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1,146 results for “collaboration;”
Sharing-Collaborative
<p>Scientific publications i from 2010 to 2020 indexed in the WOS containing the keywords "sharing economy," or "collaborative economy" or "platform tourism" or "pear to pear" or "P2P" or "airbnb."</p>
FOCAL Dataset: Ford-OLIVES Collaboration on Active Learning
<p>In this dataset, we introduce the FOCAL (Ford-OLIVES Collaboration on Active Learning) dataset which enables the study of the impact of annotation-cost within a video active learning setting. Annotation-cost refers to the time it takes an annotator to label and quality-assure a given video sequence. A practical motivation for active learning research is to minimize annotation-cost by selectively labeling informative samples that will maximize performance within a given budget constraint. However, previous work in video active learning lacks real-time annotation labels for accurately assessing cost minimization and instead operates under the assumption that annotation-cost scales linearly with the amount of data to annotate. This assumption does not take into account a variety of real-world confounding factors that contribute to a nonlinear cost such as the effect of an assistive labeling tool and the variety of interactions within a scene such as occluded objects, weather, and motion of objects. FOCAL addresses this discrepancy by providing real annotation-cost labels for 126 video sequences across 69 unique city scenes with a variety of weather, lighting, and seasonal conditions. These videos have a wide range of interactions that are at the intersection of infrastructure-assisted autonomy and autonomous vehicle communities. We show through a statistical analysis of the FOCAL dataset that cost is more correlated with a variety of factors beyond just the length of a video sequence. We also introduce a set of conformal active learning algorithms that take advantage of the sequential structure of video data in order to achieve a better trade-off between annotation-cost and performance while also reducing floating point operations (FLOPS) overhead by at least 77.67%. We show how these approaches better reflect how annotations on videos are done in practice through a sequence selection framework. We further demonstrate the advantage of these approaches by introducing two performance-cost metrics and show that the best conformal active learning method is cheaper than the best traditional active learning method by 113 hours. </p><p>This work took place at the <a href="https://ghassanalregib.info/">OLIVES Lab @ Georgia Tech. </a></p><p>The codebase associated with this work can be found at this <a href="https://github.com/olivesgatech/FOCAL_Dataset">Github</a>.</p><p>Please refer to our <a href="https://github.com/olivesgatech">lab-wide github</a> for more information regarding the code associated with our other papers.</p>
Supplementary material 2 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Brief distribution records
Supplementary material 1 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Scientific articles on Philippine herpetology, published from 2002–2022
Figure 6 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Figure 6 The total number of papers grouped by the first author's A gender (7.13 male: 1.0 female) and B nationality (1.07 foreign: 1.0 Filipino).
Figure 4 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Figure 4 A Accumulation curves depicting the relationships between the cumulative total number of species per taxon (key) and the year of description. The orange bars indicate the number of new species described annually B number of papers published under the Taxonomy category, grouped by data type.
Figure 5 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Figure 5 Maps showing the type localities of A new species described in the past two decades B localities of new distribution records and natural history notes, and C the inventory sites available from publications and curated databases. Dashed squares indicate understudied regions (C) where comprehensive surveys have not yet been published, but natural history notes and new geographical records have begun to fill spatial gaps.
Figure 3 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Figure 3 Total of published papers compiled (2002–2022) A category per taxon and B category proportions in percentages.
Figure 2 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Figure 2 Philippine herpetological research papers published (2002–2022) A with Poisson regression line and B local polynomial regression. The gray shading represents the 95% confidence interval of the regression models, and the light green shade indicates the trend in terms of the number of papers published per year.
Figure 1 from: Meneses CG, Pitogo KME, Supsup CE, Brown RM (2024) Philippine herpetology (Amphibia, Reptilia), 20 years on: two decades of progress towards an increasingly collaborative, equitable, and inclusive approach to the study of the archipelago's amphibians and reptiles. ZooKeys 1190: 213-257. https://doi.org/10.3897/zookeys.1190.109586
Figure 1 Map of the Philippine archipelago, situated in Southeast Asia (inset map), showing the recognized Pleistocene Aggregate Island Complexes (PAICs) and small island groups.
C19 Rapid Reviewers Collaboration - Publisher DataSet for COVID-19 Papers Submitted Jan 2020-March 2021
<p>A dataset from some of the publishers involved in the C19Rapid Reviewer Collaboration. The data shows volumes of submissions and time to publication for COVID-19 papers from specific journals taking part in the initiative from January 2020 until March 2021. The data was supplied by eLife, The Royal Society, Hindawi, GigaScience and CUP.</p>
Collaborative annotation of 3D digital cultural heritage: A new FOSS toolchain
<p>A suite of tools for semantic annotation of 3D cultural artefacts is being developed as part of the <a href="https://nfdi4culture.de/">NFDI4Culture</a> project across several partner organisations (led by the <a href="https://www.tib.eu/de/forschung-entwicklung/forschungsgruppen-und-labs/open-science">Open Science Lab at TIB, Hannover</a>). Operating within Task area 1: Data capture and enrichment, the proposed toolchain focuses on the annotation of 3D data within an open knowledge graph environment, so that 3D objects’ metadata and related annotations can be linked to various resources, part of the semantic web and all data is searchable via a public SPARQL endpoint. </p>
Video Recordings for: Collaborative Software Visualization for Program Comprehension
<p>This package includes the video recordings of our user study.</p>
Supplementary material 1 from: Campbell SE, Simberloff D (2022) Forty years of invasion research: more papers, more collaboration...bigger impact? NeoBiota 75: 57-77. https://doi.org/10.3897/neobiota.75.86949
Appendices S1, S2
Figure 5 from: Keshavan A, Madan CR, Datta E, McDonough IM (2017) Mindcontrol: Organize, quality control, annotate, edit, and collaborate on neuroimaging processing results. Research Ideas and Outcomes 3: e12276. https://doi.org/10.3897/rio.3.e12276
Figure 5 - Example of new scatterplot function. Structural Foreground to Background Energy Ratio is positively related with Structural Contrast to Noise Ratio. Single data points can also be highlighted to detect outlers.
Figure 4 from: Keshavan A, Madan CR, Datta E, McDonough IM (2017) Mindcontrol: Organize, quality control, annotate, edit, and collaborate on neuroimaging processing results. Research Ideas and Outcomes 3: e12276. https://doi.org/10.3897/rio.3.e12276
Figure 4 - Example of scatterplot function to display the relationship of metrics in longitudinal data
Figure 2 from: Keshavan A, Madan CR, Datta E, McDonough IM (2017) Mindcontrol: Organize, quality control, annotate, edit, and collaborate on neuroimaging processing results. Research Ideas and Outcomes 3: e12276. https://doi.org/10.3897/rio.3.e12276
Figure 2 - The longitudinal view of a single subject and their quality metrics over time. Clicking on a point on the plots on the left-hand side loads the correponding image on the right.
Figure 5 from: Wetzel F, Despot Belmonte K, Bingham H, Underwood E, Hoffmann A, Häuser C, Mikolajczyk P, Vohland K (2017) 4th European Biodiversity Observation Network (EU BON) Stakeholder Roundtable: Pathways to sustainability for EU BONs network of collaborators and technical infrastructure. Research Ideas and Outcomes 3: e11875. https://doi.org/10.3897/rio.3.e11875
Figure 5 - Group 2 discussion: Strategies, Business Plan and EU BON sustainability (Credits: F. Wetzel)
Figure 4 from: Wetzel F, Despot Belmonte K, Bingham H, Underwood E, Hoffmann A, Häuser C, Mikolajczyk P, Vohland K (2017) 4th European Biodiversity Observation Network (EU BON) Stakeholder Roundtable: Pathways to sustainability for EU BONs network of collaborators and technical infrastructure. Research Ideas and Outcomes 3: e11875. https://doi.org/10.3897/rio.3.e11875
Figure 4 - Visualisation of Lepidoptera density occurences: World Map (darker colors indicate a higher number of occurrences) and Lepidoptera occurences chart bar per year, exemplified with the country data of Germany (EU BON European Biodiversity Portal, beta version 11/2016).
Figure 2 from: Wetzel F, Despot Belmonte K, Bingham H, Underwood E, Hoffmann A, Häuser C, Mikolajczyk P, Vohland K (2017) 4th European Biodiversity Observation Network (EU BON) Stakeholder Roundtable: Pathways to sustainability for EU BONs network of collaborators and technical infrastructure. Research Ideas and Outcomes 3: e11875. https://doi.org/10.3897/rio.3.e11875
Figure 2 - Potential organizational structure of a future EU BON, e.g. with a 'core EU BON' (blue rectangle). Presentation Dirk Schmeller (UFZ) in collaboration with Katherine Despot-Belmonte (UNEP-WCMC). (Credits: Pan X., 2015, CC BY 4.0)
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.