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Ice timing (formation or ice-on and clearance or ice-off) for Yellowstone Lake, Wyoming, USA (1927-2022)
Lakes are sentinels of environmental change. In cold climates, lake ice phenology–the timing and duration of ice cover during winter–is a key control on ecosystem function. Ice phenology appears to be driven by a complex interplay between physical characteristics and climatic conditions. Under climate change, lakes are generally freezing later, melting out earlier, and experiencing a shorter duration of ice cover; however, few long-term records exist for large, high-elevation lakes which may be particularly vulnerable to climate impacts. Here, we provide an ice phenology data over the last century (1927-2022) for North America’s largest high-elevation lake—Yellowstone Lake.
Trento 1936 - Building 1927
<u>Coordinates</u>: N/A <br><u>Length</u>: 15.07 m<br><u>Width</u>: 12.65 m<br><u>Height</u>: 13.29 m<br><u>Points</u>: 20 <br><u>Vertices</u>: 108 <br><u>Primitives</u>: 36 <br><br><u>Main Files:</u><br><table><tbody><tr><th>Filename</th><th>.glb</th><th>.xml</th><th>.obj</th></tr><tr><td><a href="https://zenodo.org/api/records/12691875/files/building_1927.obj/content">building_1927.obj</a></td><td></td><td></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927.obj/content">Link</a></td></tr><tr><td><a href="https://zenodo.org/api/records/12691875/files/building_1927.glb/content">building_1927.glb</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927.glb/content">Link</a></td><td></td><td></td></tr><tr><td><a href="https://zenodo.org/api/records/12691875/files/11574285_metsmods.xml/content">11574285_metsmods.xml</a></td><td></td><td><a href="https://zenodo.org/api/records/12691875/files/11574285_metsmods.xml/content">Link</a></td><td></td></tr><tr><td><a href="https://zenodo.org/api/records/12691875/files/11574285_edm.xml/content">11574285_edm.xml</a></td><td></td><td><a href="https://zenodo.org/api/records/12691875/files/11574285_edm.xml/content">Link</a></td><td></td></tr></tbody></table><br><br><u>Thumbnails:</u><br><table><tbody><tr><th>Perspective</th><th>1000x1000</th><th>512x512</th><th>256x256</th><th>128x128</th></tr><tr><td>Perspective 1</td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_1.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_1_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_1_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_1_128x128.png/content">Link</a></td></tr><tr><td>Perspective 2</td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_2.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_2_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_2_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_2_128x128.png/content">Link</a></td></tr><tr><td>Perspective 3</td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_3.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_3_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_3_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_3_128x128.png/content">Link</a></td></tr><tr><td>Perspective 4</td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_4.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_4_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_4_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_4_128x128.png/content">Link</a></td></tr><tr><td>Perspective Top</td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_top.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_top_512x512.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_top_256x256.png/content">Link</a></td><td><a href="https://zenodo.org/api/records/12691875/files/building_1927_perspective_top_128x128.png/content">Link</a></td></tr></tbody></table><br><br><br><u>Changelog</u>: <br> - v<a href="https://doi.org/10.5281/zenodo.12542530">0.0.2</a>: Thumbnails added, Description updated with Link Tables.<br> - v<a href="https://doi.org/10.5281/zenodo.12691875">0.0.3</a>: Added XMLs for Europeana Data Model (EDM) and MetsMods.<br>
A Land-use/Land Cover Classification of Baltimore City in 1927
Land-use and land cover classifications are typically created using automated methods to analyze modern, spatially explicit color aerial imagery. However, creating classifications from black and white historical aerial imagery presents a number of challenges that require a combination of more traditional, manual techniques and approaches. A georectified mosaic of 93 aerial images was digitized in ArcGIS to create a land-use/land cover classification. The analyzed area covered 585 km2 (226 mi2) including all of Baltimore City, and an area immediately adjacent to the city known at the time as the Metropolitan District of Baltimore County. A combination of 8 land-use and land cover classes were used: Agriculture, Barren, Built (Other), Forest, Grass/Shrubland, Industrial, Residential, and Water. This geospatial data set captures a moment of dynamic expansion in the city, just prior to the Great Depression and can be used to examine relationships between property ownership and forest patch dynamics across time. These insights may help inform future environmental planning, conservation, management, and stewardship goals for Baltimore City forest patches, and other cities throughout the region.
Fig. 5. A. Afrosyrphus varipes Curran, 1927 in The genus Afrosyrphus Curran (Diptera, Syrphidae), with a description of a new species
Fig. 5. A. Afrosyrphus varipes Curran, 1927, ♀ (ZFMK-DIP-00015969), hind leg. Arrow indicates the long black pile on the hind first tarsomere (= metabasitarsomere). B. Afrosyrphus schmuttereri sp. nov., paratype, ♂ (ZFMK-DIP-00019829), hind leg. C–E. Afrosyrphus varipes, ♂ (ZFMK-DIP-00015968), genitalia. C. Epandrium and surstyli, lateral view. D. Hypandrium, postgonites and aedeagus, lateral view. E. Epandrium, cerci and surstyli, dorsal view. F–H. Afrosyrphus schmuttereri sp. nov., paratype, ♂ (ZFMK-DIP-00019829), genitalia. F. Epandrium and surstyli, lateral view. G. Hypandrium, postgonites and aedeagus, lateral view. H. Epandrium, cerci and surstyli, dorsal view. Scale bars: A–B = 1 mm; C–H = 0.25 mm.
Fig. 4. A. Afrosyrphus varipes Curran, 1927 in The genus Afrosyrphus Curran (Diptera, Syrphidae), with a description of a new species
Fig. 4. A. Afrosyrphus varipes Curran, 1927, ♀ (CNC DIPTERA 102962), dorsal view. B. Afrosyrphus schmuttereri sp. nov., paratype, ♀ (CNC DIPTERA 102961), dorsal view. C. Afrosyrphus schmuttereri sp. nov., paratype, ♂ (ZFMK-DIP-00019829), dorsal view of head. D. Afrosyrphus varipes, ♂ (USNM ENT 00114576), frontal view of head. Arrows on C and D indicate the frontal triangle. Scale bars: 1 mm.
Fig. 3. A. Afrosyrphus varipes Curran, 1927 in The genus Afrosyrphus Curran (Diptera, Syrphidae), with a description of a new species
Fig. 3. A. Afrosyrphus varipes Curran, 1927, ♂ (ZFMK-DIP-00015968), dorsal view. B. Afrosyrphus schmuttereri sp. nov., paratype, ♂ (ZFMK-DIP-00019829), dorsal view. C. Afrosyrphus varipes, ♂ (ZFMK-DIP-00015968), lateral view. D. Afrosyrphus schmuttereri sp. nov., paratype, ♂ (ZFMK-DIP-00019829), lateral view. Scale bars: 1 mm.
Figs 258–263. Stenaelurillus hirsutus Lessert, 1927 in Redefinition and partial revision of the genus Stenaelurillus Simon, 1886 (Arachnida, Araneae, Salticidae)
Figs 258–263. Stenaelurillus hirsutus Lessert, 1927, ♀ (paratype of Stenaelurillus cristatus Wesołowska & Russell-Smith, 2000) from Tanzania (Mkomazi GR). 258–261. General appearance. 262. Epigyne, ventral view. 263. Spermathecae, dorsal view. Scale bars: 258–261 = 1 mm; 262–263 = 0.1 mm.
Figs 252–257. Stenaelurillus hirsutus Lessert, 1927 in Redefinition and partial revision of the genus Stenaelurillus Simon, 1886 (Arachnida, Araneae, Salticidae)
Figs 252–257. Stenaelurillus hirsutus Lessert, 1927 (holotype of Stenaelurillus cristatus Wesołowska & Russell-Smith, 2000) from Tanzania (Mkomazi GR), general appearance. Scale bars: 1 mm
Figs 246–251. Stenaelurillus hirsutus Lessert, 1927 in Redefinition and partial revision of the genus Stenaelurillus Simon, 1886 (Arachnida, Araneae, Salticidae)
Figs 246–251. Stenaelurillus hirsutus Lessert, 1927 (holotype of Stenaelurillus cristatus Wesołowska & Russell-Smith, 2000). 246. Male palp, ventral view. 247. Male palp, retrolateral view. 248. Male palp, dorsal view. 249. Embolic division, ventral view. 250. Embolic division, median view. 251. Embolic division, retrolateral view. Scale bars: 0.1 mm.
Figs 239–245. Stenaelurillus hirsutus Lessert, 1927, holotype. 239. Male palp, ventral view. 240. Embolic division, retrolateral view. 241. Embolic division, dorsal view. 242. Embolic division, median view. 243–245 in Redefinition and partial revision of the genus Stenaelurillus Simon, 1886 (Arachnida, Araneae, Salticidae)
Figs 239–245. Stenaelurillus hirsutus Lessert, 1927, holotype. 239. Male palp, ventral view. 240. Embolic division, retrolateral view. 241. Embolic division, dorsal view. 242. Embolic division, median view. 243–245. General appearance. Abbreviations: see Material and methods. Scale bars: 239–242 = 0.1 mm; 243–245 = 1 mm.
Fig. 93. Leiodes irregularis Portevin, 1927. A in Review of the tribes Sogdini and Leiodini from Japan and North Chishima Islands. Part II. Genera Hydnobius and Leiodes (Coleoptera: Leiodidae)
Fig. 93. Leiodes irregularis Portevin, 1927. A – body, dorsal view; B – ditto, lateral view; C, D, E, F, and G – dorsal color; H – antenna; I – elytral punctures; J – mesoventrite, lateral view. Scale I: 1 mm for A and B; II: 0.5 mm for H; III: 0.2 mm for J.
Fig. 30. Siriella vincenti W.M. Tattersall, 1927 in Revision of the Siriella brevicaudata species group (Crustacea: Mysida: Mysidae) from the West Indo-Pacific
Fig. 30. Siriella vincenti W.M. Tattersall, 1927, syntypes, Gulf of St. Vincent, South Australia, Australia. A. Antenna 1 peduncle, dorsal view. B. Antenna 1 peduncle, dorsal view. C. Antenna 2 peduncle and antennal scale, ventral view. D. Mandibular palp, medial view. E. Labrum. F. Distal part of maxilliped 1 endopod, posterior view. A, C–F = ♀; B = ♂, length 7.5 mm. Scale bars: A–C = 0.5 mm; D–F = 0.25 mm.
Fig. 31. Siriella vincenti W.M. Tattersall, 1927 in Revision of the Siriella brevicaudata species group (Crustacea: Mysida: Mysidae) from the West Indo-Pacific
Fig. 31. Siriella vincenti W.M. Tattersall, 1927, syntypes, Gulf of St. Vincent, South Australia, Australia. A. Maxilliped 2 endopod, posterior view. B. Distal part of maxilliped 2 endopod, posterior view. C. Pereopod 1 endopod, posterior view. D. Pleopod 4, posterior view. A–C = ♀, length 7.5 mm; D = ♂, length 7.5 mm. Scale bars: A, C–D = 0.5 mm; B = 0.25 mm.
Fig. 29. Siriella vincenti W.M. Tattersall, 1927 in Revision of the Siriella brevicaudata species group (Crustacea: Mysida: Mysidae) from the West Indo-Pacific
Fig. 29. Siriella vincenti W.M. Tattersall, 1927, syntype, ♀, length 7.5 mm, Gulf of St. Vincent, South Australia. A. Anterodorsal margin of carapace and subrostral process. B. Dorsal part of carapace, lateral view. C. Telson. D. Apical part of telson, dorsal view. E. Uropodal exopod, ventral view. F. Uropodal endopod, ventral view. Scale bars: A–C, E–F = 0.5 mm; D = 0.25 mm.
Fig. 2. Acryptolaria normani Nutting, 1927 in Redescription Of Acryptolaria Normani Nutting, 1927, Junior Synonym Of The Western Pacific Species Zygophylax Tizardensis Kirkpatrick, 1890 (Cnidaria: Hydrozoa: Lafoeidae)
Fig. 2. Acryptolaria normani Nutting, 1927 (= Zygophylax tizardensis Kirkpatrick, 1890): A, origin of hydrocladium showing first hydrotheca (note the absence of nematothecae on hydrothecal pedicel); B, hydrotheca. Zygophylax tizardensis: C, hydrotheca. (A, B from holotype of Acryptolaria normani; C from Stechow's material). Scale bar: 250 m.
Fig. 1. Acryptolaria normani Nutting, 1927 in Redescription Of Acryptolaria Normani Nutting, 1927, Junior Synonym Of The Western Pacific Species Zygophylax Tizardensis Kirkpatrick, 1890 (Cnidaria: Hydrozoa: Lafoeidae)
Fig. 1. Acryptolaria normani Nutting, 1927 (= Zygophylax tizardensis Kirkpatrick, 1890). A, general appearance of a fragment of stem with hydrocladia and hydrothecal arrangement (note the presence of a broken secondary stem); B, cauline nematothecae; C, pedicel of first, basal, hydrotheca (note the absence of nematothecae); D, nematotheca of hydrothecal pedicel; E-F, hydrothecae. (All photographs from holotype).
Fig. 2 in A New Frog (Anura, Dicroglossidae), Related To Occidozyga Semipalmata Smith, 1927, From The Eastern Peninsula Of Sulawesi, Indonesia
Fig. 2. Occidozyga semipalmata from Lore Lindu, proximity of Kebun Kopi showing the flattened finger disks ornamented with a white bar. Photo by T. C. Wanger.
Fig. 3 in A New Frog (Anura, Dicroglossidae), Related To Occidozyga Semipalmata Smith, 1927, From The Eastern Peninsula Of Sulawesi, Indonesia
Fig. 3. Dorsal (A) and ventral (B) aspect of the female holotype (SVL 34.1 mm) of Occidozyga tompotika. Folds on the dorsum are partially an artifact from paper towel during preservation. Photo by D. T. Iskandar.
Fig. 1 in A New Frog (Anura, Dicroglossidae), Related To Occidozyga Semipalmata Smith, 1927, From The Eastern Peninsula Of Sulawesi, Indonesia
Fig. 1. Map of Sulawesi showing the distribution of Sulawesian Occidozyga. Legend: Circle, Occidozyga semipalmata; small circles denote localities with one or two specimens; Circle, Mount Lompobatang (the type locality); Star, Occidozyga tompotika; Inverted triangle, Occidozyga celebensis. Map modified from Google map.
Fig. 6 in New data on distribution of Miramiola pusilla (Miram, 1927) (Orthoptera: Tettigoniidae
Fig. 6. Predicted probabilities of suitable conditions for Miramiola pusilla according the Maxent model for 2041–2060 (all distribution data and bioclimatic variables; point-wise
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