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Figure 4 in A first ecological description of the lichen-clad larva of Eublemmistis chlorozonea Hampson, 1902 (Lepidoptera: Erebidae) from a southern Afrotemperate forest
Figure 4 – Examples of a larva partially covered by lichen fragments (left), and one completely covered (right).
Figure 3 in A first ecological description of the lichen-clad larva of Eublemmistis chlorozonea Hampson, 1902 (Lepidoptera: Erebidae) from a southern Afrotemperate forest
Figure 3 – Larvae typically restrict themselves to the lichen-clad parts of various tree species: Podocarpus latifolius (left) and Curtisia dentata (right).
Figure 2 in A first ecological description of the lichen-clad larva of Eublemmistis chlorozonea Hampson, 1902 (Lepidoptera: Erebidae) from a southern Afrotemperate forest
Figure 2 – Distribution of Eublemmistis chlorozonea observations over a 24-month period (August 2021–August 2023) in the southern Cape, South Africa (Google Earth 2023). George can be seen to the western part of the map and Knysna to the south-eastern part. Observation 20, near the Woodville big tree, was made by the last author (HSS) on the 26th of December 2013. On the insert are observations 1, 2, 3, 4, 5, 12, 14, 15, 16, 17, and 18 from Saasveld forest.
Figure 14 –H in Description of the larva of Helenoscoparia nigritalis (Walker, 1855) (Pyraloidea: Crambidae: Scopariinae)
Figure 14 –H. nigritalis larva in a silky tunnel in the soil at Burnt Rock, with particle of moss (2019, photo L. Fowler).
Figure 12 in Description of the larva of Helenoscoparia nigritalis (Walker, 1855) (Pyraloidea: Crambidae: Scopariinae)
Figure 12 – Larva of H. nigritalis under lichens at a rock at Cabbage Tree Road near Taylor's (2018, photo D. Pryce).
Figure 16 in Description of the larva of Helenoscoparia nigritalis (Walker, 1855) (Pyraloidea: Crambidae: Scopariinae)
Figure 16 – Shade web of chicken coop with trace of frass of H. nigritalis larva (2020; photo L. Fowler).
Figure 13 in Description of the larva of Helenoscoparia nigritalis (Walker, 1855) (Pyraloidea: Crambidae: Scopariinae)
Figure 13 – Larva of H. nigritalis at the underside of a Eucalyptus leaf, Burnt Rock (2019, photo L. Fowler).
Figure 15 in Description of the larva of Helenoscoparia nigritalis (Walker, 1855) (Pyraloidea: Crambidae: Scopariinae)
Figure 15 – Webbings of H. nigritalis in moss at a water tank at Burnt Rock (2019, photo L. Fowler).
Figure 11 in Description of the larva of Helenoscoparia nigritalis (Walker, 1855) (Pyraloidea: Crambidae: Scopariinae)
Figure 11 – Larva of S. ambigualis; a – lateral, b – dorsal, c – caudal [after Smith 2004; reproduced from Entomologist's Gazette 55 (2004) with kind permission].
Рис. 6. Сроки нереста приморского гребешка (1), роста и раЗвития его личинок в планктоне от начала нереста до раЗмеров 150 мкм (2) и от 150 мкм до 250–275 мкм (3). Fig. 6. Terms of spawning of the Japanese scallop (1), growth and development of its larvae in plankton from the beginning of spawning to the sizes of 150 microns (2) and from 150 microns to 250–275 microns (3). in Review of methods for the forecast of mollusk's spat productivity in sea-farms of Primorye and probable ways of their enhancement
Рис. 6. Сроки нереста приморского гребешка (1), роста и раЗвития его личинок в планктоне от начала нереста до раЗмеров 150 мкм (2) и от 150 мкм до 250–275 мкм (3). Fig. 6. Terms of spawning of the Japanese scallop (1), growth and development of its larvae in plankton from the beginning of spawning to the sizes of 150 microns (2) and from 150 microns to 250–275 microns (3).
Рис. 4. Сетка термальных ресурсов Зал. Посьета с кривой раЗвития личинок приморского гребешка (номограмма для 1972 г.). Fig. 4. A grif of thermal resources of waters of Possjet Bay and the curve line of development of larvae of the Crassostrea gigas (nomogram for 1972). in Review of methods for the forecast of mollusk's spat productivity in sea-farms of Primorye and probable ways of their enhancement
Рис. 4. Сетка термальных ресурсов Зал. Посьета с кривой раЗвития личинок приморского гребешка (номограмма для 1972 г.). Fig. 4. A grif of thermal resources of waters of Possjet Bay and the curve line of development of larvae of the Crassostrea gigas (nomogram for 1972).
Рис. 3. Сетка термальных ресурсов Зал. Посьета с кривой раЗвития личинок тихоокеанской устрицы (номограмма) [Раков, 1977]. Fig. 3. A grid of thermal resources of waters of Possjet Bay and the curve line of development of larvae of the giant oyster Crassostrea gigas (nomogram) [Rakov, 1977]. in Review of methods for the forecast of mollusk's spat productivity in sea-farms of Primorye and probable ways of their enhancement
Рис. 3. Сетка термальных ресурсов Зал. Посьета с кривой раЗвития личинок тихоокеанской устрицы (номограмма) [Раков, 1977]. Fig. 3. A grid of thermal resources of waters of Possjet Bay and the curve line of development of larvae of the giant oyster Crassostrea gigas (nomogram) [Rakov, 1977].
Dataset for Integrated Species Distribution Model for pikeperch larvae in the Porvoo-Sipoo archipelago
<p>This record contains the data required to run the code for fitting the Integrated Species Distribution Model described in <a href="https://arxiv.org/abs/2206.08817">arXiv:2206.08817 [stat.ME].</a></p> <h1>Files in this record</h1> <ul> <li><strong>transect_data.csv</strong> Line transect observations from Porvoo-Sipoo archipelago, Finland on June 2017.</li> <li><strong>expert_assessments.tif</strong> Rasterized, anonymous expert assessments. Categorical values denoting how likely a given location is to be a spawning location for pikeperch. 4 categories, with smaller values corresponding to higher probabilities.</li> <li><strong>covariate_raster_example.tif</strong> Rasterized example environmental covariate values. These are similarly structured as the covariate data used in the study and compatible with the analysis code. However, since we do not have the permission to release the original data set, these values are instead generated based on the projected planar coordinates such that they have roughly similar spatial gradients as the original covariates.</li> </ul> <h1>Detailed descriptions</h1> <h2>Transect data</h2> <h3>Location and replicate identifiers</h3> <ul> <li> <p><strong>id</strong> : transect identifier. Replicates of the same transect have the same identifier.</p> </li> <li> <p><strong>id2</strong> : alternate transect identifier, unique for each transect.</p> </li> <li> <p><strong>repeated</strong> : whether transect was replicated or not.</p> </li> <li> <p><strong>X_euref</strong> : easting coordinate, EUREF_FIN_TM35FIN, for the transect starting location in [meters]</p> </li> <li> <p><strong>Y_euref</strong> : northing coordinate, EUREF_FIN_TM35FIN, for the transect starting location in [meters]</p> </li> <li><strong>date</strong> : date of the measurement, DD/MM/YYYY</li> <li><strong>week</strong> : week number of the measurement date</li> </ul> <h3>In situ measurements</h3> <ul> <li> <p><strong>volume</strong> : Transect water volume [m^3]. Transect length (500m) multiplied by sampler surface area. Used as survey effort.</p> </li> <li> <p><strong>heading</strong> : compass heading (direction) for the transect, in [degrees].</p> </li> <li> <p><strong>SumKUHA</strong> : total pikeperch (<em>Sander lucioperca</em>, kuha in Finnish) larvae count in each transect [scalar]</p> </li> </ul> <h2>Expert assessments</h2> <p>The raster contains assessments from 10 local experts encoded as separate raster layers (Expert_1, Expert_2, ..., Expert_10). Raster resolution is 50m x 50m and the planar coordinates are based on the same coordinate reference system as the transect observations (UTM zone 35).</p> <p>The assessments are coded as integers with values between 1 and 4, with smaller values corresponding to higher probabilities.</p> <h2>Covariate raster example</h2> <p>This raster has the same spatial dimensions and uses the same coordinate reference system as the expert assessment raster and has three layers, one for each covariate. The covariate values are generated based on the spatial coordinates such that each covariate has similar spatial gradient as the original covariate. The covarites have the same names as in the original covariate data (<strong>dptLUKE</strong>, <strong>dist10m</strong> and <strong>lined3km</strong>).</p> <h1>Creators</h1> <p>Transect data collected and curated by Sanna Kuningas.</p> <p>Original covariate rasters curated by Sanna Kuningas from data sets collected by the Finnish Environment Institute and the Natural Resources Institute Finland.</p> <p>Expert assessments originally digitized and rasterized by Jussi Mäkinen. Additional refinement to assessment rasters by Karel Kaurila.</p> <p>Preparation for publishing on Zenodo for all of the data sets by Karel Kaurila.</p> <h2>Change log</h2> <ul> <li> 2025 Jan 31: Included columns <strong>date</strong> and <strong>week</strong> for <strong>transect_data.csv</strong>.</li> </ul>
Figs 10–15 in A new species of Cephaloleia from Panama with description of larva and first record of orchid-feeding in Cephaloleiini (Coleoptera: Chrysomelidae: Cassidinae)
Figs 10–15. Egg and larva of Cephaloleia orchideivora sp. nov. 10 – egg containing nearly fully developed larva on Oerstedella leaf; 11 – freshly emerged first instar larva, live and prior to feeding; 12 – second instar larva fully grown; 13 – dissected head of first instar larva showing the location and conformation of the stemmata; 14 – mandible dissected, embedded in Hoyers medium and viewed through a compound microscope; a fourth tooth, deeper in the preparation and less focused appears between the second and third teeth; 15 – lateral view of the opposing mandible and its shallowly lobed teeth and concave mesal surface. All scale bars equal to 1 mm.
Figs 1–2. 1 in Descriptions of larvae of Birka annulitarsis and B. cinereipes (Hymenoptera: Symphyta: Tenthredinidae)
Figs 1–2. 1 – Birka annulitarsis (Thomson, 1870), 2 – Birka cinereipes (Klug, 1816): a, d, e – mounted larva from alcohol; b, c – living larva; a, c – lateral view; b – dorsal view; d – frontal view; e – abdominal segment IX, dorsal view. Scale: a – 5 mm; b, c – 10 mm; d, e – 1 mm.
Figs 16–21 in A new species of Cephaloleia from Panama with description of larva and first record of orchid-feeding in Cephaloleiini (Coleoptera: Chrysomelidae: Cassidinae)
Figs 16–21. Larva of Cephaloleia orchideivora sp. nov. 16 – first abdominal spiracle; 17 – lateral view of head (second instar); 18 – ventral surface of same head, maxilla, maxillary palps, labium and labial palps, antenna and clypeus (lacking setal fringe); 19 – maxilla; 20 – apical segment of the antenna; 21 – leg.
Figs 1–3 in A new species of Cephaloleia from Panama with description of larva and first record of orchid-feeding in Cephaloleiini (Coleoptera: Chrysomelidae: Cassidinae)
Figs 1–3. Cephaloleia orchideivora sp. nov. 1 – dorsal aspect (Chiriquí population); 2 – ventral aspect; 3 – dorsal aspect (Cerro Jefe population).
Figs 8–13. 8 – anterior spiracle. 9 in Micromorphology of egg and larva of Eristalis fratercula, with an updated key of Eristalis species with known third instar larvae (Diptera: Syrphidae)
Figs 8–13. 8 – anterior spiracle. 9 – two patches of sclerotized spicules. 10 – mesothoracic proleg; 11 – first abdominal proleg; 12 – sixth abdominal proleg; 13 – posterior breathing tube. Abbreviations: cs – central scars; fa – facets; ip – incurved plate; is – interspiracular setae; so – spiracular openings; sp – spiracular plate.
Figs 2–7 in Micromorphology of egg and larva of Eristalis fratercula, with an updated key of Eristalis species with known third instar larvae (Diptera: Syrphidae)
Figs 2–7. Third instar larva of Eristalis fratercula (Zetterstedt, 1838). 2 – head and thoracic segments (pro- and mesothorax), ventral view; 3 – antennomaxillary organs; 4 – details of the cephalic region and lips; 5–6 – long branched spicules in the upper margin on the lateral lips; 7 – longitudinal grooves and anterior spiracles, dorsal view. Abbreviations: am – antennomaxillary organs; an – antenna; as – anterior spiracles; bs – branched spicules; dl – dorsal lips; es – extra pair of sensilla; ll – lateral lips; mp – maxillary palp; mtp – mesothoracic prolegs; ts – tuft of long setae; vl – ventral lips.
Fig. 5 in Description Of The Puparium And Redescription Of The Third-Instar Larva Of Brachyopa Panzeri (Diptera, Syrphidae) With New Data On Its Biology
Fig. 5. Female of Tetrastichus brachyopae reared from puparium of Brachyopa panzeri for the first time.
ScienceDex guides
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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.
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.