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1,492 results for “species delimitation”
Figure 1 in Phylogeny, species delimitation and biogeography of the endemic Palaearctic tribe Tomarini (Lepidoptera: Lycaenidae)
Figure 1. Map showing the origins of the Tomares samples used for phylogenetic analyses in this study.
Figure 1 in Shedding light on species boundaries in small endogeic animals through an integrative approach: species delimitation in the centipede Clinopodes carinthiacus (Chilopoda: Geophilidae) in the south-eastern Alps
Figure 1. Study area (white contour), sampling sites for the integrative species delimitation analysis (labelled symbols; codes as in Table 1) and all other sites of occurrence based on confidently identified specimens and validated published records (symbols without labels). Sites of occurrence of the two resulting species are distinguished (see key), and the single site of syntopy is indicated (white arrow).
Figure 4 in Shedding light on species boundaries in small endogeic animals through an integrative approach: species delimitation in the centipede Clinopodes carinthiacus (Chilopoda: Geophilidae) in the south-eastern Alps
Figure 4. Number of pairs of legs in specimens confidently identified as belonging to Clinopodes carinthiacus s.s. and Clinopodes strasseri in the study area. Differences between species are statistically significant for both males and females (Mann–Whitney U-test: P <0.0001 for both sexes; Supporting Information, Table S8).
Supplementary material 1 from: Miralles A, Köhler J, Glaw F, Vences M (2016) Species delimitation methods put into taxonomic practice: two new Madascincus species formerly allocated to historical species names (Squamata, Scincidae). Zoosystematics and Evolution 92(2): 257-275. https://doi.org/10.3897/zse.92.9945
List of specimens examined morphologically : Explanation note: Specimens examined are listed including collection number, locality and collector information.
Supplementary material 2 from: Fossen EI, Ekrem T, Nilsson AN, Bergsten J (2016) Species delimitation in northern European water scavenger beetles of the genus Hydrobius (Coleoptera, Hydrophilidae). ZooKeys 564: 71-120. https://doi.org/10.3897/zookeys.564.6558
Additional morphological characters : Explanation note: Word file containing a list and descriptions of additional morphological characters that were measured. Contains 11 external body and 8 male genital characters.
Supplementary material 4 from: Fossen EI, Ekrem T, Nilsson AN, Bergsten J (2016) Species delimitation in northern European water scavenger beetles of the genus Hydrobius (Coleoptera, Hydrophilidae). ZooKeys 564: 71-120. https://doi.org/10.3897/zookeys.564.6558
Morphological dataset : Explanation note: Excel file containing the complete morphological measurements. Includes a second data sheet with non-abbreviated variables and units for the measurements.
Supplementary material 3 from: Fossen EI, Ekrem T, Nilsson AN, Bergsten J (2016) Species delimitation in northern European water scavenger beetles of the genus Hydrobius (Coleoptera, Hydrophilidae). ZooKeys 564: 71-120. https://doi.org/10.3897/zookeys.564.6558
Supplementary tables and figures : Explanation note: Additional tables (S1-S10) and figures (S1-S6). Phylogenetic trees, BPP results, post-hoc comparisons of morphological characters etc.
Supplementary material 1 from: Fossen EI, Ekrem T, Nilsson AN, Bergsten J (2016) Species delimitation in northern European water scavenger beetles of the genus Hydrobius (Coleoptera, Hydrophilidae). ZooKeys 564: 71-120. https://doi.org/10.3897/zookeys.564.6558
Specimen information : Explanation note: Excel file containing information (locality data, voucher info, gender, BOLD ID) about all specimens that where measured and/or sequenced.
FIGURES 6–32. Basal antennomeres, males. 6 in Species delimitation of colour polymorphic Cladophorus (Coleoptera: Lycidae) from New Guinea
FIGURES 6–32. Basal antennomeres, males. 6, Cladophorus bicolor Kleine; 7, C. boceki sp. nov.; 8, C. craterensis sp. nov.; 9, C. haiaensis sp. nov.; 10, C. humeralis Kleine; 11, C. kailakiensis sp. nov.; 12, C. manokwarensis sp. nov.; 13, C. mindikensis sp. nov.; 14, C. praecipuus Kleine; 15, C. motykai sp. nov.; 16, C. riedeli sp. nov.; 17, C. pallescens sp. nov.; 18, C. wasiorensis sp. nov. Terminal antennomeres, male. 19, C. haiaensis sp. nov. Pronotum. 20, C. bicolor Kleine; 21, C. boceki sp. nov., 22, C. craterensis sp. nov.; 23, C. haiaensis sp. nov.; 24, C. humeralis Kleine; 25, C. kailakiensis sp. nov.; 26, C. manokwarensis sp. nov.; 27, C. mindikensis sp. nov.; 28, C. motykai sp. nov.; 29, C. pallescens sp. nov.; 30, C. praecipuus Kleine; 31, C. riedeli sp. nov.; 32, C. wasiorensis sp. nov. a, length of lamella; b, length of the stem of antennomere 3. Scales: antennae 1.5 mm; pronota 0.5 mm.
FIGURES 1–3. 1–2 in Species delimitation of colour polymorphic Cladophorus (Coleoptera: Lycidae) from New Guinea
FIGURES 1–3. 1–2, General appearance of Cladophorus bicolor in the Central mountains of New Guinea. 3, Sampled localities and the distribution of Cladophorus species
FIGURES 4–5. 4 in Species delimitation of colour polymorphic Cladophorus (Coleoptera: Lycidae) from New Guinea
FIGURES 4–5. 4, Phylogenetic hypothesis of Papuan Cladophorus inferred from the cox1 mtDNA dataset using maximum likelihood criterion. 5, Cladophorus sp., general appearance.
FIGURES 53–78. Male genitalia ventrally and laterally. 53–54 in Species delimitation of colour polymorphic Cladophorus (Coleoptera: Lycidae) from New Guinea
FIGURES 53–78. Male genitalia ventrally and laterally. 53–54, Cladophorus bicolor Kleine; 55–56, C. boceki sp. nov.; 57– 58, C. craterensis sp. nov.; 59–60, C. haiaensis sp. nov.; 61–62, C. humeralis Kleine; 63–64, C. kailakiensis sp. nov.; 65–66, C. manokwarensis sp. nov.; 67–68, C. mindikensis sp. nov.; 69–70, C. motykai sp. nov.; 71–72, C. pallescens sp. nov.; 73–74, C. praecipuus Kleine; 75–76, C. riedeli sp. nov.; 77–78, C. wasiorensis sp. nov. Scales 0.5 mm.
FIGURES 33–52. Elytron. 33–36 in Species delimitation of colour polymorphic Cladophorus (Coleoptera: Lycidae) from New Guinea
FIGURES 33–52. Elytron. 33–36, Cladophorus bicolor Kleine; 37, C. boceki sp. nov.; 38, C. craterensis sp. nov.; 39, C. haiaensis sp. nov.; 40, C. humeralis Kleine; 41, C. kailakiensis sp. nov.; 42, C. manokwarensis sp. nov.; 43, C. mindikensis sp. nov.; 44–45, C. motykai sp. nov.; 46, C. pallescens sp. nov.; 47, C. praecipuus Kleine; 48, C. riedeli sp. nov.; 49, C. wasiorensis sp. nov. Structure of elytral costae in C. bicolor Kleine. 50, humeral part of the elytron; 51, transition between the dark and light colored part of the elytron; 52, apical part of the elytron. Scales: elytron 1.5 mm; elytra detail 0.2 mm.
FIGURE 17 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 17. Maximum likelihood subtree of P. cochlearum, P. sp1, P. sp16 and P. sp17 with GTR substitution model. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance.
FIGURE 6 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 6. Maximum likelihood subtree of P. japonicum species complex with GTR substitution model. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance.
FIGURE 4 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 4. The number of the OTUs by the prior intraspecific divergence calculated with ABGD online using the K2P substitution model.
FIGURE 2 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 2. Histogram of pairwise K2P distances between morphological species of Tripodura. The horizontal axis shows the pairwise K2P-distance, and the vertical axis shows the number of pairwise sequence comparisons.
FIGURE 3 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 3. Maximum likelihood tree of Tripodura species. The tree was based on partial COI sequences and the generalized time reversible substitution model, Stictochironomus sticticus Fabricius, 1781 and S. sinsauensis Ree & Jeong, 2010 as outgroups. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance; different species clade with different colors.
FIGURE 7 in Exploring the utility of DNA barcoding in species delimitation of Polypedilum (Tripodura) non-biting midges (Diptera: Chironomidae)
FIGURE 7. Maximum likelihood subtree of P. unifascium species complex with GTR substitution model. Numbers on branches represent bootstrap support (>70%) based on 500 replicates; scale represents K2P genetic distance.
Dasyclonium species delimitation with organelle genomes
<p>Datasets for our paper on scaling up species delimitation from single genes to whole organelle genomes, using the red alga Dasyclonium as a case study. The dataset includes assembled contigs for each specimen and alignments for named chloroplast-encoded genes.</p>
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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.