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Figure 3 from: Zembrzuski D, Woller DA, Jech L, Black LR, Reuter KC, Overson R, Cease A (2021) Establishing the nutritional landscape and macronutrient preferences of a major United States rangeland pest, Melanoplus sanguinipes, in field and lab populations. Journal of Orthoptera Research 30(2): 163-172. https://doi.org/10.3897/jor.30.61605
Figure 3 Performance experiments. Survival and specific growth rates of grasshoppers from the long-term lab colony no-choice diet experiments. A. The specific growth rates for each diet treatment. Diamonds indicate the mean and bolded lines indicate the median. Boxes are +/- 25%, lines represent minimum and maximum values excluding extreme values, and dots indicate data points > 1.5 farther from the box edge than the interquartile range. Lower case letters indicate differences from Mann-Whitney post-hoc analyses. B. The proportion of grasshoppers surviving through time on each diet treatment. Most diet treatments did not have individuals die until the 5th day of the experiment, and most treatments except 7p:35c had minimal deaths (although there were no significant differences among treatments). C. Proportion of grasshoppers molting to adults over time. Most of the diets saw increases in molting from days 5–7, except diet treatment 7p:35c, which was delayed and had the least number of grasshoppers successfully molt (significantly different from all other treatments).
Figure 2 from: Hershberger WL (2021) Substrate-borne vibrations used during acoustic communication and the existence of courtship songs in some species of the genus Anaxipha (Saussure) (Orthoptera: Trigonidiidae: Trigonidiinae). Journal of Orthoptera Research 30(2): 185-191. https://doi.org/10.3897/jor.30.70990
Figure 2 Percent usage of different length drumming bouts during calling songs in A. tinnulacita. (n = 24 songs; 1,503 tapping bouts; error bars are ±SD of the means).
Figure 6 from: Hershberger WL (2021) Substrate-borne vibrations used during acoustic communication and the existence of courtship songs in some species of the genus Anaxipha (Saussure) (Orthoptera: Trigonidiidae: Trigonidiinae). Journal of Orthoptera Research 30(2): 185-191. https://doi.org/10.3897/jor.30.70990
Figure 6 Audio spectrograms of courtship songs of four species of Anaxipha showing drumming bouts (below 2 kHz) and tegminal sounds (above 4 kHz). Low frequencies (below 2 kHz) were enhanced to better show the low-frequency drumming bouts. A.Anaxipha exigua, dark areas below 1 kHz are drumming bouts; B.Anaxipha tinnulacita, fine, dark lines after 1:05 (min:sec) are the drumming bouts; C.Anaxipha tinnulenta, the dark areas after 5 sec and below 2 kHz are the drumming bouts; D.Anaxipha thomasi, the compact dark areas below 2 kHz are the drumming bouts. The clustered, individual taps between drumming bouts are sounds made by the insect jumping repeatedly and rapidly between echemes during the courtship display. Note that the time scales for each courtship song are different, as each species courtship song length is different and variable.
Figure 2 from: Kasalo N, Deranja M, Adžić K, Sindaco R, Skejo J (2021) Discovering insect species based on photographs only: The case of a nameless species of the genus Scaria (Orthoptera: Tetrigidae). Journal of Orthoptera Research 30(2): 173-184. https://doi.org/10.3897/jor.30.65885
Figure 2 Example of AI enhancement of Scaria sp. body details compared to original photography in the background. A. Upper part of the head, showing an eye, a scapus, and a pedicel; B. Ovipositor; C. Hind tarsus; D. Ventral and tegminal sinuses; E. Bottom part of the head, showing the mouthparts. Photo credit: Roberto Sindaco.
Figure 2 from: Zembrzuski D, Woller DA, Jech L, Black LR, Reuter KC, Overson R, Cease A (2021) Establishing the nutritional landscape and macronutrient preferences of a major United States rangeland pest, Melanoplus sanguinipes, in field and lab populations. Journal of Orthoptera Research 30(2): 163-172. https://doi.org/10.3897/jor.30.61605
Figure 2 Field IT compared to nutritional landscape. A, B. Grasshopper intake targets of the field populations (black solid line) alongside the nutrient contents of grasses (triangles) and forbs (circles) collected from the same fields. The grey solid line represents the intake target from the other field population. The dotted line represents a 1p:1c ratio. C, D. The average Euclidean distance between the plants (triangles and circles in A and B) and either the grasshopper IT from each location or the 1p:1c line. * denotes a significant difference between the Euclidean distances calculated from the IT and the 1p:1c line.
Figure 5 from: Hershberger WL (2021) Substrate-borne vibrations used during acoustic communication and the existence of courtship songs in some species of the genus Anaxipha (Saussure) (Orthoptera: Trigonidiidae: Trigonidiinae). Journal of Orthoptera Research 30(2): 185-191. https://doi.org/10.3897/jor.30.70990
Figure 5 Audio spectrograms of three seconds of calling and courtship songs of the four species of Anaxipha. A1.A. exigua calling song; A2.A. exigua courtship song; B1.A. tinnulacita calling song; B2.A. tinnulacita courtship song; C1.A. tinnulenta calling song; C2.A. tinnulenta courtship song; D1.A. thomasi calling song; D2.A. thomasi courtship song. Compared to calling song, the individual syllables of courtship songs are shorter, patterned differently, with more sounds associated with wing-opening movements (wing-dragging).
Figure 4 from: Hershberger WL (2021) Substrate-borne vibrations used during acoustic communication and the existence of courtship songs in some species of the genus Anaxipha (Saussure) (Orthoptera: Trigonidiidae: Trigonidiinae). Journal of Orthoptera Research 30(2): 185-191. https://doi.org/10.3897/jor.30.70990
Figure 4 Oscillograms of the calling and courtship songs of the four species of Anaxipha. A1.A. exigua calling song; A2.A. exigua courtship song; B1.A. tinnulacita calling song; B2.A. tinnulacita courtship song; C1.A. tinnulenta calling song; C2.A. tinnulenta courtship song; D1.A. thomasi calling song; D2.A. thomasi courtship song. All audio files were normalized to -3 dBFS for comparison. Y-axis represents amplitude and is analogous to dBFS (full scale).
Figure 1 from: Zembrzuski D, Woller DA, Jech L, Black LR, Reuter KC, Overson R, Cease A (2021) Establishing the nutritional landscape and macronutrient preferences of a major United States rangeland pest, Melanoplus sanguinipes, in field and lab populations. Journal of Orthoptera Research 30(2): 163-172. https://doi.org/10.3897/jor.30.61605
Figure 1 Field populations and lab population ITs. Average intake target (+/- SEM) for two field populations, Bliss and Boise, ID, and the lab colony. The dashed line represents a 1:1 ratio of protein and carbohydrates, and the crosses on the data points represent SE.
Figure 1 from: Kasalo N, Deranja M, Adžić K, Sindaco R, Skejo J (2021) Discovering insect species based on photographs only: The case of a nameless species of the genus Scaria (Orthoptera: Tetrigidae). Journal of Orthoptera Research 30(2): 173-184. https://doi.org/10.3897/jor.30.65885
Figure 1 Position of the only known locality of Scaria sp. Peroles near Yambrasbamba, marked with a star on the map of Peru with annotated Köppen–Geiger climate classification. Adapted from Beck et al. (2018).
Figure 7 from: Hershberger WL (2021) Substrate-borne vibrations used during acoustic communication and the existence of courtship songs in some species of the genus Anaxipha (Saussure) (Orthoptera: Trigonidiidae: Trigonidiinae). Journal of Orthoptera Research 30(2): 185-191. https://doi.org/10.3897/jor.30.70990
Figure 7 Examination of the means of the average power of the combined first two and the combined last two taps of drumming bouts in courtship songs ±SD. In nearly all instances, tapping becomes louder during an individual drumming bout within courtship songs across all four species. Numbers closer to the abscissas are louder. a = average of the first two taps, b = average of the last two taps in bouts of four taps or more. * = t-tests comparing the means of first two taps to the last two taps, within each species, showed the p-values were all < 0.0001, showing that the taps are significantly louder at the end of drumming bouts (A. exigua n = 5 songs, 45 drumming bouts; A. tinnulacita n = 4, 29; A. tinnulenta n = 4, 98; A. thomasi n = 5, 75).
Figure 1 from: Hershberger WL (2021) Substrate-borne vibrations used during acoustic communication and the existence of courtship songs in some species of the genus Anaxipha (Saussure) (Orthoptera: Trigonidiidae: Trigonidiinae). Journal of Orthoptera Research 30(2): 185-191. https://doi.org/10.3897/jor.30.70990
Figure 1 A typical drumming bout showing the low-frequency and brief nature of these sounds. The figure is the selection of a drumming bout from a courtship song of A. thomasi showing the selection window spanning from the middle of the first tap to the middle of the last tap. This tapping bout consists of 12 taps.
Figure 4 from: Kasalo N, Deranja M, Adžić K, Sindaco R, Skejo J (2021) Discovering insect species based on photographs only: The case of a nameless species of the genus Scaria (Orthoptera: Tetrigidae). Journal of Orthoptera Research 30(2): 173-184. https://doi.org/10.3897/jor.30.65885
Figure 4 Living female of Scaria sp. in A. Dorsal view; B. Lateral view. Photo credit: Roberto Sindaco.
Figure 3 from: Kasalo N, Deranja M, Adžić K, Sindaco R, Skejo J (2021) Discovering insect species based on photographs only: The case of a nameless species of the genus Scaria (Orthoptera: Tetrigidae). Journal of Orthoptera Research 30(2): 173-184. https://doi.org/10.3897/jor.30.65885
Figure 3 The picture of the habitat taken by R. Sindaco during the trip to Peru during which the pictures of Scaria sp. were taken (Homo sapiens (Alberto Venchi) for scale).
Figure 2 from: Fianco M, Engelking PW, Tavares GC (2021) Rediscovering the rare short-winged unicorn katydid Toledopizia salesopolensis (Piza) (Tettigoniidae: Conocephalinae) from South and Southeastern Brazil: First description of male and bioacoustics. Journal of Orthoptera Research 30(2): 193-200. https://doi.org/10.3897/jor.30.72513
Figure 2 Habitus of Toledopizia salesopolensis. A. Male; B. Female; C. Ovipositor. Scale bars: 1 cm.
Figure 5 from: Fianco M, Engelking PW, Tavares GC (2021) Rediscovering the rare short-winged unicorn katydid Toledopizia salesopolensis (Piza) (Tettigoniidae: Conocephalinae) from South and Southeastern Brazil: First description of male and bioacoustics. Journal of Orthoptera Research 30(2): 193-200. https://doi.org/10.3897/jor.30.72513
Figure 5 Toledopizia salesopolensis in vivo. A, B. Male on bamboo leaf, green morph; C. Male on leaf, yellow morph.
Figure 1 from: Fianco M, Engelking PW, Tavares GC (2021) Rediscovering the rare short-winged unicorn katydid Toledopizia salesopolensis (Piza) (Tettigoniidae: Conocephalinae) from South and Southeastern Brazil: First description of male and bioacoustics. Journal of Orthoptera Research 30(2): 193-200. https://doi.org/10.3897/jor.30.72513
Figure 1 Occurrence map of Toledopizia salesopolensis. A. South America; B. Sampled areas. Red circles: new records; yellow square: type-locality.
Figure 7 from: Fianco M, Engelking PW, Tavares GC (2021) Rediscovering the rare short-winged unicorn katydid Toledopizia salesopolensis (Piza) (Tettigoniidae: Conocephalinae) from South and Southeastern Brazil: First description of male and bioacoustics. Journal of Orthoptera Research 30(2): 193-200. https://doi.org/10.3897/jor.30.72513
Figure 7 Calling song of Toledopizia salesopolensis. A. Sonogram of an echeme sequence; B. sonogram of one echeme; C. 2-D spectrogram, ranging from 5 to 30 kHz, of one echeme; D. spectrogram of an echeme sequence, in linear intensity scale.
Figure 3 from: Fianco M, Engelking PW, Tavares GC (2021) Rediscovering the rare short-winged unicorn katydid Toledopizia salesopolensis (Piza) (Tettigoniidae: Conocephalinae) from South and Southeastern Brazil: First description of male and bioacoustics. Journal of Orthoptera Research 30(2): 193-200. https://doi.org/10.3897/jor.30.72513
Figure 3 Specific characters of Toledopizia salesopolensis. A, B. Head in lateral (A) and dorsal view (B); C. Pronotum, dorsal view; D, E. Male left (D) and right tegmen (E); F. Posterior wing; G. Stridulatory file (A1 vein); H. Meso and metabasisternum; I. Tergite X; J, K. male left cercus in ventral (J) and dorsal view (K); L, M. male (L) and female subgenital plate (M). Scale bars: 6 mm (A–C); 7 mm (D–F); 1 mm (G–I, M); 0.5 mm (J, K); 1.5 mm (L).
Figure 6 from: Fianco M, Engelking PW, Tavares GC (2021) Rediscovering the rare short-winged unicorn katydid Toledopizia salesopolensis (Piza) (Tettigoniidae: Conocephalinae) from South and Southeastern Brazil: First description of male and bioacoustics. Journal of Orthoptera Research 30(2): 193-200. https://doi.org/10.3897/jor.30.72513
Figure 6 Toledopizia salesopolensis in vivo. A. Nymph feeding on a cockroach; B. Male on a bamboo leaf.
Supplementary material 1 from: Birkmire S, Penca C, Talamas EJ, Moore MR, Hodges AC (2021) Psix striaticeps (Dodd) (Hymenoptera, Scelionidae): an Old World parasitoid of stink bug eggs arrives in Florida, USA. In: Lahey Z, Talamas E (Eds) Advances in the Systematics of Platygastroidea III. Journal of Hymenoptera Research 87: 503-521. https://doi.org/10.3897/jhr.87.76191
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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.