNA and RNA sequencing data; genetic polymorphisms data; linked phenotype and genotype data; gene expression microarray data; proteomics data; macromolecular structures and crystallographic data for small molecules. Furthermore, the registration of clinical trials in a public repository was also considered as a data type in this study. The term <em>specific data types</em> used in the custom coding framework of the present study thus refers to both life sciences data and public registration of clinical trials. These data types have community-endorsed public repositories where deposition was most often mandated within the journals’ research data policies.</p> <p>The term ‘location’ refers to whether the journal’s data policy provides suggestions or requirements for the repositories or services used to share the underlying data of the submitted works. A mere general reference to ‘public repositories’ was not considered a location suggestion, but only references to individual repositories and services. The category of ‘immediate release of data’ examines whether the journals’ research data policy addresses the timing of publication of the underlying data of submitted works. Note that even though the journals may only encourage public deposition of the data, the editorial processes could be set up so that it leads to either publication of the research data or the research data metadata in conjunction to publishing of the submitted work.<em> </em></p> <p> </p>
Fig 4 from: Oumarou Ngoute C, Kekeunou S, Lecoq M, Nzoko Fiemapong AR, Um Nyobe PCA, Bilong Bilong CF (2020) Effect of anthropogenic pressure on grasshopper (Orthoptera: Acridomorpha) species diversity in three forests in southern Cameroon. Journal of Orthoptera Research 29(1): 25-34. https://doi.org/10.3897/jor.29.33373
Fig 4 Abundance distribution model of species in the different forests. A. Ongot; B. Zamakoe; C. Ngutadjap.
Figure 1 from: Baker AJ, Heraty JM (2020) Larval morphology and life history of Eutrichosoma mirabile Ashmead and description of a new species of Eutrichosoma (Hymenoptera, Chalcidoidea). Journal of Hymenoptera Research 75: 67-85. https://doi.org/10.3897/jhr.75.47880
Figure 1 Eutrichosoma mirabile immature stages. A Eggs of Eutrichosoma mirabile (small, stalked) laid on top of the eggs of their weevil host (large, unstalked) within a seed pod of Vachellia constricta; inset: Eutrichosoma mirabile egg B SEM ventrolateral habitus image of a planidium of Eutrichosoma mirabileC planidium attached to host weevil larva D setal map of a Eutrichosoma mirabile planidium, modified from an illustration by Darling & Miller (1991) E head capsule of planidium, dorsal and ventral views F planidium TIII–IV, ventral tubercles G head, anterolateral view, showing the labial structure H TXIII with cerci, dorsolateral view. Abbreviations: ant = antenna, cer = cerci, cs = cranial spine, lp = labial palp, man = mandible, plst = pleurostomal seta, prl = prelabium, psb = pleurostomal bridge, psl = postlabium, set = seta, spi = spiracle, spn = spine, tbs = tubercles, I–XIII = terga numbered from anterior to posterior.
Figure 2 from: Baker AJ, Heraty JM (2020) Larval morphology and life history of Eutrichosoma mirabile Ashmead and description of a new species of Eutrichosoma (Hymenoptera, Chalcidoidea). Journal of Hymenoptera Research 75: 67-85. https://doi.org/10.3897/jhr.75.47880
Figure 2 Most parsimonious tree from larval morphology, PAUP* analysis. Character state changes on branches are indicated by black bars (synapomorphies) and white bars (homoplasies). Character state matrix and tree statistics included. Pseudocatolaccus asphondyliae is shown as an example of a generic hymenopteriform larva with morphology that fits a hypothetical ancestor to the PLC. Illustrations of Pseudocatolaccus asphondyliae modified from Parker (1924); Chrysolampus sisymbrii modified from Darling and Miller (1991); Aperilampus varians modified from Darling (1992); Moncacon robertsi modified from Darling and Roberts (1999); Orasema delicatula modified from Burks et al. (2015).
Figure 4 from: Hofmann MM, Renner SS (2020) One-year-old flower strips already support a quarter of a city's bee species. Journal of Hymenoptera Research 75: 87-95. https://doi.org/10.3897/jhr.75.47507
Figure 4 The percentage of bee species recorded at each flower strip that is also found in the surrounding area at distances of 500, 1000, and 1500 m.
Supplementary material 3 from: Hofmann MM, Renner SS (2020) One-year-old flower strips already support a quarter of a city's bee species. Journal of Hymenoptera Research 75: 87-95. https://doi.org/10.3897/jhr.75.47507
: Data type: species data
Figure 2 from: Hofmann MM, Renner SS (2020) One-year-old flower strips already support a quarter of a city's bee species. Journal of Hymenoptera Research 75: 87-95. https://doi.org/10.3897/jhr.75.47507
Figure 2 The flower strip at Fockensteinstraße as an example of the urban context of the flower strips studied here.
Figure 1 from: Hofmann MM, Renner SS (2020) One-year-old flower strips already support a quarter of a city's bee species. Journal of Hymenoptera Research 75: 87-95. https://doi.org/10.3897/jhr.75.47507
Figure 1 The nine flower strips monitored for this study (modified from https://www.openstreetmap.org, using QGIS 3.8.2 (QGIS Development Team 2019) and Munich's bee records (sightings and/or specimens) between 1997 and 2017.
Figure 9 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 9 Orthocentrus leucostomus sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head in dorsal view D head and mesosoma in lateral view E mesosoma in dorsal view F areolet G propodeum and first to second tergites in dorsal view.
Figure 8 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 8 Orthocentrus leei sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head in dorsal view D head and mesosoma in lateral view E mesosoma in dorsal view F areolet G first to third tergites in dorsal view.
Figure 5 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 5 Orthocentrus flavescens sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head in dorsal view D head and mesosoma in lateral view E mesosoma in dorsal view F areolet G first to third tergites in dorsal view.
Figure 3 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 3 Orthocentrus caudalis sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head in dorsal view D head and mesosoma in lateral view E ovipositor F areolet G propodeum and first to third tergites in dorsal view.
Figure 2 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 2 Orthocentrus brachycerus sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head and mesosoma in lateral view D head in dorsal view E scutellum and propodeum in dorsal view F first and second tergites in dorsal view.
Supplementary material 1 from: Baker AJ, Heraty JM (2020) Larval morphology and life history of Eutrichosoma mirabile Ashmead and description of a new species of Eutrichosoma (Hymenoptera, Chalcidoidea). Journal of Hymenoptera Research 75: 67-85. https://doi.org/10.3897/jhr.75.47880
: Data type: molecular data
Figure 18 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 18 Orthocentrus trichoptilus sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head in dorsal view D head and mesosoma in lateral view E mesosoma in dorsal view F fore wing G first to third tergites in dorsal view.
Figure 16 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 16 Orthocentrus tenuiventris sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head in dorsal view D head and mesosoma in lateral view E mesosoma in dorsal view F fore wing G first to third tergites in dorsal view.
Figure 17 from: Humala AE, Lee J-W, Choi J-K (2020) A review of the genus Orthocentrus Gravenhorst (Hymenoptera, Ichneumonidae, Orthocentrinae) from South Korea. Journal of Hymenoptera Research 75: 15-65. https://doi.org/10.3897/jhr.75.47006
Figure 17 Orthocentrus trichophthalmus sp. nov. Holotype. A Habitus in lateral view B head in frontal view C head in dorsal view D head and mesosoma in lateral view E mesosoma in dorsal view F fore wing G first to third tergites in dorsal view.
ScienceDex guides
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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.