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99 results for “herons”
Annual heron counts on Chincoteague Island, Virginia 1992-2011
This dataset has the number of breeding pairs of herons nesting on Chincoteague, VA region.This data is also available from the Center for Conservation Biology at the College of William and Mary as part of the Virginia Coastal Avian Partnership (VCAP).
Annual heron counts on Chincoteague Island, Virginia 1992-2011 (Reformatted to the ecocomDP Design Pattern)
This data package is formatted as an ecocomDP (Ecological Community Data Pattern). For more information on ecocomDP see https://github.com/EDIorg/ecocomDP. This Level 1 data package was derived from the Level 0 data package found here: https://pasta.lternet.edu/package/metadata/eml/knb-lter-vcr/166/17. The abstract below was extracted from the Level 0 data package and is included for context: This dataset has the number of breeding pairs of herons nesting on Chincoteague, VA region.This data is also available from the Center for Conservation Biology at the College of William and Mary as part of the Virginia Coastal Avian Partnership (VCAP).
Annual heron counts on Chincoteague Island, Virginia 1992-2011 (Reformatted to a Darwin Core Archive)
This data package is formatted as a Darwin Core Archive (DwC-A, event core). For more information on Darwin Core see https://www.tdwg.org/standards/dwc/. This Level 2 data package was derived from the Level 1 data package found here: https://pasta.lternet.edu/package/metadata/eml/edi/324/3, which was derived from the Level 0 data package found here: https://pasta.lternet.edu/package/metadata/eml/knb-lter-vcr/166/17. The abstract below was extracted from the Level 0 data package and is included for context: This dataset has the number of breeding pairs of herons nesting on Chincoteague, VA region.This data is also available from the Center for Conservation Biology at the College of William and Mary as part of the Virginia Coastal Avian Partnership (VCAP).
Edward Heron-Allen (h3102)
<b>-- <a href="https://doi.org/10.5281/zenodo.11582199">Documentation</a> --</b><br><br><u>Name</u>: Edward Heron-Allen<br><u>musiXplora-ID</u>: h3102<br><u>musiXplora-URI</u>: <a href="https://musixplora.de/mxp/h3102">https://musixplora.de/mxp/h3102</a><br><u>Gender</u>: m<br><u>Date of Birth</u>: 17 December 1861<br><u>Place of Birth</u>: Salzburg<br><u>Date of Death</u>: 28 March 1943<br><u>Place of Death</u>: Wien<br><u>First Mentioned</u>: 1876<br><u>Sectors</u>: Instrumentenbau, Museum<br><u>Professions (Musical)</u>: Geigenbauer, Instrumentensammler<br><u>Other Places of Activity</u>: London<br><br><br><u>Ausbildung:</u><br><table><tbody><tr><th>Group</th><th>Role</th><th>Name</th><th>mXp-ID</th></tr><tr><td>LehrerInnen und AusbilderInnen</td><td>Schüler</td><td>Georges Chanot</td><td><a href="https://musixplora.de/mxp/c1189">c1189</a></td></tr></tbody></table><br><u>Persönlicher Umkreis:</u><br><table><tbody><tr><th>Group</th><th>Role</th><th>Name</th><th>mXp-ID</th></tr><tr><td>Netzwerk</td><td>Netzwerkpartner</td><td>Willibald Leo von Lütgendorff</td><td><a href="https://musixplora.de/mxp/l0811">l0811</a></td></tr></tbody></table><br><u>Tradition:</u><br><table><tbody><tr><th>Group</th><th>Role</th><th>Name</th><th>mXp-ID</th></tr><tr><td>Interessensbereich</td><td>Nachlassempfänger</td><td>Prosper Philippe Catherine Sainton</td><td><a href="https://musixplora.de/mxp/s5648">s5648</a></td></tr></tbody></table><br><u>Titel/Medien:</u><br><table><tbody><tr><th>Role</th><th>Sigel</th><th>Title</th><th>mXp-ID</th></tr><tr><td>Related</td><td>Lütgendorff 1922</td><td>Die Geigen- und Lautenmacher vom Mittelalter bis zur Gegenwart. 2 Bände. Lüt2</td><td><a href="https://musixplora.de/mxp/5002059">5002059</a></td></tr></tbody></table><br><br><u>Changelog</u>:<br> - v0.0.1: Initial Upload.<br>
Data Set for the Journal Article "Heron: Visualizing and Controlling Chemical Reaction Explorations and Networks"
<p>This data archive contains all data newly created in the following publication:</p> <p>Charlotte H. Müller, Miguel Steiner, Jan P. Unsleber, Thomas Weymuth, Moritz Bensberg, Katja-<br>Sophia Csizi, Maximilian Mörchen, Paul L. Türtscher, and Markus Reiher, "Heron: Visualizing and<br>Controlling Chemical Reaction Explorations and Networks", in preparation.</p> <p>The directory contents are as follows:</p> <ul> <li>steered_eschenmoser.tar.xz: Dump of the database created during the steered exploration</li> <li>steered_exploration_protocol_chemoton_3.1.json: Protocol used for the steered exploration</li> </ul>
Dataset: Heron Therapeutics, Inc. (HRTX) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Figure 1. DNA extraction with two different protocols from different noninvasive samples. Lines 1, 3, 5 in Evaluation of methods for molecular sex-typing of three heron species from different DNA sources
Figure 1. DNA extraction with two different protocols from different noninvasive samples. Lines 1, 3, 5, and 7: DNA extraction with commercial kit; Lines 2, 4, 6, and 8: DNA extracted with modified standard protocol. Lines 1–2: eggshells (Grey Heron); lines 3–4: eggshell swabs (Grey Heron); lines 5–6: pin feathers (Purple Heron); lines 7–8: contour feathers (Great Egret); 9: negative control; M: molecular marker.
Figure 2. Heron sex-typing with 2550F in Evaluation of methods for molecular sex-typing of three heron species from different DNA sources
Figure 2. Heron sex-typing with 2550F/2718R primers. Lines 1–7: Purple Heron nestlings, males (600 bp for Z chromosome); 8–10: Great Egret nestlings, females (600 bp for Z chromosome and 450 bp for W chromosome); 11: negative control; M: molecular marker.
FIGURE 2 in A night heron (Ciconiiformes, Ardeidae) and a stork (Ciconiidae) from the Pliocene of Myanmar (Burma)
FIGURE 2. Stereophotograph pairs of the night herson distal tarsometatarsus (NMMP-KU-IR 0343) from the SLG1 locality, Myanmar. 1, distal view; 2, medial view; 3, lateral view; 4, dorsal view; 5, plantar view. Abbreviations: df – distal foramen; r – ridge.
FIGURE 1 in A night heron (Ciconiiformes, Ardeidae) and a stork (Ciconiidae) from the Pliocene of Myanmar (Burma)
FIGURE 1. Map of Myanmar showing the SLG1 fossil locality (star) and geological map around the SLG locality (Geological map: after The Geological Map of Burma, 1: 1000,000 map; Earth Sciences Research Division, 1977).
FIGURE 3 in A night heron (Ciconiiformes, Ardeidae) and a stork (Ciconiidae) from the Pliocene of Myanmar (Burma)
FIGURE 3. Stereophotograph pairs of the stork distal tibiotatarsus (NMMP-KU-IR 0355) from the SLG1 locality, Myanmar. 1, caudal view; 2, cranial view; 3, distal view; 4, medial view; 5, lateral view. Abbreviations: it – intercondylar tubercle; le – lateral epicondyle; n – notch; r – ridge; sb – supratendinal bridge.
Figure 5. A in A Heron (Aves: Ardeidae) from the Early Miocene St Bathans Fauna of Southern New Zealand
Figure 5. A strict consensus tree of the 12 shortest trees (length = 153, CI = 0.4444, HI = 0.5556, RI = 0.7222) in which the topology was constrained with Ardeidae as sister group to an outgroup comprised of the non ardeid Ciconiiformes and the pelecaniform—Phalacrocorax carbo. Bootstrap support values (> 0.50) are shown above and the number of significant (> 0.50) unambiguous apomorphies are shown below the corresponding node.
Figure 1 in A Heron (Aves: Ardeidae) from the Early Miocene St Bathans Fauna of Southern New Zealand
Figure 1. Specimens of the fossil heron Matuku otagoense. Scale bar is 1 cm. Right coracoid, extremitas omalis, paratype of Matuku otagoense, S.50004, HH1a, in medial (A) and lateral (B) aspects; left tarsometatarsus, holotype of Matuku otagoense, S.50003, HH4, in plantar (C) and dorsal (D) aspects; and referred axis vertebra S.50853, HH4, in cranial (E) and left lateral (F) aspects. Abbreviations: fac, clavicular facet, facies articularis clavicularis; smc, supracoracoidal sulcus, sulcus musculi supracoracoidei; ridge, character 23 "Slight ridge running sternally, barely dividing sulcus into two segments"; pa, acrocoracoid, processus acrocoracoideus; fah, humeral facet, facies artic. humeralis; ila, impression for the acrocoracohumeralis ligament, impressio ligamentum acrocoracohumeralis; bt, brachial tuberosity; p, procoracoid, proc. procoracoideus; cpl, crista plantaris lateralis; fm1, fossa metatarsal I; imm, Incisura intertrochlearis medialis; tm3, trochlea metatarsi III; po, dens, processus odontoideus; fcr, cranial facies of articulation, facies articularis cranialis; zcr, prezygapophysis, zygapophysis cranialis; fca, caudal facies of articulation, facies artic. caudalis; zca, postzygapophysis, zygapophysis caudalis; pv, hypapophysis, proc. ventralis corporis; fp, pneumatic foramen, foramen pneumaticum; ps, spinous process, proc. spinosus; ft, transverse foramen, foramen tranversarium.
Figure 4 in A Heron (Aves: Ardeidae) from the Early Miocene St Bathans Fauna of Southern New Zealand
Figure 4. Ratio diagram (after Simpson, 1941) using measurements of Nycticorax caledonicus as the origin (i.e. log of measurement of Nycticorax caledonicus is equivalent to 0). This diagram indicates that the relative proportions of the fossil heron bones vary in a similar way to those of other herons and so it is likely that the fossil bones come from a single species. Abbreviations: (A), tarsometatarsus, maximum distal width; (B), tarsometatarsus, maximum distal depth; (C), tarsometatarsus, width of trochlea metatarsi III; (D), Tarsometatarsus, estimated total length; (E), coracoid, maximum cranial width (from hum. facet to brachial tub.); (F), coracoid, maximum shaft width (below procoracoid); (G), coracoid, length of humeral facet; (H), coracoid, depth of humeral facet; (I), quadrate, mean of 2 individuals, depth from capit. squam. to cond. lateralis; (J), quadrate, mean of 2 individuals, depth from capit. squam. to cond. medialis; (K), axis, width of facies articularis cranialis; (L), axis, inter-condyle distance; (M), axis, width of single zygapophyses caudalis; (N), axis, depth single zygapophyses caudalis; (O), axis, greatest width (across facies artic. caudalis).
Figure 3 in A Heron (Aves: Ardeidae) from the Early Miocene St Bathans Fauna of Southern New Zealand
Figure 3. Mandible tips of referred specimen of the fossil heron Matuku otagoense n.sp., (S.51174, HH1a), (A, C, E) and Recent Nankeen Night Heron Nycticorax caledonicus, SAM B.48523, South Australia, (B, D, F). Scale bar is 1 cm. Rostrum mandibulae: in medial aspect (A, B); in dorsal aspect (C, D), and in ventral aspect (E, F) ventral aspect. Abbreviation: ps, pars symphysialis.
Figure 2 in A Heron (Aves: Ardeidae) from the Early Miocene St Bathans Fauna of Southern New Zealand
Figure 2. Referred specimens of the fossil heron Matuku otagoense. Scale bar is 1 cm. Left quadrate (S. 50852; HH4): (A) caudal aspect; (B) rostral aspect; (C) lateral aspect; (D) medial aspect; (E) ventral aspect. Abbreviations: o, capitulum oticum; ic, vallecula intercapitularis; s, capitulum squamosum; ct, crista tympanica; c, condylus caudalis; pt, condylus pterygoideus; pm, processus medialis; m, condylus medialis; l, condylus lateralis; pl, processus lateralis; cm, crista medialis; cl, crista lateralis; or, processus orbitalis; fb, fossa basiorbitalis; pf, facies pterygoidea; dp, depression praecondylaris; qj, cotyla quadratojugalis; fm, foramen pneumaticum mediale; in, vallecula intercondylaris; t on dp, tubercle on depressio praecondylaris.
Figure 6. A Bayesian consensus tree derived from 4,001 in A Heron (Aves: Ardeidae) from the Early Miocene St Bathans Fauna of Southern New Zealand
Figure 6. A Bayesian consensus tree derived from 4,001 trees sampled: Run 1 (mean = –546.302, s.d. = 0.099, Effective Sample Size = 3208.424); Run 2 (–546.223, 0.113, 2388.97). Support values are shown above the corresponding node.
Ultraconserved elements resolve the phylogeny and corroborate patterns of molecular rate variation in herons (Aves: Ardeidae)
<p>Thoroughly sampled and well-supported phylogenetic trees are essential to taxonomy and to guide studies of evolution and ecology. Despite extensive prior inquiry, a comprehensive tree of heron relationships (Aves: Ardeidae) has not yet been published. As a result, the classification of this family remains unstable, and their evolutionary history remains poorly studied. Here, we sample genome-wide ultraconserved elements (UCEs) and mitochondrial DNA sequences (mtDNA) of >90% of extant species to estimate heron phylogeny using a combination of maximum likelihood (ML), coalescent, and Bayesian inference (BI) methods. The UCE and mtDNA trees are mostly concordant with one another, providing a topology that resolves relationships among the five heron subfamilies and indicates that the genera <em>Gorsachius</em>, <em>Botaurus</em>, <em>Ardea</em>, and <em>Ixobrychus</em> are not monophyletic. We also present the first genetic data from the Forest Bittern <em>Zonerodius</em> <em>heliosylus</em>, an enigmatic species of New Guinea; our results suggest that it is a member of the genus <em>Ardeola</em> and not the Tigrisomatinae (tiger herons), as previously thought. Lastly, we compare molecular rates between heron clades in the UCE tree with those in previously constructed mtDNA and DNA-DNA hybridization trees. We show that rate variation in the UCE tree corroborates rate patterns in the previously constructed trees, i.e., that bitterns (<em>Ixobrychus</em> and <em>Botaurus</em>) evolved comparatively faster, and some tiger herons (<em>Tigrisoma</em>) and the Boat-billed Heron (<em>Cochlearius</em>) more slowly, than other heron taxa. </p>
Ultraconserved elements resolve the phylogeny and corroborate patterns of molecular rate variation in herons (Aves: Ardeidae)
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Heron Island Satellite Imagery Classified Benthic Data and Halo Analyses and Models
<p>This dataset includes satellite imagery data from Heron Island, Australia downloaded from Google Earth Pro in 2023, with image from Maxar Technologies dated 2016 clipped to the shallow lagoon layer from the Allen Coral Atlas shape file classified into benthic categories: corals, algae and sand using a combination of unsupervised machine learning spectral classification and manual training and assignment of classes. This dataset also includes scoring of selected coral patch reefs for isolated halos across time using historical aerial imagery.</p> <p>We also include 2 notebooks with code used to generate figures and run analyses for data, geometric, and consumer-resource models for coral halo patterns supporting the work entitled, "Consumer-resource interactions reflected in coral halo patterns" by the authors listed. A knitted html for R Markdown file is also included.</p>
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