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1,184 results for “conversion”
Ways of Telling About Society. Howard S. Becker in Conversation With Reiner Keller
<p>Video of</p> <p>Becker, Howard S. & Keller, Reiner (2016). Ways of Telling About Society. Howard S. Becker in Conversation With Reiner Keller. Forum Qualitative Sozialforschung / Forum: Qualitative Social Research, 17(2), Art. 12,<br /> http://nbn-resolving.de/urn:nbn:de:0114-fqs1602122.</p>
High average power parametric wavelength conversion at 3.31–3.48 μm in MgO:PPLN
<p>Open access data set for manuscript "High average power parametric wavelength conversion at 3.31–3.48 μm in MgO:PPLN" published in Optics Express, Advanced Solid-State Lasers 2016 Special Issue, Vol 25, No 4 (2017) .</p>
Selective Conversion of CO2 into Propene and Butene
<p>Supplementary information: Synthesis, N2 adsorption, XPS, PXRD, SEM, TEM, test results, GC data, TGA, IR, calculated energy and structure data </p>
Highly effective conversion of CO2 into light olefins abundant in ethene
<p>Supplementary material: N2 adsorption, PXRD, XPS, SEM, TEM, testing data, GC chromatographs, TGA, IR, transition state energy calculations</p>
Data from: Interactive bioacoustic playback as a tool for detecting and exploring nonhuman intelligence: "Conversing" with an Alaskan humpback whale
<p>Here we report on a rare and opportunistic acoustic turn-taking with an adult female humpback whale, known as Twain, in Southeast Alaska. Post hoc acoustic and statistical analyses of a 20-minute acoustic exchange between the broadcast of a recorded contact call, known as a 'whup/throp', with call responses by Twain revealed an intentional human-whale acoustic (and behavioral) interaction. Our results show that Twain participated both physically and acoustically in three phases of interaction (Phase 1: Engagement, Phase 2: Agitation, Phase 3: Disengagement), independently determined by blind observers reporting on surface behavior and respiratory activity of the interacting whale. A close examination of both changes to the latency between Twain's calls and the temporal matching to the latency of the exemplar across phases indicated that Twain was actively engaged in the exchange during Phase 1 (Engagement), less so during Phase 2 (Agitation), and disengaged during Phase 3 (Disengagement). These results, while preliminary, point to several for effective playback design, namely the importance of salient, dynamic and adaptive playbacks, that should be utilized in experimentation with whales and other interactive nonhuman species.</p>
Supplementary material from: Optimizing the Conversion of Bio-Oil from Haematococcus pluvialis to Fatty Acid Methyl Esters
<p>Data obtained in the thermal characterization of bio-oil and biodiesel derived from Haematococcus pluvialis microalgae. This document contains the data used to generate the plots shown in Figure 3 of the paper.</p> <p>Content:</p> <ul> <li>Bio-oil FTIR results</li> <li>Biodiesel FTIR results</li> <li>Bio-oil TGA results</li> <li>Biodiesel TGA results</li> <li>Bio-oil DSC (pour point) results</li> <li>Biodiesel DSC (pour point) results</li> <li>Biodiesel DSC (heat of combustion) results</li> </ul>
Dataset for the publication: Non-oxidative conversion of methanol to dimethyl ether, methyl formate and dimethoxymethane over Cu/Hβ catalyst: Tailoring product selectivity
<p>The dataset covers the research data of the publication in ChemCatChem with the title "Non-oxidative conversion of methanol to dimethyl ether, methyl formate and dimethoxymethane over Cu/Hβ catalyst: Tailoring product selectivity" (DOI: <a href="https://doi.org/10.1002/cctc.202301704">10.1002/cctc.202301704</a>). The provided data comprehend the main experimental data obtained in the study including material characterisation (XRD, CO-DRIFTS, H2-TPD, pyridine IR, N2 physisorption) and the catalytic data of the investigated Cu-loaded zeolites in a continuous gas-phase fixed-bed reactor.</p>
Harmonized INSEE socio-demographic IRIS-level data and IRIS conversion file (2010-2020)
<p>The smallest level of aggregation for sociodemographic data made publicly available by the French INSEE is the IRIS. Data is downloadable on INSEE websites but decomposed by type of variable and by year. I thus combined all datasets into a single homogenous dataset for practicality. It includes on the period 2010-2020 :</p> <ul> <li>Population structure (age, gender...) data</li> <li>Economic occupation CSP data</li> <li>Available income data</li> <li>Family data</li> </ul> <p>Since a sizeable amount of IRIS change each year, timewise comparisons are limited. I therefore created a conversion file. Each IRIS is expressed as a % combination of previous IRIS. This allows to track IRIS merge, IRIS split and border changes. Measurement errors linked to border overlap were detected when the overlap of 2 IRIS was less than 1 percent. The IRIS overlap without the measurement error is the variable _ajuste (pardon my French). This allows to express the IRIS of a year as the wieghted sum of the IRIS of any other given year.</p> <p>You will also find the codes I used to create each of the files included in this project on my github. The annotation may be lacking, it is currently being improved. </p>
Assessment of Degree of Conversion and Knoop Microhardness of Different Resin Cementing Agents - Results
<p>Data from the results of the study entitled "Assessment of Degree of Conversion and Knoop Microhardness of Different Resin Cementing Agents".</p>
Single-Shot Three-Dimensional Orientation Imaging of Nanorods Using Spin to Orbital Angular Momentum Conversion_experimental_dataset
<p>This is the datafile containing the raw experimental data to the article Fordey et al., Single-Shot Three-Dimensional Orientation Imaging of Nanorods Using Spin to Orbital Angular Momentum Conversion, <em>Nano Lett.</em> 2021, 21, 17, 7244–7251. </p>
Data for Frequency to power conversion by an electron turnstile
<p>Data plotted in figures of article "Frequency to power conversion by an electron turnstile". Additional raw data and analyzing algorithms for producing them.</p>
Spin-Charge Conversion in Fe/Au/Sb2Te3 Heterostructures as Probed By Spin Pumping Ferromagnetic Resonance (data)
<p>This dataset contains the raw data files connected with the figures included in the paper "<em>Spin-Charge Conversion in Fe/Au/Sb<sub>2</sub>Te<sub>3</sub> Heterostructures as Probed By Spin Pumping Ferromagnetic Resonance</em>" by <a href="https://onlinelibrary.wiley.com/doi/abs/10.1002/admi.202101244">E. Longo et al.<em>, </em><em>Adv. Mater. Interfaces</em> 2021, 2101244</a>.</p>
Result data from "Relative effects of land conversion and land-use intensity on terrestrial vertebrate diversity"
<p>These tif files contain the raw results of the publication "Relative effects of land conversion and land-use intensity on terrestrial vertebrate diversity", i.e. the raw data used to create the species richness loss maps shown in the main text and Supplementary Information of the publication. Please cite the publication when using these data.</p>
Data from: Ultra-wideband and polarization-independent RCS reduction based on polarization conversion metasurface
<p>We proposed an ultra-wideband polarization conversion metasurface (PCM). Because it is an anisotropic structure with a pair of mutually perpendicular symmetric axes<i> u</i> and <i>v</i>, and the phase difference between the reflection coefficients under <i>u</i>- and <i>v</i>-polarized incidences is close to 180<sup>°</sup> in an ultra-wide frequency range from 9.5 to 29.5 GHz, it can realize ultra-wideband circular polarization (CP) maintaining reflection and make its co-polarized reflection coefficient under CP incidence close to 1.0 in the ultra-wide band 9.2-29.7 GHz. In addition, when its unit cell structure is rotated by an angle <i>ψ</i>, almost ±2<i>ψ</i> Pancharatnam-Berry (PB) phase will be generated in co-polarized reflection coefficient under CP incidence. Thus, based on the proposed PCM, an ultra-wideband Pancharatnam-Berry (PB) 2-dit coding metasurface is conveniently proposed. The simulation and experimental results show that the coding metasurface can achieve more than 10 dB radar cross section (RCS) reduction in the ultra-wide frequency band 8.7-29.3 GHz with a relative bandwidth of 108.4% under normal incidence with arbitrary polarizations, in addition, when the incident angle is increased to 30<sup>°</sup>, the RCS reduction performance can be kept well. In this data file, the simulation results obtained by commercial software Ansys HFSS and measurement results are listed.</p>
Nonlinear down-conversion in a single quantum dot
<p>This repository contains original experimental and theoretical data which belongs to the manuscript "Nonlinear down-conversion in a single quantum dot" by B. Jonas, D. Heinze, E. Schöll, P. Kallert, T. Langer, S. Krehs, A. Widhalm, K. D. Jöns, D. Reuter, S. Schumacher, and A. Zrenner</p>
Freshwater invertebrates - diversity and function of stream macroinvertebrates: Effects of habitat conversion and strategies for conservation
<b>Description: </b><p>Freshwater invertebrate communities from stream sites along a habitat disturbance gradient (including old growth forest, logged forest, oil palm with riparian buffers, and oil palm with no buffers) within the SAFE Project experimental area, SAFE surrounding area, Maliau Basin, and Danum Valley.</p><p><b>Project: </b>This dataset was collected as part of the following SAFE research project: <a href="https://www.safeproject.net/projects/project_view/121"><b>Diversity and function of stream macroinvertebrates: Effects of habitat conversion and strategies for conservation</b></a></p><p><b>Funding: </b>These data were collected as part of research funded by: </p><ul><li>Sime Darby Foundation (Research, SAFE Project)</li><li>NERC (Studentship, 1122589.0)</li><li>Proforest (Research)</li><li>Varley Gradwell Travelling Fellowship (Research)</li><li>Tim Whitmore Fund (Research)</li><li>Panton Trust (Research)</li><li>Cambridge University Commonwealth Fund (Research)</li></ul><p>This dataset is released under the CC-BY 4.0 licence, requiring that you cite the dataset in any outputs, but has the additional condition that you acknowledge the contribution of these funders in any outputs.</p><p></p><p><b>Permits: </b>These data were collected under permit from the following authorities:</p><ul><li>Sabah Biodiversity Centre (SABC) (Research licence JKM/MBS.1000-2/2(37))</li><li>Sabah Biodiversity Centre (SABC) (Research licence JKM/MBS.1000-2/2(68))</li><li>Sabah Biodiversity Centre (SABC) (Research licence JKM/MBS:1000-2/2(230))</li></ul><p></p><p><b>XML metadata: </b>GEMINI compliant metadata for this dataset is available <a href="https://www.safeproject.net/datasets/xml_metadata?id=6368114">here</a></p><p><b>Files: </b>This consists of 1 file: 2_Luke_Inverts_V4_mfh.xlsx</p><p><b>2_Luke_Inverts_V4_mfh.xlsx</b></p><p>This file contains dataset metadata and 7 data tables:</p><ol><li><p><b>Water striders (Gerromorpha)</b> (described in worksheet Gerro)</p><p>Description: Manually captured waterstriders. Rows represent potential functional group/body size x sample site/date combinations, but not each combination had individuals collected.</p><p>Number of fields: 66</p><p>Number of data rows: 33905</p><p>Fields: </p><ul><li><b>Locations</b>: Transect sampled (Field type: location)</li><li><b>Stream</b>: Stream IDs of where the bugs were collected (Field type: id)</li><li><b>Distance</b>: The 10-m section of the stream transect where bugs were collected (Field type: replicate)</li><li><b>CollectionDate</b>: Dates of when the bugs were collected (Field type: date)</li><li><b>Time</b>: The times of when the bugs were collected (Field type: replicate)</li><li><b>PotCode</b>: Pot ID. For example, 1 of 1 means there is only 1 pot for a particular Distance, 1 of 2 means it is the first pot out of 2 for a particular Distance, and so on (Field type: replicate)</li><li><b>ID</b>: The ID number for the pots, each Distance can consists of 1 to 3 pots of samples and each pot has its own ID (Field type: id)</li><li><b>HabitatType</b>: Habitat type (Field type: categorical)</li><li><b>HabitatTypeReplicate</b>: Replicate IDs for the habitat types. For example, the ID for stream 0m at 40-50m as the first replicate for LF/ Logged Forest is LF1.1, while for stream 0m at 20-30m is LF1.2, and so on (Field type: replicate)</li><li><b>SortDate</b>: Dates of when sortings were done (Field type: comments)</li><li><b>Family</b>: Family of the bugs collected (Field type: taxa)</li><li><b>Group</b>: Groups of the bugs based on body forms: 1) CGP (Cylindrostethinae, Gerrinae, and Ptilomerinae), 2) Halobatinae, and 3) Veliidae (Field type: taxa)</li><li><b>LifeStage</b>: Life stage of the bugs collected: either Juvenile (J) or Adult (A) (Field type: categorical trait)</li><li><b>Length</b>: The body length of the bugs collected (rounded) (Field type: numeric trait)</li><li><b>LengthRange</b>: The body length range of the bugs collected (Field type: id)</li><li><b>PredictedBiomass</b>: The predicted biomass of the bugs collected, calculated using power regression equations. Zeros indicate groups for which no individuals were present. a. Group CGP = Abundance in any of the cell from column W until BO * (0.04 * (the cell of the Column O (needs to be at the same row as the Abundance cell chosen from any of the column W until BO)/ representing the body length ^ 2.271)), b. Group Halobatinae = the same as above but with 0.072 and 2.218 as the coefficient a and b respectively, c. Group Veliidae = the same as above but with 0.041 and 2.32 as the coefficient a and b respectively. (Field type: numeric)</li><li><b>AdultWing</b>: Adult bug's ID based on the presence of wings (if the individual insect is a juvenile, the cell says 'None', instead of 'Winged' or 'Wingless') (Field type: categorical trait)</li><li><b>AdultWingAbund</b>: Adult bug's abundance based on the presence of wings (Field type: abundance)</li><li><b>PtilomeraMF</b>: Ptilomera sp. IDs based on sex: either male or female (Field type: categorical trait)</li><li><b>Note</b>: Notes about people who have sorted the bugs before Martina Harianja (if no one hasn't worked on a particular sample, it's written as 'None') (Field type: comments)</li><li><b>PtilomeraMFAbund</b>: Abundance of either male or female adult Ptilomera sp. (Field type: abundance)</li><li><b>4spot</b>: Abundance (Field type: abundance)</li><li><b>C.scrutator</b>: Abundance (Field type: abundance)</li><li><b>Cylindrosthetus.sp.</b>: Abundance (Field type: abundance)</li><li><b>Limnometra.sp.</b>: Abundance (Field type: abundance)</li><li><b>Metrocoris.sp.1</b>: Abundance (Field type: abundance)</li><li><b>Metrocoris.sp.2</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies15</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies20</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies24</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies25</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies27</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies28</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies29</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies30</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies31</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies33</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies34</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies35</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies36</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies37</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies38</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies4</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies40</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies41</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies42</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies43</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies44</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies45</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies46</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies47</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies6</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies7</b>: Abundance (Field type: abundance)</li><li><b>Morphospecies7.sp.2</b>: Abundance (Field type: abundance)</li><li><b>Potamometropsis.sp.</b>: Abundance (Field type: abundance)</li><li><b>Ptilomera.sp.</b>: Abundance (Field type: abundance)</li><li><b>Rhagovelia.sp.</b>: Abundance (Field type: abundance)</li><li><b>Rhagovelia.sp.2</b>: Abundance (Field type: abundance)</li><li><b>Rhagovelia.sp.3</b>: Abundance (Field type: abundance)</li><li><b>Rheumatogonus.sp.1</b>: Abundance (Field type: abundance)</li><li><b>Rheumatogonus.sp.2</b>: Abundance (Field type: abundance)</li><li><b>Strongylovelia.sp.</b>: Abundance (Field type: abundance)</li><li><b>Tenagogonus.sp.1</b>: Abundance (Field type: abundance)</li><li><b>Tenagogonus.sp.2</b>: Abundance (Field type: abundance)</li><li><b>Ventidius.sp.</b>: Abundance (Field type: abundance)</li><li><b>Ventidius.sp.2</b>: Abundance (Field type: abundance)</li></ul></li><li><p><b>10m Chironomids</b> (described in worksheet Chiron_10m)</p><p>Description: Sampled from the streambed using a Surber sampler in 2012/2013. Suber sample had quadrat area of 0.33m2 and 250 μm mesh net. Sampling done at regularly spaced points along the 200m long dragonfly transects.</p><p>Number of fields: 51</p><p>Number of data rows: 151</p><p>Fields: </p><ul><li><b>Locations</b>: Location within the SAFE landscape (Field type: location)</li><li><b>Stream</b>: Stream name (Field type: id)</li><li><b>Distance</b>: Distance along the stream transect (Field type: numeric)</li><li><b>StreamDistance</b>: Stream and distance ID (Field type: id)</li><li><b>PointLocation</b>: Point location on stream transect (Field type: location)</li><li><b>SampleDate</b>: Date sample was collected (Field type: date)</li><li><b>SampleTime</b>: Time sample was collected (Field type: time)</li><li><b>Cladotanytarsus6teeth</b>: Cladotanytarsus6teeth abundance (Field type: abundance)</li><li><b>Cladotanytarsus5teeth</b>: Cladotanytarsus5teeth abundance (Field type: abundance)</li><li><b>Orthocladius</b>: Orthocladius abundance (Field type: abundance)</li><li><b>CricotopusWorn</b>: CricotopusWorn abundance (Field type: abundance)</li><li><b>CricotopusCylindraceus</b>: CricotopusCylindraceus abundance (Field type: abundance)</li><li><b>CricotopusOliveri</b>: CricotopusOliveri abundance (Field type: abundance)</li><li><b>Thienemanniella</b>: Thienemanniella abundance (Field type: abundance)</li><li><b>Thienemanniella2</b>: Thienemanniella2 abundance (Field type: abundance)</li><li><b>KelianA</b>: KelianA abundance (Field type: abundance)</li><li><b>KelianB</b>: KelianB abundance (Field type: abundance)</li><li><b>KelianC</b>: KelianC abundance (Field type: abundance)</li><li><b>TanytarsusMendax</b>: TanytarsusMendax abundance (Field type: abundance)</li><li><b>TanytarsusNemorosus</b>: TanytarsusNemorosus abundance (Field type: abundance)</li><li><b>PolypedilumType2</b>: PolypedilumType2 abundance (Field type: abundance)</li><li><b>PolypedilumConvictum</b>: PolypedilumConvictum abundance (Field type: abundance)</li><li><b>PolypedilumSp3</b>: PolypedilumSp3 abundance (Field type: abundance)</li><li><b>Chironomini1stInstar</b>: Chironomini1stInstar abundance (Field type: abundance)</li><li><b>ChironominiGenusB</b>: ChironominiGenusB abundance (Field type: abundance)</li><li><b>ChironominiPhoto1</b>: ChironominiPhoto1 abundance (Field type: abundance)</li><li><b>ChironominiPhoto2</b>: ChironominiPhoto2 abundance (Field type: abundance)</li><li><b>ChironominiPhoto3</b>: ChironominiPhoto3 abundance (Field type: abundance)</li><li><b>ChironominiPhoto5</b>: ChironominiPhoto5 abundance (Field type: abundance)</li><li><b>CorynoneuraLobata</b>: CorynoneuraLobata abundance (Field type: abundance)</li><li><b>Thienemannimyia</b>: Thienemannimyia abundance (Field type: abundance)</li><li><b>Parametriocnemus</b>: Parametriocnemus abundance (Field type: abundance)</li><li><b>Ceratopogonidae</b>: Ceratopogonidae abundance (Field type: abundance)</li><li><b>Cardiocladius</b>: Cardiocladius abundance (Field type: abundance)</li><li><b>Ablabesmyia</b>: Ablabesmyia abundance (Field type: abundance)</li><li><b>Stenochironomus</b>: Stenochironomus abundance (Field type: abundance)</li><li><b>Cryptochironomus</b>: Cryptochironomus abundance (Field type: abundance)</li><li><b>Nanocladius</b>: Nanocladius abundance (Field type: abundance)</li><li><b>Stictochironomus</b>: Stictochironomus abundance (Field type: abundance)</li><li><b>Nilotanypus</b>: Nilotanypus abundance (Field type: abundance)</li><li><b>Rheotanytarsus</b>: Rheotanytarsus abundance (Field type: abundance)</li><li><b>RheocricotopusChalybeatus</b>: RheocricotopusChalybeatus abundance (Field type: abundance)</li><li><b>Dicrotendipes</b>: Dicrotendipes abundance (Field type: abundance)</li><li><b>Paratendipes</b>: Paratendipes abundance (Field type: abundance)</li><li><b>Pseudorthocladius</b>: Pseudorthocladius abundance (Field type: abundance)</li><li><b>Kiefferulus</b>: Kiefferulus abundance (Field type: abundance)</li><li><b>Paracladopelma</b>: Paracladopelma abundance (Field type: abundance)</li><li><b>Microtendipes</b>: Microtendipes abundance (Field type: abundance)</li><li><b>Eukiefferiella</b>: Eukiefferiella abundance (Field type: abundance)</li><li><b>Diamesinae</b>: Diamesinae abundance (Field type: abundance)</li><li><b>TanytarsiniSurfaceTooth</b>: TanytarsiniSurfaceTooth abundance (Field type: abundance)</li></ul></li><li><p><b>10m Ephemeroptera, Plecoptera, Tricoptera (EPT)</b> (described in worksheet EPTabun_10m)</p><p>Description: Sampled from the streambed using a Surber sampler in 2012/2013. Suber sample had quadrat area of 0.33m2 and 250 μm mesh net. Sampling done at regularly spaced points along the 200m long dragonfly transects.</p><p>Number of fields: 34</p><p>Number of data rows: 78</p><p>Fields: </p><ul><li><b>Locations</b>: Location within the SAFE landscape (Field type: location)</li><li><b>Stream</b>: Stream name (Field type: id)</li><li><b>StreamDistance</b>: Distance along the stream transect (Field type: id)</li><li><b>Distance</b>: Stream and distance ID (Field type: id)</li><li><b>PointLocation</b>: Point location on stream transect (Field type: location)</li><li><b>SampleDate</b>: Date sample was collected (Field type: date)</li><li><b>SampleTime</b>: Time sample was collected (Field type: time)</li><li><b>Baetidae</b>: Baetidae abundance (Field type: abundance)</li><li><b>Leptophlebiidae</b>: Leptophlebiidae abundance (Field type: abundance)</li><li><b>Heptageniidae</b>: Heptageniidae abundance (Field type: abundance)</li><li><b>Caenidae</b>: Caenidae abundance (Field type: abundance)</li><li><b>Tricorythidae</b>: Tricorythidae abundance (Field type: abundance)</li><li><b>Euthyplociidae</b>: Euthyplociidae abundance (Field type: abundance)</li><li><b>Potamanthidae</b>: Potamanthidae abundance (Field type: abundance)</li><li><b>Oligoneuriidae</b>: Oligoneuriidae abundance (Field type: abundance)</li><li><b>Ephemeridae</b>: Ephemeridae abundance (Field type: abundance)</li><li><b>EphemUnknown</b>: EphemUnknown abundance (Field type: abundance)</li><li><b>Perlidae</b>: Perlidae abundance (Field type: abundance)</li><li><b>Nemouridae</b>: Nemouridae abundance (Field type: abundance)</li><li><b>Leuctridae</b>: Leuctridae abundance (Field type: abundance)</li><li><b>Peltoperlidae</b>: Peltoperlidae abundance (Field type: abundance)</li><li><b>PlecopUnkown</b>: PlecopUnkown abundance (Field type: abundance)</li><li><b>Dipsuedopsidae</b>: Dipsuedopsidae abundance (Field type: abundance)</li><li><b>Hydropsychidae</b>: Hydropsychidae abundance (Field type: abundance)</li><li><b>Leptoceridae</b>: Leptoceridae abundance (Field type: abundance)</li><li><b>Xiphocentronidae</b>: Xiphocentronidae abundance (Field type: abundance)</li><li><b>Polycentropodidae</b>: Polycentropodidae abundance (Field type: abundance)</li><li><b>Psychomyiidae</b>: Psychomyiidae abundance (Field type: abundance)</li><li><b>Ecnomidae</b>: Ecnomidae abundance (Field type: abundance)</li><li><b>Philopotamidae</b>: Philopotamidae abundance (Field type: abundance)</li><li><b>Hydroptilidae</b>: Hydroptilidae abundance (Field type: abundance)</li><li><b>Lepidostomatidae</b>: Lepidostomatidae abundance (Field type: abundance)</li><li><b>Calamoceratidae</b>: Calamoceratidae abundance (Field type: abundance)</li><li><b>TrichopUnknown</b>: TrichopUnknown abundance (Field type: abundance)</li></ul></li><li><p><b>10m Odonata nymphs</b> (described in worksheet OdonataNymph)</p><p>Description: Sampled from the streambed using a Surber sampler in 2012/2013. Suber sample had quadrat area of 0.33m2 and 250 μm mesh net. Sampling done at regularly spaced points along the 200m long dragonfly transects.</p><p>Number of fields: 29</p><p>Number of data rows: 151</p><p>Fields: </p><ul><li><b>Locations</b>: Location within the SAFE landscape (Field type: location)</li><li><b>Stream</b>: Stream name (Field type: id)</li><li><b>Distance</b>: Distance along the stream transect (Field type: numeric)</li><li><b>StreamDistance</b>: Stream and distance ID (Field type: id)</li><li><b>SiteCode</b>: Point location on stream transect (Field type: location)</li><li><b>Date</b>: Date sample was collected (Field type: date)</li><li><b>Time</b>: Time sample was collected (Field type: time)</li><li><b>ChlorogomphidaeChlorogomphus</b>: ChlorogomphidaeChlorogomphus abundance (Field type: abundance)</li><li><b>GomphidaeLeptogomphus</b>: GomphidaeLeptogomphus abundance (Field type: abundance)</li><li><b>GomphidaeMegalogomphus</b>: GomphidaeMegalogomphus abundance (Field type: abundance)</li><li><b>GomphidaeBurmagomphus</b>: GomphidaeBurmagomphus abundance (Field type: abundance)</li><li><b>GomphidaeOnychogomphus</b>: GomphidaeOnychogomphus abundance (Field type: abundance)</li><li><b>GomphidaeGomphidia</b>: GomphidaeGomphidia abundance (Field type: abundance)</li><li><b>GomphidaeSinogomphus</b>: GomphidaeSinogomphus abundance (Field type: abundance)</li><li><b>GomphidaeHeliogomphus</b>: GomphidaeHeliogomphus abundance (Field type: abundance)</li><li><b>GomphidaeIctinogomphus</b>: GomphidaeIctinogomphus abundance (Field type: abundance)</li><li><b>GomphidaeUnknown</b>: GomphidaeUnknown abundance (Field type: abundance)</li><li><b>MacromiidaeUnknown1</b>: MacromiidaeUnknown1 abundance (Field type: abundance)</li><li><b>MacromiidaeMacromia</b>: MacromiidaeMacromia abundance (Field type: abundance)</li><li><b>MacromiidaeUnknown2</b>: MacromiidaeUnknown2 abundance (Field type: abundance)</li><li><b>LibellulidaeUnknown</b>: LibellulidaeUnknown abundance (Field type: abundance)</li><li><b>LibellulidaeTrithemis</b>: LibellulidaeTrithemis abundance (Field type: abundance)</li><li><b>EuphaeidaeEuphaea</b>: EuphaeidaeEuphaea abundance (Field type: abundance)</li><li><b>CalopterygidaeVestalis</b>: CalopterygidaeVestalis abundance (Field type: abundance)</li><li><b>PhilosinidaeRhinagrion</b>: PhilosinidaeRhinagrion abundance (Field type: abundance)</li><li><b>PlatystictidaeUnknown</b>: PlatystictidaeUnknown abundance (Field type: abundance)</li><li><b>LestidaeUnknown</b>: LestidaeUnknown abundance (Field type: abundance)</li><li><b>ChlorocyphidaeUnknown</b>: ChlorocyphidaeUnknown abundance (Field type: abundance)</li><li><b>Unknown</b>: Unknown abundance (Field type: abundance)</li></ul></li><li><p><b>10m benthic insects, order-level</b> (described in worksheet Order_10m)</p><p>Description: Sampled from the streambed using a Surber sampler in 2012/2013. Suber sample had quadrat area of 0.33m2 and 250 μm mesh net. Sampling done at regularly spaced points along the 200m long dragonfly transects.</p><p>Number of fields: 34</p><p>Number of data rows: 151</p><p>Fields: </p><ul><li><b>Locations</b>: Location within the SAFE landscape (Field type: location)</li><li><b>Stream</b>: Stream name (Field type: id)</li><li><b>Distance</b>: Distance along the stream transect (Field type: numeric)</li><li><b>StreamDistance</b>: Stream and distance ID (Field type: id)</li><li><b>PointLocations</b>: Point location on stream transect (Field type: location)</li><li><b>SampleDate</b>: Date sample was collected (Field type: date)</li><li><b>SampleTime</b>: Time sample was collected (Field type: time)</li><li><b>EphemeropteraWhole</b>: EphemeropteraWhole abundance (Field type: abundance)</li><li><b>EphemeropteraPart</b>: EphemeropteraPart abundance (Field type: abundance)</li><li><b>Ephemeroptera</b>: Ephemeroptera abundance (Field type: abundance)</li><li><b>PlecopteraWhole</b>: PlecopteraWhole abundance (Field type: abundance)</li><li><b>PlecopteraPart</b>: PlecopteraPart abundance (Field type: abundance)</li><li><b>Plecoptera</b>: Plecoptera abundance (Field type: abundance)</li><li><b>TrichopteraWhole</b>: TrichopteraWhole abundance (Field type: abundance)</li><li><b>TrichopteraPart</b>: TrichopteraPart abundance (Field type: abundance)</li><li><b>Trichoptera</b>: Trichoptera abundance (Field type: abundance)</li><li><b>ColeopteraLarvaeWhole</b>: ColeopteraLarvaeWhole abundance (Field type: abundance)</li><li><b>ColeopteraLarvaePart</b>: ColeopteraLarvaePart abundance (Field type: abundance)</li><li><b>ColeopteraAdultWhole</b>: ColeopteraAdultWhole abundance (Field type: abundance)</li><li><b>ColeopteraAdultPart</b>: ColeopteraAdultPart abundance (Field type: abundance)</li><li><b>Coleoptera</b>: Coleoptera abundance (Field type: abundance)</li><li><b>DipteraWhole</b>: DipteraWhole abundance (Field type: abundance)</li><li><b>DipteraPart</b>: DipteraPart abundance (Field type: abundance)</li><li><b>Diptera</b>: Diptera abundance (Field type: abundance)</li><li><b>OdonataWhole</b>: OdonataWhole abundance (Field type: abundance)</li><li><b>OdonataPart</b>: OdonataPart abundance (Field type: abundance)</li><li><b>Odonata</b>: Odonata abundance (Field type: abundance)</li><li><b>Heteroptera</b>: Heteroptera abundance (Field type: abundance)</li><li><b>Mites</b>: Mites abundance (Field type: abundance)</li><li><b>Isopods</b>: Isopods abundance (Field type: abundance)</li><li><b>Worms</b>: Worms abundance (Field type: abundance)</li><li><b>OtherWhole</b>: OtherWhole abundance (Field type: abundance)</li><li><b>OtherPart</b>: OtherPart abundance (Field type: abundance)</li><li><b>Other</b>: Other abundance (Field type: abundance)</li></ul></li><li><p><b>10m bottle traps, for crabs, shrimps, snails</b> (described in worksheet Bottletraps_nov2015)</p><p>Description: Crabs, shrimps, snails. Sampled using bottle traps baited with fish/bread. Sampling done at regularly spaced points along the 200m long dragonfly transects. </p><p>Number of fields: 13</p><p>Number of data rows: 999</p><p>Fields: </p><ul><li><b>Locations</b>: Location within the SAFE landscape (Field type: location)</li><li><b>Stream</b>: Stream name (Field type: id)</li><li><b>Date</b>: Date trap set (Field type: date)</li><li><b>ArrivalTime</b>: Trap set time (Field type: time)</li><li><b>LeavingTime</b>: Trap collection time (Field type: time)</li><li><b>Weather</b>: Weather comments (Field type: comments)</li><li><b>People</b>: Observer (Field type: comments)</li><li><b>Distance</b>: Distance along the stream transect (Field type: numeric)</li><li><b>IDnumber</b>: Trap number (Field type: id)</li><li><b>Shrimps</b>: Shrimps abundance (Field type: abundance)</li><li><b>Snails</b>: Snails abundance (Field type: abundance)</li><li><b>Crabs</b>: Crabs abundance (Field type: abundance)</li><li><b>Fish</b>: Fish abundance (Field type: abundance)</li></ul></li><li><p><b>200m transects, adult dragonflies</b> (described in worksheet Dragonflies_2012_2013)</p><p>Description: Adult dragonflies. Caught along 200m long transects using butterfly nets. </p><p>Number of fields: 23</p><p>Number of data rows: 1872</p><p>Fields: </p><ul><li><b>Location</b>: Location within the SAFE landscape (Field type: location)</li><li><b>Stream</b>: Stream name (Field type: id)</li><li><b>Date</b>: Distance along the stream transect (Field type: date)</li><li><b>Weather</b>: Stream and distance ID (Field type: comments)</li><li><b>WeatherIssues</b>: Weather issues (0 - no issues, 1 - issues) (Field type: numeric)</li><li><b>PeopleIssues</b>: People issues (0 - no issues, 1 - issues) (Field type: numeric)</li><li><b>People</b>: Observers (Field type: comments)</li><li><b>DragonflyNo</b>: Dragonfly catch number per day (Field type: id)</li><li><b>UniqueID</b>: Individual dragonfly ID (Field type: id)</li><li><b>Time</b>: Time of catch (Field type: time)</li><li><b>Photos</b>: How many photos were taken of that individual dragonfly (in order to assist with photo sorting later on) (Field type: id)</li><li><b>HeadColour</b>: Head colour (Field type: comments)</li><li><b>ThoraxColour</b>: Thorax colour (Field type: comments)</li><li><b>AbdomenColour</b>: Abdomen colour (Field type: comments)</li><li><b>WingColour</b>: Wing colour (Field type: comments)</li><li><b>Pair</b>: Whether a male/female mating pair or not (knowing this could sometimes help with ID decisions later on, especially for females which are poorly known) (Field type: categorical)</li><li><b>Point10m</b>: Point of catch along the transect (10m intervals along he transect) (Field type: numeric)</li><li><b>Habitat</b>: Habitat type (Field type: comments)</li><li><b>Activity</b>: What was the dragon fly doing (Field type: comments)</li><li><b>DateIDing</b>: Date of ID (Field type: date)</li><li><b>PeopleIDing</b>: Person Iding (JA= James Austin, RD= Rory Dow, SHL = Sarah Luke) (Field type: categorical)</li><li><b>Species</b>: Species of dragonfly (Field type: taxa)</li><li><b>MaleFemale</b>: Sex of dragonfly (Field type: categorical)</li></ul></li></ol><p><b>Date range: </b>2011-07-03 to 2015-04-18</p><p><b>Latitudinal extent: </b>4.5755 to 4.9618</p><p><b>Longitudinal extent: </b>116.9641 to 117.7965</p><p><b>Taxonomic coverage: </b><br> All taxon names are validated against the GBIF backbone taxonomy. If a dataset uses a synonym, the accepted usage is shown followed by the dataset usage in brackets. Taxa that cannot be validated, including new species and other unknown taxa, morphospecies, functional groups and taxonomic levels not used in the GBIF backbone are shown in square brackets.</p><div> -  Animalia <br> -  -  Annelida <br> -  -  Arthropoda <br> -  -  -  Crabs <br> -  -  -  Insecta <br> -  -  -  -  Coleoptera <br> -  -  -  -  Coleoptera <br> -  -  -  -  Coleoptera <br> -  -  -  -  Coleoptera <br> -  -  -  -  Coleoptera <br> -  -  -  -  Diptera <br> -  -  -  -  -  Ceratopogonidae <br> -  -  -  -  -  Chironomidae <br> -  -  -  -  -  -  <i>Ablabesmyia</i> <br> -  -  -  -  -  -  <i>Cardiocladius</i> <br> -  -  -  -  -  -  Chironomini1stInstar <br> -  -  -  -  -  -  ChironominiGenusB <br> -  -  -  -  -  -  ChironominiPhoto1 <br> -  -  -  -  -  -  ChironominiPhoto2 <br> -  -  -  -  -  -  ChironominiPhoto3 <br> -  -  -  -  -  -  ChironominiPhoto5 <br> -  -  -  -  -  -  <i>Cladotanytarsus</i> <br> -  -  -  -  -  -  <i>Cladotanytarsus</i> <br> -  -  -  -  -  -  <i>Cricotopus</i> <br> -  -  -  -  -  -  -  <i>Cricotopus cylindraceus</i> <br> -  -  -  -  -  -  -  <i>Cricotopus olivetus</i> <br> -  -  -  -  -  -  <i>Cryptochironomus</i> <br> -  -  -  -  -  -  Diamesinae <br> -  -  -  -  -  -  <i>Dicrotendipes</i> <br> -  -  -  -  -  -  <i>Eukiefferiella</i> <br> -  -  -  -  -  -  KelianA <br> -  -  -  -  -  -  KelianB <br> -  -  -  -  -  -  KelianC <br> -  -  -  -  -  -  <i>Kiefferulus</i> <br> -  -  -  -  -  -  <i>Microtendipes</i> <br> -  -  -  -  -  -  <i>Nanocladius</i> <br> -  -  -  -  -  -  <i>Nilotanypus</i> <br> -  -  -  -  -  -  <i>Orthocladius</i> <br> -  -  -  -  -  -  <i>Paracladopelma</i> <br> -  -  -  -  -  -  <i>Parametriocnemus</i> <br> -  -  -  -  -  -  <i>Paratendipes</i> <br> -  -  -  -  -  -  <i>Polypedilum</i> <br> -  -  -  -  -  -  -  <i>Polypedilum convictum</i> <br> -  -  -  -  -  -  <i>Polypedilum</i> <br> -  -  -  -  -  -  -  <i>Polypedilum convictum</i> <br> -  -  -  -  -  -  <i>Pseudorthocladius</i> <br> -  -  -  -  -  -  <i>Rheotanytarsus</i> <br> -  -  -  -  -  -  <i>Stenochironomus</i> <br> -  -  -  -  -  -  <i>Stictochironomus</i> <br> -  -  -  -  -  -  TanytarsiniSurfaceTooth <br> -  -  -  -  -  -  <i>Thienemanniella</i> <br> -  -  -  -  -  -  <i>Thienemanniella</i> <br> -  -  -  -  -  -  <i>Thienemannimyia</i> <br> -  -  -  -  -  -  <i>Corynoneura</i> <br> -  -  -  -  -  -  -  <i>Corynoneura lobata</i> <br> -  -  -  -  -  -  <i>Tanytarsus</i> <br> -  -  -  -  -  -  -  <i>Tanytarsus mendax</i> <br> -  -  -  -  -  -  -  <i>Tanytarsus nemorosus</i> <br> -  -  -  -  -  -  <i>Rheocricotopus</i> <br> -  -  -  -  -  -  -  <i>Rheocricotopus chalybeatus</i> <br> -  -  -  -  Diptera <br> -  -  -  -  -  Ceratopogonidae <br> -  -  -  -  -  Chironomidae <br> -  -  -  -  -  -  <i>Ablabesmyia</i> <br> -  -  -  -  -  -  <i>Cardiocladius</i> <br> -  -  -  -  -  -  Chironomini1stInstar <br> -  -  -  -  -  -  ChironominiGenusB <br> -  -  -  -  -  -  ChironominiPhoto1 <br> -  -  -  -  -  -  ChironominiPhoto2 <br> -  -  -  -  -  -  ChironominiPhoto3 <br> -  -  -  -  -  -  ChironominiPhoto5 <br> -  -  -  -  -  -  <i>Cladotanytarsus</i> <br> -  -  -  -  -  -  <i>Cladotanytarsus</i> <br> -  -  -  -  -  -  <i>Cricotopus</i> <br> -  -  -  -  -  -  -  <i>Cricotopus cylindraceus</i> <br> -  -  -  -  -  -  -  <i>Cricotopus olivetus</i> <br> -  -  -  -  -  -  <i>Cryptochironomus</i> <br> -  -  -  -  -  -  Diamesinae <br> -  -  -  -  -  -  <i>Dicrotendipes</i> <br> -  -  -  -  -  -  <i>Eukiefferiella</i> <br> -  -  -  -  -  -  KelianA <br> -  -  -  -  -  -  KelianB <br> -  -  -  -  -  -  KelianC <br> -  -  -  -  -  -  <i>Kiefferulus</i> <br> -  -  -  -  -  -  <i>Microtendipes</i> <br> -  -  -  -  -  -  <i>Nanocladius</i> <br> -  -  -  -  -  -  <i>Nilotanypus</i> <br> -  -  -  -  -  -  <i>Orthocladius</i> <br> -  -  -  -  -  -  <i>Paracladopelma</i> <br> -  -  -  -  -  -  <i>Parametriocnemus</i> <br> -  -  -  -  -  -  <i>Paratendipes</i> <br> -  -  -  -  -  -  <i>Polypedilum</i> <br> -  -  -  -  -  -  -  <i>Polypedilum convictum</i> <br> -  -  -  -  -  -  <i>Polypedilum</i> <br> -  -  -  -  -  -  -  <i>Polypedilum convictum</i> <br> -  -  -  -  -  -  <i>Pseudorthocladius</i> <br> -  -  -  -  -  -  <i>Rheotanytarsus</i> <br> -  -  -  -  -  -  <i>Stenochironomus</i> <br> -  -  -  -  -  -  <i>Stictochironomus</i> <br> -  -  -  -  -  -  TanytarsiniSurfaceTooth <br> -  -  -  -  -  -  <i>Thienemanniella</i> <br> -  -  -  -  -  -  <i>Thienemanniella</i> <br> -  -  -  -  -  -  <i>Thienemannimyia</i> <br> -  -  -  -  -  -  <i>Corynoneura</i> <br> -  -  -  -  -  -  -  <i>Corynoneura lobata</i> <br> -  -  -  -  -  -  <i>Tanytarsus</i> <br> -  -  -  -  -  -  -  <i>Tanytarsus mendax</i> <br> -  -  -  -  -  -  -  <i>Tanytarsus nemorosus</i> <br> -  -  -  -  -  -  <i>Rheocricotopus</i> <br> -  -  -  -  -  -  -  <i>Rheocricotopus chalybeatus</i> <br> -  -  -  -  Diptera <br> -  -  -  -  -  Ceratopogonidae <br> -  -  -  -  -  Chironomidae <br> -  -  -  -  -  -  <i>Ablabesmyia</i> <br> -  -  -  -  -  -  <i>Cardiocladius</i> <br> -  -  -  -  -  -  Chironomini1stInstar <br> -  -  -  -  -  -  ChironominiGenusB <br> -  -  -  -  -  -  ChironominiPhoto1 <br> -  -  -  -  -  -  ChironominiPhoto2 <br> -  -  -  -  -  -  ChironominiPhoto3 <br> -  -  -  -  -  -  ChironominiPhoto5 <br> -  -  -  -  -  -  <i>Cladotanytarsus</i> <br> -  -  -  -  -  -  <i>Cladotanytarsus</i> <br> -  -  -  -  -  -  <i>Cricotopus</i> <br> -  -  -  -  -  -  -  <i>Cricotopus cylindraceus</i> <br> -  -  -  -  -  -  -  <i>Cricotopus olivetus</i> <br> -  -  -  -  -  -  <i>Cryptochironomus</i> <br> -  -  -  -  -  -  Diamesinae <br> -  -  -  -  -  -  <i>Dicrotendipes</i> <br> -  -  -  -  -  -  <i>Eukiefferiella</i> <br> -  -  -  -  -  -  KelianA <br> -  -  -  -  -  -  KelianB <br> -  -  -  -  -  -  KelianC <br> -  -  -  -  -  -  <i>Kiefferulus</i> <br> -  -  -  -  -  -  <i>Microtendipes</i> <br> -  -  -  -  -  -  <i>Nanocladius</i> <br> -  -  -  -  -  -  <i>Nilotanypus</i> <br> -  -  -  -  -  -  <i>Orthocladius</i> <br> -  -  -  -  -  -  <i>Paracladopelma</i> <br> -  -  -  -  -  -  <i>Parametriocnemus</i> <br> -  -  -  -  -  -  <i>Paratendipes</i> <br> -  -  -  -  -  -  <i>Polypedilum</i> <br> -  -  -  -  -  -  -  <i>Polypedilum convictum</i> <br> -  -  -  -  -  -  <i>Polypedilum</i> <br> -  -  -  -  -  -  -  <i>Polypedilum convictum</i> <br> -  -  -  -  -  -  <i>Pseudorthocladius</i> <br> -  -  -  -  -  -  <i>Rheotanytarsus</i> <br> -  -  -  -  -  -  <i>Stenochironomus</i> <br> -  -  -  -  -  -  <i>Stictochironomus</i> <br> -  -  -  -  -  -  TanytarsiniSurfaceTooth <br> -  -  -  -  -  -  <i>Thienemanniella</i> <br> -  -  -  -  -  -  <i>Thienemanniella</i> <br> -  -  -  -  -  -  <i>Thienemannimyia</i> <br> -  -  -  -  -  -  <i>Corynoneura</i> <br> -  -  -  -  -  -  -  <i>Corynoneura lobata</i> <br> -  -  -  -  -  -  <i>Tanytarsus</i> <br> -  -  -  -  -  -  -  <i>Tanytarsus mendax</i> <br> -  -  -  -  -  -  -  <i>Tanytarsus nemorosus</i> <br> -  -  -  -  -  -  <i>Rheocricotopus</i> <br> -  -  -  -  -  -  -  <i>Rheocricotopus chalybeatus</i> <br> -  -  -  -  Ephemeroptera <br> -  -  -  -  -  Baetidae <br> -  -  -  -  -  Caenidae <br> -  -  -  -  -  Ephemeridae <br> -  -  -  -  -  Ephemeridae <br> -  -  -  -  -  Euthyplociidae <br> -  -  -  -  -  Heptageniidae <br> -  -  -  -  -  Leptophlebiidae <br> -  -  -  -  -  Oligoneuriidae <br> -  -  -  -  -  Potamanthidae <br> -  -  -  -  -  Tricorythidae <br> -  -  -  -  Ephemeroptera <br> -  -  -  -  -  Baetidae <br> -  -  -  -  -  Caenidae <br> -  -  -  -  -  Ephemeridae <br> -  -  -  -  -  Ephemeridae <br> -  -  -  -  -  Euthyplociidae <br> -  -  -  -  -  Heptageniidae <br> -  -  -  -  -  Leptophlebiidae <br> -  -  -  -  -  Oligoneuriidae <br> -  -  -  -  -  Potamanthidae <br> -  -  -  -  -  Tricorythidae <br> -  -  -  -  Ephemeroptera <br> -  -  -  -  -  Baetidae <br> -  -  -  -  -  Caenidae <br> -  -  -  -  -  Ephemeridae <br> -  -  -  -  -  Ephemeridae <br> -  -  -  -  -  Euthyplociidae <br> -  -  -  -  -  Heptageniidae <br> -  -  -  -  -  Leptophlebiidae <br> -  -  -  -  -  Oligoneuriidae <br> -  -  -  -  -  Potamanthidae <br> -  -  -  -  -  Tricorythidae <br> -  -  -  -  Odonata <br> -  -  -  -  -  Chlorocyphidae <br> -  -  -  -  -  -  <i>Rhinocypha</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha stygia</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha aurofulgens</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha humeralis</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha stygia</i> <br> -  -  -  -  -  -  <i>Libellago</i> <br> -  -  -  -  -  -  -  <i>Libellago phaethon</i> <br> -  -  -  -  -  -  -  <i>Libellago semiopaca</i> <br> -  -  -  -  -  -  <i>Heliocypha</i> <br> -  -  -  -  -  -  -  <i>Heliocypha biseriata</i> <br> -  -  -  -  -  -  -  <i>Heliocypha biseriata</i> <br> -  -  -  -  -  Gomphidae <br> -  -  -  -  -  -  <i>Burmagomphus</i> <br> -  -  -  -  -  -  -  <i>Burmagomphus insularis</i> <br> -  -  -  -  -  -  <i>Gomphidia</i> <br> -  -  -  -  -  -  <i>Heliogomphus</i> <br> -  -  -  -  -  -  -  <i>Heliogomphus blandulus</i> <br> -  -  -  -  -  -  <i>Ictinogomphus</i> <br> -  -  -  -  -  -  <i>Leptogomphus</i> <br> -  -  -  -  -  -  -  <i>Leptogomphus williamsoni</i> <br> -  -  -  -  -  -  <i>Megalogomphus</i> <br> -  -  -  -  -  -  <i>Onychogomphus</i> <br> -  -  -  -  -  -  <i>Sinogomphus</i> <br> -  -  -  -  -  -  <i>Phaenandrogomphus</i> <br> -  -  -  -  -  -  -  <i>Phaenandrogomphus safei</i> <br> -  -  -  -  -  Lestidae <br> -  -  -  -  -  Libellulidae <br> -  -  -  -  -  -  <i>Trithemis</i> <br> -  -  -  -  -  -  -  <i>Trithemis aurora</i> <br> -  -  -  -  -  -  -  <i>Trithemis festiva</i> <br> -  -  -  -  -  -  <i>Orthetrum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum chrysis</i> <br> -  -  -  -  -  -  -  <i>Orthetrum glaucum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum testaceum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum pruinosum</i> <br> -  -  -  -  -  -  -  -  <i>Orthetrum pruinosum schneideri</i> <br> -  -  -  -  -  -  <i>Tetrathemis</i> <br> -  -  -  -  -  -  <i>Lyriothemis</i> <br> -  -  -  -  -  -  -  <i>Lyriothemis cleis</i> <br> -  -  -  -  -  -  <i>Camacinia</i> <br> -  -  -  -  -  -  -  <i>Camacinia gigantea</i> <br> -  -  -  -  -  -  <i>Onychothemis</i> <br> -  -  -  -  -  -  -  <i>Onychothemis culminicola</i> <br> -  -  -  -  -  -  <i>Pantala</i> <br> -  -  -  -  -  -  -  <i>Pantala flavescens</i> <br> -  -  -  -  -  -  <i>Zygonyx</i> <br> -  -  -  -  -  -  -  <i>Zygonyx iris</i> <br> -  -  -  -  -  -  -  -  <i>Zygonyx iris errans</i> <br> -  -  -  -  -  -  <i>Cratilla</i> <br> -  -  -  -  -  -  -  <i>Cratilla lineata</i> <br> -  -  -  -  -  -  <i>Tyriobapta</i> <br> -  -  -  -  -  -  -  <i>Tyriobapta torrida</i> <br> -  -  -  -  -  -  <i>Neurothemis</i> <br> -  -  -  -  -  -  -  <i>Neurothemis fluctuans</i> <br> -  -  -  -  -  -  -  <i>Neurothemis ramburii</i> <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Platystictidae <br> -  -  -  -  -  -  <i>Drepanosticta</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta actaeon</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta rufostigma</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta versicolor</i> <br> -  -  -  -  -  Megapodagrionidae <br> -  -  -  -  -  -  <i>Rhinagrion</i> <br> -  -  -  -  -  -  -  <i>Rhinagrion elopurae</i> <br> -  -  -  -  -  Amphipterygidae <br> -  -  -  -  -  -  <i>Devadatta</i> <br> -  -  -  -  -  -  -  <i>Devadatta tanduk</i> <br> -  -  -  -  -  Platycnemididae <br> -  -  -  -  -  -  <i>Coeliccia</i> <br> -  -  -  -  -  -  -  <i>Coeliccia arcuata</i> <br> -  -  -  -  -  -  -  <i>Coeliccia borneensis</i> <br> -  -  -  -  -  -  -  <i>Coeliccia cyaneothorax</i> <br> -  -  -  -  -  -  <i>Copera</i> <br> -  -  -  -  -  -  -  <i>Copera vittata</i> <br> -  -  -  -  -  Protoneuridae <br> -  -  -  -  -  -  <i>Prodasineura</i> <br> -  -  -  -  -  -  -  <i>Prodasineura hosei</i> <br> -  -  -  -  -  -  -  <i>Prodasineura verticalis</i> <br> -  -  -  -  -  Euphaeidae <br> -  -  -  -  -  -  <i>Euphaea</i> <br> -  -  -  -  -  -  -  <i>Euphaea impar</i> <br> -  -  -  -  -  -  -  <i>Euphaea subcostalis</i> <br> -  -  -  -  -  -  <i>Dysphaea</i> <br> -  -  -  -  -  -  -  <i>Dysphaea dimidiata</i> <br> -  -  -  -  -  -  -  <i>Dysphaea ulu</i> <br> -  -  -  -  -  Aeshnidae <br> -  -  -  -  -  -  <i>Tetracanthagyna</i> <br> -  -  -  -  -  -  -  <i>Tetracanthagyna degorsi</i> <br> -  -  -  -  -  Cordulegastridae <br> -  -  -  -  -  -  <i>Chlorogomphus</i> <br> -  -  -  -  -  Corduliidae <br> -  -  -  -  -  -  <i>Macromia</i> <br> -  -  -  -  -  -  -  <i>Macromia westwoodii</i> <br> -  -  -  -  -  -  <i>Macromidia</i> <br> -  -  -  -  -  -  -  <i>Macromidia fulva</i> <br> -  -  -  -  -  Coenagrionidae <br> -  -  -  -  -  -  <i>Pseudagrion</i> <br> -  -  -  -  -  -  -  <i>Pseudagrion pilidorsum</i> <br> -  -  -  -  -  -  <i>Agriocnemis</i> <br> -  -  -  -  -  -  -  <i>Agriocnemis femina</i> <br> -  -  -  -  -  -  <i>Stenagrion</i> <br> -  -  -  -  -  -  -  <i>Stenagrion dubium</i> <br> -  -  -  -  -  Calopterygidae <br> -  -  -  -  -  -  <i>Vestalis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amaryllis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amnicola</i> <br> -  -  -  -  -  -  -  <i>Vestalis amoena</i> <br> -  -  -  -  -  -  -  <i>Vestalis anacolosa</i> <br> -  -  -  -  -  -  <i>Vestalis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amaryllis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amnicola</i> <br> -  -  -  -  -  -  -  <i>Vestalis amoena</i> <br> -  -  -  -  -  -  -  <i>Vestalis anacolosa</i> <br> -  -  -  -  -  -  <i>Neurobasis</i> <br> -  -  -  -  -  -  -  <i>Neurobasis longipes</i> <br> -  -  -  -  Odonata <br> -  -  -  -  -  Chlorocyphidae <br> -  -  -  -  -  -  <i>Rhinocypha</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha stygia</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha aurofulgens</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha humeralis</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha stygia</i> <br> -  -  -  -  -  -  <i>Libellago</i> <br> -  -  -  -  -  -  -  <i>Libellago phaethon</i> <br> -  -  -  -  -  -  -  <i>Libellago semiopaca</i> <br> -  -  -  -  -  -  <i>Heliocypha</i> <br> -  -  -  -  -  -  -  <i>Heliocypha biseriata</i> <br> -  -  -  -  -  -  -  <i>Heliocypha biseriata</i> <br> -  -  -  -  -  Gomphidae <br> -  -  -  -  -  -  <i>Burmagomphus</i> <br> -  -  -  -  -  -  -  <i>Burmagomphus insularis</i> <br> -  -  -  -  -  -  <i>Gomphidia</i> <br> -  -  -  -  -  -  <i>Heliogomphus</i> <br> -  -  -  -  -  -  -  <i>Heliogomphus blandulus</i> <br> -  -  -  -  -  -  <i>Ictinogomphus</i> <br> -  -  -  -  -  -  <i>Leptogomphus</i> <br> -  -  -  -  -  -  -  <i>Leptogomphus williamsoni</i> <br> -  -  -  -  -  -  <i>Megalogomphus</i> <br> -  -  -  -  -  -  <i>Onychogomphus</i> <br> -  -  -  -  -  -  <i>Sinogomphus</i> <br> -  -  -  -  -  -  <i>Phaenandrogomphus</i> <br> -  -  -  -  -  -  -  <i>Phaenandrogomphus safei</i> <br> -  -  -  -  -  Lestidae <br> -  -  -  -  -  Libellulidae <br> -  -  -  -  -  -  <i>Trithemis</i> <br> -  -  -  -  -  -  -  <i>Trithemis aurora</i> <br> -  -  -  -  -  -  -  <i>Trithemis festiva</i> <br> -  -  -  -  -  -  <i>Orthetrum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum chrysis</i> <br> -  -  -  -  -  -  -  <i>Orthetrum glaucum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum testaceum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum pruinosum</i> <br> -  -  -  -  -  -  -  -  <i>Orthetrum pruinosum schneideri</i> <br> -  -  -  -  -  -  <i>Tetrathemis</i> <br> -  -  -  -  -  -  <i>Lyriothemis</i> <br> -  -  -  -  -  -  -  <i>Lyriothemis cleis</i> <br> -  -  -  -  -  -  <i>Camacinia</i> <br> -  -  -  -  -  -  -  <i>Camacinia gigantea</i> <br> -  -  -  -  -  -  <i>Onychothemis</i> <br> -  -  -  -  -  -  -  <i>Onychothemis culminicola</i> <br> -  -  -  -  -  -  <i>Pantala</i> <br> -  -  -  -  -  -  -  <i>Pantala flavescens</i> <br> -  -  -  -  -  -  <i>Zygonyx</i> <br> -  -  -  -  -  -  -  <i>Zygonyx iris</i> <br> -  -  -  -  -  -  -  -  <i>Zygonyx iris errans</i> <br> -  -  -  -  -  -  <i>Cratilla</i> <br> -  -  -  -  -  -  -  <i>Cratilla lineata</i> <br> -  -  -  -  -  -  <i>Tyriobapta</i> <br> -  -  -  -  -  -  -  <i>Tyriobapta torrida</i> <br> -  -  -  -  -  -  <i>Neurothemis</i> <br> -  -  -  -  -  -  -  <i>Neurothemis fluctuans</i> <br> -  -  -  -  -  -  -  <i>Neurothemis ramburii</i> <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Platystictidae <br> -  -  -  -  -  -  <i>Drepanosticta</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta actaeon</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta rufostigma</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta versicolor</i> <br> -  -  -  -  -  Megapodagrionidae <br> -  -  -  -  -  -  <i>Rhinagrion</i> <br> -  -  -  -  -  -  -  <i>Rhinagrion elopurae</i> <br> -  -  -  -  -  Amphipterygidae <br> -  -  -  -  -  -  <i>Devadatta</i> <br> -  -  -  -  -  -  -  <i>Devadatta tanduk</i> <br> -  -  -  -  -  Platycnemididae <br> -  -  -  -  -  -  <i>Coeliccia</i> <br> -  -  -  -  -  -  -  <i>Coeliccia arcuata</i> <br> -  -  -  -  -  -  -  <i>Coeliccia borneensis</i> <br> -  -  -  -  -  -  -  <i>Coeliccia cyaneothorax</i> <br> -  -  -  -  -  -  <i>Copera</i> <br> -  -  -  -  -  -  -  <i>Copera vittata</i> <br> -  -  -  -  -  Protoneuridae <br> -  -  -  -  -  -  <i>Prodasineura</i> <br> -  -  -  -  -  -  -  <i>Prodasineura hosei</i> <br> -  -  -  -  -  -  -  <i>Prodasineura verticalis</i> <br> -  -  -  -  -  Euphaeidae <br> -  -  -  -  -  -  <i>Euphaea</i> <br> -  -  -  -  -  -  -  <i>Euphaea impar</i> <br> -  -  -  -  -  -  -  <i>Euphaea subcostalis</i> <br> -  -  -  -  -  -  <i>Dysphaea</i> <br> -  -  -  -  -  -  -  <i>Dysphaea dimidiata</i> <br> -  -  -  -  -  -  -  <i>Dysphaea ulu</i> <br> -  -  -  -  -  Aeshnidae <br> -  -  -  -  -  -  <i>Tetracanthagyna</i> <br> -  -  -  -  -  -  -  <i>Tetracanthagyna degorsi</i> <br> -  -  -  -  -  Cordulegastridae <br> -  -  -  -  -  -  <i>Chlorogomphus</i> <br> -  -  -  -  -  Corduliidae <br> -  -  -  -  -  -  <i>Macromia</i> <br> -  -  -  -  -  -  -  <i>Macromia westwoodii</i> <br> -  -  -  -  -  -  <i>Macromidia</i> <br> -  -  -  -  -  -  -  <i>Macromidia fulva</i> <br> -  -  -  -  -  Coenagrionidae <br> -  -  -  -  -  -  <i>Pseudagrion</i> <br> -  -  -  -  -  -  -  <i>Pseudagrion pilidorsum</i> <br> -  -  -  -  -  -  <i>Agriocnemis</i> <br> -  -  -  -  -  -  -  <i>Agriocnemis femina</i> <br> -  -  -  -  -  -  <i>Stenagrion</i> <br> -  -  -  -  -  -  -  <i>Stenagrion dubium</i> <br> -  -  -  -  -  Calopterygidae <br> -  -  -  -  -  -  <i>Vestalis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amaryllis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amnicola</i> <br> -  -  -  -  -  -  -  <i>Vestalis amoena</i> <br> -  -  -  -  -  -  -  <i>Vestalis anacolosa</i> <br> -  -  -  -  -  -  <i>Vestalis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amaryllis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amnicola</i> <br> -  -  -  -  -  -  -  <i>Vestalis amoena</i> <br> -  -  -  -  -  -  -  <i>Vestalis anacolosa</i> <br> -  -  -  -  -  -  <i>Neurobasis</i> <br> -  -  -  -  -  -  -  <i>Neurobasis longipes</i> <br> -  -  -  -  Odonata <br> -  -  -  -  -  Chlorocyphidae <br> -  -  -  -  -  -  <i>Rhinocypha</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha stygia</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha aurofulgens</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha humeralis</i> <br> -  -  -  -  -  -  -  <i>Rhinocypha stygia</i> <br> -  -  -  -  -  -  <i>Libellago</i> <br> -  -  -  -  -  -  -  <i>Libellago phaethon</i> <br> -  -  -  -  -  -  -  <i>Libellago semiopaca</i> <br> -  -  -  -  -  -  <i>Heliocypha</i> <br> -  -  -  -  -  -  -  <i>Heliocypha biseriata</i> <br> -  -  -  -  -  -  -  <i>Heliocypha biseriata</i> <br> -  -  -  -  -  Gomphidae <br> -  -  -  -  -  -  <i>Burmagomphus</i> <br> -  -  -  -  -  -  -  <i>Burmagomphus insularis</i> <br> -  -  -  -  -  -  <i>Gomphidia</i> <br> -  -  -  -  -  -  <i>Heliogomphus</i> <br> -  -  -  -  -  -  -  <i>Heliogomphus blandulus</i> <br> -  -  -  -  -  -  <i>Ictinogomphus</i> <br> -  -  -  -  -  -  <i>Leptogomphus</i> <br> -  -  -  -  -  -  -  <i>Leptogomphus williamsoni</i> <br> -  -  -  -  -  -  <i>Megalogomphus</i> <br> -  -  -  -  -  -  <i>Onychogomphus</i> <br> -  -  -  -  -  -  <i>Sinogomphus</i> <br> -  -  -  -  -  -  <i>Phaenandrogomphus</i> <br> -  -  -  -  -  -  -  <i>Phaenandrogomphus safei</i> <br> -  -  -  -  -  Lestidae <br> -  -  -  -  -  Libellulidae <br> -  -  -  -  -  -  <i>Trithemis</i> <br> -  -  -  -  -  -  -  <i>Trithemis aurora</i> <br> -  -  -  -  -  -  -  <i>Trithemis festiva</i> <br> -  -  -  -  -  -  <i>Orthetrum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum chrysis</i> <br> -  -  -  -  -  -  -  <i>Orthetrum glaucum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum testaceum</i> <br> -  -  -  -  -  -  -  <i>Orthetrum pruinosum</i> <br> -  -  -  -  -  -  -  -  <i>Orthetrum pruinosum schneideri</i> <br> -  -  -  -  -  -  <i>Tetrathemis</i> <br> -  -  -  -  -  -  <i>Lyriothemis</i> <br> -  -  -  -  -  -  -  <i>Lyriothemis cleis</i> <br> -  -  -  -  -  -  <i>Camacinia</i> <br> -  -  -  -  -  -  -  <i>Camacinia gigantea</i> <br> -  -  -  -  -  -  <i>Onychothemis</i> <br> -  -  -  -  -  -  -  <i>Onychothemis culminicola</i> <br> -  -  -  -  -  -  <i>Pantala</i> <br> -  -  -  -  -  -  -  <i>Pantala flavescens</i> <br> -  -  -  -  -  -  <i>Zygonyx</i> <br> -  -  -  -  -  -  -  <i>Zygonyx iris</i> <br> -  -  -  -  -  -  -  -  <i>Zygonyx iris errans</i> <br> -  -  -  -  -  -  <i>Cratilla</i> <br> -  -  -  -  -  -  -  <i>Cratilla lineata</i> <br> -  -  -  -  -  -  <i>Tyriobapta</i> <br> -  -  -  -  -  -  -  <i>Tyriobapta torrida</i> <br> -  -  -  -  -  -  <i>Neurothemis</i> <br> -  -  -  -  -  -  -  <i>Neurothemis fluctuans</i> <br> -  -  -  -  -  -  -  <i>Neurothemis ramburii</i> <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Macromiidae <br> -  -  -  -  -  Platystictidae <br> -  -  -  -  -  -  <i>Drepanosticta</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta actaeon</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta rufostigma</i> <br> -  -  -  -  -  -  -  <i>Drepanosticta versicolor</i> <br> -  -  -  -  -  Megapodagrionidae <br> -  -  -  -  -  -  <i>Rhinagrion</i> <br> -  -  -  -  -  -  -  <i>Rhinagrion elopurae</i> <br> -  -  -  -  -  Amphipterygidae <br> -  -  -  -  -  -  <i>Devadatta</i> <br> -  -  -  -  -  -  -  <i>Devadatta tanduk</i> <br> -  -  -  -  -  Platycnemididae <br> -  -  -  -  -  -  <i>Coeliccia</i> <br> -  -  -  -  -  -  -  <i>Coeliccia arcuata</i> <br> -  -  -  -  -  -  -  <i>Coeliccia borneensis</i> <br> -  -  -  -  -  -  -  <i>Coeliccia cyaneothorax</i> <br> -  -  -  -  -  -  <i>Copera</i> <br> -  -  -  -  -  -  -  <i>Copera vittata</i> <br> -  -  -  -  -  Protoneuridae <br> -  -  -  -  -  -  <i>Prodasineura</i> <br> -  -  -  -  -  -  -  <i>Prodasineura hosei</i> <br> -  -  -  -  -  -  -  <i>Prodasineura verticalis</i> <br> -  -  -  -  -  Euphaeidae <br> -  -  -  -  -  -  <i>Euphaea</i> <br> -  -  -  -  -  -  -  <i>Euphaea impar</i> <br> -  -  -  -  -  -  -  <i>Euphaea subcostalis</i> <br> -  -  -  -  -  -  <i>Dysphaea</i> <br> -  -  -  -  -  -  -  <i>Dysphaea dimidiata</i> <br> -  -  -  -  -  -  -  <i>Dysphaea ulu</i> <br> -  -  -  -  -  Aeshnidae <br> -  -  -  -  -  -  <i>Tetracanthagyna</i> <br> -  -  -  -  -  -  -  <i>Tetracanthagyna degorsi</i> <br> -  -  -  -  -  Cordulegastridae <br> -  -  -  -  -  -  <i>Chlorogomphus</i> <br> -  -  -  -  -  Corduliidae <br> -  -  -  -  -  -  <i>Macromia</i> <br> -  -  -  -  -  -  -  <i>Macromia westwoodii</i> <br> -  -  -  -  -  -  <i>Macromidia</i> <br> -  -  -  -  -  -  -  <i>Macromidia fulva</i> <br> -  -  -  -  -  Coenagrionidae <br> -  -  -  -  -  -  <i>Pseudagrion</i> <br> -  -  -  -  -  -  -  <i>Pseudagrion pilidorsum</i> <br> -  -  -  -  -  -  <i>Agriocnemis</i> <br> -  -  -  -  -  -  -  <i>Agriocnemis femina</i> <br> -  -  -  -  -  -  <i>Stenagrion</i> <br> -  -  -  -  -  -  -  <i>Stenagrion dubium</i> <br> -  -  -  -  -  Calopterygidae <br> -  -  -  -  -  -  <i>Vestalis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amaryllis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amnicola</i> <br> -  -  -  -  -  -  -  <i>Vestalis amoena</i> <br> -  -  -  -  -  -  -  <i>Vestalis anacolosa</i> <br> -  -  -  -  -  -  <i>Vestalis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amaryllis</i> <br> -  -  -  -  -  -  -  <i>Vestalis amnicola</i> <br> -  -  -  -  -  -  -  <i>Vestalis amoena</i> <br> -  -  -  -  -  -  -  <i>Vestalis anacolosa</i> <br> -  -  -  -  -  -  <i>Neurobasis</i> <br> -  -  -  -  -  -  -  <i>Neurobasis longipes</i> <br> -  -  -  -  Plecoptera <br> -  -  -  -  -  Leuctridae <br> -  -  -  -  -  Nemouridae <br> -  -  -  -  -  Peltoperlidae <br> -  -  -  -  -  Perlidae <br> -  -  -  -  Plecoptera <br> -  -  -  -  -  Leuctridae <br> -  -  -  -  -  Nemouridae <br> -  -  -  -  -  Peltoperlidae <br> -  -  -  -  -  Perlidae <br> -  -  -  -  Plecoptera <br> -  -  -  -  -  Leuctridae <br> -  -  -  -  -  Nemouridae <br> -  -  -  -  -  Peltoperlidae <br> -  -  -  -  -  Perlidae <br> -  -  -  -  Plecoptera <br> -  -  -  -  -  Leuctridae <br> -  -  -  -  -  Nemouridae <br> -  -  -  -  -  Peltoperlidae <br> -  -  -  -  -  Perlidae <br> -  -  -  -  Trichoptera <br> -  -  -  -  -  Calamoceratidae <br> -  -  -  -  -  Dipseudopsidae <br> -  -  -  -  -  Ecnomidae <br> -  -  -  -  -  Hydropsychidae <br> -  -  -  -  -  Hydroptilidae <br> -  -  -  -  -  Lepidostomatidae <br> -  -  -  -  -  Leptoceridae <br> -  -  -  -  -  Philopotamidae <br> -  -  -  -  -  Polycentropodidae <br> -  -  -  -  -  Psychomyiidae <br> -  -  -  -  -  Xiphocentronidae <br> -  -  -  -  Trichoptera <br> -  -  -  -  -  Calamoceratidae <br> -  -  -  -  -  Dipseudopsidae <br> -  -  -  -  -  Ecnomidae <br> -  -  -  -  -  Hydropsychidae <br> -  -  -  -  -  Hydroptilidae <br> -  -  -  -  -  Lepidostomatidae <br> -  -  -  -  -  Leptoceridae <br> -  -  -  -  -  Philopotamidae <br> -  -  -  -  -  Polycentropodidae <br> -  -  -  -  -  Psychomyiidae <br> -  -  -  -  -  Xiphocentronidae <br> -  -  -  -  Trichoptera <br> -  -  -  -  -  Calamoceratidae <br> -  -  -  -  -  Dipseudopsidae <br> -  -  -  -  -  Ecnomidae <br> -  -  -  -  -  Hydropsychidae <br> -  -  -  -  -  Hydroptilidae <br> -  -  -  -  -  Lepidostomatidae <br> -  -  -  -  -  Leptoceridae <br> -  -  -  -  -  Philopotamidae <br> -  -  -  -  -  Polycentropodidae <br> -  -  -  -  -  Psychomyiidae <br> -  -  -  -  -  Xiphocentronidae <br> -  -  -  -  Hemiptera <br> -  -  -  -  -  Heteroptera <br> -  -  -  -  -  Gerridae <br> -  -  -  -  -  -  Halobatinae <br> -  -  -  -  -  -  [4spot] <br> -  -  -  -  -  -  [Morphospecies15] <br> -  -  -  -  -  -  [Morphospecies25] <br> -  -  -  -  -  -  [Morphospecies27] <br> -  -  -  -  -  -  [Morphospecies28] <br> -  -  -  -  -  -  [Morphospecies29] <br> -  -  -  -  -  -  [Morphospecies33] <br> -  -  -  -  -  -  [Morphospecies34] <br> -  -  -  -  -  -  [Morphospecies35] <br> -  -  -  -  -  -  [Morphospecies42] <br> -  -  -  -  -  -  [Morphospecies46] <br> -  -  -  -  -  -  [Morphospecies47] <br> -  -  -  -  -  -  [Morphospecies6] <br> -  -  -  -  -  -  <i>Limnometra</i> <br> -  -  -  -  -  -  -  [Limnometra.sp.] <br> -  -  -  -  -  -  <i>Tenagogonus</i> <br> -  -  -  -  -  -  -  [Tenagogonus.sp.1] <br> -  -  -  -  -  -  -  [Tenagogonus.sp.2] <br> -  -  -  -  -  -  <i>Ptilomera</i> <br> -  -  -  -  -  -  -  [Ptilomera.sp.] <br> -  -  -  -  -  -  <i>Potamometropsis</i> <br> -  -  -  -  -  -  -  [Potamometropsis.sp.] <br> -  -  -  -  -  -  <i>Metrocoris</i> <br> -  -  -  -  -  -  -  [Metrocoris.sp.1] <br> -  -  -  -  -  -  -  [Metrocoris.sp.2] <br> -  -  -  -  -  -  <i>Cylindrostethus</i> <br> -  -  -  -  -  -  -  <i>Cylindrostethus scrutator</i> <br> -  -  -  -  -  -  -  [Cylindrostethus.sp.] <br> -  -  -  -  -  Veliidae <br> -  -  -  -  -  -  [Morphospecies20] <br> -  -  -  -  -  -  [Morphospecies24] <br> -  -  -  -  -  -  [Morphospecies30] <br> -  -  -  -  -  -  [Morphospecies31] <br> -  -  -  -  -  -  [Morphospecies36] <br> -  -  -  -  -  -  [Morphospecies37] <br> -  -  -  -  -  -  [Morphospecies38] <br> -  -  -  -  -  -  [Morphospecies4] <br> -  -  -  -  -  -  [Morphospecies40] <br> -  -  -  -  -  -  [Morphospecies41] <br> -  -  -  -  -  -  [Morphospecies43] <br> -  -  -  -  -  -  [Morphospecies44] <br> -  -  -  -  -  -  [Morphospecies45] <br> -  -  -  -  -  -  [Morphospecies7] <br> -  -  -  -  -  -  [Morphospecies7.sp.2] <br> -  -  -  -  -  -  <i>Rhagovelia</i> <br> -  -  -  -  -  -  -  [Rhagovelia.sp.] <br> -  -  -  -  -  -  -  [Rhagovelia.sp.2] <br> -  -  -  -  -  -  -  [Rhagovelia.sp.3] <br> -  -  -  -  -  -  <i>Strongylovelia</i> <br> -  -  -  -  -  -  -  [Strongylovelia.sp.] <br> -  -  -  -  -  Gerridae <br> -  -  -  -  -  -  Halobatinae <br> -  -  -  -  -  -  [4spot] <br> -  -  -  -  -  -  [Morphospecies15] <br> -  -  -  -  -  -  [Morphospecies25] <br> -  -  -  -  -  -  [Morphospecies27] <br> -  -  -  -  -  -  [Morphospecies28] <br> -  -  -  -  -  -  [Morphospecies29] <br> -  -  -  -  -  -  [Morphospecies33] <br> -  -  -  -  -  -  [Morphospecies34] <br> -  -  -  -  -  -  [Morphospecies35] <br> -  -  -  -  -  -  [Morphospecies42] <br> -  -  -  -  -  -  [Morphospecies46] <br> -  -  -  -  -  -  [Morphospecies47] <br> -  -  -  -  -  -  [Morphospecies6] <br> -  -  -  -  -  -  <i>Limnometra</i> <br> -  -  -  -  -  -  -  [Limnometra.sp.] <br> -  -  -  -  -  -  <i>Tenagogonus</i> <br> -  -  -  -  -  -  -  [Tenagogonus.sp.1] <br> -  -  -  -  -  -  -  [Tenagogonus.sp.2] <br> -  -  -  -  -  -  <i>Ptilomera</i> <br> -  -  -  -  -  -  -  [Ptilomera.sp.] <br> -  -  -  -  -  -  <i>Potamometropsis</i> <br> -  -  -  -  -  -  -  [Potamometropsis.sp.] <br> -  -  -  -  -  -  <i>Metrocoris</i> <br> -  -  -  -  -  -  -  [Metrocoris.sp.1] <br> -  -  -  -  -  -  -  [Metrocoris.sp.2] <br> -  -  -  -  -  -  <i>Cylindrostethus</i> <br> -  -  -  -  -  -  -  <i>Cylindrostethus scrutator</i> <br> -  -  -  -  -  -  -  [Cylindrostethus.sp.] <br> -  -  -  -  -  Macroveliidae <br> -  -  -  -  -  -  <i>Rheumatogonus</i> <br> -  -  -  -  -  -  -  [Rheumatogonus.sp.1] <br> -  -  -  -  -  -  -  [Rheumatogonus.sp.2] <br> -  -  -  -  -  -  <i>Ventidius</i> <br> -  -  -  -  -  -  -  [Ventidius.sp.] <br> -  -  -  -  -  -  -  [Ventidius.sp.2] <br> -  -  -  Shrimps <br> -  -  -  Arachnida <br> -  -  -  -  Mites <br> -  -  -  Malacostraca <br> -  -  -  -  Isopoda <br> -  -  Mollusca <br> -  -  -  Gastropoda <br> -  -  Chordata <br> -  -  -  Actinopterygii <br></div><p></p>
Linked Data Conversion using Microservices
<p>Conference talk at the LINCS 2021 conference describing the motivations, design, and development process behind the creation of the NSSI (NERVE Secure Scalable Infrastructure) data conversion platform.</p>
Supplementary material for the manuscript "Simple synthesis of massively parallel RNA microarrays via enzymatic conversion from DNA microarrays"
<p>This dataset contains:</p> <ul> <li> a .txt file with the design of the Agilent SurePrint DNA microarray AMADID 086693, containing all sequences and their position on the surface </li> <li> the following raw microarray scans:</li> </ul> <ol> <li>Image of T7RNAP crystal structure, scanned at 635 nm (Cy5) (polymerase) ("01_T7RNAP image_Cy5")</li> <li>Image of T7RNAP crystal structure, scanned at 532 nm (Cy3) (dsDNA template strand) ("02_T7RNAP image_Cy3")</li> <li>Image of T7RNAP crystal structure, scanned at 488 nm (FAM) (RNA product strand) ("03_ T7RNAP image_FAM")</li> <li>Scan of the Agilent SurePrint DNA microarray (AMADID 086693) after hybridization with a Cy3-labeled oligonucleotide to untreated DNA (Block 1) and RNA as the product of the conversion process (Block 2) ("04_AgilentArray - Block 1 (untreated) vs Block 2 (converted)")</li> </ol>
Soil microbial diversity and community composition during conversion from conventional to organic agriculture
<p>It is generally assumed that the dependence of conventional agriculture on artificial fertilizers and pesticides strongly impacts the environment, while organic agriculture relying more on microbial functioning may mitigate these impacts. However, it is not well known how microbial diversity and community composition change in conventionally managed farmers' fields that are converted to organic management. Here, we sequenced bacterial and fungal communities of 34 organic fields on sand and marine clay soils in a time series (chronosequence) covering 25 years of conversion. Nearby conventional fields were used as references. We found that community composition of bacteria and fungi differed between organic and conventionally managed fields. In the organic fields, fungal diversity increased with time since conversion. However, this effect disappeared when the conventional paired fields were included. There was a relationship between pH and soil organic matter content and the diversity and community composition of bacteria and fungi. In marine clay soils, when time since organic management increased, fungal communities in organic fields became more dissimilar to those in conventional fields. We conclude that conversion to organic management in these Dutch farmers' fields did not increase microbial community diversity. Instead, we observed that in organic fields in marine clay when time since conversion increased soil fungal community composition became progressively dissimilar from that in conventional fields. Our results also showed that the paired sampling approach of organic and conventional fields was essential in order to control for environmental variation that was otherwise unaccounted for.</p>
Elucidation of radical- and oxygenate-driven paths in zeolite-catalyzed conversion of methanol and methyl chloride to hydrocarbons
<p>Dataset corresponding to the publication:</p> <p><strong>Elucidation of radical- and oxygenate-driven paths in zeolite-catalyzed conversion of methanol and methyl chloride to hydrocarbons</strong></p> <p>Alessia Cesarini,<sup>1†</sup> Sharon Mitchell,<sup>1†</sup> Guido Zichittella,<sup>1†</sup>* Mikhail Agrachev,<sup>2</sup> Stefan P. Schmid,<sup>2</sup> Gunnar Jeschke,<sup>2</sup> Zeyou Pan,<sup>3</sup> Andras Bodi,<sup>3</sup> Patrick Hemberger,<sup>3</sup>* and Javier Pérez‑Ramírez<sup>1</sup>*</p> <p><sup>1</sup> Institute for Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zurich, Vladimir-Prelog-Weg 1, 8093 Zurich, Switzerland,</p> <p><sup>2</sup> Laboratory of Physical Chemistry, Department of Chemistry and Applied Biosciences, ETH Zurich, Vladimir-Prelog-Weg 2, 8093 Zurich, Switzerland,</p> <p><sup>3</sup> Laboratory of Synchrotron Radiation and Femtochemistry, Paul Scherrer Institute, 5232 Villigen PSI, Switzerland,</p> <p><sup>†</sup>These authors contributed equally, listed alphabetically.</p> <p>*Corresponding author. E-mails: zguido@mit.edu, <a href="mailto:patrick.hemberger@psi.ch">patrick.hemberger@psi.ch</a>, jpr@chem.ethz.ch.</p>
ScienceDex guides
Understand access before you commit
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.