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Fig. 4 in Some color in the desert: description of a new species of Liolaemus (Iguania: Liolaemidae) from southern Peru, and its conservation status
Fig. 4. Male specimens of the Liolaemus anqapuka sp. nov. Photos by A. Quiroz (A–D) and C.S. Abdala (E).
Fig. 6 in Some color in the desert: description of a new species of Liolaemus (Iguania: Liolaemidae) from southern Peru, and its conservation status
Fig. 6. Geographic distribution of Liolaemus montanus group species from Peru. Symbols with a black dot in the middle represent the type locality of each species. Species with quotation marks in the names belong to the candidate species listed in Aguilar et al. (2016).
Fig. 1 in Some color in the desert: description of a new species of Liolaemus (Iguania: Liolaemidae) from southern Peru, and its conservation status
Fig. 1. Biogeographic regionalization proposed by Morrone (2014), showing the limits of the Desert province and Atacama province. The geoform La Caldera batholith, adapted from Ramos (2008), is also shown.
Fig. 3 in Some color in the desert: description of a new species of Liolaemus (Iguania: Liolaemidae) from southern Peru, and its conservation status
Fig. 3. Adult male of the holotype, Liolaemus anqapuka sp. nov. (MUSA 5573; SVL = 73.5 mm, Tail = 63.9 mm), from the Department of Arequipa, 2,460 m asl. Photos by C.S. Abdala.
Fig. 11 in Some color in the desert: description of a new species of Liolaemus (Iguania: Liolaemidae) from southern Peru, and its conservation status
Fig. 11. Phylogenetic trees showing the relationships between Liolaemus anqapuka sp. nov. and species within the L. montanus group by (A) Total Evidence analysis, (B) molecular phylogenetic analysis, and (C) morphological phylogenetic analysis. The values correspond to the support measure with symmetric resampling.
Fig. 1 in Survey of Thysanoptera using colored sticky card traps in Florida, USA, olive groves
Fig. 1. Map of olive groves surveyed in North Central Florida. Stars represent locations of groves. "S" is a grove in Suwannee County, "G" is a grove in Gilchrist County, "M" is a grove in Marion County, and "V" is a grove in Volusia County. Map created using spatial data from USGS (2016).
Fig. 1 in Undescribed color polymorphism of the Asiatic palm weevil, Rhynchophorus vulneratus Panzer (Coleoptera: Curculionidae) in Indonesia: biodiversity study based on COI gene
Fig. 1. Genealogical relationship of 105 sequence haplotypes of palm weevils collected from Indonesia and Rhynchophorus ferrugineus from Saudi Arabia and Pakistan based on the cytochrome oxidase subunit I (COI) gene (657 bp) using the neighbor joining method with 1,000 bootstraps. The colors indicate the palm weevil color morphs or species: - Asiatic palm weevil with rusty red morphs (APW–RR); - Asiatic red palm weevil with red stripe morphs (APW–RS); - Asiatic palm weevil with intermediate color between rusty red and red stripe morphs (APW–I); - black palm weevil (BPW as an outgroup); and - red palm weevil, R. ferrugineus (RPW). The numbers at the branching points indicate the bootstrap values. CA = Lineage A, CB = Lineage B, CC = Lineage C, SCA = Sub-cluster A, SCB = Sub-cluster B.
Fig. 2 in Survey of Thysanoptera using colored sticky card traps in Florida, USA, olive groves
Fig. 2. Diagram of a Florida olive grove indicating sampling locations (A) and spatial identifiers (B) used for sampling design and analysis. The large rectangle represents a 4 ha area surveyed; each of the 4 white boxes represents a 1 ha subplot. Each letter represents a sampling location where yellow and blue sticky traps were placed during each sampling visit. Spatial identifiers for sampling sites included: "COR" = corner site, "CEN" = center site, "ER" = edge of the grove site and bordered by olive trees on 3 sides of the tree, "END" = site located at the end of a row, but not a corner. Image from Google Maps.
Fig. 4 in Survey of Thysanoptera using colored sticky card traps in Florida, USA, olive groves
Fig. 4. Mean thrips abundance per mo in 2017 and 2018 and in both yr combined found on yellow and blue sticky card traps in 4 north central Florida olive groves.
Fig. 3 in Survey of Thysanoptera using colored sticky card traps in Florida, USA, olive groves
Fig. 3. Timeline of observed fruiting and flowering events of North Central Florida olive trees in both 2017 and 2018. The 2017 flowering and fruiting are represented by white symbols. The gap in 2017 fruiting visible in Sep is when Hurricane Irma prevented sampling efforts. The 2018 flowering and fruiting symbols are represented by black symbols. Triangles represent flowering events. Circles represent fruiting events. The black arrow represents the Florida harvest period. Specific flowering and fruiting events are listed on the y-axis, mo of observation are on the x-axis.
Fig. 3 in New Jurassic tettigarctid cicadas from China with a novel example of disruptive coloration
Fig. 3. Hairy cicada Sanmai mengi sp. nov., holotype (STMN48-1802) from the upper Middle–lower Upper Jurassic Daohugou beds. Photograph (A), explanatory drawing (B).
Fig. 4 in New Jurassic tettigarctid cicadas from China with a novel example of disruptive coloration
Fig. 4. Hairy cicada Sanmai xuni sp. nov. from the upper Middle–lower Upper Jurassic Daohugou beds. A. Holotype STMN48-1803. Photograph (A1), explanatory drawing (A2), enlargement of head (A3). B. Paratype STMN48-1804. Photograph (B1), explanatory drawing of hind wing (B2, horizontal mirror), photomicrograph of ovipositor and pygofer (B3). C. Paratype STMN48-1805. Photograph (C1); photomicrograph of antenna, showing segments of flagellum arrowheads) (C2); photomicrograph of part of rostrum (C3). Abbreviations: CuA, anterior branch of the cubitus vein; M, media vein; RA, anterior branch of the radial vein; RP, posterior branch of the radial vein.
Fig. 2 in New Jurassic tettigarctid cicadas from China with a novel example of disruptive coloration
Fig. 2. Hairy cicada Sanmai kongi sp. nov. from the upper Middle–lower Upper Jurassic Daohugou beds. A. Holotype STMN48-1800a. Photograph under alcohol (A1), explanatory drawing (A2). Hind leg (A3). Enlargement of apical teeth set of hind tibia (A4). Photomicrograph of ovipositor (A5). B. Paratype STMN48-1801. Photograph (B1), photomicrograph of male genitalia (B2). Abbreviations: A, anal vein; CuA, anterior branch of the cubitus vein; CuP, posterior branch of the cubitus vein; M, media vein; RA, anterior branch of the radial vein; RP, posterior branch of the radial vein; ScP, posterior branch of the subcosta vein; u, ulnar cell.
Fig. 1 in New Jurassic tettigarctid cicadas from China with a novel example of disruptive coloration
Fig. 1. Distribution of the localities and strata of Architettigini, Turutanoviini, and Sanmai gen. nov. 1, northeastern Brazil (Hamilton 1990); 2, England Whalley 1985); 3, Kazakhstan (Shcherbakov and Popov 2002; Shcherbakov 2009); 4, Tajikistan (Becker-Migdisova 1949); 5, Ust'-Baley, southern Siberia (Shcherbakov 1985); 6, Myangad, western Mongolia (Shcherbakov 1986); 7, northeastern China (Wang and Zhang 2009; this study).
Figure 1 in Response of Hypothenemus hampei Ferrari (Coleoptera: Curculionidae: Scolytinae) parasitized by the nematode Metaparasitylenchus hypothenemi Poinar (Tylenchida: Allantonematidae) to different colors of light
Figure 1: Relative attraction of CBB (parasitized with MetaparaSityleNChUS hypOtheNeMi and non-parasitized) to 14 light wavelengths compared to the control (570 nm). The asterisk-labeled treatment was statistically different to the control using the χ2 test (P = 0.01). Relative attraction (%) was calculated using the number of borers that chose the treatment and control, applying the formula: [(treatment) (100) / (treatment + control)].
FIGURE 12 in A new color-changing species of Corydoras (Siluriformes: Callichthyidae) from the rio Jutaí, Brazilian Amazon
FIGURE 12 | Map showing the type locality of Corydoras colossus (orange star), the rio Jutaí close to its outfall into the rio Solimões, Amazonas, Brazil.
FIGURE 10 in A new color-changing species of Corydoras (Siluriformes: Callichthyidae) from the rio Jutaí, Brazilian Amazon
FIGURE 10 | Variations in color pattern in life of Corydoras colossus in lateral view, showing the general color pattern in life of the holotype (A); MNRJ 54421, 44.5 mm SL), a paratype with a paler pattern (B); not labelled as photographed after preservation, catalog number untraceable), and of an uncatalogued aquarium specimen (not measured) with a darker pattern (C). Photos by Steven Grant.
FIGURE 9 in A new color-changing species of Corydoras (Siluriformes: Callichthyidae) from the rio Jutaí, Brazilian Amazon
FIGURE 9 | Coalescent platelets on ventral surface of trunk in a c&s paratype of Corydoras colossus (CITL 928, 48.4 mm SL), forming the typical mosaic-like pattern. Area in detail outlined (dotted line) in black in the miniature photo of the holotype (MNRJ 54421, 44.5 mm SL) in ventral view. Scale bar = 1 mm.
FIGURE 8 in A new color-changing species of Corydoras (Siluriformes: Callichthyidae) from the rio Jutaí, Brazilian Amazon
FIGURE 8 | General morphology of caudal skeleton in a c&s paratype of Corydoras colossus (CITL 928, 43.1 mm SL), showing the small cartilage (outlined in red) between upper principal and procurrent caudal-fin rays. Abbreviations: ccc: compound caudal centrum, cfr: caudal-fin principal rays, dpcr: dorsal procurrent rays, epu: epural, has: haemal spine, hyp 1–5: hypurals 1 to 5, nes: neural spine, par: parhypural, pu 2–4: preural centra 2 to 4, un: uroneural, vpcr: ventral procurrent rays. Area where the illustrated bones are located in fish's body marked in red in the miniature drawing of the new species. Scale bar = 1 mm.
FIGURE 7 in A new color-changing species of Corydoras (Siluriformes: Callichthyidae) from the rio Jutaí, Brazilian Amazon
FIGURE 7 | Pelvic girdle in a c&s paratype of Corydoras colossus (CITL 928, 43.1 mm SL). Abbreviations: bp: basipterygium, pae: anterior external process, pai: anterior internal process, pi: dorsal ischiac process. Pelvic girdle position shown in red in the miniature photo of the holotype (MNRJ 54421, 44.5 mm SL) in ventral view. Scale bar = 1 mm.
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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.