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FIGURE 2. Holotype ZSM 173 in A new species of smooth-skinned Spinomantis frog (Anura: Mantellidae) from south-eastern Madagascar
FIGURE 2. Holotype ZSM 173/2005 (A, B) and paratype ZSM 174/2005 (C, D) of Spinomantis beckei sp. nov. from Andohahela National Park (ca. 1650 m a.s.l.) in life.
tɾumaj wankate ̪ daint'a: ̪ kowow 'A Trumai narrative: the Smooth-billed Ani'
<p>The story of the Smooth-billed Ani (a type of bird in the cuckoo family1 ) is a myth<br> told by the Trumai people of the central region of Brazil. It was video recorded<br> in 2000 by the author (Raquel Guirardello-Damian) and narrated by Kumaru<br> Trumai, a middle-aged woman who has since died. She learned it from her father,<br> Ɨnɨtɨarɨ, a great and respected storyteller. The myth was later transcribed and<br> analyzed with the assistance of a young man, Tarukuy, who is bilingual in Trumai<br> and Portuguese. The text is presented in its phonological form with IPA symbols,<br> followed by English glosses and free translation. </p> <p> </p> <p>This dataset contains the mediafiles. A glossed version with annotations is found in</p> <p>On this and other worlds -- Voices from Amazonia<br> Edited by Kristine Stenzel and Bruna Franchetto</p> <p> </p>
Data file needed for implementation of the Helmholtz equation of state in the Phantom smoothed particle hydrodynamics and magnetohydrodynamics code
<p>** this file is downloaded automatically on running Phantom **<br><br>This is a datafile containing information needed to utilise the Helmholtz equation of state (<a href="http://adsabs.harvard.edu/abs/2000ApJS..126..501T">Timmes & Swesty 2000</a>) implemented in the Phantom smoothed particle hydrodynamics and magnetohydrodynamics code (<a href="http://adsabs.harvard.edu/abs/2018PASA...35...31P">Price et al. 2018</a>). </p> <p>Primarily used to model degenerate matter in white dwarfs</p> <p>For information about how to read the file and its contents, refer to the relevant module in the phantom source code (<a href="https://github.com/danieljprice/phantom/blob/master/src/main/eos_helmholtz.f90">eos_helmholtz.f90</a>)</p>
Data and plotting code for "Probing the loss origins of ultra-smooth Si3N4 integrated photonic waveguides"
<p>Data and code used to produce the figures in "Probing the loss origins of ultra-smooth Si3N4 integrated photonic waveguides".</p>
FIGURE 8 in A taxonomic reappraisal of the Smooth Slug Snake Asthenodipsas laevis (Boie, 1827) (Squamata: Pareidae) in Borneo with the description of two new species
FIGURE 8. Distribution of Asthenodipsas jamilinaisi sp. nov. (yellow), A. stuebingi sp. nov. (red) and reported localities of A. laevis (blue) in Borneo. Star = type locality.
FIGURE 7 in A taxonomic reappraisal of the Smooth Slug Snake Asthenodipsas laevis (Boie, 1827) (Squamata: Pareidae) in Borneo with the description of two new species
FIGURE 7. Asthenodipsas laevis from various localities; A. Specimen from Maliau Basin, Sabah (photograph by Paul Bertner). B. Specimen from Kuching, Sarawak (photograph by Hans Breuer). C. Specimen from Gunung Mulu National Park, Sarawak (photograph by Edward Evans). D. Specimen from Bako National Park, Sarawak (photograph by Joe McAuliffe). E. Adult male (LSUHC 11807) from Penang Hill, Penang Island (photograph by Evan Quah). F. Specimen from Kuching, Sarawak (photograph by Chien C. Lee).
FIGURE 4. A & B in A taxonomic reappraisal of the Smooth Slug Snake Asthenodipsas laevis (Boie, 1827) (Squamata: Pareidae) in Borneo with the description of two new species
FIGURE 4. A & B. Dorsum and venter of holotype of Asthenodipsas jamilinaisi sp. nov. (SP 04076). C & D. Dorsum and venter of paratype of A. jamilinaisi sp. nov. (ZRC 2.2742). Photographs by Kelvin Lim. E. Sharp vertebral keel of the holotype of A. jamilinaisi sp. nov. (SP 04679) as indicated by arrow. F. Absence of sharp vertebral keel on A. laevis (SP 04138) from Borneo as indicated by arrow.
FIGURE 3. A in A taxonomic reappraisal of the Smooth Slug Snake Asthenodipsas laevis (Boie, 1827) (Squamata: Pareidae) in Borneo with the description of two new species
FIGURE 3. A. Dorsum of paratype of Asthenodipsas stuebingi sp. nov. (ZMB 65429). B. Venter of paratype of A. stuebingi sp. nov. (ZMB 65429) (Photographs by Frank Tillack). C. Dorsum of paratype of A. stuebingi sp. nov. (ZMB 65429) in life from Kinabalu Park power station, Kamborangoh Road, Sabah. D. Paratype of A. stuebingi sp. nov. (ZMB 65429) from Kinabalu Park power station, Kamborangoh Road, Sabah in defensive coils. E. Venter of paratype of A. stuebingi sp. nov. (ZMB 65429) in life from Kinabalu Park power station, Kamborangoh Road, Sabah. (Photographs by Andreas Nӧllert). F. Sharp vertebral keel of the holotype of A. stuebingi sp. nov. (SP 04679) as indicated by arrow.
FIGURE 2. A in A taxonomic reappraisal of the Smooth Slug Snake Asthenodipsas laevis (Boie, 1827) (Squamata: Pareidae) in Borneo with the description of two new species
FIGURE 2. A. Dorsum of holotype of Asthenodipsas stuebingi sp. nov. (SP 04679). B. Venter of holotype of A. stuebingi sp. nov. (SP 04679). C. Dorsum of paratype of A. stuebingi sp. nov. (SP 04806). D. Venter of paratype of A. stuebingi sp. nov. (SP 04806). E. Dorsum of paratype of A. stuebingi sp. nov. (MCZ R43591). F. Venter of paratype of A. stuebingi sp. nov. (MCZ R43591).
FIGURE 5 in A taxonomic reappraisal of the Smooth Slug Snake Asthenodipsas laevis (Boie, 1827) (Squamata: Pareidae) in Borneo with the description of two new species
FIGURE 5. Variation in Asthenodipsas jamilinaisi sp. nov. from Mount Kinabalu, Sabah. A & B. Dorsum and venter of same adult individual. C. Juvenile. D & E. Adults. (Photographs by Björn Lardner [A–B], Kurt H.P. Guek [C & E] & Steven Wong [D]).
FIGURE 1 in A taxonomic reappraisal of the Smooth Slug Snake Asthenodipsas laevis (Boie, 1827) (Squamata: Pareidae) in Borneo with the description of two new species
FIGURE 1. PCA (left) with convex hull polygons and DAPC (right) showing the morphospatial relationships of Asthenodipsas jamilinaisi sp. nov., A. stuebingi sp. nov., and different populations of A. laevis.
Smoothed basin velocity structure model of the Kanto Sedimentary Basin (Takemura et al., 2015)
<p><strong>Model description</strong></p> <p>We constructed sedimentary <em>S</em>-wave velocity structure model of the Northern Kanto region using 190 local <em>S</em>-wave velocity structures. In the uploaded files of Takemura2015_V0..dat and Takemura2015_Alpha.dat, longitudes, latitudes and values of <span class="math-tex">\(V_0\)</span> (and <span class="math-tex">\(\alpha\)</span>) at 190 local points are listed. Our model of the sedimentary basin was described by two parameters of a simple velocity gradient function (Ravve and Koren 2006). The depth gradient function is described as</p> <p><span class="math-tex">\(V_S(z)=V_0+\Delta V\left[1-\exp\left(-\frac{\alpha z}{\Delta V}\right)\right]\)</span></p> <p>where <span class="math-tex">\(V_0\)</span> is the <em>S</em>-wave velocity at the surface (<em>z</em> =&thinsp;0), <span class="math-tex">\(\Delta V\)</span> is <em>S</em>-wave velocity of the bedrock (3.2 km/s), and <span class="math-tex">\(\alpha\)</span> is the positive constant that determines the velocity-depth gradient.</p> <p><strong>3D sedimentary model construction </strong></p> <p>After applying GMT surface to each parameter, spatial variations of both two parameters were obtained. Using obtained spatial distributions of <span class="math-tex">\(V_0\)</span> and <span class="math-tex">\(\alpha\)</span> and the depth gradient function, 3D sedimentary velocity structure of the Northern Kanto region could be constructed. </p> <p><strong>Citation</strong></p> <p>Takemura, S., Akatsu, M., Masuda, K., Kajikawa, K., & Yoshimoto, K., (2015), Long-period ground motions in a laterally inhomogeneous large sedimentary basin: observations and model simulations of long-period surface waves in the northern Kanto Basin, Japan, Earth, Planets and Space, 67:33, <a href="https://doi.org/10.1186/s40623-015-0201-7">doi:10.1186/s40623-015-0201-7</a></p>
Data for 'Adaptive Particle Refinement for compressible Smoothed Particle Hydrodynamics'
<p>Contains necessary files to recreate the simulations presented in Adaptive Particle Refinement for compressible Smoothed Particle Hydrodynamics (under review). We have also included the files to recreate the rendered plots presented in the paper. There are seven folders;</p> <ol> <li>Circumbinary disc test</li> <li>Planet-disc test</li> <li>Flyby test</li> <li>Periodic box tests</li> <li>Firehose test</li> <li>Nchild test</li> <li>Kernel test with planet disc interaction</li> </ol> <p>Within each of these folders there are sub-folders that refer to each specific simulation presented in the paper. Each folder contains the necessary .setup and .in file as well as the .ev files where applicable. Where rendered figures have been made, the corresponding dump files are also included here. All figures were made using sarracen (https://github.com/ttricco/sarracen/).</p>
Appendices A-B-C for Malfait et al. 2024(a), Impact of HI cooling and study of accretion disks in AGB wind-companion smoothed particle hydrodynamic simulations
<p>Appendices A, B, C with figures, of the paper Malfait et al. 2024(a) "Impact of HI cooling and study of accretion disks in AGB wind-companion smoothed particle hydrodynamic simulations".</p>
The data of the mesh used in: Pan M, Zou R, Jüttler B. Algorithms and Data Structures for Cs-smooth RMB-splines of Degree 2s+ 1. Computer Aided Geometric Design, 2024: 102389.
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Smoothed VLT/MUSE observations of Jupiter and Saturn
<p>Data are those used for the JGR submission: "Clouds and ammonia in the atmospheres of Jupiter and Saturn determined from a band-depth analysis of VLT/MUSE observations". Observation dates are 23rd March 2020 for Jupiter, and 6th April 2017 for Saturn.</p>
Reduced latency in manual interception with anticipatory smooth eye movements
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Figure 2 in Patterns of morphometric variation in the smooth newt (Lissotriton vulgaris) from Greece: environmental correlates
Figure 2. Plot of CV1–CV3 scores showing separation of populations in multivariate space for male and female smooth newts from Greece. The proportion of the total variation summarized in the plots is 76.9% and 79.6%, respectively. For population numbers and localities see Appendix 1. M: metamorphosed individuals; P: paedomorphic individuals.
Figure 1 in Patterns of morphometric variation in the smooth newt (Lissotriton vulgaris) from Greece: environmental correlates
Figure 1. Correlation of body size with altitude in both sexes of L. vulgaris from Greece. Dashed lines represent the 95% confidence intervals for the regression lines. For population numbers and localities see Appendix 1.
Figure 3 in Patterns of morphometric variation in the smooth newt (Lissotriton vulgaris) from Greece: environmental correlates
Figure 3. Correlation of male CV2 with mean annual humidity. Dashed lines represent the 95% confidence interval for the regression line. For population numbers and localities see Appendix 1.
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Allen Brain Atlas
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