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708 results for “Java”
Subspecies and Distribution. H. a. ater Templeton, 1848 - India and Sri Lanka. H. a. amboinensis Peters, 1871 — Ambon I, Moluccas. H. a. antricola Peters, 1861 — Philippines. H. a. aruensisj. E. Gray, 1858 — New Guinea, Bismarck Archipelago, Woodlark I, and E Australia (Queensland). H. a. gilberti D. H. Johnson, 1959 - Western Australia and Northern Territory, Australia. H. a. naUamalaensis. Srinivasulu & B. Srinivasulu, 2006 - Eastern Ghats, Andhra Pradesh, India. H. a. saevus K. Andersen, 1918 - Myanmar S to Peninsular Malaysia, Sumatra, N Borneo, Java, Lesser Sunda Is (Bali and Lombok), Sulawesi, Moluccas, and Kai Is. Range of this subspecies is tentative and needs revision. in Family Hipposideridae (Old World Leaf-nosed Bats)
Subspecies and Distribution. H. a. ater Templeton, 1848 - India and Sri Lanka. H. a. amboinensis Peters, 1871 — Ambon I, Moluccas. H. a. antricola Peters, 1861 — Philippines. H. a. aruensisj. E. Gray, 1858 — New Guinea, Bismarck Archipelago, Woodlark I, and E Australia (Queensland). H. a. gilberti D. H. Johnson, 1959 - Western Australia and Northern Territory, Australia. H. a. naUamalaensis. Srinivasulu & B. Srinivasulu, 2006 - Eastern Ghats, Andhra Pradesh, India. H. a. saevus K. Andersen, 1918 - Myanmar S to Peninsular Malaysia, Sumatra, N Borneo, Java, Lesser Sunda Is (Bali and Lombok), Sulawesi, Moluccas, and Kai Is. Range of this subspecies is tentative and needs revision.
Distribution. NE India, NE Bangladesh, S China (including Hainan I), mainland SE Asia, Sumatra (including Simeulue, Nias, and Mentawai Is), Borneo, Java, Kangean, Bali, and many offshore Is. in Family Hipposideridae (Old World Leaf-nosed Bats)
Distribution. NE India, NE Bangladesh, S China (including Hainan I), mainland SE Asia, Sumatra (including Simeulue, Nias, and Mentawai Is), Borneo, Java, Kangean, Bali, and many offshore Is.
Subspecies and Distribution. . c. canuti Thomas & Wroughton, 1909 — Java (three localities), and Nusa Barong ail'd Bali Is. . c. timorensis R. E. Goodwin, 1979 — Timor I. in Rhinolophidae
Subspecies and Distribution. . c. canuti Thomas & Wroughton, 1909 — Java (three localities), and Nusa Barong ail'd Bali Is. . c. timorensis R. E. Goodwin, 1979 — Timor I.
Subspecies and Distribution. R. a. afinis Horsfield, 1823 - Malay Peninsula (including Langkawi and Tioman Is), Sumatra, North Pagai I in Mentawai Is, and Java. R. a. hainanusJ. A. Allen, 1906 - Hainan I, China. R. a. himalayanus K Andersen, 1905 — N India (Uttarakhand, Uttar Pradesh, Sikkim, West Bengal, Assam, Meghalaya, Arunachal Pradesh, and Nagaland), Nepal, Bhutan, NE Bangladesh, N Myanmar, and C & S China (Sichuan, Yunnan, Shaanxi, Hubei, Hunan, and Guizhou). R. a. macrurus K. Andersen, 1905 - SE China (Jiangsu, Anhui, Zhejiang, Jiangxi, Fujian, Guangdong, Hong Kong, and Guangxi), S Myanmar, Thailand, Laos, and Vietnam (including Dao Tra Ban and Phu Quoc Is); possibly also Cambodia. R. a. nesites K. Andersen, 1905 - Borneo (including Laut, Sebuku, and Laut Kecil Is) and Anamba and Natuna Is. R. a. princeps K. Andersen, 1905 — Kangean (Kangean and Sepanjang Is), Lombok, Sumbawa, Flores, and Sumba Is. A morphologically distinct subspecies (still unnamed) is known from E Myanmar and N Vietnam. in Rhinolophidae
Subspecies and Distribution. R. a. afinis Horsfield, 1823 - Malay Peninsula (including Langkawi and Tioman Is), Sumatra, North Pagai I in Mentawai Is, and Java. R. a. hainanusJ. A. Allen, 1906 - Hainan I, China. R. a. himalayanus K Andersen, 1905 — N India (Uttarakhand, Uttar Pradesh, Sikkim, West Bengal, Assam, Meghalaya, Arunachal Pradesh, and Nagaland), Nepal, Bhutan, NE Bangladesh, N Myanmar, and C & S China (Sichuan, Yunnan, Shaanxi, Hubei, Hunan, and Guizhou). R. a. macrurus K. Andersen, 1905 - SE China (Jiangsu, Anhui, Zhejiang, Jiangxi, Fujian, Guangdong, Hong Kong, and Guangxi), S Myanmar, Thailand, Laos, and Vietnam (including Dao Tra Ban and Phu Quoc Is); possibly also Cambodia. R. a. nesites K. Andersen, 1905 - Borneo (including Laut, Sebuku, and Laut Kecil Is) and Anamba and Natuna Is. R. a. princeps K. Andersen, 1905 — Kangean (Kangean and Sepanjang Is), Lombok, Sumbawa, Flores, and Sumba Is. A morphologically distinct subspecies (still unnamed) is known from E Myanmar and N Vietnam.
Subspecies and Distribution. R.p. pusillus Temminck, 1834 - N Sumatra, N, E & S Borneo (including Banggi I), W Java, and Bali I. R. p. blythi K. Andersen, 1918 - N India (Uttarakhand, Sikkim, West Bengal, Assam, Meghalaya, and Arunachal Pradesh), Nepal, Bhutan, and SE Bangladesh. R.p. calidusG. M. Allen, 1923-SE China (Guizhou, Guangxi, Guangdong, and Fujian, along with a recent record from Beijing area that may represent this subspecies). R. p. gracilis K. Andersen, 1905 - S India (Andhra Pradesh, Karnataka, Kerala, and Tamil Nadu). R.p. lakkhanae Yoshiyuki, 1990 - S China (Yunnan), Thailand, Laos, Vietnam (including Cat Ba I), Cambodia, and Peninsular Malaysia (including Tioman I). R.p. minutillusG. S. Miller, 1906 —Anambas Is (Siantan). R.p. pagi Tate & Archbold, 1939 — Mentawai Is (North Pagai). R.p. parcus G. M. Allen, 1928 - Hainan I, China. R. p. szechwanus K Andersen, 1918 - Myanmar and C China (Sichuan, Guizhou, Hubei, and probably Yunnan). in Rhinolophidae
Subspecies and Distribution. R.p. pusillus Temminck, 1834 - N Sumatra, N, E & S Borneo (including Banggi I), W Java, and Bali I. R. p. blythi K. Andersen, 1918 - N India (Uttarakhand, Sikkim, West Bengal, Assam, Meghalaya, and Arunachal Pradesh), Nepal, Bhutan, and SE Bangladesh. R.p. calidusG. M. Allen, 1923-SE China (Guizhou, Guangxi, Guangdong, and Fujian, along with a recent record from Beijing area that may represent this subspecies). R. p. gracilis K. Andersen, 1905 - S India (Andhra Pradesh, Karnataka, Kerala, and Tamil Nadu). R.p. lakkhanae Yoshiyuki, 1990 - S China (Yunnan), Thailand, Laos, Vietnam (including Cat Ba I), Cambodia, and Peninsular Malaysia (including Tioman I). R.p. minutillusG. S. Miller, 1906 —Anambas Is (Siantan). R.p. pagi Tate & Archbold, 1939 — Mentawai Is (North Pagai). R.p. parcus G. M. Allen, 1928 - Hainan I, China. R. p. szechwanus K Andersen, 1918 - Myanmar and C China (Sichuan, Guizhou, Hubei, and probably Yunnan).
Modeled maximum tsunami height along the south coast of Java
<p>Modeled maximum tsunami height along the south coast of Java.</p> <p>Please refer to:</p> <p>Widiyantoro, S., Gunawan, E., Muhari, A., Rawlinson, N., Mori, J., Hanifa, N.R., Susilo, S., Supendi, P., Shiddiqi, H.A., Nugraha, A. D., Putra, H. E. (2020). Seismic gaps south of Java, Indonesia: Implications for megathrust earthquakes and tsunamis, Scientific Reports (submitted).</p>
Dataset for: Investigating the Perception and Effects of Misunderstandings in Java Code
<p>Dataset and scripts used for thesis: Investigating the Perception and Effects of Misunderstandings in Java Code.</p> <p># Contents of this archive</p> <p>The data and scripts used for the Master thesis `Investigating the Perception and Effects of Misunderstandings in Java Code`, by Chris Langhout.</p> <p>Provided for reproducibility and openness of data.</p> <p>In this readme, I try to specify what files are used for what, and what files include what results.</p> <p> </p> <p>## folders</p> <p> </p> <p>### /atoms-java</p> <p>Includes all .java files for the code examples used in the online experiment.</p> <p> </p> <p>### /atoms_screenshots-java-normal</p> <p>Includes screenshots of all .java files. Generated by `autoScreenshot.py`.</p> <p> </p> <p>### /data-analysis</p> <p> </p> <p>#### /data-analysis/atom-data</p> <p>- `java-answers.csv` set of computed results of snippets. Created by `javaAnswers.py`.</p> <p>- `new-atom-java.csv` contains atom names, in combination with their hashed counterparts. Used for combining answers back to their original questions, and generated by `autoScreenshot.py`.</p> <p> </p> <p>#### /data-analysis/survey-data</p> <p> </p> <p>Contains the export of the survey tool. Only in scanned `.ods` format.</p> <p> </p> <p>#### /data-analysis/grader.ts</p> <p> </p> <p>Used to grade the responses, and generate new datasets that are used for data analysis. Made use of the raw export of the survey response (not included for participant data protection, contact chris.langhout *at* gmail *dot* com for any other info).</p> <p> </p> <p>### /result-data</p> <p>Output folder of `grader.ts` script.</p> <p>- `perceptAnswers.html` is used to find out what explanations were added by participants on the perception part of the experiment. To give context, the screenshots are used.</p> <p>Below each atom, the set of explanations is shown, based on what answer people gave. For better readability, the custom ordering this participant saw, is also included. e.g. (2 is ob) means that the right side screenshot the participant saw was the obfuscated variant.</p> <p>- `atomTimes.ods` includes a spreadsheet tab `RAWresultTable` which combines the counts of occurances, correct answers, incorrect answers, answers that were corrected by the grader, and total wrong answers. For every wrong answer, the given answer is displayed.</p> <p>Futhermore, the counts on how much participans were certain of their answer are counted and shown, split by correct/incorrect answer. An additional column with the comments placed here is added.</p> <p>The textual columns split different answers by a '|' character.</p> <p>- `effectOddsCI.ods` contains the same RAWresultTable, and also includes an `oddsRations` worksheet. Here the calculations for the odds ratios, including confidence intervals are shown. The `sheet3` highlights interesting atoms where the indicated confidence on answers is standing out. (this one does not work in excel, due to regular expression support. I used LibreOffice for this)</p> <p>- `perceptResultCounts.ods` shows the resulting counts of the perception side of the experiment. The sum of people that voted for the respective one of 4 options is displayed per atom.</p> <p> </p> <p>Additionally several data files, that are used to manually create one of the files mentioned above.</p> <p> </p> <p>### /figures</p> <p>includes several `.xslx` files used for creating tables and figures.</p> <p> </p> <p>## Scripts</p> <p> </p> <p>### autoScreenshot.py</p> <p>used to open the individual .java files for the code examples in vscode.</p> <p>Have vscode open on the right half of the screen to make a screenshot, including the line numbers, excluding the first commented out lines, and save with the appropriate file name in the specified folder.</p> <p> </p> <p>Includes support for hashing the filenames, so that inspecting the images in the online experiment will not show the name of the atom of confusion.</p> <p> </p> <p>### runJava.sh</p> <p>Create a `temp.java` file, copy the input into this file. Then try to compile this java code, run the compiled code (which prints results) and remove the created files again. save results in atom-data/java-answers.csv</p> <p> </p> <p>### javaAnswers.py</p> <p>run the `runJava.sh` script over the code snippets and save the results in `java-answers.csv`</p> <p> </p> <p>### gen_skeleton.py</p> <p>Make use of the data from https://atomsofconfusion.com/2016-snippet-study/questions.csv to generate files, and save metadata of the atoms-of-confusion from that source.</p> <p><br> <br> </p>
Relocated Earthquake Catalog (Shallow Depth) for West Java-Indonesia (2009 to 2015)
<p>Relocated Earthquake Catalog (Shalloh Depth) for West Java-Indonesia (2009 to 2015)</p> <p>Please refer to:</p> <p>Supendi, P., Nugraha, A.D., Puspito, N.T., Widiyantoro, S., Daryono, D. (2018). Identification of active faults in West Java, Indonesia, based on earthquake hypocenter determination, relocation, and focal mechanism analysis. Geosci. Lett. 5, 31, https://doi.org/10.1186/s40562-018-0130-y</p>
FIGURES 5–12 in Megymenum tuberculatum, a new species of Megymenini from Java and a review of distribution of M. brevicorne (Hemiptera: Heteroptera: Dinidoridae)
FIGURES 5–12. Visual comparison of pronotum shape and size of dorsal anterior tubercle in eight species of the genus Megy- menum Guérin-Méneville, 1831. 5—Megymenum tuberculatum Hemala & Kocorek, sp. nov.; 6—M. brevicorne (Fabricius, 1787); 7—M. basale Walker, 1868; 8—M. parallelum Vollenhoven, 1868; 9—M. spinosum (Burmeister, 1834); 10—M. mekon- gum Distant, 1921; 11—M. pratti Distant, 1911; 12—M. gracilicorne Dallas, 1851. (Photo: V. Hemala).
Data from: Characterising bird-keeping user-groups on Java reveals distinct behaviours, profiles and potential for change
<p>1. Over 70 million cage-birds are kept across 12 million households on the island of Java, Indonesia, fuelling serious concerns for the health of regional wild bird populations. Understanding the behaviours, preferences and demographic profiles of bird-keepers will guide attempts to reduce demand for wild birds and hence the impact of trade on wild populations and their host ecosystems.</p> <p>2. We profile three songbird-keeping user-groups based on interviews of nearly one thousand people across Java: Hobbyists, who own birds primarily as pets; Contestants, who own birds to enter in singing contests; and Breeders, who own birds to breed and train for resale or as a pastime.</p> <p>3. User-groups diverged in their bird-keeping habits and preferences. Hobbyists tended to own small numbers of inexpensive and typically native birds, while contestants and breeders owned larger numbers of often valuable birds. Hobbyists were far less likely to consider origin when buying a bird, owned a larger proportion of both potentially wild-caught and globally threatened birds, but showed no preference for any taxon. By contrast, owning relatively large numbers of lovebirds (Agapornis spp.) and Zebra Doves (Geopelia striata) were key characteristics of contestants, while breeders owned the largest number of birds and species, in particular White-rumped Shamas (Kittacincla malabarica). Within a two-year period, user-group membership was fluid, with much transitioning between non-bird ownership and hobbyists, recruitment of non-bird owners to contestants, and movement both in and out of the breeder group.</p> <p>4. Our study provides behavioural change efforts with demographic and geographic profiles to target bird-keepers, who tended to be more affluent, urban and live in the eastern provinces. Among bird-keepers, hobbyists tended to be middle-aged and live in the western provinces, contestants were younger urban bird-keepers employed in business, and breeders were commoner in the eastern provinces, reflecting the cultural importance of bird-keeping among the Javanese.</p> <p>5. Efforts to increase the sustainability of bird-keeping in Java should focus on emphasising the importance of captive-bred birds, in particular to hobbyists, the largest user-group, whose bird-keeping behaviour poses the biggest threat to wild bird populations, whilst also incentivising legitimate breeding enterprises among contestants and breeders.</p>
Trace-based Debloat for Java Bytecode, experiment results
<p>This entry contains the experiment results of the paper <em>Trace-based Debloat for Java Bytecode. </em>It contains executions logs, coverage reports, test results reports, jars.</p>
Eclipse Static Analysis - 10 Java projects
<p>This dataset consists of Eclipse's static analysis performed on 10 Java projects.</p> <p>For each <em>.java</em> file of a test project, we ran a static analysis using Eclipse JDT Core allows us to retrieve all the possible function calls based on typing/imports for a given completion site). Each java project has three files structured as follows:</p> <ul> <li><strong>*.json file. </strong>The file contains all the method declarations of the project and the function calls in their body. For each function call, the file lists all the possible function call that could have been made at that place in the source code. For practical purposes, we splitted this file into two text files.</li> <li><strong>*_sequences.txt file. </strong>This file consists of all the method declaration + function call sequences in the project. The last element of each line corresponds to a completion site.</li> <li><strong>*_proposals.txt file.</strong> Each line is made of the function-call suggestions retrieved by static analysis for the corresponding line in the <em>*_sequences.txt</em> file.</li> </ul> <p>The corpus was used for the experiments in the paper <strong>Combining Code Embedding with Static Analysis for Function-Call Completion</strong>.</p> <p>Github repository to replicate the experiments: https://github.com/mweyssow/cse-saner</p>
Data from: Wood and non wood forest products of Central Java, Indonesia
We investigated herb and woody species at rehabilitated forests planted by mahogany and teak, and original, not rehabilitated forests in Yogyakarta, Indonesia. Plant species were classified into five use categories: medicine, food, fodder, ornament and construction. We registered 142 species belonging to 54 families known as useful species with at least one, often more, use categories. The number of useful species was highest for medicine use (107 species). There was a dominance of exotic herb species used for food and annual herbs used for fodder. The number of useful herbs and exotic woody species was highest in teak stands. The number of woody species used for medicine, food and construction were higher than those for ornament and fodder. All herb species decreased with time, except annual native, that increased. Around 50% of the useful species occurred only once in one site, and some species showed a distribution restricted to one type of stands. Overall, our results seem to show that rehabilitated stands are doing well with regard to useful herb and woody species. We suggest strategies for plant and ecosystem conservation, especially for rare native plant species and species with restricted distribution.
Dataset of method calls and type-usages of java software
<p>The dataset used in</p> <p>Detecting Missing Method Calls as Violations of the Majority Rule (Martin Monperrus, Mira Mezini), In ACM Transactions on Software Engineering and Methodology, ACM, volume 22, 2013</p>
Analysis of Overhead in Dynamic Java Performance Monitoring (data)
<p>In production environments, runtime performance monitoring is often limited to logging of high level events. More detailed measurements, such as method level tracing, tend to be avoided because their overhead can disrupt execution. This limits the information available to developers when solving performance issues at code level.</p> <p>One approach that reduces the measurement disruptions is dynamic performance monitoring, where the measurement instrumentation is inserted and removed as needed. Such selective monitoring naturally reduces the aggregate overhead, but also introduces transient overhead artefacts related to insertion and removal of instrumentation. We experimentally analyze this overhead in Java, focusing in particular on the measurement accuracy, the character of the transient overhead, and the longevity of the overhead artefacts.</p> <p>Among other results, we show that dynamic monitoring requires time from seconds to minutes to deliver stable measurements, that the instrumentation can both slow down and speed up the execution, and that the overhead artefacts can persist beyond the monitoring period.</p> <p>The attached files are a subset of our measurements of the SPECjbb2015 benchmark.</p>
Online Appendix for "An Exploratory Study of the State of Practice of Performance Testing in Java-Based Open Source Projects"
<p>Here we collect some raw data and additional material to the paper <em>"An Exploratory Study of the State of Practice of Performance Testing in Java-Based Open Source Projects"</em>, by Philipp Leitner and Cor-Paul Bezemer.</p>
FIGURE 1 in On the systematic position of Dino Loman and Toccolus Roewer (Opiliones, Laniatores, Epedanidae), with the description of a new species from western Java, Indonesia
FIGURE 1. Toccolus javanensis sp. nova, male holotype from Gunung Puncak, Java, habitus, dorsal view. Scale bar = 1 mm.
FIGURES 6–8 in On the systematic position of Dino Loman and Toccolus Roewer (Opiliones, Laniatores, Epedanidae), with the description of a new species from western Java, Indonesia
FIGURES 6–8. Toccolus javanensis sp. nova, male holotype from Gunung Puncak, Java, penis distal part. 6, dorsal view; 7, lateral view; 8, ventral view. Scale bar = 0.1 mm.
FIGURES 2–5 in On the systematic position of Dino Loman and Toccolus Roewer (Opiliones, Laniatores, Epedanidae), with the description of a new species from western Java, Indonesia
FIGURES 2–5. Toccolus javanensis sp. nova, male holotype from Gunung Puncak, Java. 2, habitus, lateral view; 3, Right chelicera, frontal view; 4, Left pedipalpal trochanter, ectal view, detail; 5, Right pedipalpal patella to tarsus, ventral view. Scale bars = 1 mm.
FIGURE 1. Rhipidocotyle danai n in Bucephalids (Digenea: Bucephalidae) from marine fishes off the south-western coast of Java, Indonesia, including the description of two new species of Rhipidocotyle and comments on the marine fish digenean fauna of Indonesia
FIGURE 1. Rhipidocotyle danai n. sp. Ventral view of holotype, uterus in outline. Scale-bar = 500μm.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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