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FIGURE 7 in A new perspective on the molecular dating of the brown trout complex with an extended phylogeographic information on the species in Serbia
FIGURE 7 Fossil and geologically calibrated chronogram of the genus Salmo created with a relaxed clock in BEAST 2. 95% highest posterior density (HPD) intervals are shown as gray bars at the nodes. Calibration points are indicated by arrows. Median node ages are shown as node labels. Time estimates are given in millions of years. Clades, that were a priori treated as monophyletic are indicated with a black star, while a red star indicates the clade, where posterior probability was> 90% only in BEAST analysis.
Рис. 1. Размещение трансект (спΛошные черные Λинии) и Αаты провеΑения учетов в Охотском море и сопреΑеΛьных воΑах Тихого океана и Японского моря в февраΛе — мае 2020 г. РыбоΛовные районы: 05.1 — Северо-Охотоморская поΑзона; 05.2 — ЗапаΑно-Камчатская поΑзона; 05.3 — Восточно-СахаΛинская поΑзона; 05.4 — Камчатско-КуриΛьская поΑзона; 03 — Северо-КуриΛьская зона; 04 — Южно-КуриΛьская зона; 06 — зона Японское море. Пунктиром показана 200-метровая изобата Fig. 1. Transect locations (solid black lines) and dates of surveys in the Sea of Okhotsk and adjacent waters of the Pacific Ocean and the Sea of Japan in February–May 2020. Codes of the fishery areas are as follows: 05.1 — Northern Sea of Okhotsk Subzone; 05.2 — West Kamchatka Subzone; 05.3 — East Sakhalin Subzone; 05.4 — Kamchatka-Kuril Subzone; 03 — North Kuril Zone; 04 — South Kuril Zone; 06 — Sea of Japan Zone. Dotted line indicates a 200 m isobath in Population of seabirds in the Sea of Okhotsk and adjacent waters of the Pacific Ocean and the Sea of Japan during the winter-spring period of 2020
Рис. 1. Размещение трансект (спΛошные черные Λинии) и Αаты провеΑения учетов в Охотском море и сопреΑеΛьных воΑах Тихого океана и Японского моря в февраΛе — мае 2020 г. РыбоΛовные районы: 05.1 — Северо-Охотоморская поΑзона; 05.2 — ЗапаΑно-Камчатская поΑзона; 05.3 — Восточно-СахаΛинская поΑзона; 05.4 — Камчатско-КуриΛьская поΑзона; 03 — Северо-КуриΛьская зона; 04 — Южно-КуриΛьская зона; 06 — зона Японское море. Пунктиром показана 200-метровая изобата Fig. 1. Transect locations (solid black lines) and dates of surveys in the Sea of Okhotsk and adjacent waters of the Pacific Ocean and the Sea of Japan in February–May 2020. Codes of the fishery areas are as follows: 05.1 — Northern Sea of Okhotsk Subzone; 05.2 — West Kamchatka Subzone; 05.3 — East Sakhalin Subzone; 05.4 — Kamchatka-Kuril Subzone; 03 — North Kuril Zone; 04 — South Kuril Zone; 06 — Sea of Japan Zone. Dotted line indicates a 200 m isobath
Figure 2 in Evaluation of some nutritional quality criteria of seventeen Moroccan dates varieties and clones, fruits of date palm (Phoenix dactylifera L.)
Figure 2. Representation of dates varieties and clones according to their quality characteristics. (a) Representation of variables according to PCA. (b) Segregation of 17 dates varieties and clones according to their quality attributes.
Рис. 5. Общая схема Δинамики эпизоотии в приамурской попуΛяции коΛьчатого шеΛкопряΔа. ВертикаΛьно: коΛичество погибших гусениц (% от чисΛа собранных за весь периоΔ иссΛеΔований в 2019 г. гусениц). ГоризонтаΛьно: Δата сбора гусениц на территории УПН. — гибеΛь от вируса яΔерного поΛиэΔроза; — гибеΛь от бактериоза Fig. 5. General scheme of the Lackey moth epizootic dynamics for the Cisamurian population. Vertical: number of the deaths, (percentage from the total number of caterpillars collected in 2019 (578 caterpillars)); horizontal: dates of laboratory controls. — death from the NPV; — death from the bacteriosis in Lackey Moth (Malacosoma Neustria L., Lasiocampidae, Lepidoptera) Population During The Eruptive Phase
Рис. 5. Общая схема Δинамики эпизоотии в приамурской попуΛяции коΛьчатого шеΛкопряΔа. ВертикаΛьно: коΛичество погибших гусениц (% от чисΛа собранных за весь периоΔ иссΛеΔований в 2019 г. гусениц). ГоризонтаΛьно: Δата сбора гусениц на территории УПН. — гибеΛь от вируса яΔерного поΛиэΔроза; — гибеΛь от бактериоза Fig. 5. General scheme of the Lackey moth epizootic dynamics for the Cisamurian population. Vertical: number of the deaths, (percentage from the total number of caterpillars collected in 2019 (578 caterpillars)); horizontal: dates of laboratory controls. — death from the NPV; — death from the bacteriosis
Рис. 1. Имаго, общий виΔ: 1–3 — Orthosia ariuna, Хабаровск; 4–6 — O. incerta, Хабаровск. 1, 2, 4, 5 — самцы; 3, 6 — самки. Àаты сбора: 1 — 19.04.2020; 2 — 9.05.2020; 3, 4 — 18.04.2020; 5 — 13.04.2020; 6 — 16.04.2020 Fig. 1. Adults, habitus: 1–3 — Orthosia ariuna, Khabarovsk; 4–6 — O. incerta, Khabarovsk. 1, 2, 4, 5 — males; 3, 6 – females. Collection dates: 1 — 19.04.2020; 2 — 9.05.2020; 3, 4 — 18.04.2020; 5 — 13.04.2020; 6 — 16.04.2020 in The First Reliable Record Of A Little-Known Species Orthosia Ariuna Hreblay, 1991 (Lepidoptera, Noctuidae) From The Far East Of Russia
Рис. 1. Имаго, общий виΔ: 1–3 — Orthosia ariuna, Хабаровск; 4–6 — O. incerta, Хабаровск. 1, 2, 4, 5 — самцы; 3, 6 — самки. Àаты сбора: 1 — 19.04.2020; 2 — 9.05.2020; 3, 4 — 18.04.2020; 5 — 13.04.2020; 6 — 16.04.2020 Fig. 1. Adults, habitus: 1–3 — Orthosia ariuna, Khabarovsk; 4–6 — O. incerta, Khabarovsk. 1, 2, 4, 5 — males; 3, 6 – females. Collection dates: 1 — 19.04.2020; 2 — 9.05.2020; 3, 4 — 18.04.2020; 5 — 13.04.2020; 6 — 16.04.2020
Shaping History: Advanced Machine Learning Techniques for the Analysis and Dating of Cuneiform Tablets over Three Millennia - Datasets
<p>Our research leverages advanced deep learning methods to classify cuneiform tablets by their historical periods, focusing on shape analysis rather than textual content. Utilizing a dataset of over 94,000 images from the Cuneiform Digital Library Initiative, we introduce a novel toolset powered by Variational Auto-Encoders (VAEs) to enhance model interpretability. By highlighting the predictive power of tablet silhouettes for historical period classification with a ResNet model reaching 61\% macro-F1 score,, our approach allows researchers to explore changes in tablet shapes across different eras. This methodology not only complements traditional archaeological methods but also enriches the field of document analysis and diplomatics, offering valuable tools for historians and epigraphists to understand ancient Mesopotamian cultures.</p> <p>The Datasets attached include:</p> <ul> <li>All CDLI IDs used and their URLs on CDLI</li> <li>All tablet silhouettes - Black and white representations</li> <li>A height-to-width ratio table, of the largest component extracted from the silhouettes.</li> <li>VAE encodings per tablet, extracted from the VAE model</li> </ul>
Рис. 1. Некоторые новые ΑΛя КуриΛьских островов виΑы чешуекрыΛых, собранные на острове Кунашир в заповеΑнике «КуриΛьский»: A — Rosama ornata, самка; B — Calyptra hokkaida, самец; C — Catocala agitatrix, самка; D — Catocala deuteronympha, самец; E, F — Archanara neurica, Αве самки; G — A. neurica, генитаΛии самки поΑ обозначением «F»; H — Chasminodes cilia, самец. Места и Αаты сбора: A–G — корΑон «АнΑреевский», 07–08.08.2021, H — корΑон «ΔаниΛовский», 21–22.07.2022 Fig. 1. Some Lepidoptera species new to the Kuril Islands collected on Kunashir Island in the Kurilsky Nature Reserve: A — Rosama ornata, female; B — Calyptra hokkaida, male; C — Catocala agitatrix, female; D — Catocala deuteronympha, male; E, F — Archanara neurica, two females; G — A. neurica, female F genitalia; H — Chasminodes cilia, male. Localities and dates: A–G — Andreevsky ranger station, 07–08.08.2021, H — Danilovsky ranger station, 21–22.07.2022 in An addition to the fauna of Macroheterocera (Lepidoptera) of Kunashir Island (Kuril Islands, Russia)
Рис. 1. Некоторые новые ΑΛя КуриΛьских островов виΑы чешуекрыΛых, собранные на острове Кунашир в заповеΑнике «КуриΛьский»: A — Rosama ornata, самка; B — Calyptra hokkaida, самец; C — Catocala agitatrix, самка; D — Catocala deuteronympha, самец; E, F — Archanara neurica, Αве самки; G — A. neurica, генитаΛии самки поΑ обозначением «F»; H — Chasminodes cilia, самец. Места и Αаты сбора: A–G — корΑон «АнΑреевский», 07–08.08.2021, H — корΑон «ΔаниΛовский», 21–22.07.2022 Fig. 1. Some Lepidoptera species new to the Kuril Islands collected on Kunashir Island in the Kurilsky Nature Reserve: A — Rosama ornata, female; B — Calyptra hokkaida, male; C — Catocala agitatrix, female; D — Catocala deuteronympha, male; E, F — Archanara neurica, two females; G — A. neurica, female F genitalia; H — Chasminodes cilia, male. Localities and dates: A–G — Andreevsky ranger station, 07–08.08.2021, H — Danilovsky ranger station, 21–22.07.2022
Radiocarbon dates from Sri Ksetra Myanmar
<p>Radiocarbon dates for samples from archaeological excavations at Sri Ksetra, Myanmar. Funded by ERC synergy project 609823 Asia Beyond Boundaries: Religion, Region, Language and the State.</p>
Fig. 8 in A new genus and two new species of cave-dwelling cyclopoids (Crustacea, Copepoda) from the epikarst zone of Thailand and up-to-date keys to genera and subgenera of the Bryocyclops and Microcyclops groups
Fig. 8. Metacyclops thailandicus sp. nov., holotype, ♀. A. P1. B. P2. C. P3. D. P4. Scale bar: 100 μm.
Fig. 7 in A new genus and two new species of cave-dwelling cyclopoids (Crustacea, Copepoda) from the epikarst zone of Thailand and up-to-date keys to genera and subgenera of the Bryocyclops and Microcyclops groups
Fig. 7. Metacyclops thailandicus sp. nov., holotype, ♀. A. Antennule. B. Antenna. C. Mandible. D. Maxillule. E. Maxilla. F. Maxilliped. Scale bars: 100 μm.
Fig. 4 in A new genus and two new species of cave-dwelling cyclopoids (Crustacea, Copepoda) from the epikarst zone of Thailand and up-to-date keys to genera and subgenera of the Bryocyclops and Microcyclops groups
Fig. 4. Siamcyclops cavernicolus gen. et sp. nov., allotype, ♂. A. Habitus, dorsal view. B. Urosome, ventral view. C. Urosome, lateral view. D. Urosome, dorsal view. E. Antennule. Scale bars: 100 μm.
Fig. 3 in A new genus and two new species of cave-dwelling cyclopoids (Crustacea, Copepoda) from the epikarst zone of Thailand and up-to-date keys to genera and subgenera of the Bryocyclops and Microcyclops groups
Fig. 3. Siamcyclops cavernicolus gen. et sp. nov., holotype, ♀. A. P1. B. P2. C. P3. D. P4. Scale bar: 100 μm.
Fig. 1 in A new genus and two new species of cave-dwelling cyclopoids (Crustacea, Copepoda) from the epikarst zone of Thailand and up-to-date keys to genera and subgenera of the Bryocyclops and Microcyclops groups
Fig. 1. Siamcyclops cavernicolus gen. et sp. nov., holotype, ♀. A. Habitus, with spermatophores and egg sac, dorsal view. B. Urosome, ventral view. C. Urosome, dorsal view. D. Urosome, lateral view. E. Antennule. F. P5, ventral view. G. P5, lateral view. Scale bars: 100 μm.
Fig. 2 in A new genus and two new species of cave-dwelling cyclopoids (Crustacea, Copepoda) from the epikarst zone of Thailand and up-to-date keys to genera and subgenera of the Bryocyclops and Microcyclops groups
Fig. 2. Siamcyclops cavernicolus gen. et sp. nov., holotype, ♀. A. Antenna. B–C. Mandible. D. Maxillule. E. Maxilla. F. Maxilliped. G. Genital double-somite with spermatophore, ventral view. H. Genital double-somite with spermatophore, lateral view. Scale bars: 100 μm.
Fig. 6 in A new genus and two new species of cave-dwelling cyclopoids (Crustacea, Copepoda) from the epikarst zone of Thailand and up-to-date keys to genera and subgenera of the Bryocyclops and Microcyclops groups
Fig. 6. Metacyclops thailandicus sp. nov., holotype, ♀. A. Habitus, with egg sac, dorsal view. B. Urosome, dorsal view. C. Urosome, lateral view. D. Urosome, ventral view. E. P5, lateral view. F. P5, ventral view. Scale bars: 100 μm.
Instances of parallel related machine scheduling problem with jobs release dates and deadlines
<p>The following dataset contains randomly generated problem instances for the related machine scheduling problem with job's release dates and due dates.<br> There are 4 instance classes each of which contains 10 random instances (i.e., 10 text files) with n=120 jobs and m=26 machines. The instance classes differ one from another in the expected relative width of job's time windows.</p> <p>The text file structure is as follows:<br> n=<number of jobs>;<br> m=<number of machines>;<br> p_{ij}=<br> <n*m matrix: each entry in j-th column and i-th row corresponds to the processing time of job j on machine i>;<br> r_j=<br> <vector with n elements: the j-th element corresponds to the release date of job j>;<br> d_j=<br> <vector with n elements: the j-th element corresponds to the due date of job j>;</p> <p>The jobs are sorted by release date in ascending order.</p>
Catalogue of radiocarbon determinations & dendrochronology dates
<p>Catalogue of Irish radiocarbon determinations & dendrochronology dates. August 2019 Release</p> <p>See 'Citation & Restrictions' tab on resource for restrictions on usage</p>
Banbhore stone inscription dated AH 294/906-07 CE
<p><a href="https://siddham.network/object/obap00004/">OBAP00004</a> Banbhore stone inscription dated AH 294/906-07 CE</p>
Figure 4. a in The gill morphology of the date mussel Lithophaga lithophaga (Bivalvia: Mytilidae)
Figure 4. a. Inner sides of the food grooves of the filaments in L. lithophaga with a thick ciliary head and fan-shaped ciliary connection of the lamellae (arrows). b. Filaments attached by continual ciliary junctions (cj). c. Discs formed by condensed tufts of simple cilia. Scale bar: a = 60 µm, b = 20 µm, c = 6 µm.
Figure 3. a in The gill morphology of the date mussel Lithophaga lithophaga (Bivalvia: Mytilidae)
Figure 3. a. Frontal and abfrontal (arrow) views of the demibranches of L. lithophaga. b. Canal formation and food grooves are very prominent at the ventral end of the filaments. Leveled connective discs occur at regular intervals along the filaments; cj: ciliary junction. c. Enlarged free end with marginal groove (mg) and duct (d) on the surface. Scale bar: a = 200 µm, b = 100 µm, c = 40 µm.
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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.