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326 results for “biogeographical regionalization”

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FIGURE 4 in Contributions of biogeographical functions to species accumulation may change over time in refugial regions

FIGURE 4 Concentrations of Theodoxus interspecific diversity mapped across the Western Palaearctic using the IDW algorithm. Anatolia shows the highest concentrations of Theodoxus MOTUs. Other regions with more than one Theodoxus MOTUs present are encircled with white‐dashed lines. Bar graphs represent the amount of diversity, indicated by; the number of interspecific MOTUs in each concentrated region, PDand sum ED (see text for details) [Colour figurecanbeviewedat wileyonlinelibrary.com]

opennotspecifiedMay 2019View details →
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FIG UR E 3 (a) Dated phylogeny of the genus Theodoxus constructed in BEAST based on COI, 16S and ATPα. Node labels denote divergence times in millions of years ago (Ma); node bars indicate the 95% credibility interval around these dates. Small squares at nodes indicate significant support of divergence events found with BEAST and other phylogenetic analyses (see Figures S2.1 and S2.2), as explained through the key. Where MOTUs (A–R) show conspecifics among a number of morphospecies, species names are given in order of their year of description. Morphospecies, incorporated from GenBank, where determination was potentially dubious are highlighted by an asterisk. Clades (C) and subclades (SC) are demarcated by dashed lines between MOTUs. (b) LTT plots indicating the build‐up of lineages in Theodoxus over geological time. Dashed lines surrounding the solid LTT lines indicate the 95% confidence intervals. Where intra‐ and interspecific diversity diverge, interspecific diversity is highlighted in blue and intraspecific diversity in red. Transitions in geological ages are highlighted by narrow grey lines, while the grey bar marks the period of pronounced glacial cycles (last 900 kyr) [Colour figure can be viewed at wileyonlinelibrary.com] in Contributions of biogeographical functions to species accumulation may change over time in refugial regions

FIG UR E 3 (a) Dated phylogeny of the genus Theodoxus constructed in BEAST based on COI, 16S and ATPα. Node labels denote divergence times in millions of years ago (Ma); node bars indicate the 95% credibility interval around these dates. Small squares at nodes indicate significant support of divergence events found with BEAST and other phylogenetic analyses (see Figures S2.1 and S2.2), as explained through the key. Where MOTUs (A–R) show conspecifics among a number of morphospecies, species names are given in order of their year of description. Morphospecies, incorporated from GenBank, where determination was potentially dubious are highlighted by an asterisk. Clades (C) and subclades (SC) are demarcated by dashed lines between MOTUs. (b) LTT plots indicating the build‐up of lineages in Theodoxus over geological time. Dashed lines surrounding the solid LTT lines indicate the 95% confidence intervals. Where intra‐ and interspecific diversity diverge, interspecific diversity is highlighted in blue and intraspecific diversity in red. Transitions in geological ages are highlighted by narrow grey lines, while the grey bar marks the period of pronounced glacial cycles (last 900 kyr) [Colour figure can be viewed at wileyonlinelibrary.com]

opennotspecifiedMay 2019View details →
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FIGURE 2 in Contributions of biogeographical functions to species accumulation may change over time in refugial regions

FIGURE 2 Map of the locations of 376 Theodoxus specimens used in the current study. See Table S1.1 for more information [Colour figure can be viewed at wileyonlinelibrary.com]

opennotspecifiedMay 2019View details →
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Figure 3 in A contribution to the knowledge of fly fauna in the Kingdom of Saudi Arabia: new country records and an account of flies identified from Rawdhats, Riyadh Region, with biogeographical remarks (Insecta: Diptera)

Figure 3. (a) Ommatius tenellus van der Wulp; (b) Eremisca heleni (Efflatoun); (c) Oligodranes sp.; (d) Actorthia lacteipennis (Becker); (e) Actorthia sp.; (f) Efflatouniella sinatica Mohammad & Badrawy.

opennotspecifiedApr 2018View details →
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Figure 2 in A contribution to the knowledge of fly fauna in the Kingdom of Saudi Arabia: new country records and an account of flies identified from Rawdhats, Riyadh Region, with biogeographical remarks (Insecta: Diptera)

Figure 2. Habitats in Rawdhats. (a, b) Rawdhat Al-Harmaliyah; (c, d) Rawdhat Al-Sabalah; (e, f) Rawdhat Farshet Sheaal.

opennotspecifiedApr 2018View details →
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Figure 4 in A contribution to the knowledge of fly fauna in the Kingdom of Saudi Arabia: new country records and an account of flies identified from Rawdhats, Riyadh Region, with biogeographical remarks (Insecta: Diptera)

Figure 4. (a) Scatella sp.; (b) Trixoscelis sp.; (c) Goniurellia longicauda Freidberg; (d) Stevenia sp.; (e) Pseudomphrale flavoscutellata Kröber; (f) Crossopalpus hirsutipes Collin.

opennotspecifiedApr 2018View details →
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Figure 1 in Biogeographic regions of Central Argentina based on snake distribution: evaluating two different methodological approaches

Figure 1. Córdoba province, its location in Argentina and its phytogeographic areas (modified from Luti et al. 1979).

opennotspecifiedApr 2011View details →
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Figure 3 in Biogeographic regions of Central Argentina based on snake distribution: evaluating two different methodological approaches

Figure 3. Areas resulting from analysis using the NDM software. (A) Area 1, Chaco Serrano; (B) Area 2, Chaco; (C) Area 3, Chaco plus Espinal; and (D) Area 4, Chaco plus Pampas region.

opennotspecifiedApr 2011View details →
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Figure 2 in Biogeographic regions of Central Argentina based on snake distribution: evaluating two different methodological approaches

Figure 2. Dendrogram and areas resulting from cluster analysis. (A) Bray–Curtis similarity dendrogram: light grey, Chaco Serrano; dark grey, Eastern Chaco; diagonal lines, Western Chaco; dotted area, Pampas (or Pampas plus Espinal). (B) Map showing the areas resulting from Custer analysis: light grey, Chaco Serrano; dark grey, Eastern Chaco; diagonal lines, Western Chaco; dotted area, Pampas.

opennotspecifiedApr 2011View details →
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FIGURES 9–10 in Testing the biogeographical regionalization of the Mexican Transition Zone based on the distribution of Curculionidae (Insecta: Coleoptera)

FIGURES 9–10. PAE for the Transmexican Volcanic Belt (TVB). 9, consensus cladogram. Bracket shows the clade that defines an area of endemism. 10, areas and microareas of endemism.

opennotspecifiedDec 2018View details →
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FIGURES 7–8 in Testing the biogeographical regionalization of the Mexican Transition Zone based on the distribution of Curculionidae (Insecta: Coleoptera)

FIGURES 7–8. PAE for the Sierra Madre Oriental (SMOR). 7, consensus cladogram. Brackets show the clade that defines an area of endemism. 8, areas and microareas of endemism.

opennotspecifiedDec 2018View details →
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FIGURES 5–6 in Testing the biogeographical regionalization of the Mexican Transition Zone based on the distribution of Curculionidae (Insecta: Coleoptera)

FIGURES 5–6. PAE for the Sierra Madre Occidental (SMOC). 5, consensus cladogram. Bracket shows the clade that defines an area of endemism. 6, areas and microareas of endemism.

opennotspecifiedDec 2018View details →
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FIGURES 13–14 in Testing the biogeographical regionalization of the Mexican Transition Zone based on the distribution of Curculionidae (Insecta: Coleoptera)

FIGURES 13–14. PAE for the Chiapas Highlands (CHIS). 13, consensus cladogram. Bracket shows the clade that defines an area of endemism. 14, areas and microareas of endemism.

opennotspecifiedDec 2018View details →
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FIGURES 11–12 in Testing the biogeographical regionalization of the Mexican Transition Zone based on the distribution of Curculionidae (Insecta: Coleoptera)

FIGURES 11–12. PAE for the Sierra Madre del Sur (SMS). 11, consensus cladogram. 12, microareas of endemism.

opennotspecifiedDec 2018View details →
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FIGURES 1–4 in Testing the biogeographical regionalization of the Mexican Transition Zone based on the distribution of Curculionidae (Insecta: Coleoptera)

FIGURES 1–4. Areas and microareas of endemism for the MTZ defined using PAE. 1, areas of endemism for the whole MTZ. 2, microareas of endemism for the whole MTZ. 3, areas of endemism for each province of the MTZ. 4, microareas of endemism for each province of the MTZ. SMOC, Sierra Madre Occidental; SMOR, Sierra Madre Oriental; TVB, Transmexican Volcanic Belt; SMS, Sierra Madre del Sur; CHIS, Chiapas Highlands.

opennotspecifiedDec 2018View details →
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FIGURE 15 in Testing the biogeographical regionalization of the Mexican Transition Zone based on the distribution of Curculionidae (Insecta: Coleoptera)

FIGURE 15. Consensus cladogram of PAE for the provinces of the MTZ. CHIS, Chiapas Highlands; SMS, Sierra Madre del Sur; SMOR, Sierra Madre Oriental; TVB, Transmexican Volcanic Belt; SMOC, Sierra Madre Occidental.

opennotspecifiedDec 2018View details →
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FIGURES 31–34 in Generic review of Polycentropodidae with description of 32 new species and 19 new species records from the Oriental, Australian and Afrotropical Biogeographical Regions 2435

FIGURES 31–34. Polyplectropus dinhdan, new species, holotype. 31—genitalia, left lateral; 32—genitalia, caudal; 33—left gonopod, ventral; 34—phallic apparatus, left lateral.

opennotspecifiedApr 2010View details →
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FIGURES 28–30 in Generic review of Polycentropodidae with description of 32 new species and 19 new species records from the Oriental, Australian and Afrotropical Biogeographical Regions 2435

FIGURES 28–30. Polyplectropus daimong, new species, holotype. 28—genitalia, left lateral; 29—left gonopod, ventral; 30—phallic apparatus, left lateral.

opennotspecifiedApr 2010View details →
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FIGURES 35–37 in Generic review of Polycentropodidae with description of 32 new species and 19 new species records from the Oriental, Australian and Afrotropical Biogeographical Regions 2435

FIGURES 35–37. Polyplectropus giandi, new species, holotype. 35—genitalia, left lateral; 36—left gonopod, ventral; 37—phallic apparatus, left lateral.

opennotspecifiedApr 2010View details →
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FIGURES 21–23 in Generic review of Polycentropodidae with description of 32 new species and 19 new species records from the Oriental, Australian and Afrotropical Biogeographical Regions 2435

FIGURES 21–23. Plectrocnemia malaisei, new species, holotype. 21—genitalia, left lateral; 22—left gonopod, ventral; 23—phallic apparatus, left lateral.

opennotspecifiedApr 2010View details →

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Allen Brain Atlas

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Last verified 2026-04-30Open record

Annotated Behaviour and Observability Dataset (ABODe)

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DANDI Archive for NWB datasets

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Last verified 2026-04-30Open record

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.

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Last verified 2026-04-29Open record

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.

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Last verified 2026-04-29Open record