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48 results for “CLSM”

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zenodo44/100

PEATCLSM_Trop: Integrating peat-specific land surface hydrology of natural and drained tropical peatlands in the GEOS CLSM framework

<p>The datasets archived here include simulation results shown in the peer-reviewed article &ldquo;Tropical peatland hydrology simulated with a global land surface model&ldquo;, published in the open access AGU Journal of Advances in Modeling Earth Systems (JAMES; Apers et al., 2022). The output was produced using the Catchment land surface model (CLSM), the land model component of the NASA Goddard Earth Observing System (GEOS) modeling framework, and various versions of peatland-specific adaptations of CLSM, i.e. PEATCLSM. Here, we provide netCDF files (*.nc or *.nc4c) for CLSM, the natural (PEATCLSM<sub>Trop,Nat</sub>), and drained (PEATCLSM<sub>Trop,Drain</sub>) tropical versions of PEATCLSM. The simulations are at a 9-km spatial resolution (EASEv2 grid) for the three major tropical peatland regions in Central and South America, the Congo Basin, and Southeast Asia, using a peat grid cell distribution that is a combination of the PEATMAP distribution from Xu et al. (2018) and the peat distribution from De Lannoy et al. (2014). Simulations with the northern version of PEATCLSM (PEATCLSM<sub>North,Nat</sub>) are not included in the archived dataset but can be obtained upon request. We provide three types of netCDF files:<br> &bull;&nbsp;&nbsp; &nbsp;daily_images_*.nc4c: daily land states and fluxes for variables discussed in Apers et al., (2022; Table 1), provided as netCDF image-chunked image stack;<br> &bull;&nbsp;&nbsp; &nbsp;daily_mean_*.nc: 20-year mean of the land states and fluxes (Table 1), provided as a single netCDF image;<br> &bull;&nbsp;&nbsp; &nbsp;daily_std_*.nc: 20-year standard deviation of the land states and fluxes (Table 1), provided as a single netCDF image.</p> <p>The file content is described in the file PEATCLSM_Trop-Simulations.pdf.</p> <p>Please contact Sebastian Apers (sebastian.apers@kuleuven.be) or Michel Bechtold (michel.bechtold@kuleuven.be) for any questions.<br> <br> References:<br> Apers, S., De Lannoy, G. J. M., Baird, A. J., Cobb, A. R., Dargie, G. C., del Aguila Pasquel, J., &hellip; others (2022). Tropical peatland hydrology simulated with a global land surface model. <em>Journal of Advances in Modeling Earth Systems</em>. https://doi.org/10.1029/2021MS002784<br> Bechtold, M., De Lannoy, G. J. M., Koster, R. D., Reichle, R. H., Mahanama, S. P., Bleuten, W., ... others (2019). PEAT-CLSM: A specific treatment of peatland hydrology in the NASA Catchment Land Surface Model. <em>Journal of Advances in Modeling Earth Systems, 11</em>(7), 2130&ndash;2162. https://doi.org/10.1029/2018MS001574<br> De Lannoy, G. J. M., Koster, R. D., Reichle, R. H., Mahanama, S. P. P., &amp; Liu, Q. (2014). An updated treatment of soil texture and associated hydraulic properties in a global land modeling system. <em>Journal of Advances in Modeling Earth Systems, 6</em>(4), 957&ndash; 979. https://doi.org/10.1002/2014MS000330<br> Xu, J., Morris, P. J., Liu, J., &amp; Holden, J. (2018). PEATMAP: Refining estimates of global peatland distribution based on a meta-analysis. <em>Catena, 160</em>, 134&ndash;140. https://doi.org/10.1016/j.catena.2017.09.010</p>

opencc-by-4.0Feb 2022View details →
zenodo40/100

CLSM data of 1st instar larva of Dilar montanus

<p>The 1st instar larva of<em> Dilar montanus </em>Yang was mounted between two cover slips with double-sided tape spacers in a drop of methyl-salicylate and scanned from both sides with an argon laser emitting light of 488 &ndash; 579 nm wave length using a Zeiss LSM 880. The obtained datasets were stitched together using the &ldquo;align manually with landmarks&rdquo; tool of the TrackEM plugin for ImageJ and exported as a .tiff images stack. The voxel size for the dataset is 1.489 &micro;m x 1.489 &micro;m x 8.277 &micro;m.</p>

opencc-by-4.0Sep 2022View details →
zenodo40/100

Dataset: Cabana Target Leading Sector Moderate ETF (CLSM) Stock Performance

This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.

opencc-zeroJun 2024View details →
zenodo36/100

Global state outputs from GRACE-CLSM data assimilation product from Girotto et al. 2016

<p>Mean and standard deviation of ensemble average state variables and terrestrial water storage (TWS) for GRACE-CLSM data assimilation product from Girotto et al. 2016. The dataset contains both the data assimilation (DA) output and the open-loop (OL), pre-assimilation states used in Scheliga et al. <em>In review.</em></p> <p># GENERAL INFORMATION</p> <p>Title of Dataset: Global state outputs from GRACE-CLSM data assimilation product from Girotto et al. 2016</p> <p><br>## Principal Investigator Information<br>* Name: Manuela Girotto<br>* ORCID: 0000-0003-2795-2063<br>* Institution: University of California, Berkeley<br>* Email: mgirotto@berkeley.edu</p> <p>## Co-Author Information<br>* Name: Ann Scheliga<br>* ORCID: 0000-0002-0217-6451<br>* Institution: University of California, Berkeley<br>* Email: ann_scheliga@berkeley.edu</p> <p>Date of data generation: approximately 2021-09-09</p> <p>Funding sources that supported the collection of the data: NASA Sea Level Change Team (Grant 80NSSC21K0321).</p> <p><br># SHARING/ACCESS INFORMATION</p> <p>* Licenses/restrictions placed on the data: CC-BY-NC<br>* Links to publications that describes the data: Scheliga, A., Girotto, M., Gerlein-Safdi C. Anthropogenic processes and sea-level rise contributions with data assimilation of GRACE and GRACE-FO terrestrial water storage. In review.<br>* Recommended citation for this dataset: Girotto, M. et al. Assimilation of gridded terrestrial water storage observations from GRACE into a land surface model. WRR. https://doi.org/10.1002/2015WR018417</p> <p>&nbsp;</p>

opencc-by-4.0Sep 2024View details →
zenodo32/100

FIGURE 10 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 10. Spermathecal apparatus and anterior genital apodemes (in horizontal ventral aspect) of Retracrus (A,B) and Propilus (C,D) mites (redrawn from original descriptions and coloured). A—Retracrus johnstoni Keifer, 1965b; B—Retracrus elaeis Keifer, 1975; C—Propilus gentyi Keifer, 1975; D—Propilus spinosus Keifer, 1975. Note: spermathecae (a), spermathecal tube (b), horizontal part of anterior genital apodeme (c) and apical plates of the apodeme (d) are coloured in yellow, green, grey and red respectively.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 3 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 3. LT SEM images of female Mackiella reclinata n. sp. A—frontal lobe; B—gnathosoma; C—apical tarsus and lateral empodium, leg II; D—postero-dorsal opisthosoma; E—postero-ventral opisthosoma; F—external genitalia; G—lateral mite; H—dorsal mite. Scale bar: A, C = 1 µm; B = 3 µm; D, E, F = 5 µm; G = 10 µm; H = 15 µm. Note. Small bubble-like light granules on the surface of mite present on this figure are artifacts appearing because of the LT SEM method used; palpi are telescoped in Fig. 3A and rest in Fig. 3B. Notation: a—basal part of frontal lobe, b—apical part of frontal lobe, c—palpcoxae, d—lateral notch, e—?rudimentary pregenital plate.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 2 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 2. Semischematic drawings (A–D) and LTSEM (E,F) images of Mackiella reclinata n. sp. female. A—prodorsal shield, B—empodium, C—ventral leg I, D—ventral leg II; E—lateral view of prosoma; F—prodorsal shield. Scale bar: A = 20 µm; B = 7 µm; C, D = 14 µm. Note: arrows on the Figs. 2 E,F indicate the longitudinal indentations.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 1 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 1. Angles between structures of the internal genitalia of Mackiella reclinata n. sp. (for details see text and Table 2).

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 4 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 4. Inverted CLSM (A,C), DIC LM (B,D) and LT SEM (E,F) images of female of Mackiella reclinata n. sp. A, B—prodorsal shield; C,D,E—coxigenital area; F—ventral aspect of gnathosoma. Scale bar: A, B = 10 µm; C, D = 5 µm. Notation: a—basal part of frontal lobe, b—apical part of frontal lobe, c—eye-like structure, d—medioposterior fovea, e—subcapitular plate, f—two longitudinal ridges of subcapitular plate.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 8 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 8. CLSM images (A,D—volume rendering, same female; B—surface rendering, C—maximum intensity projection) of internal genitalia of three females of Mackiella reclinata n. sp. (internal structures viewed from ventral aspect). Notation: a—posterior part of longitudinal bridge, b—anterior part of longitudinal bridge, c—triangular cuticular process from posteromedial genital rim, d—genital rim, e—distal segment of spermathecal tube, f—proximal segment of spermathecal tube, g—spermatheca, h (= i+j+k+l)—anterior genital apodeme, i—coverflap hinge, j—lateral arm of anterior genital apodeme, k—apex (or apical plate) of anterior genital apodeme, l—apical denticles. Note: In Fig. 8B, because the apex of the anterior genital apodeme was destroyed, its remnants are cut, therefore the two terminal denticles are not present in this image.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 7 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 7. Position of the holotype female (white arrow) on the type slide (see text for explanation).

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 9 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 9. Distribution of mackielline mites (■ Retracrus, ● Propilus ▲Mackiella) within subfamilies of Arecaceae. Phylogeny of Arecaceae according to Stevens (2001 onwards), divergence ages of nodes (in million years, Ma) approximately calculated based on the time scale from Kissling et al. (2012). Note. Numbers inside the coloured symbols indicate numbers of the species within the mite genus.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 6 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 6. CLSM (A,B) and PC LM (C) images of a nymph of Mackiella reclinata n. sp. A—ventral view; B—dorsal view; C—anterior-ventral opisthosoma. Scale bar: A, B = 40 µm; C = 20 µm.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURE 5 in CLSM anatomy of internal genitalia of Mackiella reclinata n. sp. and systematic remarks on eriophyoid mites from the tribe Mackiellini Keifer, 1946 (Eriophyoidea: Phytoptidae)

FIGURE 5. PH LM (A,B), inverted CLSM (C), SEM (D) and inverted SEM (E) images of male external genitalia (A,B,D,E) and coxigenital area (C) of Mackiella reclinata n. sp. Note. Image E is an inverted enlargement of image D showing detail of genitalic elements. Notation: a—genital coverflap (coloured green), b—thin posterior plate (coloured pink), с—cuticular fold, d—partially opened gonopore, e—postgenital region, f—arch-shaped semiannulus, g—coxigenital semiannuli that curve posteriorly at their lateral ends, following the shape of the genital shield. Scale bar: A,B,C = 5 µm.

opennotspecifiedDec 2014View details →
zenodo32/100

Fig. 15 in Anatomy of the Tantulocarida: first results obtained using TEM and CLSM. Part I: tantulus larva

Fig. 15 Ovary (TEM, tantulus larva). Microdajus tchesunovi, frontal cross-section through cephalon. a Ovary located in posterior part of cephalon (nuage in cytoplasm indicated by arrowheads). b Developing

opennotspecifiedAug 2018View details →
zenodo32/100

Fig. 13 in Anatomy of the Tantulocarida: first results obtained using TEM and CLSM. Part I: tantulus larva

Fig. 13 Brain anatomy, tantulus larva (TEM). Arcticotantulus pertzovi (a, b, d–g), Microdajus tchesunovi (c). a Longitudinal cross-section through middle line of cephalon, brain indicated by dotted outline. b Enlarged part of brain with electron-dense vesicles containing mediator (indicated with arrowhead). c Frontal cross- section through cephalon, brain indicated by dotted outline. d–g Transverse cross-section through cephalon. d Posterior part of brain with neuropil and bi-lobed cortex layer. e Neuropil, enlarged part of (d). f Neurite cell bodies, enlarged part of (d). g Anterior part of brain located dorsally in the cephalon, transverse cross-section. g., gut; np., neuropil; ov., ovary; st., stylet. Scale bars in micrometers

opennotspecifiedAug 2018View details →
zenodo32/100

Fig. 11 in Anatomy of the Tantulocarida: first results obtained using TEM and CLSM. Part I: tantulus larva

Fig. 11 Rootlet system of the Tantulocarida (TEM). Microdajus tchesunovi (a, e), Arcticotantulus pertzovi (b–d). a Metamorphosing tantulus, transverse section through anterior part of cephalon showing connection of rootlet system with anterior gut. b Metamorphosing tantulus, rootlet system inside host tissues, transverse section. c Enlarged cuticular wall of the rootlet system. d Newly attached tantulus (rootlet system is not developed yet), longitudinal section through anteriormost part of cephalon medially, stylet puncture in host cuticle indicated with arrowhead. e Metamorphosing tantulus, rootlet system (filled with host content— hemolymph) in host tissues, transverse section. cem., cement; ep., epicuticle; g., gut; h.c., host cuticle; o.d., oral disc; p.c., projections of cephalon; r.s., rootlet system. Scale bars in micrometers

opennotspecifiedAug 2018View details →
zenodo32/100

Fig. 10 in Anatomy of the Tantulocarida: first results obtained using TEM and CLSM. Part I: tantulus larva

Fig. 10 Stylet of the Tantulocarida (TEM, a–d; SEM, e). Microdajus tchesunovi (a, d), Arcticotantulus pertzovi (b, c), Serratotantulus chertoprudae (e). a Metamorphosing tantulus, longitudinal section through the midline of cephalon, showing position of stylet. b Tantulus,

opennotspecifiedAug 2018View details →
zenodo32/100

Fig. 14 in Anatomy of the Tantulocarida: first results obtained using TEM and CLSM. Part I: tantulus larva

Fig. 14 Cephalic sensory pores, tantulus larva (a–c, g–i—SEM; d–f, j–m— TEM). Microdajus tchesunovi (a–f), Arcticotantulus pertzovi (g–m). a Anterior part of cephalon, dorsolateral view. b, c Posterior part of cephalon, dorsal view. d Anterior part of cephalon, longitudinal section through AI pore. e Posterior part of cephalon, longitudinal section through DI pore. f Posterior part of cephalon, transverse section through pore chamber and beginning of

opennotspecifiedAug 2018View details →
zenodo32/100

Fig. 12 in Anatomy of the Tantulocarida: first results obtained using TEM and CLSM. Part I: tantulus larva

Fig. 12 Gut anatomy, tantulus larva (TEM). Arcticotantulus pertzovi (a–b, e–g), Microdajus tchesunovi (c, d). a Anterior part of cephalon, general view, transverse cross-section showing anterior gut with thick cuticular dorsal wall and distal part of proboscis. b Anterior part of cephalon, transverse cross- section, gut with thin cuticular lining (indicated by arrowheads). c Frontal cross-section through cephalon, general view of the gut (gut wall indicated by arrowhead) with enlarged part showing the gut cell (d). e–g Longitudinal cross-section through middle line of cephalon (f) with enlarged anteriormost (g) and posterior (e) parts of gut showing host hemolymph inside the gut. br. c., brain cell; c.g.d., cement gland duct; g., gut; g.c., gut cell; h.c., host cuticle; h.h., host hemolymph; pr., proboscis; st., stylet. Scale bars in micrometers

opennotspecifiedAug 2018View details →

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