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2,744 results for “restoration.”
Multisensory integration facilitates perceptual restoration of an interrupted call in frog
<p>How to render an interrupted sound as a complete signal is a common challenge faced by human and non-human animals during vocal communication. Using video and audio playbacks, we showed that neither inserting white noise into the silent gap of an interrupted call nor displaying the dynamic inflating-deflating vocal sac in that same gap restored attraction of the call equivalent to that of a complete call. Simultaneously presenting a dynamic vocal sac along with white noise in the gap, however, rescued the interrupted call making it as attractive as a complete call. This suggests that the multisensory cue might have caused female frogs to "hear" the missing sound as happens when humans experience auditory induction. Regardless, such novel multisensory integration suggests that multimodal signals can provide insurance against imperfect sender coding in a noisy environment, and the communication benefits to the receiver from multisensory integration may be an important selective force favoring multimodal signal evolution.</p>
Influence of water level management on vegetation and bird use of restored wetlands in the Montezuma Wetlands Complex
<p>Active water management of wetlands promotes seed and tuber production to feed migrating waterfowl, but few assessments exist to determine how management actions influence wetland structure, vegetation, and bird response throughout the year. We identified effects of full water drawdown, partial water drawdown and passive wetlands (no active dewatering during the growing season) on plant communities and bird abundance in wetlands of the Montezuma Wetlands Complex, New York, May–October 2016–2018 and February–April 2017–2019. We detected few differences in the plant community during June, but during September we detected greater vegetative forage quality index for waterfowl, annual plant cover and seed density in full and partial drawdowns than passive wetlands. Bird abundance was greater in June–July in passive wetlands and greater in September–October in full drawdowns. During spring migration, duck densities were greater in full and partial drawdowns. Our results indicate that wetland managers should use a mix of full drawdowns and passive wetlands to provide habitat for the greatest diversity and number of birds throughout the year.</p>
Tipping the balance: the role of seed density, abiotic filters, and priority effects in seed-based wetland restoration
<p class="MsoNormal"><a name="_Hlk98319335"></a>Sowing native seeds is a common approach to reintroduce native plants to degraded systems. However, this method is often overlooked in wetland restoration despite the immense global loss of diverse native wetland vegetation. Developing guiding principles for seed-based wetland restoration is critical to maximize native plant recovery, particularly in previously invaded wetlands. Doing so requires a comprehensive understanding of how restoration manipulations, and their interactions, influence wetland plant community assembly. With a focus on the invader <em>Phragmites australis, </em>we established a series of mesocosm experiments to assess how native sowing density, invader propagule pressure, abiotic filters (water and nutrients), and native sowing timing (i.e., priority effects) interact to influence plant community cover and biomass in wetland habitats. Increasing the density of native seeds yielded higher native cover and biomass, but <em>P. australis</em> suppression with increasing sowing densities was minimal. Rather, community outcomes were largely driven by invader propagule pressure—<em>Phragmites australis</em> densities of <span><span>≤ 500 seeds/m<sup>2</sup> maintained high native cover and biomass. Low-water conditions increased the susceptibility of <em>P. australis</em> to native competition. </span>Early sowing of native seeds showed a large and significant benefit to native cover and biomass, regardless of native sowing density, suggesting that priority effects can be an effective restoration manipulation to enhance native plant establishment.<em> </em></span><span><span>Given the urgent wetland restoration need combined with the limited studies on seed-based wetland restoration, these findings provide guidance on restoration manipulations that are grounded in ecological theory to improve seed-based wetland restoration outcomes.</span></span></p>
Baliles Center (Hull Springs) Restored Wetland Data from 2022-02-05 to 2022-03-08
<p>General Metadata for Hull Springs Restored Wetland Sampling Station</p> <p>Files</p> <p>Specific metadata for each deployment and sensor can be found as text files with the file format of:</p> <pre><code>HS_wetland_DO_YYYY-MM-DD_metadata.txt HS_wetland_Depth_YYYY-MM-DD_metadata.txt HS_wetland_CT_YYYY-MM-DD_metadata.txt</code></pre> <p>Where YYYY-MM-DD is the date that the sampling period ended.</p> <p>NOTE: The metadata in the above file is collected from the data logger and does not have all of fields present in the final data set, because some were created during data cleaning. Details on how the data were cleaned and variables created can be found at in the cleaning scripts on Gitlab <a href="https://gitlab.com/leo147/leo/-/tree/master/lab_notebook/data_processing/cleaning_scripts">https://gitlab.com/leo147/leo/-/tree/master/lab_notebook/data_processing/cleaning_scripts</a>.</p> <p>File Created</p> <ul> <li>2021-06-16 by KF</li> </ul> <p>File Modified</p> <ul> <li>2021-07-22 by KF - added general metadata for the pressure transducer and the CT sensor.</li> <li>2021-11-10 by KF - updated to include the depth calculations from the water level logger.</li> </ul> <p>Description</p> <p>These data are from the sampling station in the restored wetland at the Baliles Center for Environmetal Education at Hull Springs. The sensors are in the NE corner of the shallow pond portion of the restored wetland (38.119289, -76.667252).</p> <p>All data are CC-BY and should be cited using the DOI available at <a href="https://zenodo.org/communities/leo/">https://zenodo.org/communities/leo/</a></p> <p>Station Specifics</p> <p>The specific at each site are:</p> <pre><code>* Water Temperature (dC) and Dissolved Oxygen (mg/l) are collected with a Onset HOBO U26-001 Dissolved Oxygen Logger * Water Temperature (dC) and Water Pressure (mmHg) are collected with an Onset HOBO U20-001-01 Water Level Logger * Water Temperature (dC) and Conductivity are collected with an Onset HOBO U24-001 Conductivity Logger * Air Temperature (dC) and Barometric Pressure (mmHg) are collected with an Onset HOBO U20-001-01 Water Level Logger mounted in the air next to the wetland.</code></pre> <p>The sensors are sampled every 15 minutes</p> <p>Measurement Parameters, units, and Variable Names</p> <pre><code>* date.time - the date and time that the record was collected, reported in POSIX standard time (YYYY-MM-DD HH:MM:SS) * observation.DO, .CT, .press, or .BP - the incremental number of each observation from the DO, conductivity, water pressure, or barometric pressure sensor. * timestamp.DO, .CT, .press, or .BP - the data and time that the record was collected, as reported by the data logger (MM/DD/YY HH:MM:SS A/PM) from the DO, conductivity, water pressure, or barometric pressure sensor. * DO - the concentration of dissolved oxygen in the water (mg/L) * Temp.DO, .CT, .press, or .BP - the temperature (dC) from the DO, conductivity, water pressure, or barometric pressure sensor. * Pressure.press or .BP - the pressure recorded by the pressure transducer (kPa) on the water pressure or barometric pressure sensor. * Z - the depth of the water (cm). * Low_Range_CT - the conductivity read from 0 - 2500 uS/cm (uS/cm) * Full_Range_CT - the conductivity read from 0 - 15000 uS/cm (mmHg) * press.g.cm2 - the pressure from the water pressure sensor (g/cm^2) * BP.g.cm2 - the barometric pressure from the barometric pressure sensor (g/cm^2)</code></pre>
NMR as a readout to monitor and restore the integrity of complex chemoenzymatic reactions
<p>The folder contains raw data used in the manuscript titled "NMR as a readout to monitor and restore the integrity of complex chemoenzymatic reactions". Data includes raw 1D NMR data, a new 1D isotope and diffusion filtered NMR pulse sequence, MALDI-TOF-MS data, and an SDS-PAGE gel image. </p>
FIGURE 25 in Collection management and study of microscope slides: Storage, profiling, deterioration, restoration procedures, and general recommendations
FIGURE 25. Chemical structure of triterpenes of gum mastic from Pistacia lentiscus, part 2.
FIGURE 24 in Collection management and study of microscope slides: Storage, profiling, deterioration, restoration procedures, and general recommendations
FIGURE 24. Chemical structure of triterpenes of gum mastic from Pistacia lentiscus, part 1.
FIGURE 22 in Collection management and study of microscope slides: Storage, profiling, deterioration, restoration procedures, and general recommendations
FIGURE 22. Chemical structure of the ingredients of gum dammar from an unknown species.
FIGURE 6 in Collection management and study of microscope slides: Storage, profiling, deterioration, restoration procedures, and general recommendations
FIGURE 6. Chemical structure of the ingredients of Canada balsam from Abies balsamea.
FIGURE 10 in Collection management and study of microscope slides: Storage, profiling, deterioration, restoration procedures, and general recommendations
FIGURE 10. Chemical structure of the resin acids of Venetian turpentine from Larix decidua.
FIGURE 8 in Collection management and study of microscope slides: Storage, profiling, deterioration, restoration procedures, and general recommendations
FIGURE 8. Chemical structure of the other potential ingredients of Euparal.
RESTORATION AND ANALYSIS OF ENGLISH TRANSLATIONS OF LEXEMAS OF MEASUREMENT OF TIME UNITS IN "BOBURNOMA"
Open the record for dataset details and reuse information.
FIG. 6 in The Raymond Benoist microslide library of woods of French Guiana at the Herbarium of Paris (P): restoration and comments
FIG. 6. — Histological details in Capparis maroniensis Benoist (synonym of Neocalyptrocalyx maroniensis (Benoist) Cornejo & Iltis, after Molino et al. 2022: 412, Benoist 698 [P05427765]), stained by an Alum Carmine/Iodine Green combination, xylem: A, B, transverse sections; C, tangential section; bark: D, E, phelloderm; F, phellem. Scale bars: A, D, 200 µm; B, C, E, F, 50 µm.
FIGURE 3 in Short-term response of fish assemblages to instream habitat restoration in heavily impacted streams
FIGURE 3 | Physical changes in stream reaches: A. Picture of the buried structure in P2; B. P3 stream reach at the beginning of the experiment; C. P3 stream reach at the end of the experiment, illustrating organic matter retention by the woody structure; D. macrophytes retention by wire in P8; E. growth of periphyton on the wood; F. growth of algae on the wood.
FIGURE 2 in Short-term response of fish assemblages to instream habitat restoration in heavily impacted streams
FIGURE 2 | Details of the structure used in the experiment. A. top view; B. side view; C. representation of the placement of the leaf-packs; D. cross section of the stream channel showing details of how the structure was placed in the stream; E. top view of the structure showing the points where the iron rods were installed.
Supplementary datasets for Three years are worth 30 years of secondary succession in urban-industrial grassland restoration
<p>Data used for a manuscript sent to AVS in 2018.</p>
Trait-based approach confirms the importance of propagule limitation and assembly rules in old-field restoration
<p>Trait values for plant species present in our research.</p>
Supplementary material 1 from: Winiger N, Korner P, Arlettaz R, Jacot A (2018) Vegetation structure and decreased moth abundance limit the recolonisation of restored habitat by the European Nightjar. Rethinking Ecology 3: 25-39. https://doi.org/10.3897/rethinkingecology.3.29338
Site and moth data : Explanation note: Details about the study sites and moths.
Fig. 2 in The Use of Testate Amoebae in Monitoring Peatland Restoration Management: Case Studies from North West England and Ireland
Fig. 2. Top: The sampling site on Astley bog in 1998 when the samples described in Davis and Wilkinson (2004) were taken. Bottom: Danes Moss in 1999 when the samples described in Davis and Wilkinson (2004) were taken.
Fig. 6. A in The Use of Testate Amoebae in Monitoring Peatland Restoration Management: Case Studies from North West England and Ireland
Fig. 6. A: Surface testate samples from a raised 'hummock' site on Holcroft Moss. B: Surface testate samples from bare peat on a path at Holcroft Moss. Note that in the older literature (including all the more accessible identification guides) Archerella flavum is refered to as Amphitrema flavum.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.