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514 results for “principles”
Design principles an autothermal reactor with enhanced mass transfer for hydrogen production
<p><strong>Design principles an autothermal reactor with enhanced mass transfer for hydrogen production</strong></p> <p>Junjie Chen</p> <p>Department of Energy and Power Engineering, School of Mechanical and Power Engineering, Henan Polytechnic University, 2000 Century Avenue, Jiaozuo, Henan, 454000, P.R. China</p> <p>Contributor: Junjie Chen, ORCID: 0000-0001-5055-4309, E-mail address: komcjj@gmail.com</p> <p> </p> <p>Chemical engineers are employed in the design and development of both processes and plant items. In each case, data and predictions often have to be obtained or confirmed with pilot experiments. Plant operation and control is increasingly the sphere of the chemical engineer rather than the chemist. Chemical engineering provides an ideal background for the economic evaluation of new projects and, in the plant construction sector, for marketing. The fundamental principles of chemical engineering underlie the operation of processes extending well beyond the boundaries of the chemical industry, and chemical engineers are employed in a range of operations outside traditional areas. Plastics, polymers, and synthetic fibres involve chemical-reaction engineering problems in their manufacture, with fluid flow and heat transfer considerations dominating their fabrication. The dyeing of a fibre is a mass-transfer problem. Pulp manufacture involve considerations of fluid flow and heat transfer. The nuclear industry makes similar demands on the chemical engineer, particularly for fuel manufacture and reprocessing. Chemical engineers are involved in many sectors of the metals processing industry, which extends from steel manufacture to separation of rare metals.</p> <p>Streamwise distance (millimeters), Reforming channel centerline temperature (degrees kelvin)</p> <p>0 373.004</p> <p>0.00025 373.059</p> <p>0.0005 373.261</p> <p>0.00075 373.771</p> <p>0.001 374.741</p> <p>0.00125 376.228</p> <p>0.0015 378.219</p> <p>0.00175 380.651</p> <p>0.002 383.434</p> <p>0.00225 386.47</p> <p>0.0025 389.674</p> <p>0.00275 393.013</p> <p>0.003 396.47</p> <p>0.00325 400.02</p> <p>0.0035 403.634</p> <p>0.00375 407.275</p> <p>0.004 410.898</p> <p>0.00425 414.453</p> <p>0.0045 417.9</p> <p>0.00475 421.231</p> <p>0.005 424.454</p> <p>0.00525 427.574</p> <p>0.0055 430.596</p> <p>0.00575 433.522</p> <p>0.006 436.342</p> <p>0.00625 439.041</p> <p>0.0065 441.606</p> <p>0.00675 444.041</p> <p>0.007 446.359</p> <p>0.00725 448.572</p> <p>0.0075 450.693</p> <p>0.00775 452.727</p> <p>0.008 454.676</p> <p>0.00825 456.532</p> <p>0.0085 458.289</p> <p>0.00875 459.952</p> <p>0.009 461.531</p> <p>0.00925 463.036</p> <p>0.0095 464.477</p> <p>0.00975 465.858</p> <p>0.01 467.18</p> <p>0.01025 468.441</p> <p>0.0105 469.635</p> <p>0.01075 470.767</p> <p>0.011 471.843</p> <p>0.01125 472.873</p> <p>0.0115 473.859</p> <p>0.01175 474.805</p> <p>0.012 475.713</p> <p>0.01225 476.579</p> <p>0.0125 477.403</p> <p>0.01275 478.186</p> <p>0.013 478.933</p> <p>0.01325 479.649</p> <p>0.0135 480.337</p> <p>0.01375 480.998</p> <p>0.014 481.634</p> <p>0.01425 482.243</p> <p>0.0145 482.823</p> <p>0.01475 483.376</p> <p>0.015 483.906</p> <p>0.01525 484.415</p> <p>0.0155 484.905</p> <p>0.01575 485.379</p> <p>0.016 485.835</p> <p>0.01625 486.273</p> <p>0.0165 486.692</p> <p>0.01675 487.093</p> <p>0.017 487.477</p> <p>0.01725 487.848</p> <p>0.0175 488.206</p> <p>0.01775 488.553</p> <p>0.018 488.889</p> <p>0.01825 489.212</p> <p>0.0185 489.522</p> <p>0.01875 489.82</p> <p>0.019 490.106</p> <p>0.01925 490.383</p> <p>0.0195 490.651</p> <p>0.01975 490.913</p> <p>0.02 491.168</p> <p>0.02025 491.413</p> <p>0.0205 491.648</p> <p>0.02075 491.875</p> <p>0.021 492.093</p> <p>0.02125 492.306</p> <p>0.0215 492.513</p> <p>0.02175 492.716</p> <p>0.022 492.915</p> <p>0.02225 493.106</p> <p>0.0225 493.291</p> <p>0.02275 493.469</p> <p>0.023 493.642</p> <p>0.02325 493.811</p> <p>0.0235 493.977</p> <p>0.02375 494.141</p> <p>0.024 494.301</p> <p>0.02425 494.456</p> <p>0.0245 494.607</p> <p>0.02475 494.753</p> <p>0.025 494.895</p> <p>0.02525 495.036</p> <p>0.0255 495.174</p> <p>0.02575 495.311</p> <p>0.026 495.446</p> <p>0.02625 495.578</p> <p>0.0265 495.706</p> <p>0.02675 495.831</p> <p>0.027 495.953</p> <p>0.02725 496.074</p> <p>0.0275 496.195</p> <p>0.02775 496.315</p> <p>0.028 496.433</p> <p>0.02825 496.549</p> <p>0.0285 496.661</p> <p>0.02875 496.772</p> <p>0.029 496.881</p> <p>0.02925 496.99</p> <p>0.0295 497.092</p> <p>0.02975 497.232</p> <p>0.03 497.324</p> <p>Contributor: Junjie Chen, ORCID: 0000-0001-5055-4309, E-mail address: komcjj@gmail.com, Department of Energy and Power Engineering, School of Mechanical and Power Engineering, Henan Polytechnic University, 2000 Century Avenue, Jiaozuo, Henan, 454000, P.R. China</p>
Design principles an autothermal steam reforming chemical reactor with enhanced heat transfer
<p><strong>Design principles an autothermal steam reforming chemical reactor with enhanced heat transfer</strong></p> <p>Junjie Chen</p> <p>Department of Energy and Power Engineering, School of Mechanical and Power Engineering, Henan Polytechnic University, 2000 Century Avenue, Jiaozuo, Henan, 454000, P.R. China</p> <p>Contributor: Junjie Chen, ORCID: 0000-0001-5055-4309, E-mail address: komcjj@gmail.com</p> <p> </p> <p>Heat transfer is any or all of several kinds of phenomena, considered as mechanisms, that convey energy and entropy from one location to another. The specific mechanisms are usually referred to as convection, thermal radiation, and conduction. Conduction involves transfer of energy and entropy between adjacent molecules, usually a slow process. Convection involves movement of a heated fluid, such as air, usually a fairly rapid process. Radiation refers to the transmission of energy as electromagnetic radiation from its emission at a heated surface to its absorption on another surface, a process requiring no medium to convey the energy. thermal conduction, transfer of energy (heat) arising from temperature differences between adjacent parts of a body. Thermal conductivity is attributed to the exchange of energy between adjacent molecules and electrons in the conducting medium. The rate of heat flow in a rod of material is proportional to the cross-sectional area of the rod and to the temperature difference between the ends and inversely proportional to the length; that is the rate equals the ratio of the cross section of the rod to its length, multiplied by the temperature difference and by the thermal conductivity of the material.</p> <p>Streamwise distance (millimeters), Reforming channel centerline temperature (degrees kelvin)</p> <p>0 373</p> <p>0.00025 373.005</p> <p>0.0005 373.032</p> <p>0.00075 373.127</p> <p>0.001 373.373</p> <p>0.00125 373.864</p> <p>0.0015 374.687</p> <p>0.00175 375.89</p> <p>0.002 377.487</p> <p>0.00225 379.459</p> <p>0.0025 381.763</p> <p>0.00275 384.345</p> <p>0.003 387.146</p> <p>0.00325 390.107</p> <p>0.0035 393.179</p> <p>0.00375 396.314</p> <p>0.004 399.476</p> <p>0.00425 402.634</p> <p>0.0045 405.763</p> <p>0.00475 408.845</p> <p>0.005 411.863</p> <p>0.00525 414.809</p> <p>0.0055 417.674</p> <p>0.00575 420.453</p> <p>0.006 423.144</p> <p>0.00625 425.743</p> <p>0.0065 428.252</p> <p>0.00675 430.67</p> <p>0.007 432.998</p> <p>0.00725 435.239</p> <p>0.0075 437.395</p> <p>0.00775 439.468</p> <p>0.008 441.46</p> <p>0.00825 443.375</p> <p>0.0085 445.215</p> <p>0.00875 446.983</p> <p>0.009 448.682</p> <p>0.00925 450.315</p> <p>0.0095 451.885</p> <p>0.00975 453.393</p> <p>0.01 454.844</p> <p>0.01025 456.239</p> <p>0.0105 457.58</p> <p>0.01075 458.87</p> <p>0.011 460.112</p> <p>0.01125 461.306</p> <p>0.0115 462.457</p> <p>0.01175 463.564</p> <p>0.012 464.631</p> <p>0.01225 465.659</p> <p>0.0125 466.65</p> <p>0.01275 467.605</p> <p>0.013 468.525</p> <p>0.01325 469.414</p> <p>0.0135 470.271</p> <p>0.01375 471.098</p> <p>0.014 471.897</p> <p>0.01425 472.668</p> <p>0.0145 473.413</p> <p>0.01475 474.133</p> <p>0.015 474.829</p> <p>0.01525 475.502</p> <p>0.0155 476.153</p> <p>0.01575 476.783</p> <p>0.016 477.393</p> <p>0.01625 477.983</p> <p>0.0165 478.555</p> <p>0.01675 479.108</p> <p>0.017 479.644</p> <p>0.01725 480.164</p> <p>0.0175 480.669</p> <p>0.01775 481.158</p> <p>0.018 481.633</p> <p>0.01825 482.093</p> <p>0.0185 482.541</p> <p>0.01875 482.975</p> <p>0.019 483.397</p> <p>0.01925 483.808</p> <p>0.0195 484.206</p> <p>0.01975 484.594</p> <p>0.02 484.972</p> <p>0.02025 485.339</p> <p>0.0205 485.696</p> <p>0.02075 486.045</p> <p>0.021 486.384</p> <p>0.02125 486.714</p> <p>0.0215 487.036</p> <p>0.02175 487.35</p> <p>0.022 487.657</p> <p>0.02225 487.956</p> <p>0.0225 488.247</p> <p>0.02275 488.533</p> <p>0.023 488.811</p> <p>0.02325 489.083</p> <p>0.0235 489.349</p> <p>0.02375 489.609</p> <p>0.024 489.864</p> <p>0.02425 490.112</p> <p>0.0245 490.356</p> <p>0.02475 490.595</p> <p>0.025 490.828</p> <p>0.02525 491.057</p> <p>0.0255 491.281</p> <p>0.02575 491.501</p> <p>0.026 491.716</p> <p>0.02625 491.927</p> <p>0.0265 492.134</p> <p>0.02675 492.337</p> <p>0.027 492.536</p> <p>0.02725 492.732</p> <p>0.0275 492.923</p> <p>0.02775 493.111</p> <p>0.028 493.296</p> <p>0.02825 493.477</p> <p>0.0285 493.655</p> <p>0.02875 493.829</p> <p>0.029 494</p> <p>0.02925 494.171</p> <p>0.0295 494.323</p> <p>0.02975 494.536</p> <p>0.03 494.685</p> <p>Contributor: Junjie Chen, ORCID: 0000-0001-5055-4309, E-mail address: komcjj@gmail.com, Department of Energy and Power Engineering, School of Mechanical and Power Engineering, Henan Polytechnic University, 2000 Century Avenue, Jiaozuo, Henan, 454000, P.R. China</p>
Principles of economic rationality in mice
<p>Data and R scripts from choice experiments of groups of mice inside a home cage with four water feeders</p>
Interpretation of H2‑TPR from Cu-CHA Using First-Principles Calculations
<p>Dataset related to the article with the same title and authors:</p> <p><a href="https://doi.org/10.1021/acs.jpcc.3c07998">Interpretation of H2‑TPR from Cu-CHA Using First-Principles Calculations</a></p> <p> </p> <p>The zip file contains selected structures and a README.txt file with additional information.</p>
The fundamental principles of natural selection, survival and adaptation
<p> </p> <p> </p> <p>Natural selection was first proposed by Mr. Darwin and Mr. Wallace. Natural selection is a process that, during successive generations, leads to the creation of hereditary traits that increase the probability of survival and reproduction of living organisms in a population. In other words, natural selection selects alleles that have characteristics that help reproduction and survival. Alleles that increase the probability of survival and reproduction are passed on to the next generation. However, I want to argue that the heritable traits that increase the likelihood of survival, adaptation, and reproduction are created by natural selection based on certain fundamental principles. In other words, for living organisms to succeed in survival and adaptation, natural selection selects the hereditary characteristics of alleles based on certain fundamental principles. Fundamental principles: 1-energy and nutrient supply; 2-security supply; 3-adapting to environmental conditions such as temperature and humidity, etc.; 4-reproduction. These are the fundamental principles of natural selection that, if fulfilled, increase the probability of adaptation, survival and reproduction. Previously, these fundamental principles were briefly stated by Mr. Darwin and other biologists. However, the importance, value, and very important role of these fundamental principles in the process of natural selection and evolution have received very little attention. If we explain survival, adaptation, and natural selection without these fundamental principles, the concepts of survival, adaptation, and natural selection will not be correct and these basic and important concepts of biology will be incompletely and wrongly understood.</p> <p> </p>
UU Webinar 3: Janja Komljenovic on Edtech policy recommendations and principles
<p>Title: Higher Education Edtech Policy Recommendations and Principles 1.0</p> <p>Abstract: This webinar will present the first version of policy recommendations for policymakers, universities, Edtech companies, and investors in Edtech. The recommendations are coming from the ESRC-funded research project on new forms of value in Edtech. </p> <p>Speaker: Janja Komljenovic</p> <p>Bio: Janja Komljenovic is a Senior Lecturer at Lancaster University in the UK. Her research focuses on the political economy of higher education. She is particularly interested in digital markets in higher education, new forms of value in digital education and the EdTech industry, and assetization as a new form of governance. Her approach sits at the intersection of economic sociology, science and technology studies, and higher education research. Janja is published internationally on higher education policy, markets, and educational technology.</p> <p>Link to Janja’s website: https://www.lancaster.ac.uk/education... </p> <p>Date of event: 22 June 2023</p>
Dataset for "Flavor network and the principles of food pairing"
<p>Dataset for Ahn, Y. Y., Ahnert, S. E., Bagrow, J. P., & Barabási, A. L. (2011). Flavor network and the principles of food pairing. <em>Scientific reports</em>, <em>1</em>(1), 196. https://doi.org/10.1038/srep00196</p> <p> </p>
Investigating the neural basis of the loud-first principle of the Iambic-Trochaic law
Open the record for dataset details and reuse information.
Third FAIRmat users meeting Nov2023 - FAIR Data Principles in Perovskite Solar Cell Research using NOMAD - Daniel Baumann
<p>Daniel Baumann (doctoral research project at KIT in the group of Ulrich Paetzold) highlights how NOMAD Oasis supports experimental materials researchers in the field of perovskite photovoltaics. A live demonstration of experimental planning, documentation, as well as automated data evaluation is presented. Particularly, in conjunction with a highly repeatable robotic spin-coating setup, the realization of this vast potential may be closer than anticipated. </p>
Reporter CRISPR screens decipher cis- and trans-regulatory principles at the Xist locus [Microscope images - Oct4 KDs]
<p>Microscope images related to Figure 2 in Schwämmle et al. 2025. </p> <p>The cells are undifferentiated or day 2 differentiated TX1072 XX SP427 mESCs with (or without) Oct4 knockdown in the indicated media.</p> <p>Exonic Xist is stained using Cy5 Stellaris probes. The nuclei are stained using DAPI.</p> <p>These files were used to manually count Xist clouds (see fish_sgOct4_manual.txt for counts). For code to visualize the results see https://github.com/EddaSchulz/TFiScreen_Paper. RA samples relate only to the biorXiv release of the manuscript (https://doi.org/10.1101/2024.10.08.617282).</p>
Reporter CRISPR screens decipher cis- and trans-regulatory principles at the Xist locus [FACS + BAMs + tables]
<div>FACS data related to Figures 1 and 4 in Schwämmle et al. 2025. </div> <div>Also include BAM files of published data and other files needed to replicate analyses included in https://github.com/EddaSchulz/TFiScreen_Paper. </div>
Reporter CRISPR screens decipher cis- and trans-regulatory principles at the Xist locus [Extra tables + files]
<p>This zenodo contains extra files and tables necessary to run code specified in https://github.com/EddaSchulz/TFiScreen_Paper/.</p> <p>These files are associated with analysis in Schwämmle et al., 2025.</p>
Perception of Mixed-Reality Shopping Assistant System to develop Design Principles : Interview Transcripts (MRDP)
<p>The dataset is a collection of transcripts where 35 participants were interviewed to collect users’’ feedback and perceptions about the mixed-reality MR shopping assistant system. The interviews were a part of the research where a personal shopping assistance system based on optical see-through mixed-reality (MR ) technology was designed. Microsoft HoloLens 2 was leveraged as the archetype to realize this novel system to facilitating consumer information search and decision making. The design incorporated various shopping assistance elements (i.e., product information, reviews, recommendations, product availability, videos, a virtual cart, and an option to buy). Users can interact with these elements with gesture-based inputs to navigate through the interface.</p> <p>Derived from the qualitative feedback from the 35 participants, we proposed six design principles that aim to support future designs and developments of mixed-reality MR shopping applications for head-mounted displays in omnichannel retail: Rigor, Informativeness, Tangibility, Summary, Comparability and Holism. </p> <p> </p>
Philological principles for premodern Chinese texts
<p>Paper presented on Friday 11 June 2021 at the Digital Medievalist Global Symposium The past, present, and future of Digital Medieval Studies for the Asia & Oceania Panel, in the session Engaging in Chinese Literature.</p>
SGLT2-Inhibition reverts urinary peptide changes associated with severe COVID-19: an in-silico proof-of-principle of proteomics-based drug repurposing
<p>Severe COVID-19 is reflected by significant changes in urine peptides. Based on this observation, a clinical test predicting COVID-19 severity, CoV50, was developed and registered as in vitro diagnostic in Germany. We have hypothesized that molecular changes displayed by CoV50, likely reflective of endothelial damage, may be reversed by specific drugs. Such an impact by a drug could indicate potential benefits in the context of COVID-19. To test this hypothesis, urinary peptide data from patients without COVID-19 prior to and after drug treatment were collected from the human urinary proteome database. The drugs chosen were selected based on availability of sufficient number of participants in the dataset (n>20) and potential value of drug therapies in the treatment of COVID-19 based on reports in the literature. In these participants without COVID-19, spironolactone did not demonstrate a significant impact on CoV50 scoring. Empagliflozin treatment resulted in a significant change in CoV50 scoring, indicative of a potential therapeutic benefit. The study serves as a proof-of-principle for a drug repurposing approach based on human urinary peptide signatures. The results support the initiation of a randomised control trial testing a potential positive effect of empagliflozin for severe COVID-19, possibly via endothelial protective mechanisms.</p>
Comparative Accuracies of Models for Drag Prediction During Geomagnetically Disturbed Periods: A First Principles Model versus Empirical Models
<p>This dataset contains observational and TIEGCM simulation data used for a manuscript that is being submitted to the <em>Space Weather</em> journal. The abstract for the study follows: We examine the accuracy of density prediction by the first principals model Thermosphere Ionsosphere Electrodynamics General Circulation Model (TIEGCM) developed by the National Center for Atmospheric Research and compare it to the accuracy of three empirical models: Jacchia 71, the Naval Research Laboratory Mass Spectrometer Incoherent Scatter Extended 2000 (NRLMSIS), Jacchia 1971 and Jacchia-Bowman 2008. Comparisons are made for three large storms: the October 2003 storm, the March 2013 storm, and the March 2015 storm. To evaluate the accuracy of these models we use tracking data for nine space objects in low earth orbit (three for each storm). Additionally, and evaluate the accuracy of the TIEGCM and NRLMSIS with data from high precision accelerometers on the Challenging Minisatellite Payload (CHAMP) and Gravity field and Circulation Explorer (GOCE) satellites. The goal is to assess the use of a first principles model as a potential tool for forecasting satellite drag during large magnetic storms. We find that the TIEGCM accuracy is substantially better than for the Jacchia 71 and NRLMSIS models. The accuracies of the TIEGCM and JB2008 models are similar, but overall the TIEGCM is more accurate. We found smaller mean percentage differences for TIEGCM versus CHAMP than for NRLMIS for the Halloween Storm and smaller differences than results published for JB2008 and the assimilative model HASDM. The empirical models are at present more practical for operational purposes, but the first principles TIEGCM was developed as a research model and with a greater focus on operational use offers the potential for improved utility during stressing conditions.</p>
Fundamental Ethical Principles of Co-creation (Infographic)
<p>An infographic showing the fundamental ethical principles of co-creation.</p>
General principles for assignments of communities from eDNA: Open versus closed taxonomic databases
<p><span>Metabarcoding of environmental DNA (eDNA) is a powerful tool for describing biodiversity, such as finding keystone species or detecting invasive species in environmental samples. Continuous improvements in the method and the advances in sequencing platforms over the last decade have meant this approach is now widely used in biodiversity sciences and biomonitoring. For its general use, the method hinges on a correct identification of taxa. However, past studies have shown how this crucially depends on important decisions during sampling, sample processing, and subsequent handling of sequencing data. With no clear consensus as to the best practice, particularly the latter has led to varied bioinformatic approaches and recommendations for data preparation and taxonomic identification. </span><span>In this study, using a large freshwater fish eDNA sequence dataset, we compared the frequently used zero-radius Operational Taxonomic Unit (zOTUs) approach of our raw reads and assigned it taxonomically i) in combination with publicly available reference sequences (open databases) or ii) with an OSU (Operational Sequence Units) database approach, using a curated database of reference sequences generated from specimen barcoding (closed database). </span><span>We show both approaches gave comparable results for common species. However, the commonalities between the approaches decreased with read abundance and were thus less reliable and not comparable for rare species. The success of the </span><span>zOTU</span><span> approach depended on the suitability, rather than the size, of a reference database. Contrastingly, the OSU approach used reliable DNA sequences and thus often enabled species-level identifications, yet this resolution decreased with the recent phylogenetic age of the species. We show the need to include target group coverage, outgroups and full taxonomic annotation in reference databases to avoid misleading annotations that can occur when using short amplicon sizes as commonly used in eDNA metabarcoding studies. Finally, we make general suggestions to improve the construction and use of reference databases for metabarcoding studies in the future.</span></p>
Supplementary Data for: "The principles of SARS-CoV-2 inter-variant competition are exemplified in the pre-Omicron era of the Colombian epidemic"
<p>Supplementary data files, including BEAST XMLs and logs from the study "The principles of SARS-CoV-2 inter-variant competition are exemplified in the pre-Omicron era of the Colombian epidemic".</p>
ERRATAS database of editorial principles and practices in printed editions of historical correspondence
<p>The ERRATAS database is the primary output of the ERRATAS project, which surveyed all the sources of the <a href="http://www.helsinki.fi/varieng/CoRD/corpora/CEEC/"><em>Corpora of Early English Correspondence</em></a> (CEEC-400) in order to investigate their editorial principles and practices. These sources are mostly printed editions of English historical correspondence.</p> <p>The data in the ERRATAS database consists of surveys of:</p> <ul> <li>editorial principles (explicit statements or anything resembling such);</li> <li>editorial practices (textual features that can be found in the edited texts);</li> <li>editorial work (evidence of contributors other than the stated editor(s)).</li> </ul> <p>This updated release of the database is in the form of <strong>two MS Excel files</strong>, one of which includes data entry forms for surveying editorial principles and practices.</p> <p>This release also comes with documentation, in the form of <strong>three pdf files</strong>:</p> <ul> <li>A <strong>manual</strong> to the database, containing a brief history of the project, and a section demonstrating with several graphs what kinds of data can be extracted from the dataset;</li> </ul> <p>and two documents which place the database into the context of its development, but more importantly facilitate the application of the ERRATAS method to survey further material:</p> <ul> <li>A <strong>checklist</strong> of textual features (<a href="https://zenodo.org/record/1187074">an earlier version can be found here</a>); and</li> <li><strong>Guidelines</strong> for surveying editorial principles and edited texts following the ERRATAS system.</li> </ul> <p><strong>Related material:</strong></p> <ul> <li><a href="https://doi.org/10.5281/zenodo.3855451"><em>Corpus of Editorial Principles (in CEEC-400 Sources)</em></a> – pdfs of the editorial principles in the editions surveyed</li> <li><a href="https://www.doi.org/10.5281/zenodo.4134471">Editions and other sources used in the <em>Corpora of Early English Correspondence</em> (CEEC-400)</a> – detailed bibliography of the sources surveyed for the ERRATAS database</li> <li>Sairio, Anni, Samuli Kaislaniemi, Anna Merikallio & Terttu Nevalainen. 2018. “Charting orthographical reliability in a corpus of English historical letters”. <em>ICAME Journal</em> 42: 79–96. DOI: <a href="http://doi.org/10.1515/icame-2018-0005">doi.org/10.1515/icame-2018-0005</a>. Open access.</li> </ul> <p><strong>Version history:</strong></p> <p>26.5.2020 Version 0.9 – Database unfinished (due to coronavirus restrictions). The current data has been checked twice. Material to be added in v1.0: database manual; database survey guidelines.</p> <p>14.4.2023 Version 1.1 – Database finished, after conversion to MS Excel. Dataset checked, corrected, amended, edited, and cleaned for release. Documentation created. Survey guidelines and data survey forms included in release.</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.