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120 results for “GaN”
Figure 8 from: He X-L, Horak E, Wang D, Li T-H, Peng W-H, Gan B-C (2019) Descriptions of five new species in Entoloma subgenus Claudopus from China, with molecular phylogeny of Entoloma s.l. MycoKeys 61: 1-26. https://doi.org/10.3897/mycokeys.61.46446
Figure 8 Phylogenetic reconstruction of Claudopus based on ITS sequences. Maximum parsimony bootstrap values (BS > 50%) are indicated above or below the branches, new species are in bold.
Figure 5 from: He X-L, Horak E, Wang D, Li T-H, Peng W-H, Gan B-C (2019) Descriptions of five new species in Entoloma subgenus Claudopus from China, with molecular phylogeny of Entoloma s.l. MycoKeys 61: 1-26. https://doi.org/10.3897/mycokeys.61.46446
Figure 5 Microscopic structures of Entoloma pleurotoides (holotype): a Basidia b Basidiospores c Pileipellis.
Figure 2 from: He X-L, Horak E, Wang D, Li T-H, Peng W-H, Gan B-C (2019) Descriptions of five new species in Entoloma subgenus Claudopus from China, with molecular phylogeny of Entoloma s.l. MycoKeys 61: 1-26. https://doi.org/10.3897/mycokeys.61.46446
Figure 2 Microscopic structures of Entoloma conchatum (holotype) a Basidiospores b Basidia c Pileipellis.
Figure 3 from: He X-L, Horak E, Wang D, Li T-H, Peng W-H, Gan B-C (2019) Descriptions of five new species in Entoloma subgenus Claudopus from China, with molecular phylogeny of Entoloma s.l. MycoKeys 61: 1-26. https://doi.org/10.3897/mycokeys.61.46446
Figure 3 Microscopic structures of Entoloma flabellatum (holotype) a Basidiospores b Basidia c Pileipellis.
Figure 9 from: He X-L, Horak E, Wang D, Li T-H, Peng W-H, Gan B-C (2019) Descriptions of five new species in Entoloma subgenus Claudopus from China, with molecular phylogeny of Entoloma s.l. MycoKeys 61: 1-26. https://doi.org/10.3897/mycokeys.61.46446
Figure 9 Cladogram based on the combined ITS, LSU, RPB2 and mtSSU sequences resulting from ML analysis. New species of Entoloma subgenus Claudopus are in bold. MPBS support values (> 50%), RAxML BS support values (> 50%) and Bayesian posterior probability values (BPP> 0.90) are indicated above or below branches as MPBS/RAxML BS/BPP.
Figure 4 from: He X-L, Horak E, Wang D, Li T-H, Peng W-H, Gan B-C (2019) Descriptions of five new species in Entoloma subgenus Claudopus from China, with molecular phylogeny of Entoloma s.l. MycoKeys 61: 1-26. https://doi.org/10.3897/mycokeys.61.46446
Figure 4 Microscopic structures of Entoloma gregarium (holotype) a Basidiospores b Basidia c Pileipellis.
Figure 1 from: He X-L, Horak E, Wang D, Li T-H, Peng W-H, Gan B-C (2019) Descriptions of five new species in Entoloma subgenus Claudopus from China, with molecular phylogeny of Entoloma s.l. MycoKeys 61: 1-26. https://doi.org/10.3897/mycokeys.61.46446
Figure 1 Basidiomes of Claudopus species a Basidiomes of E. conchatum on soil (SAAS 1712) b Basidiomes of E. conchatum on stem of live Pinus (SAAS 1014) c Pileus of E. flabellatum (SAAS 1501) d Lamellae of E. flabellatum (SAAS 1080) e Basidiomes of C. gregarious on bark-wood of live Castanopsis (SAAS 1220) f Red droplets on the lamellar edges of E. gregarium (SAAS 1493) g Basidiomes of E. pleurotoides on decaying bark-wood of Castanopsis (SAAS 1215) h Basidiomes of E. pleurotoides on bark-wood of live Castanopsis (SAAS 1252) i Basidiomes of E. reductum on decaying stump of Castanopsis (holotype, SAAS 1091) j Mature basidiomes of E. reductum on rock (SAAS 2068) k Young basidiomes of E. reductum on soil (SAAS 1016) l Lamellae of E. byssisedum var. microsporum (SAAS 1828) m Basidiomes of E. byssisedum var. microsporum on decaying stump of Betula (SAAS 1160).
Low temperature selective growth of GaN single crystals on pre-patterned Si substrates_experimental dataset
<p>This file contains the raw unprocessed experimental data for the results published in Jindřich Mach et al., <strong>Low temperature selective growth of GaN single crystals on pre-patterned Si substrates</strong>, Applied Surface Science, Volume 497, 16 August 2019, 143705. </p>
GAN Generated Images for Facial Expression Recognition systems
<p>Most facial expression recognition (FER) systems rely on machine learning approaches that require large databases (DBs) for effective training. As these are not easily available, a good solution is to augment the DBs with appropriate techniques, which are typically based on either geometric transformation or deep learning based technologies (e.g., Generative Adversarial Networks (GANs)). Whereas the first category of techniques has been fairly adopted in the past, studies that use GAN-based techniques are limited for FER systems. To advance in this respect, we evaluate the impact of the GAN techniques by creating a new DB containing the generated synthetic images. </p> <p>The face images contained in the KDEF DB serve as the basis for creating novel synthetic images by combining the facial features of two images (i.e., Candie Kung and Cristina Saralegui) selected from the YouTube-Faces DB. The novel images differ from each other, in particular concerning the eyes, the nose, and the mouth, whose characteristics are taken from the Candie and Cristina images.</p> <p>The total number of novel synthetic images generated with the GAN is 980 (70 individuals from KDEF DB x 7 emotions x 2 subjects from YouTube-Faces DB).</p> <p>The zip file "GAN_KDEF_Candie" contains the 490 images generated by combining the KDEF images with the Candie Kung image. The zip file "GAN_KDEF_Cristina" contains the 490 images generated by combining the KDEF images with the Cristina Saralegui image. The used image IDs are the same used for the KDEF DB. The synthetic generated images have a resolution of 562x762 pixels.</p> <p> </p> <p><strong>If you make use of this dataset, please consider citing the following publication:</strong></p> <p>Porcu, S., Floris, A., & Atzori, L. (2020). Evaluation of Data Augmentation Techniques for Facial Expression Recognition Systems. Electronics, 9, 1892, doi: 10.3390/electronics9111892, url: https://www.mdpi.com/2079-9292/9/11/1892.</p> <p>BibTex format:</p> <p>@article{porcu2020evaluation, title={Evaluation of Data Augmentation Techniques for Facial Expression Recognition Systems}, author={Porcu, Simone and Floris, Alessandro and Atzori, Luigi}, journal={Electronics}, volume={9}, pages={108781}, year={2020}, number = {11}, article-number = {1892}, publisher={MDPI}, doi={10.3390/electronics9111892} }</p> <p> </p>
Figure 6 from: Mi X, Liu F, Wang C, Gan J, Wu Y (2024) Revision of the orb-weaver spider genus Gea C.L. Koch, 1843 (Araneae, Araneidae) from China. ZooKeys 1191: 75-88. https://doi.org/10.3897/zookeys.1191.117592
Figure 6 Gea subarmata Thorell, 1890 TRU-Araneidae-288 A pedipalp, prolateral view B ibid., retrolateral view C ibid., ventral view D ibid., apical view E median apophysis, dorsal view. Scale bars: 0.1 mm. Abbreviations: C conductor, E embolus, MA median apophysis.
Figure 4 from: Mi X, Liu F, Wang C, Gan J, Wu Y (2024) Revision of the orb-weaver spider genus Gea C.L. Koch, 1843 (Araneae, Araneidae) from China. ZooKeys 1191: 75-88. https://doi.org/10.3897/zookeys.1191.117592
Figure 4 Gea spinipes C.L. Koch, 1843 A–DTRU-Araneidae-272 ETRU-Araneidae-279 A pedipalp, prolateral view B ibid., retrolateral view C ibid., ventral view D ibid., apical view E part of pedipalp (show the unbroken tip of embolus), prolateral view. Scale bars: 0.1 mm. Abbreviations: C conductor, E embolus, MA median apophysis.
Figure 1 from: Mi X, Liu F, Wang C, Gan J, Wu Y (2024) Revision of the orb-weaver spider genus Gea C.L. Koch, 1843 (Araneae, Araneidae) from China. ZooKeys 1191: 75-88. https://doi.org/10.3897/zookeys.1191.117592
Figure 1 Gea jingdong Mi, Wang & Gan, sp. nov. A–G female paratype TRU-Araneidae-269 H–J male holotype A epigyne, ventral view B ibid., lateral view C vulva, posterior view D ibid., dorsal view E, H habitus, dorsal view F, I ibid., ventral view G, J ibid., lateral view. Scale bars: 0.1 mm (A–D); 1 mm (E–J). Abbreviations: CD copulatory duct, CO copulatory opening, FD fertilization duct, LP lateral plate, Sp spermatheca.
Figure 3 from: Mi X, Liu F, Wang C, Gan J, Wu Y (2024) Revision of the orb-weaver spider genus Gea C.L. Koch, 1843 (Araneae, Araneidae) from China. ZooKeys 1191: 75-88. https://doi.org/10.3897/zookeys.1191.117592
Figure 3 Gea spinipes C.L. Koch, 1843 A–E, G–ITRU-Araneidae-274 FTRU-Araneidae-276 J–LTRU-Araneidae-272 A epigyne, ventral view B ibid., lateral view C ibid., anterior view D vulva, posterior view E ibid., dorsal view F ibid., dorsal view G, J habitus, dorsal view H, K ibid., ventral view I, L ibid., lateral view. Scale bars: 0.1 mm (A–F); 1 mm (G–L). Abbreviations: CD copulatory duct, CO copulatory opening, FD fertilization duct, LP lateral plate, Sp spermatheca.
Figure 7 from: Mi X, Liu F, Wang C, Gan J, Wu Y (2024) Revision of the orb-weaver spider genus Gea C.L. Koch, 1843 (Araneae, Araneidae) from China. ZooKeys 1191: 75-88. https://doi.org/10.3897/zookeys.1191.117592
Figure 7 Legs of Gea spp., prolateral view (some macroseta fell out from the original positions) A–DGea jingdong Mi, Wang & Gan, sp. nov. holotype E–HGea spinipes C.L. Koch, 1843 TRU-Araneidae-272 I–LGea subarmata Thorell, 1890 TRU-Araneidae-288 A, E, I legs I B, F, J legs II C, G, K legs III D, H, L legs IV. Scale bars: 1 mm.
Figure 5 from: Mi X, Liu F, Wang C, Gan J, Wu Y (2024) Revision of the orb-weaver spider genus Gea C.L. Koch, 1843 (Araneae, Araneidae) from China. ZooKeys 1191: 75-88. https://doi.org/10.3897/zookeys.1191.117592
Figure 5 Gea subarmata Thorell, 1890 A–ITRU-Araneidae-289 J–LTRU-Araneidae-288 A epigyne, ventral view B ibid., lateral view C ibid., anterior view D ibid., posterior view E vulva, dorsal view F ibid., posterior view G, J habitus, dorsal view H, K ibid., ventral view I, L ibid., lateral view. Scale bars: 0.1 mm (A–F); 1 mm (G–L). Abbreviations: CD copulatory duct, CO copulatory opening, FD fertilization duct, Sp spermatheca.
Figure 2 from: Mi X, Liu F, Wang C, Gan J, Wu Y (2024) Revision of the orb-weaver spider genus Gea C.L. Koch, 1843 (Araneae, Araneidae) from China. ZooKeys 1191: 75-88. https://doi.org/10.3897/zookeys.1191.117592
Figure 2 Gea jingdong Mi, Wang & Gan, sp. nov. male holotype A pedipalp, prolateral view B ibid., retrolateral view C ibid., ventral view D ibid., apical view. Scale bars: 0.1 mm. Abbreviations: C conductor, E embolus, MA median apophysis.
Results for holistic map generation using GAN
<p>This folder contains the results of the experiment described in Chapter F of my thesis "Exploring the potential of deep learning for map generalization", for more explanation on the experiments please referee to this Chapter.</p>
Supplementary material 1 from: Yang M, Li B, Gan Z, Dong D, Li X (2024) A new chemosymbiotic bivalve species of the genus Acharax Dall, 1908 (Bivalvia, Solemyida, Solemyidae) from the Haima cold seep of the South China Sea. ZooKeys 1198: 185-192. https://doi.org/10.3897/zookeys.1198.112618
The mitochondrial gene sequences used in this study
Figure 3 from: Yang M, Li B, Gan Z, Dong D, Li X (2024) A new chemosymbiotic bivalve species of the genus Acharax Dall, 1908 (Bivalvia, Solemyida, Solemyidae) from the Haima cold seep of the South China Sea. ZooKeys 1198: 185-192. https://doi.org/10.3897/zookeys.1198.112618
Figure 3 Phylogenetic relationships of Solemyida by the ML analysis of mitochondrial (COI+16S rRNA+18S rRNA) sequences. The black triangles demonstrate bootstrap values ≥95% for the node.
FIGURE 4. Amphisbaena carvalhoi Gans, 1965. Holotype, MNRJ 2095 in Amphisbaena lumbricalis Vanzolini, 1996 is a synonym of Amphisbaena carvalhoi Gans, 1965 (Squamata, Amphisbaenidae)
FIGURE 4. Amphisbaena carvalhoi Gans, 1965. Holotype, MNRJ 2095, general view.
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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)
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DANDI Archive for NWB datasets
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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.