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.
4,481
datasets available to search
ShareScore release 0.9.0
Dataset results
4,481 results for “research journal”
Figures 1-9 from: Bai Y, Chen B, Li T-J (2024) A newly recorded genus Microdynerus Thomson, 1874 and a review of its related genus Leptochilus de Saussure, 1853 (Hymenoptera, Vespidae, Eumeninae) from China. Journal of Hymenoptera Research 97: 57-83. https://doi.org/10.3897/jhr.97.112108
Figures 1-9 Leptochilus (Lionotulus) angulus sp. nov., holotype (♀) 1 habitus in dorsal view 2, 3 head in frontal view 4 gena in lateral view 5 vertex and pronotum 6 mesosoma in lateral view 7 propodeum in posterior view 8, 9 metasoma in lateral view.
Figures 79-85 from: Bai Y, Chen B, Li T-J (2024) A newly recorded genus Microdynerus Thomson, 1874 and a review of its related genus Leptochilus de Saussure, 1853 (Hymenoptera, Vespidae, Eumeninae) from China. Journal of Hymenoptera Research 97: 57-83. https://doi.org/10.3897/jhr.97.112108
Figures 79-85 Leptochilus (Neoleptochilus) tibetanus Giordani Soika, 1966 ♀ 79 habitus in dorsal view 80 head in frontal view 81 vertex and pronotum 82 mesosoma in lateral view 83 gena in lateral view 84 propodeum in posterior view 85 metasoma in lateral view.
Fig 2 from: Alexiou S (2024) Eupholidoptera kekrops sp. nov. (Orthoptera, Tettigoniidae), new bush-cricket from Greece. Journal of Orthoptera Research 33(1): 67-70. https://doi.org/10.3897/jor.33.103790
Fig 2 Eupholidoptera kekrops, paratype, just before collection, 11.vi.2013, Vravrona, Attiki, Greece.
Fig 1 from: Alexiou S (2024) Eupholidoptera kekrops sp. nov. (Orthoptera, Tettigoniidae), new bush-cricket from Greece. Journal of Orthoptera Research 33(1): 67-70. https://doi.org/10.3897/jor.33.103790
Fig 1 Eupholidoptera kekropssp. nov. A. Left male cercus, dorsal view; B. Last abdominal tergite, dorsal view; C. Male subgenital plate, ventral view; D. Titillator, dorsal view (scale bar: 1 mm) (drawn by Giorgos Zervos).
Figures 17-26 from: Bai Y, Chen B, Li T-J (2024) A newly recorded genus Microdynerus Thomson, 1874 and a review of its related genus Leptochilus de Saussure, 1853 (Hymenoptera, Vespidae, Eumeninae) from China. Journal of Hymenoptera Research 97: 57-83. https://doi.org/10.3897/jhr.97.112108
Figures 17-26 Leptochilus (Lionotulus) callidus (Kostylev, 1940) ♀ 17, 19, 21, 23–26 ♂ 18, 20, 22. 17, 18 habitus in dorsal view 19, 20 head in frontal view 21 vertex and pronotum 22 part of antenna 23 propodeum in posterior view 24 gena in lateral view 25, 26 metasoma in lateral view.
Figure 4 from: Lotfalizadeh H, Mirzaee Z, Tavakoli-Korghond G, Janšta P, Rasplus J-Y (2024) Erimerinae, a prior name to Microdontomerinae (Hymenoptera, Torymidae) with the description of a new genus and three new species from Iran. Journal of Hymenoptera Research 97: 85-103. https://doi.org/10.3897/jhr.97.115028
Figure 4 Microdontomerus iriphagusA female antenna, lateral view B male antenna, lateral view C male head, frontal view (anl1 – anellus 1; clv1,3 – clavomere 1, 3; fu1,7 – funicular 1, 7).
Figure 5 from: Lotfalizadeh H, Mirzaee Z, Tavakoli-Korghond G, Janšta P, Rasplus J-Y (2024) Erimerinae, a prior name to Microdontomerinae (Hymenoptera, Torymidae) with the description of a new genus and three new species from Iran. Journal of Hymenoptera Research 97: 85-103. https://doi.org/10.3897/jhr.97.115028
Figure 5 Microdontomerus iriphagus, female A mesosoma, lateral view B mesosoma, dorsal view C fore wing D metasoma, dorsal view E propodeum, dorsal view.
Figure 2 from: Lotfalizadeh H, Mirzaee Z, Tavakoli-Korghond G, Janšta P, Rasplus J-Y (2024) Erimerinae, a prior name to Microdontomerinae (Hymenoptera, Torymidae) with the description of a new genus and three new species from Iran. Journal of Hymenoptera Research 97: 85-103. https://doi.org/10.3897/jhr.97.115028
Figure 2 Perserimerus marginalis, female holotype A antenna, lateral view B fore wing, venation C head, lateral view (anl1, 3 – anellus 1, 3; clv1,3 – clavomere 1, 3; fu1,5 – funicular 1, 5; mv – marginal vein; pmv – postmarginl vein; st – stigma; stv – stigmal vein; tsc – terminal spine).
Figure 7 from: Lotfalizadeh H, Mirzaee Z, Tavakoli-Korghond G, Janšta P, Rasplus J-Y (2024) Erimerinae, a prior name to Microdontomerinae (Hymenoptera, Torymidae) with the description of a new genus and three new species from Iran. Journal of Hymenoptera Research 97: 85-103. https://doi.org/10.3897/jhr.97.115028
Figure 7 Microdontomerus quadrimaculatus, female A mesosoma, dorsal view B metasoma, dorsal view C propodeum, dorsal view.
Figure 6 from: Lotfalizadeh H, Mirzaee Z, Tavakoli-Korghond G, Janšta P, Rasplus J-Y (2024) Erimerinae, a prior name to Microdontomerinae (Hymenoptera, Torymidae) with the description of a new genus and three new species from Iran. Journal of Hymenoptera Research 97: 85-103. https://doi.org/10.3897/jhr.97.115028
Figure 6 Microdontomerus quadrimaculatus, female A female habitus, lateral view B fore wing venation C head, frontal view D female antenna, lateral view E head, lateral view F fore wing (anl1 – anellus 1; clv1,3 – clavomere 1, 3; fu1,7 – funicular 1, 7).
Figure 8 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 8 A, B. P. japonica adult emerging from the litter (A) and beginning to hide under the litter (B). C, D. The daily maximum number of P. japonica adults above litter surface in the outdoor enclosure from Jan. 12 to Apr. 13, 2022 (C) and temperatures under litter, on litter, and air temperature in shade (D). The mean values for short periods are given on top of each panel. Different letters above the means in C indicate significant differences with Steel-Dwass test at the 5% level.
Figure 5 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 5 A, B. The daily maximum number of P. japonica adults in the L-area of tubes (A) and mean temperatures from 08:00–18:00 (B). C, D. The relationship between the daily maximum number of adults in the L-area of tubes and daily maximum temperature in the D-area (C) and L-area (D) under outdoor conditions during the period from Dec. 22, 2021 to Jan. 6, 2022.
Figure 6 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 6 A–C. The effect of blocking the sunlight in the D-area (A) on the number of P. japonica adults in the L-area and temperatures of the two areas (B, C). Cardboard screen was placed in front of the D-area at 13:00. Grey areas show the period during which adults were moving from L- to D-areas. D–K. The effect of heating of the L-area on the behavior of P. japonica adults. In D–G, yellow and black bars indicate the number of adults in the L- and D-areas. In H–K, yellow and black lines indicate the temperatures in the L- and D-areas. Asterisks indicate a significant difference with a t-test at the 5% level.
Figure 4 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 4 The numbers of P. japonica adults in the L-area of tubes (A, B), temperatures in the L- and D-area (C, D) and light intensities (< 20,000 lux, E, F) under outdoor conditions on Dec. 31 (A, C, E) and Jan. 1 (B, D, F). Ten adults were placed in the D- or L-area of each tube at 08:00.
Figure 3 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 3 The numbers of P. japonica adults on the walls of cages kept under outdoor and indoor conditions on Dec. 28 (A) and 29 (B). All adults were placed on the floor at 08:00 on the first day in the indoor cage. Temperature on the floor was monitored hourly (C, D). Pale orange areas indicate the time of sunlight on cages.
Figure 2 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 2 The proportion of P. japonica adults that stood within 10 min after being placed with their sides down at 08:00 (N = 8–12) on the cork floor under outdoor conditions from Jan. 20–29 (A), the time of day when those adults that remained motionless for >10 min after being placed with their sides down at 08:00 stood spontaneously (B), and the floor and their body temperatures when standing (C).
Figure 10 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 10 A. The relationship between body temperatures of P. japonica adults and temperatures on litter in the outdoor enclosure from Jan. 17 to Feb. 7. Sitting, adults sitting on litter; emerging, those that just emerged from litter; hiding, those that started moving to hide under litter. Dotted lines indicate that the two temperatures are similar. B, C. The proportions of days when the temperature on litter increased, remained unchanged, and decreased during 1 h before the first P. japonica emerged (B) and before the first adult hid under litter (C) in the outdoor enclosure from Jan. 12 to Feb. 25.
Figure 9 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 9 A–E. Daily changes in the percentage of P. japonica adults above litter in the outdoor enclosure containing 20 individuals. Each histogram represents the mean percentage of insects at that hour averaged over all the days of that specific period. Bars indicate one SD. F. The relationship between the daily maximum number of P. japonica adults above the litter surface and various daily maximum temperatures in the outdoor enclosure from Feb. 6 to 25. T-1 = temperature at the bottom of litter; T-2 = temperature on litter; AT = air temperature, shade. G. The relationship between the numbers of P. japonica adults above litter and temperatures at 18:00 in the outdoor enclosure from Feb. 27 to Apr. 12. T-1, temperature at the bottom of litter; T-2, temperature on litter; AT, air temperature, shade.
Figure 11 from: Tanaka S (2024) Temperature-dependent phototaxis in overwintering adults of the grasshopper Patanga japonica (Orthoptera, Acrididae). Journal of Orthoptera Research 33(1): 71-86. https://doi.org/10.3897/jor.33.102749
Figure 11 The number of P. japonica adults that appeared in the L-areas of tubes at 20°C under artificial illumination on Jan. 3 (A) and Jan. 8 (B). Treatment tubes were transferred to warm indoors from the cool outside at 20:00, causing them to rapidly heat. Control tubes experienced only a mild temperature increase because they had already been indoors for several hours. All adults were placed in D-areas at 20:00. Temperatures in the L-areas are shown. Note that no Control insects moved into the L-areas on both days.
Supplementary material 3 from: Duan Y-B, Wang Y-J, Zhu D-H, Zeng Y, Wang X-D (2024) Description and mitochondrial genome sequencing of a new species of inquiline gall wasp, Synergus nanlingensis (Hymenoptera, Cynipidae, Synergini), from China. Journal of Hymenoptera Research 97: 105-126. https://doi.org/10.3897/jhr.97.119433
List of PCR primers and sequencing primers used in this study
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.