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154 results for “mainland Asia”
Fig. 8 in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 8. Holotype of D. borneensis Hiern (Motley 7 K[K000792665]) (Royal Botanic Gardens, Kew 2022). The red arrow points at lateral veins forming the intramarginal line.
Fig. 6 in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 6. Occurrence of D. bejaudii Lecomte (Z) and D. retrofracta Bakh. (A) in mainland South-East Asia.
Fig. 5 in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 5. Isolectotype of D. retrofracta Bakh. (Haniff & Nur 3984 K[K000792535]) (Royal Botanic Gardens, Kew 2022).
Fig. 9 in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 9. Lectotype of D. fecunda H.R.Fletcher (Kerr 7658 K[K000792545]) (Royal Botanic Gardens, Kew 2022).
Fig. 7. A–C. Diospyros dictyoneura Hiern. A in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 7. A–C. Diospyros dictyoneura Hiern. A. Corolla and stamen of male flower (Beccari 2615 K[K000792678]). B. Female flower (Galao S15705 K[K001423314]). C. Fruits (Bernstein 179 K[without barcode]). D–F. D. hasseltii Zoll. D. Male flower with front calyx lobe removed (Smitinand 46521 K[K001361167]). E. Female inflorescences. F. Fruits. G–H. D. fecunda H.R.Fletcher. G. Male inflorescence; H. Fruit. Photographed by N. Meeprom and S. Duangjai.
Fig. 4. A–D. Diospyros bejaudii Lecomte. A. Male flowers. B. Female calyx and corolla. C. Twig with leaves. D in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 4. A–D. Diospyros bejaudii Lecomte. A. Male flowers. B. Female calyx and corolla. C. Twig with leaves. D. Fruit (Put 3161 K[K001361559]). E–H. D. retrofracta Bakh. E. Male flower (Kerr 10718 K[K001361567]). F. Remaining calyx of female flower (Kerr 12697A K[K001361574]). G. Twigs with leaves and fruits. H. Fruits. Photographed by N. Meeprom and S. Duangjai.
Fig. 3 in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 3. Lectotype of D. bejaudii Lecomte (Béjaud 23 P[P00721441]) (Muséum National d'Histoire Naturelle 2022).
Fig. 2 in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 2. Occurrence map of D. apiculata Hiern (O), D. strigosa Hemsl. (Z) and D. tamiriensis Lecomte (A).
Fig. 1. A–B. Diospyros apiculata Hiern. A in Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia
Fig. 1. A–B. Diospyros apiculata Hiern. A. Lower surface of leaf (Curtis 1584 K[K001345613]). B. Male flower (Maingay s.n. [Kew Distrib. no. 1514] K[K000792352]). C–D. D. eriantha Champ. ex Benth. var. eriantha. C. Lower surface of leaf (Champion 133 K[K000792287]). D. Female flower (Champion s.n. K[K000792289]). E–F. D. strigosa Hemsl. E. Lower surface of leaf (Collins 506 K[K001361689]). F. Female flower. G–H. D. tamiriensis Lecomte. G. Lower surface of leaf. H. Female flower (Pierre 5029 K[K001361754]). Photographed by N. Meeprom and S. Duangjai.
Linked collectors and determiners for: Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia.
Natural history specimen data linked to collectors and determiners held within, "Notes on South-East Asian Diospyros L. (Ebenaceae, Ericales): commonly misidentified species in mainland South-East Asia". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/1c5bbf5e-9c8c-4346-9401-151d63d5dbb0">https://bionomia.net/dataset/1c5bbf5e-9c8c-4346-9401-151d63d5dbb0</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/1c5bbf5e-9c8c-4346-9401-151d63d5dbb0">https://gbif.org/dataset/1c5bbf5e-9c8c-4346-9401-151d63d5dbb0</a>. Formatted as a Frictionless Data package.
20 m Annual Paddy Rice Map for Mainland Southeast Asia Using Sentinel-1 SAR Data
<p>This dataset provides 20 m annual paddy rice map for mainland Southeast Asia since 2019 .</p> <p>*** The data file is in “.tif" format</p> <p>*** Pixel size: 20 m</p> <p>*** Projection information: EPSG: 4326 (WGS84)</p> <p>The map boundary employed in this database does not imply the expression of any opinion whatsoever on the part of us concerning the legal status of any country, territory, city or area or its authorities, or concerning the delimitation of its frontiers or boundaries.</p>
Phenotypic plasticity determines differences between the skulls of tigers from mainland Asia
<p>Tiger subspecific taxonomy is controversial because of morphological and genetic variation found between now fragmented populations, yet the extent to which phenotypic plasticity or genetic variation affects phenotypes of putative tiger subspecies has not been explicitly addressed. In order to assess the role of phenotypic plasticity in determining skull variation, we compared skull morphology amongst continental tigers from zoos and the wild. In turn, we examine continental tiger skulls from across their wild range, to evaluate how the different environmental conditions experienced by individuals in the wild can influence morphological variation. Fifty-seven measurements from 172 specimens were used to analyse size and shape differences amongst wild and captive continental tiger skulls. Captive specimens have broader skulls, and shorter rostral depths and mandible heights than wild specimens. In addition, sagittal crest size is larger in wild Amur tigers compared with those from captivity, and it is larger in wild Amur tigers compared to other wild continental tigers. The degree of phenotypic plasticity shown by the sagittal crest, skull width, and rostral height suggests that the distinctive shape of Amur tiger skulls compared with that of other continental tigers is mostly a phenotypically plastic response to differences in their environments. </p>
The dataset of five chloroplast regions used in: A contribution to Gymnosphaera (Cyatheaceae) in mainland Asia: Two new species, reinstatement of Cyathea bonii, and their phylogenetic positions
<p><em>Gymnosphaera</em> represents a minor lineage within the scaly tree-fern family Cyatheaceae. Tropical and subtropical mainland Asia is a main distribution area of <em>Gymnosphaera</em>. However, the species diversity of <em>Gymnosphaera</em> is currently incompletely known in mainland Asia due to lacking critical revision. Here we present new findings of species diversity and their relationships with mainland Asian <em>Gymnosphaera</em> based on field surveys, the examination of herbarium collections, and phylogenetic analyses of sequences of multiple chloroplast and nuclear regions. Two new species, <em>G. saxicola</em> from southwestern Yunnan and <em>G. bachmaensis</em> from central Vietnam are established. Traditionally recognized <em>G. podophylla </em>is revealed to be a complex, from which <em>G. bonii</em> is reinstated as a distinct species. Our phylogenetic analyses identified four clades within <em>Gymnosphaera</em> in mainland Asia: <em>G. denticulata</em> clade, <em>G. gigantea</em> clade, <em>G. podophylla </em>clade, and <em>G. salletii </em>clade. The new species <em>G. saxicola,</em> which is special for its saxicolous habitat, was resolved as a sister to <em>G. austroyunnanensis</em> in the <em>G. salletii</em> clade. The newly discovered <em>G. bachmaensis</em>, which is characterized especially by the spathulate frond, was positioned in the <em>G. podophylla</em> clade, being sister to <em>G. bonii</em>. The mountainous region from south-central Vietnam northwards to western Yunnan is a diverse center of <em>Gymnosphaera</em> and more species of this group are probably to be discovered there.</p>
Data from: Phylogenomics of Andropogoneae (Panicoideae: Poaceae) of mainland Southeast Asia
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Phenotypic plasticity determines differences between the skulls of tigers from mainland Asia
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The dataset of five chloroplast regions used in: A contribution to Gymnosphaera (Cyatheaceae) in mainland Asia: Two new species, reinstatement of Cyathea bonii, and their phylogenetic positions
Open the record for dataset details and reuse information.
Distribution. Mainland SE Asia, Philippines, Indonesian Archipelago, New Guinea (including Bismarck Archipelago), Solomon Is, and NE Australia; also on N Nicobar Is. in Family Hipposideridae (Old World Leaf-nosed Bats)
Distribution. Mainland SE Asia, Philippines, Indonesian Archipelago, New Guinea (including Bismarck Archipelago), Solomon Is, and NE Australia; also on N Nicobar Is.
Distribution. NE India, NE Bangladesh, S China (including Hainan I), mainland SE Asia, Sumatra (including Simeulue, Nias, and Mentawai Is), Borneo, Java, Kangean, Bali, and many offshore Is. in Family Hipposideridae (Old World Leaf-nosed Bats)
Distribution. NE India, NE Bangladesh, S China (including Hainan I), mainland SE Asia, Sumatra (including Simeulue, Nias, and Mentawai Is), Borneo, Java, Kangean, Bali, and many offshore Is.
Subspecies and Distribution. R. a. acuminatus Peters, 1871 - Krakatau I andJava. R. a. audax K. Andersen, 1905 — Bali and Lombok Is. . a. calypso K. Andersen, 1905 — Enggano I. R. a. circe K. Andersen, 1906 — Nias I. R. a. sumatranus K Andersen, 1905 - W Sumatra and N Borneo. Subspecific identity of mainland populations in SE Asia, as well as the Philippines (Negros, Busuanga, Palawan, and Balabac Is) is uncertain, although mainland populations resemble individuals fromJava or Lombok. in Rhinolophidae
Subspecies and Distribution. R. a. acuminatus Peters, 1871 - Krakatau I andJava. R. a. audax K. Andersen, 1905 — Bali and Lombok Is. . a. calypso K. Andersen, 1905 — Enggano I. R. a. circe K. Andersen, 1906 — Nias I. R. a. sumatranus K Andersen, 1905 - W Sumatra and N Borneo. Subspecific identity of mainland populations in SE Asia, as well as the Philippines (Negros, Busuanga, Palawan, and Balabac Is) is uncertain, although mainland populations resemble individuals fromJava or Lombok.
A contribution to Gymnosphaera (Cyatheaceae) in mainland Asia: two new species, reinstatement of Cyathea bonii, and their phylogenetic positions
<p><em>Gymnosphaera</em> represents a minor lineage within the scaly tree-fern family Cyatheaceae. Tropical and subtropical mainland Asia is a main distribution area of <em>Gymnosphaera</em>. However, the species diversity of <em>Gymnosphaera</em> is currently incompletely known in mainland Asia due to lacking critical revision. Here we present new findings of species diversity and their relationships of mainland Asian <em>Gymnosphaera</em> based on field surveys, the examination of herbarium collections, and phylogenetic analyses of sequences of multiple chloroplast and nuclear regions. Two new species, <em>G. saxicola</em> from southwestern Yunnan and <em>G. bachmaensis</em> from central Vietnam, are established. Traditionally recognized <em>G. podophylla </em>is revealed to be a complex, from which <em>G. bonii</em> is reinstated as a distinct species. Our phylogenetic analyses identified four clades within <em>Gymnosphaera</em> in mainland Asia: <em>G. denticulata</em> clade, <em>G. gigantea</em> clade, <em>G. podophylla </em>clade, and <em>G. salletii </em>clade. The new species <em>G. saxicola,</em> which is special for its saxicolous habitat, was resolved as sister to <em>G. austroyunnanensis</em> in the <em>G. salletii</em> clade. The newly discovered <em>G. bachmaensis</em>, which is characterized specially by the spathulate frond, was positioned in the <em>G. podophylla</em> clade, being sister to <em>G. bonii</em>. The mountainous region from south-central Vietnam northwards to western Yunnan is a diverse center of <em>Gymnosphaera</em> and more species of this group are probably to be discovered there.</p>
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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.