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2,288 results for “Periodical”
Рис. 7. Интенсивность насиживания кΛаΔки в час (N = 84). ПериоΔы насиживания: 1 — 1–3 Δень; 2 — 4–6 Δень; 3 — 7–9 Δень; 4 — 10–12 Δень; 5 — 13–16 Δень Fig. 7. Intensity of clutch incubation per hour (N = 84). Incubation periods: 1 — 1–3 days; 2 — 4–6 days; 3 — 7–9 days; 4 — 10–12 days; 5 — 13–16 days in in the Ussuri region
Рис. 7. Интенсивность насиживания кΛаΔки в час (N = 84). ПериоΔы насиживания: 1 — 1–3 Δень; 2 — 4–6 Δень; 3 — 7–9 Δень; 4 — 10–12 Δень; 5 — 13–16 Δень Fig. 7. Intensity of clutch incubation per hour (N = 84). Incubation periods: 1 — 1–3 days; 2 — 4–6 days; 3 — 7–9 days; 4 — 10–12 days; 5 — 13–16 days
Raw data for "Looking for the World in Hungarian Literature: Foreign Authors in Early Twentieth-Century periodicals"
<p>Raw data generated for the project "Hungarian Literature as World Literature", describing foreign authors in the Hungarian journal A Hét (1890-1924). The metadata was created by Mihály Benda, Jessie Labov, and Szilvia Maróthy, working from the Repertorium of foreign authors in A Hét compiled by Ferenc Galambos in 1954. The original index was transformed into structured data and georeferenced, for the project "Hungarian Literature as World Literature", led by Zoltán Z. Varga at the Institute of Literary Studies of the Resesarch Center for the Humanities, Hungarian Research Network, funded by the Nemzeti Kutatási, Fejlesztési és Innovációs Hivatal (National Research, Development and Innovation Office) grant K 138668.</p>
Figure 5. Sensory score and period of storage for processed cheese-Time-Delay Artificial Neural Network Computing Models for Predicting Shelf Life of Processed Cheese
<p>R2 was found to be 96.5 percent of the total variation as explained by sensory scores. Period<br> of storage (days) for which the processed cheese has been in the shelf can be determined based on<br> sensory score (Fig. 5).</p>
Wideband VLF data observed in New Zealand during the period 07-08 September 2017
<p>Wideband VLF data observed in New Zealand during the period 07-08 September 2017.</p>
Ground truth for Neue Zürcher Zeitung black letter period
<p>The Neue Zürcher Zeitung (NZZ) has been publishing in black letter from its very first issue in 1780 until 1947. From this time period, we randomly sampled one frontpage per year, resulting in a total of 167 pages. We chose frontpages because they typically contain highly relevant material and because we want to make sure not to sample pages containing exclusively advertisements or stock information. During certain periods, the NZZ was published several times a day, and there were supplements, too. Due to incomplete metadata, the sampling included frontpages from supplements.</p> <p>We then manually corrected the pages, so it can be used as a ground truth to improve the OCR of black letter in historical newspapers.</p>
Dataset of transactions of 10 Ethereum addresses controlled by a private key, each has at least 2000 output transactions, which include a transfer of cryptocurrency, and all transactions are performed within no longer than three months period.
<p>Starting from the block Nr. 8578851, we have evaluated every block to find enough unique addresses that satisfy the following requirements. The address that appeared in a block must be controlled by private key (i.e., CA), have at least 2000, and not more than 6000 outgoing transactions (i.e., digitally signed), which however include a transfer of any amount of cryptocurrency (i.e., Ether) and must be performed within a period no longer than three months. The whole dataset includes a total of 30505 transactions.</p> <p>Each transaction has data about:</p> <ul> <li>transaction hash</li> <li>block number</li> <li>timestamp (Unix),</li> <li>date and time (m/dd/yyyy)</li> <li>from (Ethereum address)</li> <li>to (Ethereum address)</li> <li>output value (ETH)</li> <li>transaction fee (ETH)</li> <li>transaction fee (USD)</li> <li>historical price (USD)</li> </ul>
Fig. 3. Model B in A new device to autonomously feed individualized mantids on extended periods of time
Fig. 3. Model B autofeeder in operation. (A) Overall view; empty rearing chambers have a cardboard disk blocking the entrance of flies. (B) Four 4th and 5th instar M. aptera Giglio-Tos, 1917 in the rearing cups along with some Drosophila Fallén, 1832 flies. (C) Front view of one end of the equipment, showing the prey cup with culture medium, and Drosophila larvae and flies; note central compartment with prey freely circulating, and the rearing cup with a 4th instar M. aptera hanging in the Tulle fabric. (D) Rearing cup seen through its cover lid, with a 4th instar M. aptera and some prey. (E) Side view of the rearing cup, with a 5th instar M. aptera feeding on a freshly caught Drosophila fly.
Figs. 1 and 2. Building schemes for the autofeeders. 1 in A new device to autonomously feed individualized mantids on extended periods of time
Figs. 1 and 2. Building schemes for the autofeeders. 1. Used material, measurements and quantities.2. Assembling. Bottom panel corresponds to an exploded view drawing of the Model A, with mantises' cups on the top. The top right detail is for Model B, with mantises' cups installed laterally, thus holding twice as many cups. CI, first compartment, the rearing chamber, showing a 4th instar, 2.0 cm long Photina sp. (to scale); CII, central or circulation compartment; CIII, third compartment, the prey cup; a, square piece of Tulle fabric with mesh size of 0.3 mm; b, Lid with a square hole (5) in the center; c, translucent mantis cup, with circular hole (4) on the bottom; d, circular piece of Tulle fabric with mesh size of 2.0 mm; e, rectangular PVC pipe with circular holes on the top side (1) and bottom side (2) [serrations on the side is only an effect to show inside the pipe, and is not meant to be carved on pipe!]; f, translucent plastic sheet; g, lid with circular hole (3) on center; h, translucent prey cup; i, culture medium for Drosophila Fallén, 1832. The connections between components a+ b, c+ d+ e, e+ f and e+ g are fixed with PVC adhesive and sealed with thermoplastic adhesive (glue gun). The small orange dots represent drosophila flies, indicating that they must circulate freely between CI, CII and CIII.
Fig. 3 in Diurnal flight periodicity of a Neotropical ant assemblage (Hymenoptera, Formicidae) in the Atlantic Forest
Fig. 3. The relationship between hour and flight activity of ant subfamilies from a Neotropical assemblage captured through a 24 h time scale. The solid lines were obtained by the locally weighted smoother (function loess in R).
Fig. 4 in Diurnal flight periodicity of a Neotropical ant assemblage (Hymenoptera, Formicidae) in the Atlantic Forest
Fig. 4. Phenologies of flight activity of common species of a Neotropical ant assemblage in Atlantic Forest, southeastern of Brazil. Phenologies are the pooled activity from four Malaise traps and hourly sampling from five days.
Figure 1 in Movement and home range of cinereous vulture Aegypius monachus during the wintering and summering periods in East Asia
Figure 1. Migration route of cinereous vultures (a) VK 1501, (b) VK 1502, (c) VK 1503, (d) VK 1504, (e) VK 1505, (f) VK 1506, (g) VK 1507, and (h) total birds tracked using the GPS-WCDMA-based transmitter in East Asia from January 2015 to March 2017.
Fig. 1 in External Factors Determining The Reproductive Periodicity In A Tropical Population Of The Hairy Crab Pilumnus Vespertilio (Decapoda: Brachyura: Pilumnidae)
Fig. 1. Monthly frequency variation of females of Pilumnus vespertilio collected at Inhaca Island from January to December 2002.
Fig. 1 in Effect of the oviposition period and age of the females of Dalbulus maidis (Hemiptera: Cicadellidae) in the emergence of egg parasitoids
Fig. 1. Average (± SE) number of eggs laid per d by Dalbulus maidis in treatments (Young-3, Young-6, Mature-3, and Mature-6). The circles represent the mature (8-wk-old) leafoppers, whereas the squares represent the young (2-wk-old) leafoppers.
Fig. 4 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 4. Activity period of (A) two glossophagine species (Anoura caudifer + Glossophaga soricina) and Phyllostomus discolor on Musa paradisiaca inflorescence, and of (B) two approaching strategies (upside landing and hovering) performed by two glossophagine species in an orchard located in the state of São Paulo, Brazil.
Fig. 3 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 3. Phyllostomus discolor (Wagner, 1843) with its wings completely open and its head directed toward the flowers performing the downside landing strategy on the banana inflorescence in an orchard located in the state of SÃo Paulo, Brazil. Photo: Wilson Uieda.
Fig. 2 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 2. Glossophaga soricina (Pallas, 1766) with its wings folded alongside the body performing the upside landing strategy on the banana inflorescence in an orchard located in the state of SÃo Paulo, Brazil. Photo: Wilson Uieda.
Fig. 1 in Feeding behavior and activity period of three Neotropical bat species (Chiroptera: Phyllostomidae) on Musa paradisiaca inflorescences (Zingiberales: Musaceae)
Fig. 1. Anoura caudifer (É. Geoffroy, 1818) with its snout partially inserted in floral tube performing the hovering strategy on the banana inflorescence in an orchard located in the state of SÃo Paulo, Brazil. Photo: Wilson Uieda.
Figure 2 in Mollusk Foraging and Gendered Labor at Litekyan (Ritidian) During the Spanish Contact Period in Guam
Figure 2. Map of the Guam National Wildlife Refuge showing the location of the two excavated latte (near the West End Cave) (Fig. 60 in Carson 2017).
Figure 6 in Mollusk Foraging and Gendered Labor at Litekyan (Ritidian) During the Spanish Contact Period in Guam
Figure 6. Visual representation of Latte 1 and 2. The units that were sampled are highlighted with an X.
Figure 5 in Mollusk Foraging and Gendered Labor at Litekyan (Ritidian) During the Spanish Contact Period in Guam
Figure 5. Household excavation site (Miller et al. 2021). Latte Building 1 reveals cooking hearth features alongside its structure.
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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.