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Fig 3 from: Silva ACS, Nunes LA, Batista WL, Lhano MG (2018) Morphometric variation among males of Orphulella punctata (De Geer, 1773) (Acrididae: Gomphocerinae) from different biomes in Brazil. Journal of Orthoptera Research 27(2): 163-171. https://doi.org/10.3897/jor.27.21203
Fig 3 Scatter plot of the Principal Components Analysis (PCA) of Orphulellapunctata (De Geer, 1773) pronotum shape in populations collected from the Cerrado, Atlantic Forest, and Pantanal. A. Thin-plate spline of the positive (+) and B. negative (-) axes of PCA 2; C.PCA plot.
Fig 10 from: Silva ACS, Nunes LA, Batista WL, Lhano MG (2018) Morphometric variation among males of Orphulella punctata (De Geer, 1773) (Acrididae: Gomphocerinae) from different biomes in Brazil. Journal of Orthoptera Research 27(2): 163-171. https://doi.org/10.3897/jor.27.21203
Fig 10 Similarity dendrogram for the lateral view of the head in Orphulellapunctata populations from the Cerrado, Atlantic Forest, and Pantanal by the UPGMA method. The permutation test was carried out with 10,000 replicates and a cophenetic correlation coefficient of 98.8%.
Fig 2 from: Silva ACS, Nunes LA, Batista WL, Lhano MG (2018) Morphometric variation among males of Orphulella punctata (De Geer, 1773) (Acrididae: Gomphocerinae) from different biomes in Brazil. Journal of Orthoptera Research 27(2): 163-171. https://doi.org/10.3897/jor.27.21203
Fig 2 Lateral view of Orphulellapunctata (De Geer, 1773). A. Pronotum: 10 anatomical points; B. Femur: 18 anatomical points; C. Lateral view of the head: 16 anatomical points; D. Dorsal view of the head: 18 anatomical points. Black circles represent the landmarks and white circles represent the semi-landmarks.
Fig 2 from: Fianco M, de Souza-Dias PGB, de Farias-Martins F, Magro S, Prasniewski VM, Ricci J, Zefa E, Szinwelski N (2018) Ethology of the cricket Endecous (Endecous) chape Souza-Dias & de Mello, 2017 (Orthoptera: Grylloidea: Phalangopsidae) I: Agonistic and reproductive behavior. Journal of Orthoptera Research 27(2): 193-201. https://doi.org/10.3897/jor.27.29687
Fig 2 Endecouschape mating behavior. A. Courtship position; B. Male stridulating next to the female; C. Exposure of the spermatophore; D. Copulation position; E. Copulation; F. End of copulation; G. Female dragging the male in end-to-end position; H. Male removing the spermatophore.
Fig 1 from: Fianco M, de Souza-Dias PGB, de Farias-Martins F, Magro S, Prasniewski VM, Ricci J, Zefa E, Szinwelski N (2018) Ethology of the cricket Endecous (Endecous) chape Souza-Dias & de Mello, 2017 (Orthoptera: Grylloidea: Phalangopsidae) I: Agonistic and reproductive behavior. Journal of Orthoptera Research 27(2): 193-201. https://doi.org/10.3897/jor.27.29687
Fig 1 Male-male interactions of Endecouschape. A. Antennation in face-to-face position; B. One male stridulating while the other lifts up his body; C. Same-sex sexual behavior, with both males producing a spermatophore; D. Male in the center of arena lifting up his body and stridulating, while the other moves to the corner.
Fig 8 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 8 The same individual as in Fig. 5; spinning silk strands to secure leaves for shelter construction.
Fig 7 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 7 The same individual as in Fig. 5; spinning silk strands to secure leaves for shelter construction.
Fig 3 from: Fianco M, de Souza-Dias PGB, de Farias-Martins F, Magro S, Prasniewski VM, Ricci J, Zefa E, Szinwelski N (2018) Ethology of the cricket Endecous (Endecous) chape Souza-Dias & de Mello, 2017 (Orthoptera: Grylloidea: Phalangopsidae) I: Agonistic and reproductive behavior. Journal of Orthoptera Research 27(2): 193-201. https://doi.org/10.3897/jor.27.29687
Fig 3 Endecouschape oviposition behaviors. A. Female pressing the tip of ovipositor against the sand surface at a 40° angle; B. Female redirecting the ovipositor at another angle (about 70°); C. Female burying the ovipositor; D. Female with the ovipositor penetrated, remaining immobile.
Fig 6 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 6 The same individual as in Fig. 5; grasping two leaves with fore tarsi and pulling them together while attaching them with silk strands.
Fig 5 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 5 Stictogryllacris sp. (lyrata?) from Highveld riverine habitat in Malolotja Nature Reserve, Eswatini (Swaziland). Body length about 15 mm.
Fig 4 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 4 Stictogryllacrislyrata from the northern face of the Soutpansberg range in South Africa. Body length about 15 mm.
Fig 3 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 3 Glomeremus sp. 3. A mating pair from the southwestern Cape Province, South Africa. The female is on top, the male below her. Spermatophores, produced by the male during copulation, and characteristic of Ensifera, are clearly visible. Body length about 15 mm. Photo by C. S. Bazelet.
Fig 2 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 2 Glomeremus sp. 2. From the mountains of the southwestern Cape Province, South Africa. Body length about 15 mm.
Fig 1 from: Scholtz C, Bazelet CS, de Klerk H (2018) Gryllacrididae (Orthoptera: Ensifera) in southern Africa. Journal of Orthoptera Research 27(2): 183-186. https://doi.org/10.3897/jor.27.29645
Fig 1 Glomeremus sp. 1. From the Drakensberg, South Africa, illustrating the long, curled antennae and the silk matting on the inner surface of the leaf shelter. Body length about 15 mm.
Fig 4 from: Riede K (2018) Acoustic profiling of Orthoptera: present state and future needs. Journal of Orthoptera Research 27(2): 203-215. https://doi.org/10.3897/jor.27.23700
Fig 4 A data warehouse for sound management. The scheme illustrates elements and workflow for acoustic profiling of Orthoptera. Songs are sampled either by recording individual songsters (Targeted Recordings), or entire acoustic scenes, each of which could contain several Orthoptera songs. Targeted recordings are treated like specimens, with time and locality stamps and, preferably, a voucher specimen. All databases listed in Table 1 are designed to store individual recordings. These distributed databases could be federated via ABCD- or Darwin-protocol. Soundscapes require distinct data management of large multimedia files. Orthoptera songs could be extracted manually or semi-automatically as sound snippets, and eventually be identified (ID) manually, or using automatic sound recognition algorithms (ASR). Many snippets can be extracted from each scene, resulting in a one-to-many relationship between scenes and snippets.
Fig 2 from: Riede K (2018) Acoustic profiling of Orthoptera: present state and future needs. Journal of Orthoptera Research 27(2): 203-215. https://doi.org/10.3897/jor.27.23700
Fig 2 The SYSTAX database. Screenshot of the new SYSTAX user interface, to be released under www.systax.org. A search for the Neotropical tettigoniid genus Anaulacomera recovers several sound recordings from a voucher specimen of a hitherto undescribed species, documented by photographs. Faceting allows searching by images or sounds exclusively.
Fig 1 from: Riede K (2018) Acoustic profiling of Orthoptera: present state and future needs. Journal of Orthoptera Research 27(2): 203-215. https://doi.org/10.3897/jor.27.23700
Fig 1 Web-based sound analysis tool for the Macaulay Sound Library, Cornell Lab (https://www.macaulaylibrary.org). Macaulay Library provides more than 400,000 playable audio files (http://macaulaylibrary.org/index.do), and even permits spectrographic online visualization using RavenViewer as a free browser plugin (http://www.birds.cornell.edu/brp/software/sound-analysis-tools). The example shows a recording of a Virtuoso katydid by T. Walker, who provided most of the Orthoptera sound recordings for this sound library. For further details, see text.
Fig 3 from: Riede K (2018) Acoustic profiling of Orthoptera: present state and future needs. Journal of Orthoptera Research 27(2): 203-215. https://doi.org/10.3897/jor.27.23700
Fig 3 Embedding metadata within sound files. Metadata were embedded within wav and mp3 fields directly from the SYSTAX database using Soundminer software (http://store.soundminer.com/). Metadata are visible within most mp3-players, displaying the species name as "TrackTitle" and the recordist as "Artist" (Courtesy: S. Ingrisch).
Fig 1 from: Shephard AM, Aksenov V, Rollo CD (2018) Conspecific mortality cues mediate associative learning in crickets, Acheta domesticus (Orthoptera: Gryllidae). Journal of Orthoptera Research 27(2): 187-192. https://doi.org/10.3897/jor.27.25484
Fig 1 Changes in olfactory preference index for adult crickets (Achetadomesticus) conditioned to associate a favorable vanilla olfactory scent with one of five necromone cues: all-female cricket body extract (F Ex), all-male extract (M Ex), combined male-female extract (MF Ex), oleic acid (OA), and linoleic acid (LA). In the control treatment, crickets were conditioned with ethanol instead of a necromone cue. Positive indices indicate vanilla preference and negative indices indicate peppermint preference. A significant change in preference index between initial and post-conditioning tests (relative to the control) indicates learning associated with a necromone cue (* p < 0.05, ** p < 0.01). All preference indices were derived from perching durations (i.e. total time spent attending to either the vanilla or peppermint cue during the preference test). Bars indicate standard error.
Supplementary material 3 from: Prendergast KS (2022) Leioproctus zephyr Prendergast (Hymenoptera, Colletidae, Leioproctus), an oligoletic new bee species with a distinctive clypeus. Journal of Hymenoptera Research 93: 167-188. https://doi.org/10.3897/jhr.93.85685
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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.