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Figs 129–135 in A revision of Afrotropical species of Stylogaster Macquart (Diptera: Conopidae), with descriptions of twenty-one new species and an identification key
Figs 129–135. Terminalia (♂) of Stylogaster kenyensis sp. n. (♂ holotype): (129) surstylus, lateral view; (130) same, dorsolateral view; (131) same, ventral view; (132) distiphallus; (133) cercus, lateral view; (134) phallus sheath of hypandrium, lateral view; (135) sperm pump and ejaculatory apodeme. Abbreviations: hys – phallus sheath of hypandrium; su – surstylus. Not to scale.
Figs 129–146 in A review of Afrotropical Ancylorhynchus Berthold, 1827 (Diptera: Asilidae: Stenopogoninae)
Figs 129–146. Male terminalia of Ancylorhynchus species in lateral, dorsal and ventral views: (129–131) A. susurrus (Karsch, 1879), holotype; (132–134) A. tricolor (Loew, 1863), holotype braunsi; (135– 137) A. unifasciatus (Loew, 1858), holotype; (138–140) A. variegatus nom. n., holotype; (141–143) A. whiteheadi sp. n., holotype; (144–146) A. zophos sp. n., holotype. Scale lines = 1 mm.
FIGS. 129–135. Scopaeus. 129–130. S in Generic Revisions Of The Scopaeina And The Sphaeronina (Coleoptera: Staphylinidae: Paederinae: Lathrobiini)
FIGS. 129–135. Scopaeus. 129–130. S. limbatus sp. grp. (S. sp.). 129. Sternite IV, anterior. 130. Sternite IV, midanterior, enlarged glandular(?) depression. 131–133. S. longicollis sp. grp. (S. sp.). 131. Metaventrite. 132. Mesofemur, right base, plectral ridges. 133. Metaventrite, left file. 134–135. S. minimus sp. grp. (S. minimus). 134. Sternite IV, midanterior. 135. Sternite IV, midanterior enlarged, glandular(?) depression and pore.
Iryanthera sp.4 from Colombia collected by A. Camargo, E. Álvarez, F. Toro #129
<p><strong>File Name</strong>: <span>TOLI-23796-ZAR-05-116.jpg</span></p> <p><strong>CÓDIGO FOTO</strong>: <span>TOLI-23796-ZAR-05-116-</span></p> <p><strong>Fotografía</strong>: <span>SI</span></p> <p><strong>Nº TOLI</strong>: <span>TOLI-23796</span></p> <p><strong>PARCELA</strong>: <span>ZAR-05</span></p> <p><strong>CÓDIGO</strong>: <span>116</span></p> <p><strong>Nº COLECTA</strong>: <span>129</span></p> <p><strong>NUEVOS COLECTORES</strong>: <span>Alejandro Camargo, Felipe Toro & Esteban Alvarez</span></p> <p><strong>COLECTORES</strong>: <span>A. Camargo, E. Álvarez, F. Toro</span></p> <p><strong>Nº MUESTRAS MONTADAS</strong>: <span>2</span></p> <p><strong>Homologación</strong>: <span>No homologado</span></p> <p><strong>Nueva fecha del evento </strong>: <span>30/11/2018.</span></p> <p><strong>Fecha del evento</strong>: <span>01/10/2006.</span></p> <p><strong>Proyecto </strong>: <span>Recursos Botánicos Disponibles en Línea (BRAVO) para la flora Colombiana</span></p> <p><strong>Hábitat</strong>: <span>Bosque húmedo tropical (bh-T)</span></p> <p><strong>Comentario del evento</strong>: <span>Bosque de tierra firme</span></p> <p><strong>Continente</strong>: <span>SA</span></p> <p><strong>Pais</strong>: <span>Colombia</span></p> <p><strong>Estado/Provincia</strong>: <span>Amazonas</span></p> <p><strong>Municipio</strong>: <span>Leticia</span></p> <p><strong>Localidad</strong>: <span>Resguardo Indígena Ticuna-Huitoto Km 6-11.</span></p> <p><strong>Elevación minima en metros</strong>: <span>200</span></p> <p><strong>Elevación maxima en metros</strong>: <span>300</span></p> <p><strong>Latitud</strong>: <span>-4.004</span></p> <p><strong>Longitud original</strong>: <span>-69.896</span></p> <p><strong>datum geodésico</strong>: <span>WGS 84</span></p> <p><strong>Latitud decimal</strong>: <span>-4.004</span></p> <p><strong>Longitud decimal</strong>: <span>-69.896</span></p> <p><strong>Identificado por</strong>: <span>Diego Suescún</span></p> <p><strong>Fecha de identificación</strong>: <span>15/02/2019.</span></p> <p><strong>Nombre cientifico</strong>: <span>Iryanthera sp.4</span></p> <p><strong>Reino</strong>: <span>Plantae</span></p> <p><strong>Filo</strong>: <span>Magnoliophyta</span></p> <p><strong>Clase</strong>: <span>Equisetopsida</span></p> <p><strong>Orden</strong>: <span>Magnoliales</span></p> <p><strong>Familia nueva</strong>: <span>Myristicaceae</span></p> <p><strong>Género nuevo</strong>: <span>Iryanthera </span></p> <p><strong>especie nueva</strong>: <span>sp.</span></p> <p><strong></strong>: <span>Myristicaceae</span></p> <p><strong>genero herbario</strong>: <span>Iryanthera</span></p> <p><strong>especie herbario</strong>: <span>sp.</span></p> <p><strong>Especie de herbario para TNRS</strong>: <span>Iryanthera sp.</span></p> <p><strong>Especie corregida herbario y desde TNRS</strong>: <span>Iryanthera indet</span></p> <p><strong>Familia corregida desde TNRS</strong>: <span>Myristicaceae</span></p> <p><strong></strong>: <span>2883</span></p>
COADS_129-240
Diagnostic biface collected in Liberty Township, Ross County, Ohio. Material Type: Unknown Uploaded by: Hannah Banks Nolan, Kevin C., Eric Olson, Kelli Wathen, Sidney Travis, Hannah Banks, and Michael Shott,2017. COADS_129-240, 3D Model .ply file. Central Ohio Archaeological Digitization Survey, Department of Anthropology, University of Akron and Applied Anthropology Laboratories, Department of Anthropology, Ball State University. Source: Objaverse 1.0 / Sketchfab
Tanum 129:1 Aspeberget
Model of Tanum 129:1 at Aspeberget. Laser scan. Documentationproject Länsstyrelsen Västra Götaland. Source: Objaverse 1.0 / Sketchfab
COADSSW_129-835
Diagnostic biface collected in Liberty Township, Ross County, Ohio. Material Type: Upper Mercer Uploaded by: Hannah Banks Nolan, Kevin C., Eric Olson, Kelli Wathen, Sidney Travis, Hannah Banks, and Michael Shott, 2017. COADSSW_129-835, 3D Model .ply file. Central Ohio Archaeological Digitization Survey, Department of Anthropology, University of Akron and Applied Anthropology Laboratories, Department of Anthropology, Ball State University. Source: Objaverse 1.0 / Sketchfab
COADS_129-96
Diagnostic biface collected in Liberty Township, Ross County, Ohio Material: Upper Mercer. Uploaded by: Gabi Ritter Nolan, Kevin C., Eric Olson, Sidney Travis, Gabi Ritter, and Michael Shott, 2017. COADS_129-96, 3D Model .ply file. Central Ohio Archaeological Digitization Survey, Department of Anthropology, University of Akron and Applied Anthropology Laboratories, Department of Anthropology, Ball State University. Source: Objaverse 1.0 / Sketchfab
Newnan Point, SJ13_129
Newnan style biface, North Florida, Archaic (6200-5200 ya) Part of the Coontie Island Collection, SJ13_129 Model by Emily Jane Murray This model was made using RealityCapture software by Capturing Reality Source: Objaverse 1.0 / Sketchfab
Figure 129 in On some silverfish taxa from the Cape York region of northern Australia (Zygentoma: Lepismatidae: Ctenolepismatinae)
Figure 129. Acrotelsella hethicola sp. nov. holotype from Jardine River, Queensland.
The height-dependent delayed ionospheric response to solar EUV - data comparison - secondary files 129 - 134
<p><strong>Secondary files for doy 129 - 134</strong></p> <p>For comparison with the observational results a TIE-GCM v2.0 model run in the 2.5 × 2.5 configuration is calculated. In order to converge to stable initial condition the model runs for 30 days prior to the final simulation starting at 28 March 2019. This initial run is configured with default parameters. The final run from 27 April 2019 to 24 May 2019 uses the default configuration of TIE-GCM with the Heelis Electric Convection Field Model (Heelis et al., 1982) as the high-latitude potential model. The input forcing is used from the NASA/GSFC’s OMNI data set</p>
Fig. 129 in The wasp genus Sphex in Sub-Saharan Africa (Hymenoptera: Sphecidae)
Fig. 129. Geographic coordinates from all examined specimens with traceable localities.
Data for continuous and discrete measurements of carbonate parameters in a productive coastal region in the Northwestern Pacific (36°09'13.5''N, 129°24'04.9''E) from January to September in 2019 and from March to December in 2020
<p><span>Photosynthetic organisms shift the dynamics of surface pCO<sub>2</sub> driven by the sea surface temperature change (thermodynamic driver) by assimilating C from seawater. Here we measured net C uptake </span><span>in a macroalgal habitat</span> <span>of coastal Korea for two years (2019–2020) and found that the macroalgal habitat</span> <span>contributed </span><span>5.8 g</span><span> C m</span><sup><span>-</span><span>2</span></sup><span> month</span><sup><span>-</span><span>1</span></sup><span> of </span><span>the net C uptake during the growing period (the cooling period, September</span><span>-</span><span>May). This massive C uptake changed the thermodynamics-driven seasonal dynamics such that the air</span><span>-</span><span>sea equilibrium of </span><span>pCO<sub>2</sub></span><span> was pushed into disequilibrium. T</span><span>he </span><span>surface </span><span>pCO<sub>2</sub></span><span> dynamics during the cooling period were </span><span>mostly influenced by the seasonal decrease in temperature and the proliferation of macroalgae, while the dynamics </span><span>during the warming period </span><span>(the stagnant period, </span><span>June</span><span>-</span><span>August) </span><span>closely followed that predicted based solely on the change in sea surface temperature only </span><span>(thermodynamic driver)</span><span>.</span><span> In contrast to the phytoplankton-dominated offshore waters (where phytoplankton populations are large in spring and summer), the impact of coastal water macroalgae on surface </span><span>pCO<sub>2</sub></span><span> dynamics was most pronounced during the cooling period, when the magnitude of </span><span>pCO<sub>2</sub></span><span> change was as much as twice that resulting from temperature change. Our study shows that</span><span> t</span><span>he distinctive features of the macroalgal habitat—in particular the seasonal temperature extremes (~18°C difference), the </span><span>active macroalgal metabolism,</span><span> and anthropogenic </span><span>nutrient</span><span> inputs—collectively influenced</span><span> the seasonal decoupling of seawater and air </span><span>pCO<sub>2</sub></span><span> dynamics</span><span>.</span></p>
COADS_129-282
This is a diagnostic biface collected in Liberty Township, Ross County, Ohio. Material Type: Delaware Uploaded by: Sidney Travis Suggested Data Citation: Nolan, Kevin C., Eric Olson, Kelli Wathen, Abby Clark, and Michael Shott, 2017. COADS_129-282, 3D Model .ply file. Central Ohio Archaeological Digitization Survey, Department of Anthropology, University of Akron and Applied Anthropology Laboratories, Department of Anthropology, Ball State University. Source: Objaverse 1.0 / Sketchfab
COADS_129-135
Diagnostic biface collected in Liberty Township, Ross County, Ohio. Material: Unknown Uploaded by: Gabi Ritter Nolan, Kevin C., Eric Olson, Gabi Ritter, Sidney Travis, and Michael Shott, 2017. COADS_129-135, 3D Model .ply file.Central Ohio Archaeological Digitization Survey, Department of Anthropology, University of Akron and Applied Anthropology Laboratories, Department of Anthropology, Ball State University. Source: Objaverse 1.0 / Sketchfab
Figure 129 in A revision of the genus Hottentotta Birula, 1908, with descriptions of four new species (Scorpiones, Buthidae)
Figure 129: Hottentotta zagrosensis, dorsal view, female allotype.
Geospatial micro-estimates of slum populations in 129 Global South countries using machine learning and public data
<p><span>Reliable estimation of populations living in slums or slum-like conditions is crucial for urban planning, humanitarian resource allocation, and human well-being improvement. We generate the micro-estimate of slum population at a neighborhood level (~</span><span>3.63 arc-minutes</span><span>, preserving the privacy of vulnerable people) for 129 Global South countries in 2018. The estimates are built based on the Sustainable Development Goals 11.1 indicator framework and machine learning algorithms to heterogeneous data from household-based surveys and satellite images, as well as grided population data. Our integrated regional models show strong predictive capabilities for cluster-level slums proxy, explaining 82% to 96% of the variation in ground-truth surveys conducted in Global South countries, with root mean squared error ranging from 4.85% to 10.47%. The models perform match or surpass benchmarks established by previous studies.</span><span> </span><span>Cross-comparison with independent data sources at multi-scales suggest that our approach can yield reliable and consistent slum population estimates.</span></p>
Image 129 in Butterflies (Lepidoptera) of Dibang Valley, Mishmi Hills, Arunachal Pradesh, India
Image 129. Burara vasutana?
COADSVC_129-4
This is a diagnostic biface collected in Liberty Township, Ross County, Ohio. Material Type: Upper Mercer Uploaded by: Sidney Travis Suggested Data Citation: Nolan, Kevin C., Eric Olson, Kelli Wathen, Abby Clark, and Michael Shott, 2017. COADSVC_129-4, 3D Model .ply file. Central Ohio Archaeological Digitization Survey, Department of Anthropology, University of Akron and Applied Anthropology Laboratories, Department of Anthropology, Ball State University. Source: Objaverse 1.0 / Sketchfab
Data for continuous and discrete measurements of carbonate parameters in a productive coastal region in the Northwestern Pacific (36°09'13.5''N, 129°24'04.9''E) from January to September in 2019 and from March to December in 2020
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