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276 results for “Integrated assessment”
Supporting Information: Environmental benefits of large-scale second-generation bioethanol production in the EU: An integrated supply chain network optimization and Life Cycle Assessment approache
<p>This supporting information provides all input data of the model, the assumptions made and the literature and database references for the publication<em> Environmental benefits of large-scale second-generation bioethanol production in the EU: An integrated supply chain network optimization and Life Cycle Assessment approache</em>. The environmental data is based on life cycle assessments, with full information on the life cycle inventory and the results of the life cycle impact assessment based on the ReCiPe method. It also includes detailed results for all objective functions in all scenarios (optimization of 18 midpoints, 3 endpoints, and economic optimization in 5 tax scenarios and 2 feedstock scenarios), and detailed results of the sensitivity analysis and Pareto optimization.</p>
Research integrity assessment for randomized controlled trials in systematic reviews
<p>A tool to assess the integrity of research reported in randomized controlled trials (RCTs) of investigational medicinal products. The assessment uses signalling questions to identify problematic RCTs and is used when studies are being considered for inclusion into systematic reviews.</p> <p>RCTs with red flags regarding research integrity should be excluded and RCTs with open questions should be held in awaiting classification until clarified.</p> <p>The results of the research integrity assessment should be transparently reported and published together with the systematic review.</p> <p> </p>
Supplementary File_Ivermectin_Research Integrity Assessment (Version 1)
<p>Supplementary material (Research Integrity Assessment Tool (Version 1)) for the updated Cochrane Review "Ivermectin for preventing and treating COVID-19".</p>
Research Integrity Assessment (RIA) Tool for RCTs in evidence synthesis
<p>The RIA tool, consisting of six domains to assess the research integrity of RCTs included in systematic reviews, is a new transparent option to include the concept of research integrity in evidence synthesis as part of the eligibility screening.</p> <p>Brief summary: Potentially eligible RCTs identified during screening should be assessed for research integrity hierarchically considering domain 1 to 6. Retraction, lack of prospective registration, lack of adequate ethical approval with informed written consent, inconsistencies in the author group and the location of the study, lack of proper randomization, implausible study results should lead to exclusion of a RCT. Concerns with the RCT in any domain put the study in ‘awaiting classification’ and should lead to further investigations. If no concerns appear through all domains or could be clarified, e.g. in correspondence with study authors, the RCT meets criteria for inclusion in the review and can be processed further. In living systematic reviews, included RCTs and RCTs ‘awaiting classification’ must be reassessed for retraction notices.</p>
Supplementary File_Nirmatrelvir_Research Integrity Assessment (Version 1)
<p>Supplementary material (Research Integrity Assessment Tool (Version 1)) for the Cochrane Review "Nirmatrelvir combined with ritonavir for preventing and treating COVID-19".</p>
Supplementary material 1 from: Nedkov S, Zhiyanski M, Dimitrov S, Borisova B, Popov A, Ihtimanski I, Yaneva R, Nikolov P, Bratanova-Doncheva S (2017) Mapping and assessment of urban ecosystem condition and services using integrated index of spatial structure. One Ecosystem 2: e14499. https://doi.org/10.3897/oneeco.2.e14499
Figure representing examples of catalogues used during the identification built and land cover types.
Supplementary material 2 from: Nedkov S, Zhiyanski M, Dimitrov S, Borisova B, Popov A, Ihtimanski I, Yaneva R, Nikolov P, Bratanova-Doncheva S (2017) Mapping and assessment of urban ecosystem condition and services using integrated index of spatial structure. One Ecosystem 2: e14499. https://doi.org/10.3897/oneeco.2.e14499
Table representing all combinations of the integrated index of spatial structute in urban ecosystems in Bulgaria
An integrated method for assessing vulnerability of buildings caused by debris flows
<p>Two datasets are provided for the development of a method in assessing culnerability of buildings caused by future debris flows. The first dataset includes the debris-flow events that caused damages to the buildings, and it is used to develop a physical vulnerability matrix. The second dataset is composed of debris-flow events that occurred in areas without distribution of buildings, and therefore no property loss is caused by these events. This dataset in our study is used for model training and utilize this model to estimate debris-flow density in future scenarios. </p>
FIGURES 152‒153 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 152‒153. Reconstruction of ancestral states by parsimony in Mesquite for two colour-pattern characters each with two states among species based on the estimate of phylogeny in Fig. 138, several of which are polymorphic and show both states for both characters (re-drawn from Williams et al. 2015): (152) banding colour pattern, with yellow spots showing yellow-banded (B) populations (minimally with yellow hair clearly visible anteriorly on the thoracic dorsum), black spots showing unbanded (U) populations, mixed yellow/black spots showing polymorphic populations, mixed yellow/grey spots showing uncertain polymorphic/monomorphic populations (*for B. alpinus, males from the Alps often have a yellow-banded pattern although this is rare among females); (153) tail colour pattern, with orange spots showing populations with pale (P: orange or white) hair on the tail (minimally with orange, yellow, or while hair clearly visible on metasomal tergum 5), black spots showing populations with dark (D: black) hair on the tail, mixed orange/black spots showing polymorphic populations.
FIGURES 148‒149 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 148‒149. Anterior / left lateral aspect of the lower part of the clypeus, the labrum, and the mandibles of males of: (148) B. neoboreus (#4867), showing the small orange hair patches at the base of the mandibles and the long dense posterior fringing black beard; (149) B. kluanensis (#4876), showing the large dense orange hair pads on the mandibles and the sparse orange hairs in the posterior fringing beard.
FIGURES 150‒151 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 150‒151. Maps of (150) specimen richness and (151) species richness for the subgenus Alpinobombus among equalarea grid cells recorded from 4450 geo-referenced specimens in the database. The grid is based on longitudinal intervals of 10°, which are used to calculate graduated latitudinal intervals to provide equal-area cells (each cell of area approximately 611,000 km²). Grey scale (right) with equal-frequency richness classes, maximum value in a separate class. Cylindrical orthomorphic equal-area projection (excluding Antarctica) with north at the top of the map.
FIGURES 144‒147 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 144‒147. Morphology of males. Dorsal aspect of the penis valves of: 144, B. natvigi; 145, B. neoboreus (white lines indicate location of the subapical outer tooth of the left penis valve). Dorsal aspect of left gonostylus: 146 B. kirbiellus; 147, B. polaris (white lines indicate anterior, midpoint, and posterior median projections of left gonostylus).
FIGURES 140‒143 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 140‒143. Morphology of females (queens). Left lateral aspect of the oculo-malar area of: 140, B. polaris; 141, B. kirbiellus (white lines indicate length and breadth measurements). Left lateral aspect of the outer surface of the left hind tibia (corbicular area): 142, B. polaris; 143, B. neoboreus (white lines indicate highlights in the central area).
FIGURE 138 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURE 138. Dated estimate of the phylogenetic tree for the species of the subgenus Alpinobombus (Table 5) from a *BEAST analysis of four genes (COI, 16S, PEPCK, opsin) using species from the integrative assessment and with B. ignitus as the outgroup (not shown). Values above the nodes are Bayesian posterior probabilities showing branch support for groups. Values below the nodes are estimated dates of divergence in Ma (millions of years before the present) calibrated from a molecular estimate for the date of crown divergence within the subgenus Alpinobombus (Hines 2008). Grey bars show the 95% confidence limits on the estimated dates of divergence.
FIGURE 139 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURE 139. Most likely biogeographic reconstruction for species of the subgenus Alpinobombus from S-DIVA analysis using the short-distance dispersal (no jumps) model in Fig. 8 and the estimate of phylogeny in Fig. 138 with B. ignitus as the outgroup (not shown). Letters represent the areas listed in Table 6 and in Fig. 8: letter combinations in grey below terminals show species' current distributions; letter combinations above the nodes show the (joint) most likely optimised reconstructions of ancestral distributions, with the probabilities of these solutions for these nodes shown below the nodes (selected alternative reconstructions with lower probabilities are shown in parenthesis and the solutions with more widespread and undifferentiated distributions are shown in grey). Numbers in circles at nodes identify events discussed in the text.
FIGURE 7. Sample sites and climatic suitability for all Alpinobombus species combined estimated using Maxent from climate variables for the year 2000 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURE 7. Sample sites and climatic suitability for all Alpinobombus species combined estimated using Maxent from climate variables for the year 2000. Bright yellow and brown areas show where the logistic prediction of occurrence is p> 0.5 (the outlier records with exceptionally low probabilities of suitability were excluded in step-wise iterations); brown spots show all consistent Alpinobombus site records; '?' shows the five records that are in climatically outlying sites. Polar projection, North Pole (starred) at the centre of the map, international boundaries and the Arctic Circle shown as narrow grey lines.
FIGURE 10 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURE 10. Map of the entire global distribution of records of B. kluanensis s. l.. Grey crosses are records for any Alpinobombus species; black crosses are records of B. neoboreus; overlayed with small white spots for specimens of B. kluanensis s. l.; large green spots for sequenced samples with the kluanensis s. str. alleles (collected 2010‒2016); small red spots for sequenced samples with the 'unnamed2' allele (collected 2015‒2017). Relief map with hill shading, with a Polar projection, and with the Arctic Circle and the USA (Alaska) / Canada (Yukon) international boundary shown as grey lines. North pointer and scale bar below, with an inset that shows the location of the detailed area of the global map. Image created in ArcGIS using World_Shad- ed_Relief basemap which is Copyright: © 2014 Esri.
FIGURES 77‒88. 77 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 77‒88. 77: Bombus kirbiellus global distribution (as for Fig. 15). 78‒88 colour patterns (as for Figs. 16‒21): 78 (#556) Canada-Nunavut; 79 (#294) Canada-Nunavut; 80 (#100) Canada-Nunavut; 81 (#3791) USA-Colorado; 82 (#3790) USA-Colorado; 83 (#3765) Canada-Nunavut; 84 (#3792) USA-Colorado; 85 (#3797) USA-Colorado; 86 (#4915) USA Alaska; 87 (#3768) Canada-Nunavut; 88 (#3812) USA-Colorado.
FIGURES 11‒13. 11 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 11‒13. 11: gene trees for COI; 12: gene trees for 16S; and 13: species trees from *BEAST analysis of data from Thanoosing (2017) displayed using Densitree. Each plot shows the background density of trees from samples of 10,000 Bayesian trees, with the summary 'root canal' tree superimposed as a thick line, and the branches exclusively linking samples of B. kluanensis s. l. (#4850, 4869, 4870, 4873) traced in red.
FIGURES 129‒137 in The arctic and alpine bumblebees of the subgenus Alpinobombus revised from integrative assessment of species' gene coalescents and morphology (Hymenoptera, Apidae, Bombus)
FIGURES 129‒137. Morphology of the male genitalia for species of the subgenus Alpinobombus from the dorsal aspect, anterior to the left of the image, posterior to the right: 129 B. alpinus (#3824); 130 B pyrrhopygus (#3833); 131 B. polaris (#73); 132 B. balteatus (#3843); 133 B. kirbiellus (#3768); 134 B. neoboreus (#4387); 135 B. kluanensis (#4876); 136 B. natvigi (#81); 137 B. hyperboreus (#3821).
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.