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Figure 1. (a) Classical set and (b) Fuzzy set 2.3.-An Efficient Expert System Generator for Qualitative Feed-Back Loop Analysis
<p>A membership function is a curve that represents the degree of points which belong to the<br> specific fuzzy variable. Selecting the appropriate membership function plays an essential rule in<br> design of a fuzzy logic controller. The shape of membership function could be defined based on the<br> simplicity, convenience, speed and efficiency. Many different membership functions are introduced<br> in the literatures such as triangular, trapezoidal and Gaussian. The membership function which<br> represented in figure 1(b) is a trapezoidal type.</p>
Data of the PhD thesis "Merge-and-Shrink Abstractions for Classical Planning: Theory, Strategies, and Implementation"
<p>This data set contains raw data and parsed data of all experiments [1] run for the PhD thesis. They were generated using lab (see https://doi.org/10.5281/zenodo.399255).</p> <p>The raw data files (sievers-phd2017-raw-data-part*.tar.gz) contain a subdirectory for each experiment, each containing a subdirectory for each planner run of the experiment, distributed over the directories runs-*. For each run, there are the input PDDL files, domain.pddl and problem.pddl, the compressed output as generated by the translator component of Fast Downward (output.sas.xz), the run log file "run.log" (stdout), possibly also a run error file "run.err" (stderr), and the run script "run" used to start the experiment. The latter cannot be directly used, however, because the directory containing source code and build (compiled object files) have been removed for space reasons. The code is publicly available under https://doi.org/10.5281/zenodo.1163381. The (lab) scripts for parsing run.log are also available in the main directory of each experiment. All other scripts and a corresponding lab version are available on request.</p> <p>For each raw data experiment, the parsed data file (sievers-phd2017-parsed-data.tar.gz) also contains a directory of the same name, with "-eval" appended. It contains a single file called "properties" that combines all of the experiment's parsed data (which can be and was generated from the raw data using lab and the parser scripts). They are in the json format and can be used for easy manipulation of the data. The directories with the prefix "paper-" and "talk-" are combinations of other directories (using the "fetch" mechanism of lab). It is recommended to use these, because due to technical errors, the original eval directories do not contain all runs of all planners (to be more precise: they contain all runs, but a subset of the planner have not been started in these experiments for technical errors and thus considered not solving the task). The missing ones have been run separately, see the directories with "missing-runs" in their name. This is also the reason some of these directories ("paper-", "talk-") contain files named "old-properties" and "fixed-properties" besides the actual "properties". "old-properties" are those with missing/faulty runs, "fixed-properties" are as "old-properties", however with the data of faulty runs removed, and "properties" are as "fixed-properties", however with the addition of the fixed missing runs (in fact, these always contain *all* fixed missing runs of all experiments, for technical reasons).</p> <p>The file sievers-phd2017-parsed-data-all-and-random-merge-strategies.tar.gz contains parsed data of earlier experiments (see [1]), for which no raw data has been archived. The directories contain properties files in the json format.</p> <p>[1] except raw data for the parsed data "sota-symba-spmas-eval" (which in the meantime was added to a separate data set available under https://doi.org/10.5281/zenodo.1189912) and all re-used experiments from the paper "An Analysis of Merge Strategies for Merge-and-Shrink Heuristics" (Silvan Sievers, Martin Wehrle and Malte Helmert, ICAPS 2016), for which the raw data was too large to be archived.</p>
Dataset used in the paper "Merge-and-Shrink Heuristics for Classical Planning: Efficient Implementation and Partial Abstractions"
<p>This dataset contains all raw and processed data used in the paper. It has been generated using Downward-Lab (see https://doi.org/10.5281/zenodo.399255).</p> <p>Directories without the "-eval" ending contain raw data, distributed over a subdirectory for each experiment. Each of these contain a subdirectory tree structure "runs-*" where each planner run has its own directory. For each run, there are the input PDDL files, domain.pddl and problem.pddl, the compressed output as generated by the translator component of Fast Downward (output.sas.xz), the run log file "run.log" (stdout), possibly also a run error file "run.err" (stderr), the run script "run" used to start the experiment, and a "properties" file that contains data parsed from the log file(s).</p> <p>Directories with the "-eval" ending contain a "properties" file, which contains a JSON directory with combined data of all runs of the corresponding experiment. In essence, the properties file is the union over all properties files generated for each individual planner run.</p> <p>To process the data further, we used the scripts available in the software bundle of the paper: https://doi.org/10.5281/zenodo.1290524</p>
Benchmarking data and outputs for CLASSIC v. 1.0
<p><strong>CLASSIC v. 1.0 model inputs and outputs for benchmarking </strong></p> <p>This dataset is used by scripts in the <a href="https://zenodo.org/record/3522407">CLASSIC codebase</a> along with the <a href="https://zenodo.org/record/3525249">CLASSIC Singularity software container</a>.<strong> Please ensure you obtain them prior to using this dataset. Instructions are provided on the CLASSIC <a href="https://cccma.gitlab.io/classic_pages/info/get_started/">Quick Start Guide</a>.</strong></p> <p>This dataset contains <a href="https://fluxnet.fluxdata.org/data/fluxnet2015-dataset/">FLUXNET2015</a> data that is used to benchmark the <a href="https://cccma.gitlab.io/classic_pages/">Canadian Land Surface Scheme including Biogeochemical Cycles </a>(CLASSIC) v. 1.0. All model inputs required for the (31 for version 1.0) <a href="https://cccma.gitlab.io/classic_pages/benchmarking/">FLUXNET sites</a> are provided along with example outputs that benchmark CLASSIC v. 1.0. The model outputs include raw model outputs, plots of select variables and benchmarking results from the Automated Model Benchmarking (<a href="https://cran.r-project.org/package=amber">AMBER</a>) package. Following the the CLASSIC <a href="https://cccma.gitlab.io/classic_pages/info/get_started/">Quick Start Guide</a> will generate all outputs on the user's own machine.</p> <p>This work used eddy covariance data acquired and shared by the FLUXNET community, including these networks: AmeriFlux, AfriFlux, AsiaFlux, CarboAfrica, CarboEuropeIP, CarboItaly, CarboMont, ChinaFlux, Fluxnet-Canada, GreenGrass, ICOS, KoFlux, LBA, NECC, OzFlux-TERN, TCOS-Siberia, and USCCC. The ERA-Interim reanalysis data are provided by ECMWF and processed by LSCE. The FLUXNET eddy covariance data processing and harmonization was carried out by the European Fluxes Database Cluster, AmeriFlux Management Project, and Fluxdata project of FLUXNET, with the support of CDIAC and ICOS Ecosystem Thematic Center, and the OzFlux, ChinaFlux and AsiaFlux offices.</p> <p>We thank C. Le Quéré for allowing us to distribute her CO<sub>2</sub> record that was originally made for the TRENDY project.</p> <p> </p> <p> </p> <p> </p> <p> </p>
Fig. 23 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 23. Saldula stoneri (scanning electron micrographs): A. Apicoventral view of left paramere showing setae on processus sensualis. B. Apical view of left paramere. C. Apex of paramere showing short setiform sensors. D. Detail view of gland pore on paramere. ps, processus sensualis.
Fig. 28 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 28. Strict consensus of three cladograms derived from simultaneous analysis of the 16S rDNA and H3 gene regions and morphological data. Jackknife support values for morphology + DNA sequences are shown above the line, for DNA sequence data only below the line.
Fig. 20 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 20. Pseudosaldula yungas (scanning electron micrographs). Left paramere. A. Apical view showing comblike arrangement of long setae. B. Medial detail view of setae on processus sensualis. C. Apex of paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 19 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 19. Pseudosaldula vulgaris (scanning electron micrographs). Left paramere. A. General view of ventral face. B. Detail of processus sensualis. C. Apex of paramere showing short setiform sensors. D. Dorsal view of parandria.
Fig. 25 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 25. Saldula coxalis (scanning electron micrographs). A. Frontoventral view of left paramere. B. Detail of processus sensualis showing insertion of setae on tubercles situated on moundlike area. C. Apex of paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 17 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 17. Pseudosaldula saxicola (scanning electron micrographs). Right paramere. A. Apical view showing comblike arrangement of long setae. B. Medioventral view of setae on processus sensualis. C. Detail of gland pore on paramere. D. Dorsal view of parandria.
Fig. 21 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 21. Morphology of Chiloxanthinae (scanning electron micrographs). A. Frontal view of face of Pentacora sphacelata. B. Frontal view of head of Paralosalda innova. C. Detail of postclypeal region in Paralosalda innova. D. Foreleg pretarsus of Paralosalda innova, showing reduced parempodia and absence of dorsal arolium. E. Hind leg pretarsus of Paralosalda innova showing dorsal arolium. F. Detail of dorsal arolium on hind leg in Paralosalda innova. cly, clypeus; da, dorsal arolium; mp, mandibular plate; par, parempodia; pcr, postclypeal region; tvs, transverse swelling.
Fig. 15 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 15. Pseudosaldula salina (scanning electron micrographs): Left paramere. A. View of ventral face at level of processus sensualis. B. Medioventral view of setae on processus sensualis. C. Apex of left paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 14 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 14. Pseudosaldula pilosa (scanning electron micrographs). Left paramere. A. General view of ventral face. B. Detail of setae on processus sensualis. C. Apex of paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 29 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 29. Plot of altitude against latitude and regression line (R2) showing strong correlation between altitude and latitude. Based on 256 localities.
Fig. 10 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 10. Pseudosaldula chilensis, adult (scanning electron micrographs). A. Foreleg, showing small number of spines and distal antennal cleaner on tibia. B. Detail of pretarsus of foreleg showing reduced parempodia and absence of dorsal arolium. C. Middle leg, showing moderate number of spines on tibia. D. Detail of pretarsus of middle leg showing reduced parempodia and presence of dorsal arolium. E. Hind leg, showing large number of spines on tibia. F. Detail of pretarsus on hind leg showing reduced parempodia and presence of dorsal arolium. da, dorsal arolium.
Fig. 9 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 9. Pseudosaldula chilensis (scanning electron micrographs). A. Lateral view whole specimen. B. Frontolateral view of face showing structure of transverse swelling across base of clypeus. C. Dorsal view of pronotum, scutellum, and base of hemelytra showing setae on dorsum and contrast between polished pronotum and scutellum and dull hemelytron covered with microtrichia. D. Detail of clavus showing common setae and microtrichia. E. Close-up view of microtrichia in 15D. F. Gland pore on paramere. G. Ventrolateral view of apical third of left paramere. H. Lateral view of apical region of paramere, including processus sensualis. I. Detail view of setae on processus sensualis. tvs, transverse swelling.
Fig. 8 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 8. Pseudosaldula bruesi (scanning electron micrographs): Left paramere. A. General view of ventral face. B. Detail of setae on processus sensualis from ventral face. C. Apicodorsal view of setae on processus sensualis. D. Apex of paramere showing short setiform sensors.
Fig. 3 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 3. Parameres of Pseudosaldula perula–yungas. Note: The point of insertion of many setae on the paramere cannot be seen because the paramere is heavily sclerotized and nearly opaque. Setae are therefore not drawn to show their exact distribution in many cases, but only to show their lengths and numbers. Nonetheless, the setae of the processes sensualis are drawn so as to accurately portray their number and distribution.
Fig. 2 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 2. Parameres of Pseudosaldula andensis–penai. Note: The point of insertion of many setae on the paramere cannot be seen because the paramere is heavily sclerotized and nearly opaque. Setae are therefore not drawn to show their exact distribution in many cases, but only to show their lengths and numbers. Nonetheless, the setae of the processes sensualis are drawn so as to accurately portray their number and distribution.
Fig. 1 in First Records from Japan of European Vermi-composter Dendrobaena veneta (Rosa, 1886) and of "Classical" Lumbricus terrestris Linnaeus, 1758 (Annelida, Oligochaeta, Megadrilacea, Lumbricidae)
Fig. 1. Fishing baits as supplied throughout Japan contain a variety of worm specieas including Eisenia fetida, Dendrobaena veneta & Lumbricus terrestris (author's photo).
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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