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zenodo56/100

The deployment of temporary nurses and its association with permanent nurses' outcomes in Swiss psychiatric hospitals: A secondary analysis.

<p>The objective of this analysis was to investigate the frequency of temporary nurses&rsquo; deployment and their association with nurse staffing levels and permanent nurses&rsquo; outcomes in Swiss psychiatric hospitals. The data is based on the Match<sup>RN</sup> Psychiatry study including 79 psychiatric units and 651 nurses&nbsp; and provides unit level frequency of temporary nurses&rsquo; deployment and individual nurse level data on&nbsp; staffing levels and permanent nurses&rsquo; outcomes namely job satisfaction, burnout, and intention to leave organization or profession. The data was collected in 2019 and 2020. We provide the unit and nurse-level dataset, a codebook and the r code to replicate the analyses of the paper. You can find the paper here: <a href="https://peerj.com/articles/15300/">https://peerj.com/articles/15300/</a>&nbsp;</p>

opencc-by-4.0Dec 2022View details →
zenodo52/100

Low-voltage Secondary Electron Emission Spectromicroscopy using a Scanning Auger Microscope

<p>Secondary electron emission is considered a well-established nano-scale probe for mapping the surface morphology of materials. It has also been demonstrated that secondary electrons (SE) emitted from materials can provide additional information on the local work function, bulk density of state (DOS), surface potential, charging/discharging characteristics, and elemental/chemical properties of bulk materials. The nano-scale lateral resolution and surface sensitivity of low-voltage scanning microscopes give them a unique advantage for the investigation of surfaces. However, the surface contamination caused by exposure to electron beams has always been a limiting factor for this purpose. Since the yield of SE emission is higher than that of Auger emission, the secondary electron emission spectromicroscopy (SEES) performed in an ultra-high vacuum chamber using a scanning Auger microscope (SAM) can be a very powerful tool for surface characterization, especially in the case of ultra-thin materials.</p> <p>We adapt our scanning auger microscope (SAM), equipped with a cylindrical mirror analyzer (CMA) and operated in an ultra-high vacuum, to SEES by tilting the sample holder and applying a negative bias to the sample. We also presented SEES signals of Chromium thin film at low voltages of 500 and 1000 V.</p>

opencc-by-4.0Sep 2024View details →
zenodo48/100

Data from: Structure and dynamics of secondary and mature rainforests: insights from South Asian long-term monitoring plots

<p><strong>1) DESCRIPTION&nbsp;</strong></p> <p>The dataset contains annual woody stems (shrubs and trees) census data collected from two long-term ecological monitoring plots spanning one hectare each in the Anamalai Hills of the Southern Western Ghats, India. These two plots represent one situated in a mature forest located within relatively undisturbed rainforest of the Anamalai Tiger Reserve (ATR) and one in secondary forest on the Valparai Plateau, respectively. Both plots have been censused and measured from 2017 to 2022 following the standardized protocol (RAINFOR-GEM, Marthews et al. 2014).</p> <p><br><strong>2) CONTACTS</strong></p> <p>CONTACT #1<br>1. Name: Akhil Murali<br>2. Work Address: Nature Conservation Foundation, 1311, 12th A Main, Vijayanagar 1st Stage, Mysuru 570017, Karnataka, India<br>3. Work Phone: +91 82812 97441<br>4. Email address: akhil@ncf-india.org<br>5. ORCID: 0000-0001-6149-6458</p> <p>CONTACT #2<br>1. Name: Srinivasan Kasinathan<br>2. Work Address: Nature Conservation Foundation, 1311, 12th A Main, Vijayanagar 1st Stage, Mysuru 570017, Karnataka, India<br>3. Work Phone: +91 821 2515601<br>4. Email address: srini@ncf-india.org<br>5. ORCID: 0000-0001-7323-6653&nbsp;</p> <p>CONTACT #3<br>1. Name: Kshama Bhat<br>2. Work Address: Nature Conservation Foundation, 1311, 12th A Main, Vijayanagar 1st Stage, Mysuru 570017, Karnataka, India<br>3. Work Phone: +91 821 2515601<br>4. Email address: kshama@ncf-india.org<br>5. ORCID: 000-0002-6190-2687</p> <p>CONTACT #4&nbsp;<br>1. Name: Jayashree Ratnam&nbsp;<br>2. Work Address: National Centre for Biological Sciences, TIFR, Bellary Road, Bengaluru 560065, Karnataka, India<br>3. Work Phone: +91 80 23666001&nbsp;<br>4. Email address: jratnam@ncbs.res.in&nbsp;<br>5. ORCID: 0000-0002-6568-8374</p> <p>CONTACT #5<br>1. Name: Mahesh Sankaran&nbsp;<br>2. Work Address: National Centre for Biological Sciences, TIFR, Bellary Road, Bengaluru 560065, Karnataka, India<br>3. Work Phone: +91 80 23666001<br>4. Email address: mahesh@ncbs.res.in&nbsp;<br>5. ORCID: 0000-0002-1661-6542</p> <p>CONTACT #6<br>1. Name: Divya Mudappa<br>2. Work Address: Nature Conservation Foundation, 1311, 12th A Main, Vijayanagar 1st Stage, Mysuru 570017, Karnataka, India<br>3. Work Phone: +91 821 2515601<br>4. Email address: divya@ncf-india.org<br>5. ORCID: 0000-0001-9708-4826</p> <p>CONTACT #7<br>1. Name: T. R. Shankar Raman<br>2. Work Address: Nature Conservation Foundation, 1311, 12th A Main, Vijayanagar 1st Stage, Mysuru 570017, Karnataka, India<br>3. Work Phone: +91 821 2515601<br>4. Email address: trsr@ncf-india.org<br>5. ORCID: 0000-0002-1347-3953</p> <p>CONTACT #8<br>1. Name: Anand M Osuri&nbsp;<br>2. Work Address: Nature Conservation Foundation, 1311, 12th A Main, Vijayanagar 1st Stage, Mysuru 570017, Karnataka, India<br>3. Work Phone: +91 821 2515601<br>4. Email address: aosuri@ncf-india.org&nbsp;<br>5. ORCID: 0000-0001-9909-5633</p> <p><br><strong>3) GEOGRAPHIC COVERAGE and SITE DESCRIPTION</strong></p> <p>a) Site type: : Tropical Forest<br>b) Geography: : Anamalai Tiger Reserve, Southern Western Ghats.<br>c) Habit: : Mid elevation Wet evergreen Forest<br>d) Site History: :&nbsp;</p> <p>i) MANAMBOLI- The Mature Forest plot (10.357748&deg; N, 76.889747&deg; E; 825 m asl) is situated within a relatively undisturbed 200-hectare mid-elevation tropical wet evergreen rainforest tract at the core of the Anamalai Tiger Reserve (ATR). This area has been protected from logging and other significant disturbances since its establishment as a protected area in 1979.</p> <p>ii) CANDURA- The Secondary Forest plot (10.30855411&deg; N, 76.83391853&deg; E; 875 m asl) is situated within a 124-hectare rainforest remnant on the Valparai Plateau: the Candura rainforest remnant. The Candura site experienced episodic selective logging in the 1990s and early 2000s, with the last logging episode occurring in 2004. In the early 2000s, the understorey of the remnant was cleared for Vanilla (Vanilla planifolia) cultivation in the central and southern parts (abandoned in 2007), robusta coffee (Coffea canephora) in the northwestern corner (abandoned in the early 2000s), and pepper in 21 hectares in the northeastern part (established in 2015, abandoned in 2021).</p> <p>Climate: Humid tropical with about 2400 mm rainfall annually, falling mainly during the southwest monsoon.</p> <p><br><strong>4) TEMPORAL COVERAGE</strong></p> <p>a) Begins: 2017-11-30 (Year, Month, Day)<br>b) Ends: 2022-11-12 (Year, Month, Day)</p> <p><br>5) SAMPLING DESIGN AND METHODS&nbsp;</p> <p>a) Plot Design: Each 1 ha plot of 100 m &times; 100 m, sub-divided into 100 continuous sub-plots of 10 m &times; 10 m, was surveyed and mapped to maximum accuracy using a theodolite in the field, with grid corners permanently staked.&nbsp;<br>b) Data collection period and frequency: After the plot establishment in NOvember -- December 2017, the plots were recensused each year (around November).&nbsp;<br>c) Research Methods: All woody plant individuals with girth at breast height (GBH, at 1.3 m) &ge;10 cm were tagged with numbered aluminum tags and spatially mapped. Plant species were identified using standard floral keys. Stem GBH was measured for all single stemmed individuals. For trees with buttresses, the GBH point of measurement (POM) was taken at 50 cm above the buttresses or at the height where the stem is regular. New saplings that recruited into the &ge;10 cm GBH class were identified, mapped, tagged, and added to the monitoring. Stems that appeared to be dead were recorded at each monitoring and those that showed no signs of recovery in subsequent visits were recorded as mortality.</p> <p><br><strong>6) FILES INCLUDED</strong></p> <p>The dataset includes the following 9 files, whose details and contents are explained below. (Wherever used in the various files, NA implies not available.)</p> <p>01_README.txt<br>Metadata (this file) including information on the dataset explaining associated files and their contents.</p> <p>02_Candura_annual_census.csv&nbsp;<br>This contains the Annual census data with the following column headings:&nbsp;<br>site: Site name (Can = Candura)<br>cno: Census Number (1 = 2017, 2 = 2018..., 6 = 2022)<br>ymd: Date in DD-MM-YYYY format (Day Month Year)<br>gno: Grid Number<br>tno: Unique tag number for the plant<br>pno: Pole Number (unique alphabetic code for each stem of multi-stemmed individuals)<br>sps: Species name as codes<br>lx: X coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>ly: Y coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>ht1: Point of measurement at 1.3 m above the ground or 50 cm above the top of the highest buttress or stilt root (POM1)<br>c1: Alive status of the stem at the POM1 (coded according Marthews et al. 2014, page: 97)<br>g1: Stem girth at POM1 (in centimetre)<br>ht2: 20 cm above the ht1 or point of measurement 2 (POM2) recording girth at which the dendroband is attached<br>c2: Alive status of the stem at the POM2 (coded acording Marthews et al. 2014, page: 97)<br>g2: Girth at POM2 (in centimetre)<br>dyn: whether the dendroband is attached to the tree or not (y-Yes, n-No)<br>da: alive status of stem (d-dead,a-alive)<br>remarks: remarks or notes</p> <p>03_Manamboly_annual_census.csv<br>This contains Annual census data with the following column headings:&nbsp;<br>site: Site name (Man = Manamboli)<br>cno: Census Number (1 = 2017, 2 = 2018..., 6 = 2022)<br>ymd: Date in DD-MM-YYYY format (Day Month Year)<br>gno: Grid Number<br>tno: Unique tag number for the plant<br>pno: Pole Number (unique alphabetic code for each stem of multi-stemmed individuals)<br>sps: Species name as codes<br>lx: X coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>ly: Y coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>ht1: Point of measurement at 1.3 m above the ground or 50 cm above the top of the highest buttress or stilt root (POM1)<br>c1: Alive status of the stem at the POM1 (coded according Marthews et al. 2014, page: 97)<br>g1: Stem girth at POM1 (in centimetre)<br>ht2: 20 cm above the ht1 or point of measurement 2 (POM2) recording girth at which the dendroband is attached<br>c2: Alive status of the stem at the POM2 (coded acording Marthews et al. 2014, page: 97)<br>g2: Girth at POM2 (in centimetre)<br>dyn: whether the dendroband is attached to the tree or not (y-Yes, n-No)<br>da: alive status of stem (d-dead,a-alive)<br>remarks: remarks or notes</p> <p>04_Candura_vernier.csv<br>This file has the girth measurement of trees with lianas where digital vernier calipers were used to measure stem diameter since it was not possible to measure stem girth using measuring tape.<br>site: Site name (Can = Candura)<br>cno: Census Number<br>ymd: Date in DD-MM-YYYY format (Day Month Year)<br>gno: Grid Number<br>tno: Unique tag number for the plant<br>pno: Pole Number (unique alphabetic code for each stem of multi-stemmed individuals)<br>sps: Species name as codes<br>vern1_d1 First measure of diameter at POM1 (in millimetre)&nbsp;<br>vern2_d1 Second measure of diameter at POM1 (in millimetre)&nbsp;<br>vern3_d1 Third measure of diameter at POM1 (in millimetre)&nbsp;<br>calc_g1: Girth at POM1 (in centimetre; calculated using the averaged value as diameter from the three measurements)<br>vern1_d2 First measure of diameter at POM2 (in millimetre)&nbsp;<br>vern2_d2 Second measure of diameter at POM2 (in millimetre)&nbsp;<br>vern3_d2 Third measure of diameter at POM2 (in millimetre)&nbsp;<br>calc_g2 Girth at POM2 (in centimetre; calculated using the averaged value as diameter from the three measurements)<br>Remarks Remarks and notes</p> <p>05_Manamboli_vernier.csv<br>This file has the girth measurement of trees with lianas where digital vernier calipers were used to measure stem diameter since it was not possible to measure stem girth using measuring tape.<br>site: Site name (Man = Manamboli)<br>cno: Census Number<br>ymd: Date in DD-MM-YYYY format (Day Month Year)<br>gno: Grid Number<br>tno: Unique tag number for the plant<br>pno: Pole Number (unique alphabetic code for each stem of multi-stemmed individuals)<br>sps: Species name as codes<br>vern1_d1 First measure of diameter at POM1 (in millimetre)&nbsp;<br>vern2_d1 Second measure of diameter at POM1 (in millimetre)&nbsp;<br>vern3_d1 Third measure of diameter at POM1 (in millimetre)&nbsp;<br>calc_g1: Girth at POM1 (in centimetre; calculated using the averaged value as diameter from the three measurements)<br>vern1_d2 First measure of diameter at POM2 (in millimetre)&nbsp;<br>vern2_d2 Second measure of diameter at POM2 (in millimetre)&nbsp;<br>vern3_d2 Third measure of diameter at POM2 (in millimetre)&nbsp;<br>calc_g2 Girth at POM2 (in centimetre; calculated using the averaged value as diameter from the three measurements)<br>Remarks Remarks and notes</p> <p>06_Candura_Height_data.csv<br>This contains data on the heights of individual trees in plot as measured in 2018.<br>site: Site name (Can = Candura)<br>ymd: Date in YYYY/MM/DD format (Year Month Day)<br>gno: Grid Number:&nbsp;<br>tno: unique tag number:&nbsp;<br>pno: Pole Number (unique alphabetic code for each stem of multi-stemmed individuals)<br>sps: Species name as codes:&nbsp;<br>lx: X coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>ly: Y coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>height: Height of tree in metres<br>remarks: Remarks: and notes</p> <p>07_Manamboli_Height_data.csv<br>This contains data on the heights of individual trees in plot as measured in 2018.<br>site: Site name (Man = Manamboli)<br>ymd: Date in YYYY-MM-DD format (Year Month Day)<br>gno: Grid Number:&nbsp;<br>tno: unique tag number:&nbsp;<br>pno: Pole Number (unique alphabetic code for each stem of multi-stemmed individuals)<br>sps: Species name as codes:&nbsp;<br>lx: X coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>ly: Y coordinate of tree in the 10 m &times; 10 m subplot (in metres)<br>height: Height of tree in metres<br>remarks: Remarks: and notes</p> <p>08_Species_name_match.csv<br>This file provides the combined list of species codes updated taxonomy and successional guild. Scientific names were updated to current taxonomy using the species name matching tool of the Global Biodiversity Information Facility, GBIF (www.gbif.org).<br>sps: Species codes<br>query : Scientific name of the plant at the time of data collection:&nbsp;<br>scientificName: : with auther citation:&nbsp;<br>key: GBIF key<br>rank: Taxonomic rank or level of identification (GENUS, SPECIES)<br>kingdom: Taxonomic Kingdom (plants) provided by GBIF name matching tool:&nbsp;<br>phylum: Taxonomic Phylum provided by GBIF name matching tool<br>class: Taxonomic Class provided by GBIF name matching tool<br>order: Taxonomic Order provided by GBIF name matching tool<br>family: Taxonomic Family provided by GBIF name matching tool<br>genus: Taxonomic Genus provided by GBIF name matching tool<br>botanical_name: Updated scientific name of the species provided by GBIF name matching tool<br>habt_new: Successional guild of the species (Mature = mature forest species; Secondary = secondary successional species; Int - Introduced species)</p> <p>09_R_scrpt_for_manuscript.R<br>Text file with code in the R statistical and programming environment (www.r-project.org).</p> <p><br><strong>Reference</strong><br>Marthews TR, Riutta T, Oliveras Menor I, Urrutia R, Moore S, Metcalfe D, Malhi Y, Phillips O, Huaraca Huasco W, Ruiz Ja&eacute;n M, Girardin C, Butt N, Cain R and colleagues from the RAINFOR and GEM networks (2014). Measuring Tropical Forest Carbon Allocation and Cycling: A RAINFOR-GEM Field Manual for Intensive Census Plots (v3.0). Manual, Global Ecosystems Monitoring network, http: //gem.tropicalforests.ox.ac.uk/.</p> <p>&nbsp;</p>

opencc-by-4.0Dec 2023View details →
zenodo48/100

Experimental data for "Measurement Report: Influence of particle density on secondary ice production by graupel and ice pellet collisions"

<p>This dataset includes measurement data on secondary ice production due to bare graupel - bare graupel, and ice pellet - ice pellet collisions carried out in the Mainz Cold Room (M-CR) of the Johannes Gutenberg University of Mainz.&nbsp;</p>

opencc-by-4.0Nov 2024View details →
zenodo48/100

Sensitivity enhancement using chemically reactive gas cluster ion beams in secondary ion mass spectrometry (SIMS)

<p>We report for the first time on significant molecular secondary ion yield increases by modifying the chemistry of a water cluster primary ion beam. &nbsp;This was demonstrated using 70 keV ion beams of 0.15 eV/amu. &nbsp;For the neutral drug Bezafibrate, secondary ion yield enhancements &times;5-10 were observed when replacing the Ar carrier gas in a water gas cluster ion beam (GCIB) source with a mixture containing 12% CO2 and 2% O2 in Ar. For the cationic drug Ranitidine the ion yield enhancements using the CO2-containing carrier gas were up to &times;20-50 in positive mode and &times;2-4 in negative mode. &nbsp;The extent of molecular fragmentation was very similar from both cluster beams. &nbsp;We conclude that additional chemically reactive species are present in the impact zone using the (H2O/CO2)n projectile which promote the formation of secondary ions of both polarity through projectile impact-induced chemical reactions. This methodology can be applied to further extend the capabilities of high-resolution 3-dimensional mass spectral imaging using reactive GCIB-SIMS.</p>

opencc-by-4.0Nov 2021View details →
zenodo48/100

Short-term traffic flow prediction based on secondary hybrid decomposition and deep echo state networks

<p>The publication titled "Short-term traffic flow prediction based on secondary hybrid decomposition and deep echo state networks" is supported by the STRIDE K3 project. The dataset used in the publication is uploaded here.</p>

opencc-by-4.0Dec 2023View details →
zenodo48/100

S75 | CyanoMetDB | Comprehensive database of secondary metabolites from cyanobacteria

<p>This is the collection associated with list S75 CyanoMetDB Comprehensive database of secondary metabolites from cyanobacteria on the NORMAN Suspect List Exchange.</p> <p><a href="https://www.norman-network.com/nds/SLE/">https://www.norman-network.com/nds/SLE/</a></p> <p>CyanoMetDB is a comprehensive database of secondary metabolites from cyanobacteria manually curated from primary references described in Jones et al (2021), DOI: <a href="https://doi.org/10.1016/j.watres.2021.117017">10.1016/j.watres.2021.117017</a> (preprint DOI: <a href="https://doi.org/10.1101/2020.04.16.038703">10.1101/2020.04.16.038703</a>). This upload contains the 2024 release. Please cite Jones et al (2021) DOI: <a href="https://doi.org/10.1016/j.watres.2021.117017">10.1016/j.watres.2021.117017</a> and this record Janssen et al (2024) DOI: <a href="https://doi.org/10.5281/zenodo.13854577">10.5281/zenodo.13854577</a> when using this CyanoMetDB Version 3!</p> <p><em><strong>Contents: </strong></em></p> <p><em><strong>CyanoMetDB XLSX database (2024 release): <a href="https://zenodo.org/records/13854577/files/CyanoMetDB_Version03.xlsx?download=1">CyanoMetDB_Version03.xlsx</a></strong></em></p> <p>Additional files for workflows:</p> <p>CSV format: <a href="https://zenodo.org/records/13854577/files/CyanoMetDB_V03_2024.csv?download=1">CyanoMetDB_V03_2024.csv</a><br>MetFrag local CSV file (original database abridged and reformatted for use in MetFrag):&nbsp;<a href="https://zenodo.org/records/13854577/files/CyanoMetDB_V03_2024_MetFrag.csv?download=1">CyanoMetDB_V03_2024_MetFrag.csv</a><a href="https://zenodo.org/api/files/7d71e4a9-e5f2-4ca3-ac55-6467a356ab9a/CyanoMetDB_MetFrag_Feb2021.csv"> </a><br>Additional files for matching InChIKeys (rapid suspect flagging): <a href="https://zenodo.org/records/13854577/files/CyanoMetDB_V03_2024_InChIKeys.txt?download=1">CyanoMetDB_V03_2024_InChIKeys.txt</a></p> <p>Corresponding author: Elisabeth Janssen (Eawag): <a href="mailto:Elisabeth.Janssen@eawag.ch">Elisabeth.Janssen@eawag.ch</a></p>

opencc-by-4.0Sep 2024View details →
zenodo48/100

Data from Simulations of a Magnetic Shielding System to Deflect Background-Inducing Secondary Electrons away from Space-Based X-ray Detectors

<p>Data from simulations examining the effect of cosmic rays and secondary particles generated by them on background induced in an X-ray astronomy space telescope, and the effectiveness of a surrounding magnetic field at reducing this background.</p> <p>These simulations were performed for&nbsp;the paper&nbsp;&ldquo;Effectiveness of a dual solenoid magnetic shield at reducing X-ray-like background in silicon-based X-ray detectors&rdquo; (2023) published in the Journal of Astronomical Telescopes Instruments and Systems. The paper can also be found at&nbsp;https://openresearch.surrey.ac.uk/esploro/outputs/journalArticle/The-Effectiveness-of-a-Dual-Solenoid/99777566602346/filesAndLinks?forceView=true&amp;mode=quickaccess&amp;index=0 .</p> <p>This data was also used for the simulations and analysis described in the thesis &quot;The Simulation, Composition and Shielding of Radiation-Induced X-ray-like Background in Space-Based X-ray Astronomy Missions&quot; (2021), which can be found at&nbsp;<a href="https://doi.org/10.21954/ou.ro.00012e1f">https://doi.org/10.21954/ou.ro.00012e1f</a>&nbsp;.</p>

opencc-by-4.0May 2022View details →
edi48/100

Long-term studies of secondary succession and community assembly in the prairie-forest ecotone of eastern Kansas, Hay meadow restoration experiment

Local and regional-scale processes interact to govern the assembly, diversity and functioning of ecological communities. Evaluating the interplay of these differently-scaled processes in the regulation of ecological systems is a challenging problem, but is crucial towards understanding and predicting the potential effects of accelerated human activity on biological diversity and ecosystem sustainability. Since 2000, two long-term field experiments have been underway in grasslands of eastern Kansas to investigate the interplay of soil resource availability, species interactions and regional processes governing plant secondary succession, community assembly, biodiversity, and ecosystem functioning. Both experiments involve manipulations of soil nutrients in permanent grassland study plots and employ multi-species seed addition treatments to evaluate the contribution of dispersal limitation and regional constraints on local species pools to the regulation of plant community dynamics. Hay meadow restoration experiment, previously funded by USDA, was established in 2000 in a section of the field that was left unplowed at the start of the experiment. Thus Experiment 2 was initiated in the context of secondary succession on recently abandoned cool-season hayfield where hay grass species were dominant at the start of the study. In this experiment we have been monitoring plant community change annually since 2001 in response to two aspects of hay management important in our area: annual fertilization and annual haying. The experimental design involves factorial manipulations of nutrient supply (two levels of NPK fertilization), annual haying (two levels: hayed; not hayed) and propagule input achieved by adding seeds of 41 native prairie species to half of the plots. Experiment 2 parallels Experiment 1 with manipulations of soil resources and species pools, but does so in the contexts of hay management and native prairie hay meadow restoration.

openCustomJan 2022View details →
edi48/100

Earthworms in tropical tree plantations and secondary forests

We compared patterns of earthworm abundance and species composition in tree plantations and secondary forests of Puerto Rico. Tree plantations included pine (Pinus caribaea Morelet) and mahogany (Swietenia macrophylla King) established in the 1930s, 1960s, and 1970s; secondary forests were naturally regenerated in areas adjacent to these plantations. We found that (1) earthworm density and fresh weight in the secondary forests were twice those in either of the tree plantations, and did not differ between the plantations, and (2) the exotic earthworm species, Pontoscolex corethrurus M ller, dominated both plantations and the secondary forests, but native earthworm species, Pontoscolex spiralis Borges &amp; Moreno, Estherella montana Gates, and E. gatesi Borges &amp; Moreno, occurred only in the secondary forests. Our results suggest that naturally-regenerated secondary forests are preferable to pine and mahogany plantations for maintaining a high level of earthworm density, fresh weight, and native species. Support for this work was provided by grants BSR-8811902, DEB-9411973, DEB-9705814 , DEB-0080538, DEB-0218039 , DEB-0620910 , DEB-1239764, DEB-1546686, and DEB-1831952 from the National Science Foundation to the University of Puerto Rico as part of the Luquillo Long-Term Ecological Research Program. Additional support provided by the University of Puerto Rico and the International Institute of Tropical Forestry, USDA Forest Service.

openCC (other)Nov 2023View details →
edi48/100

Soil organic matter dynamics in the tabonuco forest, a plantation and a secondary forest in Guzman

In this project we try to find out the relationship between the primary production and the soil organic carbon fractions. Support for this work was provided by grants BSR-8811902, DEB-9411973, DEB-9705814 , DEB-0080538, DEB-0218039 , DEB-0620910 , DEB-1239764, DEB-1546686, and DEB-1831952 from the National Science Foundation to the University of Puerto Rico as part of the Luquillo Long-Term Ecological Research Program. Additional support provided by the University of Puerto Rico and the International Institute of Tropical Forestry, USDA Forest Service.

openCC (other)Nov 2023View details →
edi48/100

Adelie penguin diet composition, secondary prey items, 1991-2020

The fundamental long-term objective of the seabird component of the Palmer LTER (PAL) has been to identify and understand the mechanistic processes that regulate the mean fitness (population growth rate) of regional penguin populations. Since the inception of PAL, Adélie penguin populations have effectively collapsed, gentoo penguin populations have increased dramatically and chinstrap penguin populations have remained relatively stable. These trends are spatially and temporally coherent with regional warming and decreasing sea ice duration. Adélie penguins are an ice-obligate polar species whose life history is intimately linked to the presence of sea ice, while chinstrap and gentoo penguins are ice-intolerant species whose life histories evolved in the sub-Antarctic, where sea ice is a less permanent feature of the marine ecosystem. The PAL study region includes five main islands on which Adélie penguin colonies have historically occurred, with each island containing a different number of spatially segregated sub-colonies. These colonies are censused to determine the total number of nests and chicks produced each year, and breeding success. Diet samples are acquired to understand diet composition (e.g., krill, fish) and krill length-frequencies. In general, krill constitute the most important component of the summer diets by mass of these three penguin species, but changes in PAL krill abundances have exhibited no long-term trends and thus far, have failed to explain the divergent patterns in penguin populations evident in our time series. Chick fledging masses are recorded as a cumulative measure of climate, weather, diet, and parental influences on chick health at the end of the breeding season. These data have provided valuable insights into the marine and terrestrial factors that influence Adélie penguin population fitness. No data were collected during the 2021-2022 season due to the Palmer Station pier rebuild.

openCustomOct 2024View details →
zenodo44/100

ISL2015NOVEL (ERRATUM) - An eyetracking dataset from facilitating secondary multi-tabletop classrooms

<p>This dataset is a complement (a correction, actually) to the "ISL2015NOVEL - An eyetracking dataset from facilitating secondary multi-tabletop classrooms" dataset, also published in Zenodo (see https://zenodo.org/record/198681 for further info on the dataset). This erratum contains a CSV file with the manual videocoding of episodes, that substitutes the (erroneous) original one provided there (in the ISL2015NOVEL-CodingData.zip file).</p>

opencc-by-sa-4.0Dec 2016View details →
zenodo44/100

TokTrack secondary dataset

<p>This dataset contains results of calculations performed on top of the TokTrack dataset (see "related identifiers"), and used in the corresponding paper publication. Concretely, data pertaining to (i) provenance and survival of content, as well as (ii) conflict metrics calculated for articles and strings, and (iii) reverts on token-level for all articles.  </p>

opencc-by-4.0Apr 2017View details →
zenodo44/100

Dataset for Heavy snowfall event over the Swiss Alps: Did wind shear impact secondary ice production?

<p>The change in wind direction and speed with height, referred to as vertical wind shear, causes enhanced turbulence in the atmosphere. As a result, there are enhanced interactions between ice particles that break up during collisions in clouds which could cause heavy snowfall. For example, intense dual-polarization Doppler signatures in conjunction with strong vertical wind shear were observed by an X-band weather radar during a wintertime high-intensity precipitation event over the Swiss Alps. An enhancement of differential phase shift (Kdp &gt; 1◦ km&minus;1) around &minus;15◦C suggested that a large population of oblate ice particles was present in the atmosphere. Here, we show that ice&ndash;graupel collisions are a likely origin of this population, probably enhanced by turbulence. We perform sensitivity simulations that include ice&ndash;graupel collisions of a cold frontal passage to investigate whether these simulations can capture the event better and whether the vertical wind shear had an impact on the secondary ice production (SIP) rate. The simulations are conducted with the Consortium for Small-scale Modeling (COSMO), at a 1km horizontal grid spacing in the Davos region in Switzerland. The rime splintering simulations could not reproduce the high ice crystal number concentrations, produced too large ice particles and therefore overestimated the radar reflectivity. The collisional-breakup simulations reproduced both the measured horizontal reflectivity and the ground-based observations of hydrometeor number concentration more accurately (&sim; 20L&minus;1). During 14:30&ndash;15:45UTC, the vertical wind shear strengthened by 60% within the region favorable for SIP. Calculation of the mutual information between the SIP rate and vertical wind shear and updraft velocity suggests that the SIP rate is best predicted by the vertical wind shear rather than the updraft velocity. The ice&ndash;graupel simulations were insensitive to the parameters in the model that control the size threshold for the conversion from ice to graupel and snow to graupel.</p>

opencc-by-4.0Jun 2022View details →
zenodo44/100

Mechanoresponsive Carbamoyloximes for the Activation of Secondary Amines in Polymers

<p>Primary data used in the manuscript (NMR, MS, UV-vis, GPC, UPLC) sorted after:</p> <ul> <li>Compound number for characterization data of synthesized compounds in the ZIP file &quot;Synthesis&quot;</li> <li>Table entry (of the respective tables in the Supporting Information) for the data generated over the course of ultrasonication and/or irradiation with light in the ZIP file &quot;Tables&quot;</li> <li>Figure and associated panel (of the respective item in the manuscript or Supporting Information) for all data not covered under the former two items in the ZIP file &quot;Miscellaneous&quot;</li> </ul>

opencc-by-4.0May 2022View details →
zenodo44/100

Effects of secondary ice processes on a stratocumulus to cumulus transition during a cold-air outbreak

<p>Dataset of model simulations discussed in paper &quot;Effects of secondary ice processes on a stratocumulus to cumulus transition during a cold-air outbreak&quot;,&nbsp;<a href="https://doi.org/10.1016/j.atmosres.2022.106302">https://doi.org/10.1016/j.atmosres.2022.106302</a></p>

opencc-by-4.0Oct 2022View details →
zenodo44/100

Dung removal and secondary seed dispersal data

<p>The datasets are described in the following data paper:<br> <br> Tanja Milotić, Christophe Baltzinger, Carsten Eichberg, Amy Eycott, Marco Heurich, J&ouml;rg M&uuml;ller, Jorge Ari Noriega, Rosa Menendez, Jutta Stadler, R&eacute;ka &Aacute;d&aacute;m, Tessa Bahiga Bargmann, Isabelle Bilger, J&ouml;rn Buse, Joaquin Calatayud, Constantin Ciubuc, Gergely Boros, Marie Hauso, Pierre Jay-Robert, M&auml;rt Kruus, Enno Merivee, Geoffrey Miessen, Anne Must, Elham Omidzadeh Ardali, Elena Preda, Iraj Rahimi, Dirk Rohwedder, Eleanor M. Slade, L&aacute;szl&oacute; Somay, Pejman Tahmasebi, Stefano Ziani, Maurice Hoffmann (2018) Dung beetle assemblages and associated dung removal and secondary seed dispersal: data from a large-scaled multi-site experiment in the Western Palaearctic. Frontiers of Biogeography, Volume 10, Issue 1-2.</p>

opencc-by-sa-4.0Dec 2017View details →
zenodo44/100

Electricity consumption and real vaue-added data for the Swiss and Genevan secondary and tertiary sectors.

<p>This file contains datasets of electricity consumption and real value added (base year 2000) in the secondary and tertiary sector for Switzerland and Geneva for the years between 2000 and 2015. The structure of the Swiss and Genevan datasets has been matched to ensure comparability of results from index decomposition analyses conducted on each region. It also contains heating and cooling degrees for both Switzerland and Geneva.</p>

opencc-by-4.0Oct 2018View details →
zenodo44/100

Investigating secondary students' stance on IoT driven educational activities - Dataset

<p>This&nbsp;data set supports the research and the results that are presented in&nbsp;Glaroudis, D., Iossifides, A., Spyropoulou, N., Zaharakis, I. D., &ldquo;Investigating Secondary Students&#39; Stance on IoT Driven Educational Activities&rdquo;. In Kameas A, and Stathis K. (Eds) Ambient Intelligence, LNCS 11249, 2018, pp. 188-203. Springer Nature Switzerland AG. DOI: https://doi.org/10.1007/978-3-030-03062-9_15.</p>

opencc-by-4.0Jun 2019View details →

ScienceDex guides

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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record