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413 results for “silk”
Silk_TimelinePhotos_Mingei
<p>Documentation material from the Silk pilot of the Mingei project</p>
Krefeld_Framed_Pictures_Silk_Museum_Mingei
<p>Documentation material from the Silk pilot of the Mingei project</p>
Collection of Silk Parament Patterns
<p>Documentation material from the Mingei project</p>
Structural conversion of the spidroin C-terminal domain during assembly of spider silk fibers
<p>GENERAL INFORMATION<br>- Dataset title: Structural conversion of the spidroin C-terminal domain during assembly of spider silk fibers<br>- Description: The dataset contains raw data associated with the publication with the same name, accepted for publication in Nature Communications.<br>- Authors: Danilo Hirabae De Oliveira, Vasantha Gowda, Tobias Sparrman, Linnea Gustafsson, Rodrigo Sanches Pires, Christian Riekel, Andreas Barth, Christofer Lendel, My Hedhammar </p> <p>ORGANIZATION<br>The folder contains zip-files for each figure in the publication. Each zip-file contains data and a .txt file describing the content, the methods for data acquisition and analysis, and the file types.</p> <p><br>DATA COLLECTION<br>Data collection and analysis is described in the paper and in the .txt files included in each zip-file.</p>
Silke Berdux (b3636)
<b>-- <a href="https://doi.org/10.5281/zenodo.11582199">Documentation</a> --</b><br><br><u>Name</u>: Silke Berdux<br><u>musiXplora-ID</u>: b3636<br><u>musiXplora-URI</u>: <a href="https://musixplora.de/mxp/b3636">https://musixplora.de/mxp/b3636</a><br><u>Gender</u>: f<br><u>First Mentioned</u>: 1994<br><u>Sectors</u>: Bibliothek, Hochschule, Medien, Museum, Musikforschung, Rundfunk/Fernsehen<br><u>Professions (Historical)</u>: Doktor, Kuratorin, Magister Artium, Musikhistorikerin, Musikwissenschaftlerin, Softwaredokumentaristin<br><u>Professions (Musical)</u>: Musikforscherin<br><u>Professions (Non-Musical)</u>: Historikerin<br><u>Main Place of Activity</u>: München<br><u>Other Places of Activity</u>: Göttingen<br><br><br><u>Ausbildung:</u><br><table><tbody><tr><th>Group</th><th>Role</th><th>Name</th><th>mXp-ID</th></tr><tr><td>LehrerInnen und AusbilderInnen</td><td>Schülerin</td><td>Jürgen Eppelsheim</td><td><a href="https://musixplora.de/mxp/e0274">e0274</a></td></tr></tbody></table><br><u>Arbeitsumfeld:</u><br><table><tbody><tr><th>Group</th><th>Role</th><th>Name</th><th>mXp-ID</th></tr><tr><td>VorgängerInnen</td><td>Nachfolgerin</td><td>Hubert Henkel</td><td><a href="https://musixplora.de/mxp/h2889">h2889</a></td></tr></tbody></table><br><u>Medien:</u><br><table><tbody><tr><th>Group</th><th>Role</th><th>Name</th><th>mXp-ID</th></tr><tr><td>VerfasserInnen</td><td>Verfasserin</td><td>Der Münchner Klavierbauer Gregor Deiß. Ein Hammerflügel um 1815</td><td><a href="https://musixplora.de/mxp/5040101">5040101</a></td></tr></tbody></table><br><u>Personal:</u><br><table><tbody><tr><th>Group</th><th>Role</th><th>Name</th><th>mXp-ID</th></tr><tr><td>Arbeitsplatz</td><td>Mitarbeiterin</td><td>Bayerische Staatsbibliothek</td><td><a href="https://musixplora.de/mxp/3010003">3010003</a></td></tr><tr><td>Arbeitsplatz</td><td>Mitarbeiterin</td><td>Deutsches Museum</td><td><a href="https://musixplora.de/mxp/3080301">3080301</a></td></tr></tbody></table><br><u>Institutionen:</u><br><table><tbody><tr><th>Role</th><th>Title</th><th>mXp-ID</th></tr><tr><td>Related</td><td>Universität München – Promotionen der Musikwissenschaft</td><td><a href="https://musixplora.de/mxp/3010004">3010004</a></td></tr><tr><td>Related</td><td>Ludwig-Maximilians-Universität</td><td><a href="https://musixplora.de/mxp/3010018">3010018</a></td></tr></tbody></table><br><br><u>Changelog</u>:<br> - v0.0.1: Initial Upload.<br>
The modelling pastes of the monumental terracruda sculpture of the Silk Roads: archaeometric study of the Tepe Narenj and Qol-e-tut examples (Kabul, Afghanistan)
<p>These data are the results of the mineralogical, petrographic and chemical study of different archaeological samples related to terracruda sculptures and other elements that were part of the architectural decoration of the Buddhist sites of Tepe Narenj and Qol-e-tut (Kabul, Afghanistan - 5th to 11th centuries CE). The main objective of the study was to characterize the samples using an archaeometric approach. The study helped to better understand the materials involved in the modelling of Afghan sculptures and their processing, such as the different nature of the clay layers and the finishing "stucco" coating. The results further indicate that similarities exist among the manufacturing process of the studied samples and that used today by an ancient caste of clay-artists in West Bengal (India), suggesting the existence of a continuous technological tradition that deserves to be further explored in the future. </p> <p><strong>Supplementary materials – S1. </strong>Bengali artist adding <em>bele-mati</em> to model the final shape of a terracruda sculpture (Kumortuli, Kolkata, 2019).</p> <p><strong>Supplementary materials - S2. </strong>Pictures of the sculpture samples</p> <p><strong>Supplementary materials - S3. </strong>Pictures of the relief and mural painting samples</p> <p><strong>Supplementary materials - S4</strong>. Pictures of the wall samples</p> <p><strong>Table 1. </strong>Samples analyzed, location, subsamples ID and description.</p> <p><strong>Table 2. </strong>Results of petrographic and mineralogic analyses.</p> <p><strong>Table 3</strong>. List of the main components for each sample [FA=fatty acid; C<sub>18:0</sub> = stearic acid; C<sub>18:1</sub> = oleic acid; C<sub>16:0</sub> = palmitic acid; S<sub>27</sub>= cholesterol; βS= β-sitosterol, TA= tartaric acid; N= none; Y= yes].</p> <p><strong>Figure 2</strong>. Microphotographs in thin section under crossed nicols. (a) Phyllite in sample QT3. (b) Quartzite in sample TN4. (c) Cryptocrystalline limestone in TN1. (d) Muscovite (Ms) and calcite (Cal) in TN2. (e) Amphiboles (Amp) in QT3. (f) Microcline in QT1.</p> <p><strong>Figure 3. </strong>Powder X-ray diffraction patterns from untreated clay samples (on the right) and samples after ethylene-glycol treatment (on the left) Mnt: montmorillonite.</p> <p><strong>Figure 4. </strong>Microphoto by EMPA. (a) Particular of sample TN2 in which the phyllosilicate origin of the matrix is evident. (b), (c) and (d) Cuticles in sample TN4. (e) Pollen in sample TN4. (f) Oogonia in sample QT4.</p> <p><strong>Figure 5</strong>. (a) Different layers in QT2, scan of the thin section under parallel nicols. (b) Stucco layer in TN1_a, arrows indicate the voids left by the fibers, micro photo in thin section under parallel nicols. (c) Different layer in TN2, scan of thin section under crossed nicols. (d) TN2_b layer where the red colour of the clay is evident, micro photo in thin section under parallel nicols. (e) Sample TN5, micro photo in thin section under parallel nicols. (f) SEM Image with particular of a fiber in TN5.</p> <p><strong>Figure 6.</strong> Remains and imprints of a fabric between the stucco layer and the underlying earthen mortar in sample QT2. Left: OM Image 8x LEICA-EZ4W. Right: macroscopic view of a fragment of the internal part of QT2.</p> <p><strong>Figure 7</strong>. Microphoto by EMPA. (a) Crushed pure gypsum in TN1_a. (b) Crushed gypsum in TN5 (yellow arrows) and amorphous areas (red arrows) corresponding to the organic matter.</p> <p><strong>Figure 8</strong>. Microphotographs in thin section under Epifluorescence microscopy. (a) Stucco layer TN1_a. (b) Sample TN5. (c) Layers b and c in sample TN2. (d) Clay layer TN1_b </p> <p><strong>Figure 9.</strong> Partial gas chromatograms from exctracts (i) of samples (a) QT2_c, (b) QT2_b and (c) QT2_a. [Cn:0 TMS= trimethylsilylated fatty acids with a specific number (n) of carbons, S<sub>27</sub>= cholesterol, β= β-sitosterol, dots= phthalates and IS= internal standard]. </p> <p><strong>Figure 10</strong>. (a) Raman spectra of the blue pigment analyzed in sample QT1 and of lazurite present in the RRUFF database (RRUFF ID: R040023). (b) Raman spectra of the red pigment analyzed in sample QT1 and of hematite present in the Unical database. (c) Raman spectra of the QT1 binder and of calcite present in the Unical database. (d) Raman spectrum of the red pigment analyzed in sample QT2 and comparison with the hematite and gypsum spectra present in the Unical database.</p> <p><em>This work has been supported by National Geographic Society (EC-59568C-19) and is part of results of the doctoral research of M. López-Prat and the Juan de la Cierva contract (FJC2021-046803-I). The results have been obtained in the framework of the activities of the DIBEST department of the University of Calabria, the ERAAUB (a recognized and financed research group of the Generalitat de Catalunya - 2021 SGR 00696), the Institut d’Arqueologia of the Universitat de Barcelona, the Conservació-Restauració del Patrimoni research group (a recognized research group of the Generalitat de Catalunya - 2021 SGR 00089),and the CASEs research group (a recognized and financed research group of the Generalitat de Catalunya – 2021 SGR-00950). </em></p>
Fig. 4 in Silk Spinning Behavior Varies from Species-Specific to Individualistic in Embioptera: Do Environmental Correlates Account for this Diversity?
Fig. 4. Computation of similarity between two sequences. For two individuals of Aposthonia borneensis (Hagen) (Oligotomidae), the first 500 steps of their spin sequences are shown (A and B).The red bar underlining a short sequence indicates one 15-step subsequence that is highly similar between these two individuals. For all possible pairs of 15 step subsequences, the heatmap displays the sequence similarity (C), with red areas indicating regions of the spin sequence that are highly similar.The profiles on the margins of the heat map indicate the marginal maxima—that is, for each 15-step subsequence, what is the similarity to the most similar subsequence in the other individual. Portions of the sequence with similarities about 12 were deemed sufficiently similar to the other sequence (vertical or horizontal lines), amounting to about 5% of individual 1's sequence and 10% of individual 2's sequence.
Fig. 3 in Silk Spinning Behavior Varies from Species-Specific to Individualistic in Embioptera: Do Environmental Correlates Account for this Diversity?
Fig. 3. Kinematic diagrams displaying relative proportion of spin-steps in each position as relative size of the circles. Saturated black color of the body represents dorsal spinning; dark gray represents kinematics when the embiopteran faces the framework silk and spins with her ventral surface facing the camera and the emerging silk structure. Spinning was recorded during hour-long filming sessions in the laboratory in an apparatus as shown in Supp Fig. 1 [online only]. (A) Notoligotoma hardyi average spin dynamics, (B) Haploembia tarsalis average spin dynamics, (C) Diagram shows the positions of the different possible spinsteps whereby the words are placed in the position of the front foot as the embiopteran steps around her body to release silk with each foot fall.The same steps are taken on the left as well during spinning. See Supp Video 2 [online only] for examples of spinning behavior exhibited by individual females.
Fig. 5 in Silk Spinning Behavior Varies from Species-Specific to Individualistic in Embioptera: Do Environmental Correlates Account for this Diversity?
Fig. 5. Phylogenetic relationships and sequence similarities (n = 15) for all individuals in this study. (A) Sequence similarities are depicted as a heat map, with the diagonal representing self-similarities.The small outlined boxes along the diagonal indicate all intraspecific comparisons, and the mean intraspecific similarity for each species is depicted above the heat map. For comparison, the inset graph, (B) shows the similarity among pairs of species for a trait that is evolving according to the Ornstein-Uhlenbeck model.The large clade constituting the top 19 species shows high similarity among species (mostly dark colors in the upper left), but low similarity to the two outgroups to this clade (bottom six species, shows as lighter gray colors).The phylogenetic tree is based on Miller et al. 2012.
Fig. 7 in Silk Spinning Behavior Varies from Species-Specific to Individualistic in Embioptera: Do Environmental Correlates Account for this Diversity?
Fig. 7. Predictors of intraspecific similarity scores. The three panels show the partial residual plots for the three variables selected in the final model for a subsequence length of 15. Intraspecific similarity as a function of: (A) mean annual temperature, (B) temperature seasonality, and (C) silk gallery structure. Two-letter codes indicate the species as in Fig. 6.
Zero-Shot Information Extraction to Enhance a Knowledge Graph Describing Silk Textiles - English and Spanish neighborhood sub-graphs
<p>Two language-specific sub-graphs (English and Spanish) based on the ConceptNet Knowledge Graph. These two files are required to run the code for reproducing the results reported in the paper <a href="https://aclanthology.org/2021.latechclfl-1.16/">"Zero-Shot Information Extraction to Enhancea Knowledge Graph Describing Silk Textiles"</a> at the <a href="https://sighum.wordpress.com/events/latech-clfl-2021/">LaTeCH-CLfL 2021</a> workshop co-located with <a href="https://2021.emnlp.org/">EMNLP 2021</a>.</p>
Correlation of urban avian species diversity present in heterogenous habitat types of the Silk city, Odisha, Eastern India
<p>This is the complete metadata and the R code required to do the analysis of the paper regarding birds of Berhampur city.</p>
Imaging data of mechanically loaded, micro-patterned, silk-reinforced cellulose films with gold coating for flexible electrodes in medical implants
<p>Neurodegenerative diseases can be treated using a functional interface between the physically soft tissue such as brain and the man-made electrodes. The orders of magnitude harder neural probes cause local injuries, due to periodic micromovements owing to breathing and pulsatile blood flow leading to encapsulation and related collapsing signals. An alternative to the currently used neural implant films including polyimide, poly(p-xylylene), SU-8 - epoxy-based negative photoresist, liquid crystal polymer, and benzocyclobutene is the natural polymer cellulose with an elastic modulus between 100 and 200 MPa. This article elucidates the measurement of the mechanical properties of bare as well as mono- and double-layer silk-reinforced cellulose in phosphate-buffered saline using a universal testing machine. In addition, the article contains electron microscopy data of these micro-structured, gold-coated films subsequent to peel-off tests to access the impact of micro-structures on gold adhesion on cellulose. These imaging data were completed by electron micrographs of mechanically loaded gold-coated cellulose films to demonstrate the impact of micro-structures on crack formation. Finally, the phosphate-buffered saline-induced swelling of the micro-structure was visualized by electron micrographs obtained before and after two-month storage in air and phosphate-buffered saline, respectively.</p>
From silk to sand: Multiple dimensions of perceived softness
<p>From silk to sand: Hand explorations are determined by the characteristics of the perceptual space of real-world materials</p> <p> </p> <p>Perceiving mechanical properties of objects, i.e., how they react to physical forces, is a crucial ability in many aspects of life, from choosing an avocado to picking your clothes. There is, a wide variety of materials that differ substantially in their mechanical properties. For example, both, silk and sand deform and change shape in response to exploration forces, but each does so in very different ways. Studies show that the haptic perceptual space has multiple dimensions corresponding to the physical properties of textures, however in these experiments the range of materials or exploratory movements were restricted. Here we investigate the perceptual dimensionality in a large set of real materials in a free haptic exploration task. Thirty-two participants actively explored deformable and non-deformable materials with their hands and rated them on several attributes. Using the semantic differential technique, video analysis and linear classification, we found four haptic dimensions, each associated with a distinct set of hand and finger movements during active exploration. Taken together our findings suggest that the physical, particularly the mechanical, properties of a material systematically affect how it is explored on a much more fine-grained level than originally thought.</p> <p> </p> <p>The folder contains raw data related to video event coding of 5 raters:</p> <p>R1_20180820.txt</p> <p>R2_14082018.txt</p> <p>R3_14082018.txt</p> <p>R4_20180610firstlist55.txt</p> <p>R5_20180610firstlist64v2.txt</p> <p>Same data are also shared in Matlab format after deleting unnecessary information such as file paths or fps:</p> <p>a.mat, h.mat, o.mat, s.mat, v.mat</p> <p>Ethogram file contains exploratory procedure names and materials file contains material names.</p> <p>Matlab files include codes for calculating inter-rater reliability (plot_correlate_EP_permaterial.m), resulting data for inter-rater reliability (IRR_overall_corrcoeffs.mat, IRR_permaterial_corrcoeffs.mat).</p> <p>We also include scripts to plot timelines and EP frequencies, plot_timelines_materials_alex.m and plot_durations_material_meansub_alex.m respectively.</p> <p>Finally, the script for classification from Mathworks Inc. uses built-in Matlab functions, we include our script where we only changed variable names (sort_svmdata4.m).</p>
Collection of videos documenting the silk weaving process (Silk pilot, Mingei)
<p>Documentation videos of the Weaving process from the Silk pilot of the Mingei project.</p>
IN00040 Mandasor Stone Inscription of the Silk Weavers
<p>Bhandarkar, Devadatta Ramakrishna, Bahadur Chand Chhabra, and Govind Swamirao Gai, <em>Inscriptions of the Early Gupta Kings</em> (New Delhi: Archaeological Survey of India, 1981): 327-332.</p>
Dataset: Silk Road Medical, Inc (SILK) 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.
Figure 5A-C in Silks and silk-producing organs of Neotropical tarantula Avicularia metallica (Araneae, Mygalomorphae, Theraphosidae)
Figure 5A-C. Spinneret silk spigot ultrastructure: A – two spigots of posterior lateral spinnerets. B – enlarged view of framed section in A: opening at the end of shaft, from which silk secretion is extruded, C – opening at the end of shaft, filled with solidified silk secretion. The secretion has two components. Peripheral (S1) component of solidified protein mixture surrounds the central (S2) component, which unlike component S1, has a granular appearance. SPI – spigots, bas – basal part (socket), term – terminal part of spigot (shaft).
Figure 2A-B in Silks and silk-producing organs of Neotropical tarantula Avicularia metallica (Araneae, Mygalomorphae, Theraphosidae)
Figure 2A-B. Macrostructure of shelter and attachment fields: A – mid-section of silken tube. Arrows indicate where the tube is attached to the substratum by means of attachment fields (AF). B – detailed view of an attachment field.
Figure 4A-D in Silks and silk-producing organs of Neotropical tarantula Avicularia metallica (Araneae, Mygalomorphae, Theraphosidae)
Figure 4A-D. SEM micrographs of spinnerets: A – overview of ventral side of a nymph. B – enlarged view of framed section in A: posterior part of ventral side of opisthosoma with two pairs of spinnerets. C – surface of posterior lateral spinnerets with spigots, partly covered by adjacent hairs (setae). Location of spigots is marked with arrows. D – detailed view of surface of spinnerets with spigots, hairs and silk fibrils. CH – chelicerae, HA – hairs, PE – pedipalps, PMS – posterior median spinnerets, PLS – posterior lateral spinnerets, SI – silk, SP – spinnerets, SPI – spigots, I. – IV. – first to fourth pairs of legs.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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