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2,809 results for “photos”
IODP Expedition 392 RGB channels (calculated from core photos)
<p>Red, green, and blue pixel data were extracted from Section Half Imaging Logger (SHIL) linescan images, typically binned at 0.5 cm resolution using the central 2 cm of the image.</p>
Dataset from "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (wtChR2-mEos3.2)
<p>This dataset contains raw microscopy data from the article "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (doi.org/10.1002/anie.202307555)</p> <p>Zip file contains PALM measurements of HEK293 cells expressing ChR2<sub>WT</sub> fused with mEos3.2.<br>Each folder in .zip file contains one PALM measurement (TIFF format) and recording settings (.xml) automatically created by acquiring software. For technical reasons, single measurements are divided into TIFF files of =<4088 frames.</p> <p>Detailed protocols for sample preparation and data acquisition are described in the article.<br>Some details are listed below.</p> <p><strong>SAMPLE PREPARATION</strong></p> <p>cell line: Flp-In™ T-REx™ 293<br>transfection method: modified calcium-phosphate transient transfection [1]<br>fixation method: 4% paraformaldehyde solution in PBS for 30 min at room temperature<br>imaging buffer: PBS</p> <p><strong>PALM ACQUISITION</strong></p> <p>A custom-built setup for single-molecule localization microscopy is described in [2].<br>mEos3.2 was simultaneously photoconverted, imaged and photobleached by gradually increasing UV illumination (405 nm; up to 1 mW at the sample) and continuous excitation at 561 nm (approximately 50 mW at the sample).<br>PALM movies of cell plasma membrane were recorded in total internal reflection fluorescence (TIRF) mode using an EMCCD camera:<br>exposure time = 100 ms<br>frame size = 512x512 pixels<br>pixel size = 80 nm</p> <p> </p> <p>[1] Chen C, Okayama H. High-efficiency transformation of mammalian cells by plasmid DNA. Molecular and cellular biology. 1987 Aug 1;7(8):2745-52.<br>[2] Tang Y, Dai L, Zhang X, Li J, Hendriks J, Fan X, Gruteser N, Meisenberg A, Baumann A, Katranidis A, Gensch T. SNSMIL, a real-time single molecule identification and localization algorithm for super-resolution fluorescence microscopy. Scientific reports. 2015 Jun 22;5(1):11073</p>
Dataset from "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (ChR2(C34A/C36A)-mEos3.2)
<p>This dataset contains raw microscopy data from the article "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (doi.org/10.1002/anie.202307555)</p> <p>Zip file contains PALM measurements of HEK293 cells expressing ChR2<sub>C34A/C36A</sub> fused with mEos3.2.<br>Each folder in .zip file contains one PALM measurement (TIFF format) and recording settings (.xml) automatically created by acquiring software. For technical reasons, single measurements are divided into TIFF files of =<4088 frames.</p> <p>Detailed protocols for sample preparation and data acquisition are described in the article.<br>Some details are listed below.</p> <p><strong>SAMPLE PREPARATION</strong></p> <p>cell line: Flp-In™ T-REx™ 293<br>transfection method: modified calcium-phosphate transient transfection [1]<br>fixation method: 4% paraformaldehyde solution in PBS for 30 min at room temperature<br>imaging buffer: PBS</p> <p><strong>PALM ACQUISITION</strong></p> <p>A custom-built setup for single-molecule localization microscopy is described in [2].<br>mEos3.2 was simultaneously photoconverted, imaged and photobleached by gradually increasing UV illumination (405 nm; up to 1 mW at the sample) and continuous excitation at 561 nm (approximately 50 mW at the sample).<br>PALM movies of cell plasma membrane were recorded in total internal reflection fluorescence (TIRF) mode using an EMCCD camera:<br>exposure time = 100 ms<br>frame size = 512x512 pixels<br>pixel size = 80 nm</p> <p> </p> <p>[1] Chen C, Okayama H. High-efficiency transformation of mammalian cells by plasmid DNA. Molecular and cellular biology. 1987 Aug 1;7(8):2745-52.<br>[2] Tang Y, Dai L, Zhang X, Li J, Hendriks J, Fan X, Gruteser N, Meisenberg A, Baumann A, Katranidis A, Gensch T. SNSMIL, a real-time single molecule identification and localization algorithm for super-resolution fluorescence microscopy. Scientific reports. 2015 Jun 22;5(1):11073</p>
Dataset from "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (b1AR-mEos3.2)
<p>This dataset contains raw microscopy data from the article "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (doi.org/10.1002/anie.202307555)</p> <p>Zip file contains PALM measurements of HEK293 cells expressing ß<sub>1</sub>AR fused with mEos3.2.<br>Each folder in .zip file contains one PALM measurement (TIFF format) and recording settings (.xml) automatically created by acquiring software. For technical reasons, single measurements are divided into TIFF files of =<4088 frames.</p> <p>Detailed protocols for sample preparation and data acquisition are described in the article.<br>Some details are listed below.</p> <p><strong>SAMPLE PREPARATION</strong></p> <p>cell line: Flp-In™ T-REx™ 293<br>transfection method: modified calcium-phosphate transient transfection [1]<br>fixation method: 4% paraformaldehyde solution in PBS for 30 min at room temperature<br>imaging buffer: PBS</p> <p><strong>PALM ACQUISITION</strong></p> <p>A custom-built setup for single-molecule localization microscopy is described in [2].<br>mEos3.2 was simultaneously photoconverted, imaged and photobleached by gradually increasing UV illumination (405 nm; up to 1 mW at the sample) and continuous excitation at 561 nm (approximately 50 mW at the sample).<br>PALM movies of cell plasma membrane were recorded in total internal reflection fluorescence (TIRF) mode using an EMCCD camera:<br>exposure time = 100 ms<br>frame size = 512x512 pixels<br>pixel size = 80 nm</p> <p> </p> <ol> <li>Chen C, Okayama H. High-efficiency transformation of mammalian cells by plasmid DNA. Molecular and cellular biology. 1987 Aug 1;7(8):2745-52.</li> <li>Tang Y, Dai L, Zhang X, Li J, Hendriks J, Fan X, Gruteser N, Meisenberg A, Baumann A, Katranidis A, Gensch T. SNSMIL, a real-time single molecule identification and localization algorithm for super-resolution fluorescence microscopy. Scientific reports. 2015 Jun 22;5(1):11073</li> </ol>
Dataset from "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (CD28-mEos3.2)
<p>This dataset contains raw microscopy data from the article "Channelrhodopsin-2 Oligomerization in Cell Membrane Revealed by Photo-Activated Localization Microscopy" (doi.org/10.1002/anie.202307555)</p> <p>Zip file contains PALM measurements of HEK293 cells expressing CD28 fused with mEos3.2.<br>Each folder in .zip file contains one PALM measurement (TIFF format) and recording settings (.xml) automatically created by acquiring software. For technical reasons, single measurements are divided into TIFF files of =<4088 frames.</p> <p>Detailed protocols for sample preparation and data acquisition are described in the article.<br>Some details are listed below.</p> <p><strong>SAMPLE PREPARATION</strong></p> <p>cell line: Flp-In™ T-REx™ 293<br>transfection method: modified calcium-phosphate transient transfection [1]<br>fixation method: 4% paraformaldehyde solution in PBS for 30 min at room temperature<br>imaging buffer: PBS</p> <p><strong>PALM ACQUISITION</strong></p> <p>A custom-built setup for single-molecule localization microscopy is described in [2].<br>mEos3.2 was simultaneously photoconverted, imaged and photobleached by gradually increasing UV illumination (405 nm; up to 1 mW at the sample) and continuous excitation at 561 nm (approximately 50 mW at the sample).<br>PALM movies of cell plasma membrane were recorded in total internal reflection fluorescence (TIRF) mode using an EMCCD camera:<br>exposure time = 100 ms<br>frame size = 512x512 pixels<br>pixel size = 80 nm</p> <p> </p> <ol> <li>Chen C, Okayama H. High-efficiency transformation of mammalian cells by plasmid DNA. Molecular and cellular biology. 1987 Aug 1;7(8):2745-52.</li> <li>Tang Y, Dai L, Zhang X, Li J, Hendriks J, Fan X, Gruteser N, Meisenberg A, Baumann A, Katranidis A, Gensch T. SNSMIL, a real-time single molecule identification and localization algorithm for super-resolution fluorescence microscopy. Scientific reports. 2015 Jun 22;5(1):11073</li> </ol>
Fig. 1. SEM photos showing c.f in Latitudinal Diversity Gradients in Free-living Microorganisms - Hoogenraadia a Key Genus in Testate Amoebae Biogeography
Fig. 1. SEM photos showing c.f. Hoogenraadia humicola found from soils in Shennongjia Mountains of central China (the left picture is from Qin et al. 2011). This was previously identified as Planhoogenraadia africana by Qin et al. (2011). Scale bars: 50 µm (a) and 20 µm (b).
Dawidziuk, 2002, C. praedubeli/C. deubeli Biozone, Arctic Canada. 28. Spinograptus spinosus Wood, 1900, L. nilssoni Biozone, EEP, Poland. 29. Spinograptus latespinosus Kozłowska−Dawidziuk, 1997. 30. Spinograptus munchi Eisenack, 1951, C. praedubeli/C. deubeli Biozone, EEP, Poland. 31. Papiliograptus papilio Lenz and Kozłowska−Dawidziuk, 2002, C. praedubeli/C. deubeli Biozone, Arctic Canada. 32. Plectograptus? karlsteinensis Kozłowska−Dawidziuk, Lenz, and Štorch, 2001, C. praedubeli/C. deubeli Biozone, Barrandian. 33. Neogothograptus thorsteinssoni Lenz and Kozłowska−Dawidziuk, 2004, L. progenitor Biozone, Arctic Canada. 34. Neogothograptus alatiformis Lenz and Kozłowska−Dawidziuk, 2004, L. progenitor Biozone, Arctic Canada. 35. Neogothograptus purus Kozłowska−Dawidziuk, 1995, EEP, Poland. 36. Holoretiolites mancki (Münch, 1931). 37. Holoretiolites helenaewitoldi sp. nov., L. progenitor Biozone, EEP, Poland. 38. Plectograptus wimani Eisenack, 1951, N. nilssoni Biozone, Baltic erratic boulder, Poland. 39. Plectograptus robustus Obut and Zaslavskaya, 1983, L. nilssoni Biozone, EEP, Kaliningrad. 40. Plectograptus macilentus Törnquist, 1887, L. scanicus Biozone, Baltic erratic boulder, Poland. 41. Semiplectograptus urbaneki Kozłowska−Dawidziuk, 1995, Cucullograptus hemiaversus/C. aversus Biozone, EEP, Poland. 42. Plectodinemagraptus gracilis Kozłowska−Dawidziuk, 1995, Cucullograptus hemiaversus/C. aversus Biozone, EEP, Poland. Figures adapted from: 1, Melchin (1999); 2, 4–5, Bouček and Münch (1944); 3, holotype photographed by A. Lenz; 6, 9, Bates and Kirk (1992); 7, Bates and Kirk (1997); 8, Štorch (1994); 10–15, 38, 40–42, Kozłowska−Dawidziuk (1995); 16, Kozłowska−Dawidziuk (2001); 17–21, Lenz and Kozłowska−Dawidziuk (2001); 22, 25, Kozłowska−Dawidziuk (1990); 23, 35, photo taken by author; 24, 32, Kozłowska−Dawidziuk et al. (2001); 26, 27, 31, Lenz and Kozłowska−Dawidziuk (2002a); 28, 35, photo taken by author; 29, Kozłowska−Dawidziuk (1997); 30, Kozłowska−Dawidziuk 2002; 36, Kozłowska−Dawidziuk and Lenz (2001); 37, this paper; 39, Obut and Zaslavskaya (1983). Not to scale. Abbreviations: RD, Rhuddanian; SHEIN, Sheinwoodian; GORST, Gorstian; LUDF, Ludfordian. Biozonal scheme after Koren' et al. 1996; Geological time scale by International Commission on Stratigraphy, International Union of Geological Sciences 2004 (www.stratigraphy.org) in Evolution of retiolitid graptolites-a synopsis
Dawidziuk, 2002, C. praedubeli/C. deubeli Biozone, Arctic Canada. 28. Spinograptus spinosus Wood, 1900, L. nilssoni Biozone, EEP, Poland. 29. Spinograptus latespinosus Kozłowska−Dawidziuk, 1997. 30. Spinograptus munchi Eisenack, 1951, C. praedubeli/C. deubeli Biozone, EEP, Poland. 31. Papiliograptus papilio Lenz and Kozłowska−Dawidziuk, 2002, C. praedubeli/C. deubeli Biozone, Arctic Canada. 32. Plectograptus? karlsteinensis Kozłowska−Dawidziuk, Lenz, and Štorch, 2001, C. praedubeli/C. deubeli Biozone, Barrandian. 33. Neogothograptus thorsteinssoni Lenz and Kozłowska−Dawidziuk, 2004, L. progenitor Biozone, Arctic Canada. 34. Neogothograptus alatiformis Lenz and Kozłowska−Dawidziuk, 2004, L. progenitor Biozone, Arctic Canada. 35. Neogothograptus purus Kozłowska−Dawidziuk, 1995, EEP, Poland. 36. Holoretiolites mancki (Münch, 1931). 37. Holoretiolites helenaewitoldi sp. nov., L. progenitor Biozone, EEP, Poland. 38. Plectograptus wimani Eisenack, 1951, N. nilssoni Biozone, Baltic erratic boulder, Poland. 39. Plectograptus robustus Obut and Zaslavskaya, 1983, L. nilssoni Biozone, EEP, Kaliningrad. 40. Plectograptus macilentus Törnquist, 1887, L. scanicus Biozone, Baltic erratic boulder, Poland. 41. Semiplectograptus urbaneki Kozłowska−Dawidziuk, 1995, Cucullograptus hemiaversus/C. aversus Biozone, EEP, Poland. 42. Plectodinemagraptus gracilis Kozłowska−Dawidziuk, 1995, Cucullograptus hemiaversus/C. aversus Biozone, EEP, Poland. Figures adapted from: 1, Melchin (1999); 2, 4–5, Bouček and Münch (1944); 3, holotype photographed by A. Lenz; 6, 9, Bates and Kirk (1992); 7, Bates and Kirk (1997); 8, Štorch (1994); 10–15, 38, 40–42, Kozłowska−Dawidziuk (1995); 16, Kozłowska−Dawidziuk (2001); 17–21, Lenz and Kozłowska−Dawidziuk (2001); 22, 25, Kozłowska−Dawidziuk (1990); 23, 35, photo taken by author; 24, 32, Kozłowska−Dawidziuk et al. (2001); 26, 27, 31, Lenz and Kozłowska−Dawidziuk (2002a); 28, 35, photo taken by author; 29, Kozłowska−Dawidziuk (1997); 30, Kozłowska−Dawidziuk 2002; 36, Kozłowska−Dawidziuk and Lenz (2001); 37, this paper; 39, Obut and Zaslavskaya (1983). Not to scale. Abbreviations: RD, Rhuddanian; SHEIN, Sheinwoodian; GORST, Gorstian; LUDF, Ludfordian. Biozonal scheme after Koren' et al. 1996; Geological time scale by International Commission on Stratigraphy, International Union of Geological Sciences 2004 (www.stratigraphy.org)
Trade-off between photo-symbiosis and innate immunity influences cnidarian’s response to pathogenic bacteria
Open the record for dataset details and reuse information.
Data from: More than a token photo: humanising scientists enhances student engagement
Open the record for dataset details and reuse information.
Bonanza Creek LTER Photo Monitoring
This data file represents a photo monitoring project in large reference stands at Bonanza Creek Long Term Ecological Research Site (BNZ LTER) 26 km southwest of the University of Alaska Fairbanks campus, Fairbanks, Alaska. The photo monitoring took place in six mapped and measured reference stands representing white spruce, Alaska birch, and aspen-dominated stands, with one stand in the mature or old growth condition and a comparable site that was the same forest type until a high-severity, stand-replacing crown fire in 1983, for a total of 6 initial stands. The 1983 Rosie Creek Fire was a human-caused wildfire that burned 8,600 acres including about 1/3 of the Bonanza Creek Experimental Forest. The old growth white spruce reference stand was expanded by 1.0 ha to two contiguous hectares, and the burned aspen stand by 0.25 ha to one full hectare (initial) plus an adjacent quarter-hectare. Since 1993 the second old-growth white spruce hectare and second burned aspen quarter-hectare received the full photo-monitoring protocol as the original 6 reference hectares, making a total of 8 photo stand locations.
SBC LTER: REEF: Annual benthic transect photo quad
This dataset is produced by analyzing nearly 1800 images in a cloud-based image analysis platform ViQi. The images were collected in SBC LTER’s long term benthic monitoring transects. This addition to our cloud environment will continue to improve our visual and interactive Connoisseur models. This project aims to contribute images and corresponding taxa to cloud-based image analysis system. We also compare the difference between benthic survey conducted by divers and using photo-quad imagery analysis. The images in this data set were collected during LTER’s 2018 benthic survey period. This data package includes two data tables: 1) percent cover of invertebrates, algae and fish from all of the SBC LTER’s benthic transects, as well as image location and water depth 2) the images download links for all images used in the analysis.
High resolution Air Photo Mosaic for Hog Island, VA, 2011
High resolution (6 cm pixel) RGB true color tiled air photo mosaics for Hog Island, Northampton County, VA, collected on October 11, 2011 on behalf of the USACE Engineer Research and Development Center using the Coastal Zone Mapping and Imaging Lidar (CZMIL) system. CZMIL integrates a lidar sensor with topographic and bathymetric capabilities, a digital camera and a hyperspectral imager on a single remote sensing platform for use in coastal mapping and charting activities. LiDAR data is provided as a separate VCRLTER dataset. Two data entities are included here: (1) a tiled collection of air photo mosaics created from the CZMIL camera imagery (6 cm. resolution; tiles approximately 690 x 715 m. in X and Y, resp.) composed of 71 individual georeferenced TIFF files; and (2) a polygon INDEX shapefile showing the footprint of each TIFF file and containing ID information in the attribute table (column, row, and colrow matching the TIFF naming convention). Note that the two co-collected 2011 USACE datasets (LiDAR and RGB ) are in different coordinate systems: (A) the horizontal and vertical units of the LiDAR data are in US feet, not meters; and (B) the horizontal units of the associated RGB mosaic images are in [standard] meters. Also Note that THESE ARE VERY LARGE DATASETS and download should not be attempted unless you have a fast network connection and plenty of disk space. The LAS file data collection is 7.3 GB compressed (11.7 GB uncompressed). The RGB imagery mosaic data collection is 12.9 GB compressed (30.8 GB uncompressed).
キラッと光るのをもっているかもしれないお稲荷様の写真 photo of Inari Shrine
母親が友達と高山稲荷に行ったときに撮影した写真。もう一回行ってみたいなと言っていたけど、結局行けなかったんじゃないかな。四半世紀以上たってる。母がカミサマ(霊能力者)にみてもらったことがあったの。そうしたら、「あなたのお宅に、キラッと光るものがある」と言われて。この写真、色あせてしまってわかりにくいけど、お稲荷さんが赤い珠のようなものを持っているの。それで、この写真の珠のことかなと言ったら、「その写真に、油揚げをあげなさい」って。母は本当に、この写真を神棚にあげて、毎日、油揚げを供えていた。そうしたら、本当に宝くじがあたって! 別室に通されて説明を聞いたよ。周りには黙っていたんだけど、親戚にポロッと言っちゃったら、色んな人にごちそうすることになっちゃったり、あと、車を買ったら、あっという間になくなっちゃった。今は、神棚からおろして、自分の部屋の片隅の、土人形のお雛様の隣に置いて、お香を炊いてる。自分が生きているかぎりは、置いておきたい。でも、友達が来たときとかは「変な宗教に入ってる??」って勘違いされると困るから、しまっちゃう、笑 This photo was taken when my mother went to Takayama Inari with her friends.It's been over a quarter of a century. My mother was once seen by a kami-sama (psychic). She said, "There's something shiny in your house." This picture is faded and hard to see, but the Inari-san is holding something like a red bead. When I asked her if she meant the bead in the photo, she told me to give the photo a fried bean curd. My mother really kept this picture on the altar and gave fried tofu to it every day. Then, I really won the lottery!! Source: Objaverse 1.0 / Sketchfab
Photo Stand Frame1
This kind of frames with hooks to hang photo board or painting frames Source: Objaverse 1.0 / Sketchfab
Vintage Framed Art and Photos
All images taken from Creative Commons https://creativecommons.org/ Attribution for each on the backs of the frames. These are also included in the Speakeasy Asset Pack. Source: Objaverse 1.0 / Sketchfab
Photo scales & rulers (low poly)
Archaeological photo scales & rulers. You can use it for your models and scenes. Source: Objaverse 1.0 / Sketchfab
Photo scan of the bas-relief
3d scan of a historical bas-relief for molding and visualization for a virtual museum. 3d скан барельефа под изготовление форм и дальнейшую визуализацию. 300 photo, 2mln polygon original model Source: Objaverse 1.0 / Sketchfab
Crocodile tracks and trackways: Photogrammetric models and photo datasets.
<p>3D models and photosets of Crocodile tracks and trackways</p> <p>The files in this dataset comprise zip folders containing a set of photos, and a textured mesh, of trackways made by 12 species of crocodile.</p> <p>The physical casts were originally described in:</p> <p>Milàn, J. and R. Hedegaard (2010). "Interspecific variation in tracks and trackways from extant crocodiles." New Mexico Museum of Natural History and Science Bulletin <strong>51</strong>: 15-30</p> <p>The data presented here are newly generated photogrammetric models, along with the associated photo sets. The models themselves have been reduced in order to keep file size manageable, but all photos have been included at full resolution so that others can produce their own high-res models from them.</p> <p>Included data are as follows:</p> <p>Alligator sinensis | (Chinese Alligator) | 15-20 kg, 160 cm<br /> Caiman crocodylus | (Spectacled caiman) | 12 kg, 130 cm<br /> Caiman latirostris | (Broad-nosed caiman) | 13 kg, 135 cm (pregnant)<br /> Caiman latirostris II | (Broad-nosed caiman) | 1.5 kg, 70 cm<br /> Crocodylus cataphractus | (Slender-snouted crocodile) | 7 kg, 149 cm<br /> Crocodylus johnsoni | (Fresh water crocodile) | 5 kg, 112 cm<br /> Crocodylus johnsoni II | (Fresh water crocodile) | 25 kg, 90 cm<br /> Crocodylus novaeguineae | (New Guinea crocodile) | 15 kg, 175 cm<br /> Crocodylus rhombifer | (Cuban crocodile) | 2 kg, 80 cm<br /> Crocodylus siamensis | (Siamese crocodile) | 10 kg, 140 cm<br /> Gavialis gagesticus | (Gharial) | 40 kg, 225 cm<br /> Osteolaemus tatraspis | (Dwarf crocodile) | 2 kg, 79 cm<br /> Paleosuchus palpebrosus | (Dwarf caiman) | 15 kg, 140 cm<br /> Paleosuchus palpebrosus II | (Dwarf caiman) | 0.5 kg, 50 cm<br /> Tomistoma schlegelii (1x Manus, 2 x Pes) | (False gharial) | 270 cm</p> <p> </p>
Specimen photos of DNA sample MHNG-Hydrozoa-DNA126
<p>Specimen photos of DNA sample MHNG-Hydrozoa-DNA126</p> <p>species medusa of<strong><em> Staurodiscus gotoi </em></strong><strong>(Uchida, 1927) </strong></p>
Specimen photos of DNA sample MHNG-Hydrozoa-DNA1165
<p>Sample data</p> <p>collection locality: Norway, Korsfjord</p> <p>GPS: 60.1846°N 5.196°E</p> <p>collection date: 14.06.2016</p> <p>depth: 0-600 m</p> <p>gear:plankton net, vertical tow</p> <p>number of individuals or colonies: 1</p> <p>preservation: 95 % ethanol</p> <p>figured specimen used for DNA extraction: yes</p> <p>part used for DNA extraction: whole</p> <p>DNA extraction: 10.5281/zenodo.57067</p> <p>voucher specimen deposited: no</p> <p> </p> <p>Sample data</p> <p>Taxonomy</p> <p>Phylum: Cnidaria</p> <p>Class: Hydrozoa</p> <p>Family: Mitrocomidae</p> <p>Species: <em>Cosmetira pilosella</em> (Forbes, 1848)</p> <p>life stage: medusa</p> <p>identified by: P. Schuchert</p> <p>size: 8-10 mm diameter</p>
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.
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.