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589 results for “Vascular Plants”
Vascular plant species richness in Poland version 1.1
<p>It is slightly modified, in the results of reviewers' comments, version of the "Vascular plant species richness in Poland version 1.0" dataset. The changes involve file names and their organization within the dataset.</p> <p>Poland has a long tradition of geobotanical studies. However, outputs of this research have never been used for mapping vascular plant species richness at a larger spatial scale. Here we presented the results of joining and harmonization data from distribution atlas of vascular plants in Poland (Zając and Zając 2001, 2019), and Polish Vegetation Database (Kącki and Śliwiński 2012) to obtain a comprehensive data set on vascular plant species richness in a 10 x 10 km square grid, covering the territory of entire Poland. The presented data set is based on the recent version of the both above-mentioned data sources, provided for harmonization in 2020. The species were classified according to their origin, conservation status, and frequency of occurrences. The 10x10 km spatial grid was prepared by Komsta (2016) and Verey (2017). We used the grid system downloaded from:<a href="https://worldbig.org/atpol/"> https://worldbig.org/atpol</a>, and clipped it to the study area extent.</p> <p>Kącki, Z. and Śliwiński, M., 2012. The Polish Vegetation Database: structure, resources and development. Acta societatis botanicorum Poloniae, 81(2). DOI: 10.5586/asbp.2012.014</p> <p>Komsta, Ł., 2016. ATPOL geobotanical grid revisited-a proposal of coordinate conversion algorithms. Annales Universitatis Mariae Curie-Skłodowska. Sectio E, Agricultura, 71(1), pp.31-37.</p> <p>Verey, M (2017). Teoretyczna analiza i praktyczne konsekwencje przyjęcia modelowej siatki ATPOL jako odwzorowania stożkowego definiującego konwersję współrzędnych płaskich na elipsoidę WGS 84. Fragmenta Floristica et Geobotanica Polonica, 24(2), 469-488.</p> <p>Zając A. (1978) Atlas of distribution of vascular plants in Poland (ATPOL). Taxon, 481-484. <a href="https://doi.org/10.2307/1219899">https://doi.org/10.2307/1219899</a></p> <p>Zając A., Zając, M. (2001) Atlas rozmieszczenia roślin naczyniowych w Polsce. Nakładem Pracowni Chorologii Komputerowej Instytutu Botaniki Uniwersytetu Jagiellońskiego, Kraków</p> <p>Zając, A., & Zając, M. (2019). Distribution atlas of vascular plants in Poland: appendix. Institute of Botany, Jagiellonian University.–Kraków.</p> <p> </p> <p><strong>This dataset consists: </strong></p> <p><strong>Files_description - </strong>file with a description of the data stored.</p> <p><strong>Taxa_list.</strong> The nomenclature according to Euro+Med PlantBase (Euro+Med.) and operational taxonomical units (OTUs) used for analysis and mapping in the project. For simplification, the taxonomical operational units are called ‘species’.</p> <p><strong>Taxa_status</strong>. The species affinity to taxonomic units (family, genera), status in Polish flora (native, archeophytes, neophytes), conservation status (Red List species), and frequency of their distribution (rare, moderate and common). </p> <p><strong>Species_richness. </strong>Statistics on species richness and frequency in species groups for 10 × 10 km ATPOL squares. The names of squares according to original names in the ATPOL project (Zając 1978). The sampling bias (SB) shows adequately sampled squares labelled with 1, while squares with 0 are those with low sampling effort. Cross-boundary squares (CBS) denoted by 1 are squares with more than 80% of the area within the terrestrial territory of Poland, while squares with CBS of 0 are those with 80% or less of the area within the terrestrial territory of Poland. The detail information about the particular columns is shown in ‘Files_description’ and ‘Taxa_status’ files.</p> <p><strong>Map_data</strong>. A shapefile with squares geospatial locations, codes of their names, and data on species richness and frequency in species groups. The map is registered in WGS 84 coordinate reference system (EPSG code 4326). The abbreviations and square names used in ‘dbf’ file are the same as those used in ‘Species_richness’ file.</p> <p> </p>
Point intercept and biomass data for vascular plants in a manipulative experiment of rear-round, winter-only, summer-only grazing, mowing and full exclosure at Molslab, Denmark
<p>Data from two sets of sample quadrats included, both from nine experimental blocks, each replicating the treatments: rear-round grazing, winter-only grazing (summer exclosure), summer-only grazing (winter exclosure), mowing (one annual event in autumn) and full exclosure (no cattle or horse grazing, no mowing, but grazing by wild roe deer and hare).</p> <p>1) Each of the 24 sample plots (six blocks times four treatments, mowing excluded) was first sampled non-destructively with the point intercept method, then above-ground biomass was cut at the soil surface, sorted into species fractions, dried and weighed. Data recording <span>September 1–16, 2020</span>.</p> <p>2) Each of the 45 sample plots (nine blocks times five treatments) was sampled non-destructively with the point intercept method. Data recording <span>August 2–20, 2021</span>.</p>
The Effect of Plant Sterols on Vascular Function
ClinicalTrials.gov study NCT01803178. IPD Sharing: Not stated. Countries: 1. Publications: 3.
Data from: Lake sediment multi-taxon DNA from North Greenland records early post-glacial appearance of vascular plants and accurately tracks environmental changes
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Species list of vascular plants observed on Peberholm 1999–2020
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Data from: Peatland vascular plant functional types affect methane dynamics by altering microbial community structure
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Data from: The patterns of vascular plant discoveries in China
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Data from: Liverworts to the rescue: an investigation of their efficacy as mycorrhizal inoculum for vascular plants
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Reproductive complexity, whole genome duplication, and genome size data across vascular plants
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Data from: Testing macroecological abundance patterns: the relationship between local abundance and range size, range position and climatic suitability among European vascular plants
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Point intercept and biomass data for vascular plants in a manipulative experiment of rear-round, winter-only, summer-only grazing, mowing and full exclosure at Molslab, Denmark
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Vascular plant community surveys across different reindeer grazing regimes in the Fennoscandian tundra
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Data from: Effects of natural forest dynamics on vascular plant, bryophyte, and lichen diversity in primeval Fagus sylvatica forests and comparison with production forests
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Data from: Effects of undergrowth removal and edge proximity on ground beetles and vascular plants in urban boreal forests
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Data from: The species richness pattern of vascular plants along a tropical elevational gradient and the test of elevational Rapoport's rule depend on different life‐forms and phytogeographic affinities
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Data from: Vascular plants mediate the effects of aridity and soil properties on ammonia-oxidizing bacteria and archaea
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Data from: Consequences of swamp forest fragmentation on assemblages of vascular epiphytes and climbing plants: evaluation of the metacommunity structure
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Native range estimates for red-listed vascular plants
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Data from: Altitude effects on spatial components of vascular plant diversity in a subarctic mountain tundra
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Data from: Taxonomic corrections and new records for vascular plants of Kyrgyzstan, 6
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