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FIGURES 590–600 in The South American spider genera Mesabolivar and Carapoia (Araneae, Pholcidae): new species and a framework for redrawing generic limits
FIGURES 590–600. Live specimens, Carapoia cambridgei group (part 2). 590–592. C. utinga sp. n., males and female from Belém. 593–595. C. pulchra sp. n., male and females from Pedra Talhada. 596–598. C. suassunai sp. n., male from Mata de Pipa, and females from Guaribas and Pao Ferro. 599–600. C. lutea (Keyserling, 1891), male from Iguaçú, female with juveniles from Turvo.
FIGURE 1. The phylogenetic relationships among Acaenitinae species inferred from a 590 in Two new species of the genus Ishigakia (Hymenoptera: Ichneumonidae, Acaenitinae) from Vietnam based on morphological and molecular evidence
FIGURE 1. The phylogenetic relationships among Acaenitinae species inferred from a 590bp fragment of the COI gene based on Maximum Likelihood, Bayesian Inference analyses. Values at nodes are bootstrap or BI. #: values less than 65 or 0.65.
Fig. 2 Mitochondrial haplotype network using the 590 in Differentiation of North African foxes and population genetic dynamics in the desert-insights into the evolutionary history of two sister taxa, Vulpes rueppellii and Vulpes vulpes
Fig. 2 Mitochondrial haplotype network using the 590-bp concatenated sequences from Cyt-b and D-loop and a total of 46 sequences (same as in Fig. 1, except for C. lupus not being used as an outgroup in the TCS network). a Neighbour-Net network based on uncorrected patristic distances as implemented in SPLITSTREE. Canis lupus (DQ480504) was used as an outgroup. Numbers indicate bootstrap values. Scale bar represents 0.01 sequence divergence. Highlighoed are the four species, the three V. vulpes clades and the location within the network of the V. vulpes sample from Egypt. Colour patterns are concordant with Fig. 1 and b. b Statistical parsimony network assuming a 95 % parsimony threshold, as constructed by TCS. Symbol size and branch lengths are proportional to the number of shared individuals per haplotype and the number of mutational steps amongst haplotypes, respectively. Numbers in black background also refer to the number of mutation steps between species and V. vulpes clades. Symbols and colours are concordant with Fig. 1 and a. Haplotype codes, sample origin and corresponding accession numbers are available in Online Resource Table S1
SDM results for 10,590 tree species from "Regional uniqueness of tree species composition and response to forest loss and climate change"
<p>Output from species distribution models (SDMs) with geographic constraints to estimate the spatial distribution of tree species at the global level at a 30-arc second resolution, presented in the publication "Regional uniqueness of tree species composition and response to forest loss and climate change". </p> <h2>Data</h2> <p>This file contains the results for 10,590 tree species. The results for each species are contained in a directory with the species name connected by an underscore. For most species, the directory contains several .tif files that make up the tiles of the distribution maps for that species and a metadata file. The .tif files can be merged with the gdal_merge.py function to obtain a single .tif file per species (see example below). For some species, the directory contains a single .tif file which does not require merging. In all cases, the .tif files contain 9 bands that correspond to the predicted species distribution using climatic variables corresponding to various climate projections from Chelsa 2.1.</p> <h3>Band order</h3> <ol> <li>covariates_1981_2010: average of historical climate measurements from 1981 to 2010</li> <li>covariates_2011_2040_ssp126: average future climate projection for 2011-2040 under shared socioeconomic pathway (SSP) 1.26</li> <li>covariates_2011_2040_ssp370: average future climate projection for 2011-2040 under SSP 3.70</li> <li>covariates_2011_2040_ssp585: average future climate projection for 2011-2040 under SSP 5.85</li> <li>covariates_2041_2070_ssp126: average future climate projection for 2041-2070 under SSP 1.26</li> <li>covariates_2041_2070_ssp370: average future climate projection for 2041-2070 under SSP 3.70</li> <li>covariates_2041_2070_ssp585: average future climate projection for 2041-2070 under SSP 5.85</li> <li>covariates_2071_2100_ssp126: average future climate projection for 2071-2100 under SSP 1.26</li> <li>covariates_2071_2100_ssp370: average future climate projection for 2071-2100 under SSP 3.70</li> <li>covariates_2071_2100_ssp585: average future climate projection for 2071-2100 under SSP 5.85</li> </ol> <h3>Metadata</h3> <p>The metadata contains more information about the bands, as well as the following species-level properties:</p> <ul> <li>nobs: number of spatially distinct occurrence records used in model training</li> <li>precision: precision of binarised model output computed through 3-fold cross-validation</li> <li>threshold: threshold used to binarise probabilistic model output, determined as the threshold maximizing the true skill statistic (TSS) during 3-fold cross-validation</li> <li>f1: F1 score of binarised model output computed through 3-fold cross-validation</li> <li>auc: area under the ROC curve (AUC) of model output computed through 3-fold cross-validation</li> <li>prevalence: prevalence of presences (ie. occurrences records) throughout the training data which consisted of occurrence records and pseudo-absences</li> <li>tss: TSS of binarised model output computed through 3-fold cross-validation</li> <li>recall: recall of binarised model output computed through 3-fold cross-validation</li> <li>nativeness_info: indicates whether reported native countries were available for this species (possible values: "yes" or "no", should be "yes" for all species included)</li> <li>npa: number of pseudo-absences used in model training</li> <li>system:index: species name </li> </ul> <h3>Merging example</h3> <p>For example, the directory Abarema_barbouriana contains files Abarema_barbouriana_0.tif, Abarema_barbouriana_2.tif, ..., Abarema_barbouriana_9.tif and metadata.json. The tiles can be merged with the command "gdal_merge.py -o Abarema_barbouriana_merged.tif Abarema_barbouriana/Abarema_barbouriana_*.tif".</p>
FIGURES 584–597. Tergalii I–VII. 584–590 in Review of Centroptella Braasch & Soldán 1980 (Ephemeroptera, Baetidae)
FIGURES 584–597. Tergalii I–VII. 584–590, Centroptella (Chopralla) rufostriata sp. n.; 591–597, Centroptella (Chopralla) papuanica sp. n.
FIGURES 588–598. Anibontes mimus Chamberlin 1924. 588–594, Male. 595–598, Female. 588. Palp, retrolateral view. 589. Palp, prolateral view. 590. Embolus, prolateral view. 591. Radical division, retrolateral view. 592. 595. Habitus, dorsal view. 593. Sternum, ventral view. 594. Chelicerae, anterior view. 596. Epigynum, dorsal view. 597. Internal genitalia, ventral view. 598 in Taxonomic revision of the spider genera Agyneta and Tennesseellum (Araneae, Linyphiidae) of North America north of Mexico with a study of the embolic division within Micronetinae sensu Saaristo & Tanasevitch 1996
FIGURES 588–598. Anibontes mimus Chamberlin 1924. 588–594, Male. 595–598, Female. 588. Palp, retrolateral view. 589. Palp, prolateral view. 590. Embolus, prolateral view. 591. Radical division, retrolateral view. 592. 595. Habitus, dorsal view. 593. Sternum, ventral view. 594. Chelicerae, anterior view. 596. Epigynum, dorsal view. 597. Internal genitalia, ventral view. 598. Internal genitalia, dorsal view.
Fig. 31. Phylogenetic tree inferring from a 590 in Review of Dragon Millipedes (Diplopoda, Polydesmida, Paradoxosomatidae) in the Fauna of Vietnam, with Descriptions of Three New Species
Fig. 31. Phylogenetic tree inferring from a 590 bp fragment of 16S rRNA using Maximum Likelihood and Bayesian Inference analyses. Bootstrap and BI values are shown at the node.
Figures 590–596 in Revision of genus-group taxa in the family Scorpiopidae Kraepelin, 1905, with description of 15 new species (Arachnida Scorpiones)
Figures 590–596: Scorpiops phatoensis sp. n. Figures 590–591, 594–596. Male holotype, carapace and tergites I–III (590), coxosternal area and sternites (591), left legs II–IV, retrolateral aspect (594–596 respectively). Figures 592–593. Female paratype, carapace and tergites I–III (592), coxosternal area and sternites III–IV (593).
• 590-650 cm. in Neobalaenidae
• 590-650 cm.
IO Islamic 590. Ḥabîb-alsiyar, General History, Third Volume
<p>IO Islamic 590. Ḥabîb-alsiyar, General History, Third Volume</p>
Figures 590-595 from: Hansson C, Smith MA, Janzen DH, Hallwachs W (2015) Integrative taxonomy of New World Euplectrus Westwood (Hymenoptera, Eulophidae), with focus on 55 new species from Area de Conservación Guanacaste, northwestern Costa Rica. ZooKeys 485: 1-236. https://doi.org/10.3897/zookeys.485.9124
Figures 590-595 - Euplectrus spp., females. 590–592 Euplectrus victoriapookae (DHJPAR0028836): 590 head in frontal view 591 vertex 592 mesosoma in dorsal view; 593–595 Euplectrus floryae (non-types): 593 head in frontal view 594 vertex 595 mesosoma in dorsal view.
Figure 6 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 6 - Scolopendra morsitans (CUMZ 00300, 00344): A Tergite of ultimate leg-bearing segment B Lateral view of coxopleuron C Sternite of ultimate leg-bearing segment, coxopleura and ultimate legs D Spines on prefemoral process of ultimate leg E–F Spines on ultimate leg prefemora and margination on prefemora and femora (dorsal view).
Figure 8 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 8 - Distribution map of Scolopendra morsitans in Southeast Asia: Filled triangles indicate data from material examined herein; blank triangles indicate localities in the literature (Shelley et al. 2005, Schileyko 2007).
Figure 58 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 58 - Scolopendra cataracta sp. n.: A Lateral view of coxopleuron B Tergite of ultimate leg-bearing segment C Sternite of ultimate leg-bearing segment, coxopleura and ultimate leg prefemora. D Asymmetry of spines on coxopleural process E Dorsal view of ultimate leg prefemora. Holotype CUMZ 00316 (B–C, E) and paratype CUMZ 00317 (A, D).
Figure 50 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 50 - Scolopendra dawydoffi (Syntypes NHMW 8234): A Cephalic plate and trunk segments 1–3 B Tergites 9–11 C Tooth-plates D Forcipular segment E–G Spiracles 3, 5 and 8, respectively.
Figure 54 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 54 - Scolopendra cataracta sp. n.: A Habitus photograph of holotype CUMZ 00316 B Habitat at type locality C Genital region; GS – Genital segment.
Figure 55 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 55 - Scolopendra cataracta sp. n.: A–B Tooth-plates C Cephalic plate and trunk segments 1–3 D Forcipular segment E Sternites 9–11 and F–H Spiracles 3, 5 and 8, respectively. Holotype CUMZ 00316 (A,C–H) and paratype CUMZ 00317 (B).
Figure 48 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 48 - Scolopendra dawydoffi (CUMZ 00290, 00291): A Tooth-plates B Forcipular segment C Cephalic plate and trunk segments 1–3 D Sternites 9–11 E–G Spiracles 3, 5 and 8, respectively.
Figure 47 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 47 - Scolopendra pinguis (CUMZ 00306, 00314): A Sternites 9–11 B Dorsal view of ultimate leg prefemora C Lateral view of coxopleuron D Sternite of ultimate leg-bearing segment, coxopleura and ultimate legs.
Figure 46 from: Siriwut W, Edgecombe GD, Sutcharit C, Tongkerd P, Panha S (2016) A taxonomic review of the centipede genus Scolopendra Linnaeus, 1758 (Scolopendromorpha, Scolopendridae) in mainland Southeast Asia, with description of a new species from Laos. ZooKeys 590: 1-124. https://doi.org/10.3897/zookeys.590.7950
Figure 46 - Scolopendra pinguis (CUMZ 00306, 00314): A Cephalic plate and basal antennal articles B Forcipular segment C Tergites 9–11 D Teeth on tooth-plates and trochanteroprefemoral process E Tergite of ultimate leg-bearing segment.
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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.
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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.