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FIGURES 11–12 in Descriptions of the mature larva and adult female of Pseudopyrochroa girardi Young from Southwest China (Coleoptera: Pyrochroidae: Pyrochroinae), with natural history observations
FIGURES 11–12. Pseudopyrochroa girardi Young, adult female: 11. Dorsal habitus; 12. Head and pronotum, dorsal.
FIGURES 7–8 in Descriptions of the mature larva and adult female of Pseudopyrochroa girardi Young from Southwest China (Coleoptera: Pyrochroidae: Pyrochroinae), with natural history observations
FIGURES 7–8. Mature larva (exuviae) of Pseudopyrochroa girardi Young: 7. Urogomphal plate, dorsal; 8. Abdominal segments VIII–IX, ventral.
FIGURES 1–3 in Descriptions of the mature larva and adult female of Pseudopyrochroa girardi Young from Southwest China (Coleoptera: Pyrochroidae: Pyrochroinae), with natural history observations
FIGURES 1–3. Mature larva of Pseudopyrochroa girardi Young: 1. Habitus, dorsal; 2. Habitus, ventral; 3. Last instar exuviae, dorsal.
FIGURES 4–6 in Descriptions of the mature larva and adult female of Pseudopyrochroa girardi Young from Southwest China (Coleoptera: Pyrochroidae: Pyrochroinae), with natural history observations
FIGURES 4–6. Mature larva (exuviae) of Pseudopyrochroa girardi Young: 4. Head capsule, dorsal; 5. head capsule, ventral; 6. Mouthparts, dorsal.
Distribution pattern of rocky desertification in southwest China and analysis of its main driving factors based on GIS and Geodetector
<p>Rocky desertification, a pressing environmental concern in Southwest China, significantly impacts local living conditions and regional sustainability. Employing remote sensing on a macro scale, this study focuses on identifying and analyzing the spatial distribution and driving factors of rocky desertification. Conducted in Southwest China, using Landsat data from Google Earth Engine for 2020, the research quantitatively extracts information on rocky desertification patches through traditional methods. Excluding unlikely areas using land use data, spatial distribution features and driving factors are examined via GIS spatial analysis and a geodetector model. The main conclusions are as follows. Rocky desertification covers 217,530.4 km<sup>2</sup> (accounting for 15.6% of Southwest China), with areas of slight, moderate, and severe rocky desertification at 81.3%, 7.1%, and 11.6%, respectively. Spatially, rocky desertification primarily occurs in areas where lithology is carbonate rock between clastic rocks and continuous limestone, slope exceeds 15°, elevation ranges is 1000–2000 m, land use types are grassland and woodland, precipitation is 80–120 mm, and population density is below 50 people/km<sup>2</sup>. Human activities have minimal influence. Geodetector analysis identifies lithology, land use type, and slope as primary driving factors, with interactive effects of lithology and land use type and slope and land use type jointly influencing rocky desertification formation in Southwest China.</p>
FIGURE 4 in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 4. Pollen morphology of Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. Voucher specimen: Wang et al. 1344 (HYU).
FIGURE 5 in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 5. Geographical distribution of Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang (solid stars).
FIGURE 2 in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 2. Type specimens (Zhu & Wu 2802) of Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. A. Holotype. B. Isotype.
FIGURE 1. Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. A. Habit. B. Infrutescence. C. Flower. D. Fruit. A and C in Acronema crassifolium sp. nov. (Apiaceae), a distinct new species from Yunnan, southwest China
FIGURE 1. Acronema crassifolium Huan C.Wang, X.M. Zhou & Y.H. Wang. A. Habit. B. Infrutescence. C. Flower. D. Fruit. A and C drawn from Wang et al. 1344 (HYU), B and D drawn from Zhu & Wu 2802 (HYU).
FIGURE 10 in Distribution of larval Stomiidae of the Brazilian central coast, southwest Atlantic Ocean (12 S-22 S)
FIGURE 10. (A) Aristostomias sp. (DZUFRJ 6235; 9.5 mm) and (B) Photostomias guernei (DZUFRJ 6237; 14.0 mm).
FIGURE 1a–b in Distribution of larval Stomiidae of the Brazilian central coast, southwest Atlantic Ocean (12 S-22 S)
FIGURE 1a–b. Study area indicating the main geographical features (A) and sampling stations during the spring (B).
FIGURE 5 in Distribution of larval Stomiidae of the Brazilian central coast, southwest Atlantic Ocean (12 S-22 S)
FIGURE 5. Distribution pattern of Stomias sp. and Stomias affinis larvae along the Brazilian central coast
FIGURE 9 in Distribution of larval Stomiidae of the Brazilian central coast, southwest Atlantic Ocean (12 S-22 S)
FIGURE 9. Distribution pattern of Bathophilus sp., Eustomias sp., Melanostomias sp., Flagellostomias boureei and Photonectes mirabilis larvae along the Brazilian central coast.
FIGURE 4 in Distribution of larval Stomiidae of the Brazilian central coast, southwest Atlantic Ocean (12 S-22 S)
FIGURE 4. (A) Stomias sp. (DZUFRJ 6232; 14.0 mm) and (B) Stomias affinis (DZUFRJ 8960; 90.0 mm), lateral view of head and photophore pattern.
FIGURE 8 in Distribution of larval Stomiidae of the Brazilian central coast, southwest Atlantic Ocean (12 S-22 S)
FIGURE 8. (A) Bathophilus sp. (DZUFRJ 6235; 25.5 mm), (B) Eustomias sp. (DZUFRJ 6233; 37.7 mm), (C) Melanostomias sp. (DZUFRJ 6234; 13.5 mm), (D) Flagellostomias boureei (DZUFRJ 8398;15.0 mm) and (E) Photonectes mirabilis (DZUFRJ 6225; 20.4 mm).
Gauge data repository for "Comprehensive evaluation and comparison of ten precipitation products in terms of accuracy and stability over a typical mountain basin, Southwest China"
<h4>1. Title: </h4> <p>Gauge data repository for "Comprehensive evaluation and comparison of ten precipitation products in terms of accuracy and stability over a typical mountain basin, Southwest China".</p> <h4>2. Corresponding author: </h4> <p>Xingbi Lei (leixingbi@st.gxu.edu.cn, leixingbi@foxmail.com).</p> <h4>3. Institution: </h4> <p>Key Laboratory of Disaster Prevention and Structural Safety of the Ministry of Education, Nanning 530000, China;</p> <p>College of Architecture and Civil Engineering, Guangxi University, Nanning 530000, China; </p> <p>Guangxi Provincial Engineering Research Center of Water Security and Intelligent Control for Karst Region, Guangxi University, Nanning 530000, China; </p> <p>Guangxi Key Laboratory of Disaster Prevention and Engineering Safety, Guangxi University, Nanning 530000, China; </p> <p>State Key Laboratory of Hydrology-Water Resources and Hydraulic Engineering, Nanjing Hydraulic Research Institute, Nanjing 200029, China; </p> <p>Guangxi Water & Power Design Institute Co., Ltd., Nanning 530023, China. </p> <h4>4. Description:</h4> <p>This repository contains gauge data for the research article "Comprehensive evaluation and comparison of ten precipitation products in terms of accuracy and stability over a typical mountain basin, Southwest China", which is currently under review for the journal "Atmospheric Research".</p> <p>The gauge data used in this study is the daily measurements (2003/01/01-2018/12/31) of 12 stations in the Chengbi River Basin (Southwest China). The data source was the Chengbi River Reservoir Bureau. The data has been quality controlled by the Bureau in accordance with "MWR, PRC,2015. Specification for precipitation observations: SL 21-2015". Please see the journal article for more detailed information.</p> <h4>5. Citation:</h4> <p>When using this dataset, please cite "Mo, C. et al., 2024. Comprehensive evaluation and comparison of ten precipitation products in terms of accuracy and stability over a typical mountain basin, Southwest China. Atmospheric Research, 297: 107116.10.1016/j.atmosres.2023.107116". </p> <p> </p>
FIGURE 9 in Scale surface microstructure and scale size in the tooth-carp genus Aphanius (Teleostei, Cyprinodontidae) from endorheic basins in Southwest Iran
FIGURE 9. Dendrogram based on the between-groups-linkage method showing the phenotypic relations among the studied populations of Aphanius sophiae (Kor River Basin), A. farsicus (Maharlu Lake Basin) and A. pluristriatus (Mond River Basin). The dendrogram is based on all characters of the scale surface morphology and microstructures (see Tables 2 and 3). I: Kor River subsystem and II: Tashk and Bakhtegan Lakes subsystem. See Table 1 for codes of sampling sites.
FIGURE 5 in Scale surface microstructure and scale size in the tooth-carp genus Aphanius (Teleostei, Cyprinodontidae) from endorheic basins in Southwest Iran
FIGURE 5. Scale surface microstructures of the studied species: First circuli on the rostral field. A–I: Aphanius sophiae from the Kor River subsystem (A—Safashahr, B—Ghadamgah, C—Beyza, D—Bandeamir, E—Kharameh) and from the Tashk and Bakhtegan Lakes subsystem (F—Gomban, G—Tashk, H—Bakhtegan, I—Gol); J–M: A. farsicus from the Maharlu Lake Basin (J—Dobaneh, K—Pirbanoo, L—Babunak, M—Barmeshoor); N: A. pluristriatus from Zarjan in the Mond River Basin. Arrows indicate continuous circuli. Scale bar: 20 µm.
FIGURE 6 in Scale surface microstructure and scale size in the tooth-carp genus Aphanius (Teleostei, Cyprinodontidae) from endorheic basins in Southwest Iran
FIGURE 6. Scale surface microstructures of the studied species: Tubercles on the caudal scale field. A–I: Aphanius sophiae from the Kor River subsystem (A—Safashahr, B—Ghadamgah, C—Beyza, D—Bandeamir, E—Kharameh) and from the Tashk and Bakhtegan Lakes subsystem (F—Gomban, G—Tashk, H—Bakhtegan, I—Gol); J–M: A. farsicus from the Maharlu Lake Basin (J—Dobaneh, K—Pirbanoo, L—Babunak, M—Barmeshoor); N: A. pluristriatus from Zarjan in the Mond River Basin. Arrows in E and L show mucus pores. Scale bar: 20 µm.
FIGURE 2. A in Scale surface microstructure and scale size in the tooth-carp genus Aphanius (Teleostei, Cyprinodontidae) from endorheic basins in Southwest Iran
FIGURE 2. A) Schematic drawing of an Aphanius scale, including some of the terms used in this study. Terminology follows Lippitsch (1990), Kuusipalo (1998), Jawad (2005) and Jawad and Al-Jufaili (2007). Dashed lines delimit the different fields. Scale bar: 200 µm. B) Measurements of scale length and width (after Esmaeili 2001). C) Schematic shapes of scale and focus as described in this study and in Table 3; terminology follows Kuusipalo (1998): a—Pentagonal, b—Elliptic-pentagonal, c—Round-pentagonal, d—Round-triangular, e—Elliptic-rectangular, f—Oblong, g—Oval, h—Round, i—Quadrangular, j—Rectangular, k—Trapezoidal, l—Elliptical.
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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.