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5,312 results for “New Zealand”
Figure 5 in A new species of Colossendeis (Pycnogonida: Colossendeidae) together with records from Australian and New Zealand waters
Figure 5. Colossendeis melancholicus (NMV J48898): A, B, dorsal and lateral views of trunk; C, ocular tubercle; D, oviger segments 7–10; E, leg 2; F, tarsus and propodus leg 2; G, claw; H, palp.
Figure 8 in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 8. Geological sketch map of the Heathcote area showing Wenlock-Lochkovian fossil localities yielding homalonotids. For other fossil localities see also Thomas (1940a, 1940b, 1941, 1956), Talent (1964, fig. 1), Sandford (2002, fig. 1A; 2005, fig. 4).
Figure 3 in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 3. Sandstone slab from PL2204 (Thomas' F4, Parish of Dargile), Heathcote with bedding plane showing numerous isolated pygidia and cranidia of Digonus wenndorfi in various orientations and with large bivalves and brachiopods indicative of Boucot and Johnson's (1967) 'big shell' community.
Figure 5 A, D in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 5 A, D. Moult assemblages of Trimerus (Edgillia) kinglakensis in the upper siltstones at PL252, Middendorps Quarry, Kinglake West, Humevale Siltstone. A, upper right, displaced and inverted cephalon lying underneath thoracopygon (only anterior margin visible); left, thoracopygon with displaced and rotated cephalon. D, thoracopygon with displaced and rotated cephalon. B–C. Complete dorsal exoskeletons in sandstone bioclastic coquinas. B, Trimerus (Trimerus) harrisoni from PL1820, Brunswick, Melbourne Formation. C, Wenndorfia lilydalensis from PL1805, Coldstream. Humevale Siltstone.
Figure 4 in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 4. Relationship between trilobite faunal diversity and homalonotid relative abundance. Only homalonotid-bearing faunas represented by more than 10 specimens are plotted. The curve connects plot-points of hypothetical faunas where species are represented in equal proportional relative abundance. Homalonotid faunas cluster in two groups, lower diversity faunas with homalonotids over-represented (above the line) and high diversity faunas with homalonotids generally under-represented (below the line).
Figure 2 in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 2. Stratigraphic distribution of homalonotids in the Heathcote, Springfield-Kinglake West and Lilydale sequences in central Victoria, and in Tasmania and New Zealand. Stratigraphic scheme for the Llandovery-Ludlow of central Victoria follows Rickards and Sandford (1998), and for the Ludlow-Lochkovian follows Sandford (2002).
Figure 1 in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 1. Distribution of fossil marine faunas with homalonotids in south eastern Australia and New Zealand. Localities for the Heathcote, Springfield-Kinglake West and Lilydale areas are detailed in Figures 8, 11 and 23.
Figure 11 in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 11. Geological sketch map of the Springfield-Kinglake West area showing Llandovery-Lochkovian fossil localities yielding homalonotids. For other fossil localities see also Jutson (1908, pl. 3), Thomas (1960), Talent (1964, fig. 1), Williams (1964, fig. 2), Garratt (1972, 1977), Rickards and Sandford (1998, fig. 6), Sandford (2002, fig. 1C; 2005, figs 2–3).
Figure 23 in Homalonotid trilobites from the Silurian and Lower Devonian of south-eastern Australia and New Zealand (Arthropoda: Trilobita: Homalonotidae)
Figure 23. Geological sketch map of the Lilydale area showing Lochkovian-basal Pragian fossil localities yielding homalonotids. For other fossil localities see also Gill (1940, fig.1, 1945, fig. 2), Moore (1965, fig.1), VandenBerg (1970), Garratt (1972), Wall et al. (1995, fig. 1), Sandford (2003, text-fig. 1A, 2004, fig. 1).
Dataset: iShares MSCI New Zealand ETF (ENZL) 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.
Linked collectors and determiners for: WELT Herbarium at Museum of New Zealand Te Papa Tongarewa (WELT).
Natural history specimen data linked to collectors and determiners held within, "WELT Herbarium at Museum of New Zealand Te Papa Tongarewa (WELT)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="http://bionomia.net/dataset/a08070a9-ff2c-40a0-9265-06b92cebae43">https://bionomia.net/dataset/a08070a9-ff2c-40a0-9265-06b92cebae43</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/a08070a9-ff2c-40a0-9265-06b92cebae43">https://gbif.org/dataset/a08070a9-ff2c-40a0-9265-06b92cebae43</a>. Formatted as a Frictionless Data package.
Figure 2 in Efficacy of low-dose EarthTec QZ treatment for the control of New Zealand mud snails Potamopyrgus antipodarum in a hatchery environment
Figure 2. Mean percent of active individuals with standard error (SE) plotted against days of treatment for three species of snail at Page Springs Hatchery.
Figure 2 in Fine-scale abundance variation in New Zealand migratory and non-migratory Galaxias fish species
Figure 2. – Boxplot showing the abundance of migratory (galbre; Galaxias brevipinnis) and non-migratory (galpau; G. paucispondylus and galvul; G. vulgaris) species at sites upstream of lakes (n = 18) and sites without lakes (n = 8). Boxplots show medians (horizontal line), 25th and 75th percentiles (upper and lower box limits), maximum and minimum values (bars), and mean (red dots). Outliers are presented by black circles.
Figure 1 in Fine-scale abundance variation in New Zealand migratory and non-migratory Galaxias fish species
Figure 1. – Map of survey sites, including sites upstream of Lakes Ohau, Pukaki and Tekapo (white boxes), and non-lake stream sites (grey shaded boxes). The number of fish caught at the different sites is shown within the boxes, with Galaxias brevipinnis at the top and non-migratory Galaxias spp. at the bottom of the boxes.
Figure 5 in Fine-scale abundance variation in New Zealand migratory and non-migratory Galaxias fish species
Figure 5. – Principal component analysis (PCA) biplot of the microhabitat environmental factors. Each dot repre- sents one sampling point. The symbols indicate sites upstream of lakes (circles) and sites without lakes (triangles), with the 95% confidence ellipses enclosing sample units from each group. Ellipses that do not overlap represent groups that differ significantly. Dim1, the first PCA axis; Dim2, the second PCA axis.
Figure 4 in Fine-scale abundance variation in New Zealand migratory and non-migratory Galaxias fish species
Figure 4. – Representation of size-class structure of Galaxias brevipinnis in lake tributary sites with different distance categories from their recruitment sources (lakes). Sample sizes (n) and distances (in km) are shown inside the panels.
Figure 3 in Fine-scale abundance variation in New Zealand migratory and non-migratory Galaxias fish species
Figure 3. – The relationship between square-root transformed galbre Galaxias brevipinnis and non-migratory species (galpau; G. paucispondylus) abundance with distance from the lakes.
FIGURE 23. Palissya batrumi 1. Specimen showing external morphology, LX721 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 23. Palissya batrumi 1. Specimen showing external morphology, LX721, Little Beach (Note adjacent Pityophyllum); 2. Specimen with apical part split longitudinally, revealing the axis, LX1096, Curio Bay.; 3. Specimen weathered to reveal the adaxial surface with paired ovule/scale units, LX2238, Otara-20. All scale bars equal 10 mm.
FIGURE 6. Sphenopteris travisii. 1. LX2067 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 6. Sphenopteris travisii. 1. LX2067, Slope-03; 2. LX1180, Blue Cod Bay; 3. LX665 Blue Cod Bay. All scale bars equal 10 mm.
FIGURE 22. Araucarites cutchensis 1 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 22. Araucarites cutchensis 1. Ovulate scale (LX2364); 2. Counterpart of previous (LX2364); 3. Two cone scales (LX2367). All Little-02, scale bars equal 10 mm.
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.