Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
10,553
datasets available to search
ShareScore release 0.7.1
Dataset results
10,553 results for “measurements”
Figure 2 in Assessment of the accuracy of determining the Caspian Sea surface temperature by Landsat-5, -7 satellites based on the measurements of drifters
Figure 2. Drifter tracks in the Caspian Sea: (a) from 4 October 2006 to 20 February 2007, and (b) from 19 July 2008 to 10 October 2008.
Figure 10 in Assessment of the accuracy of determining the Caspian Sea surface temperature by Landsat-5, -7 satellites based on the measurements of drifters
Figure 10. Dependence between SST from the drifter and according to data from Landsat-5, -7 sensors having different levels of processing.
Figure 7 in Assessment of the accuracy of determining the Caspian Sea surface temperature by Landsat-5, -7 satellites based on the measurements of drifters
Figure 7. Histogram of temperature determination error values according to Landsat Level-1 data: (a) measurements that have a time difference of no more than two hours with the flight of the satellite; (b) all measurements on the day of the satellite flyby.
Figure 3. A in Assessment of the accuracy of determining the Caspian Sea surface temperature by Landsat-5, -7 satellites based on the measurements of drifters
Figure 3. A mosaic of Landsat-7 images in the Caspian Sea: (a) from 4 October 2006 to 20 February 2007, and (b) from 19 July 2008 to 10 October 2008. Drifter tracks are superimposed on satellite images.
Figure 9 in Assessment of the accuracy of determining the Caspian Sea surface temperature by Landsat-5, -7 satellites based on the measurements of drifters
Figure 9. Histogram of temperature determination error values according to Landsat Level-2 data: (a) measurements that have a time difference of no more than two hours with the flight of the satellite; (b) all measurements on the day of the satellite flyby.
Figure 6 in Assessment of the accuracy of determining the Caspian Sea surface temperature by Landsat-5, -7 satellites based on the measurements of drifters
Figure 6. The relationship between the temperature of the sea surface layer obtained from drifters and SST according to Landsat-5, -7 Level-1 data: (a) measurements that have a time difference of no more than two hours with the flight of the satellite; (b) all measurements on the day of the satellite flyby.
Figure 5 in Assessment of the accuracy of determining the Caspian Sea surface temperature by Landsat-5, -7 satellites based on the measurements of drifters
Figure 5. Examples of using a cloud mask (satellite image taken on 29 July 2008). At the time of the satellite's flight, all measurement points for the day are blocked by clouds: (a) satellite image in natural colors with missing information along the bands; (b) same image with cloud mask superimposed. Red dots show several locations of one drifter during the day of satellite image acquisition.
Fig. 2 in The non-invasive measurement of faecal immunoglobulin in African equids
Fig. 2. IgA was higher in Grevy's zebras than donkeys and, when other factors were taken into account in the zebra model, Grevy's zebra IgA was higher than plains zebra IgA. Conversely, FEC was higher in donkeys than the other two species (and at the population level plains zebras have higher FEC than Grevy's zebras; DIR and KJT unpublished data, Rubenstein et al., 2010). Horizontal bars indicate means, horizontal box edges standard errors, and asterisks and symbols above the brackets denote level of significance for differences that emerged in simple tests (ANOVA with Tukey post hoc for sqrtIgA, Kruskal-Wallis with Dunn's post hoc for FEC; p <0.05*, p <0.01**, p <0.001***).
Fig. 3 in The non-invasive measurement of faecal immunoglobulin in African equids
Fig. 3. In donkeys, FEC and IgA are correlated among individuals in high body condition (with a body condition score> 2.5), in data pooled across years. Shading represents standard error, significant correlations are shown in solid lines, and non-significant trends in dotted lines.
Fig. 1 in The non-invasive measurement of faecal immunoglobulin in African equids
Fig. 1. In donkeys, IgA increased with logFEC but only in 2018, when rainfall was higher. Shading represents standard error, significant correlations are shown in solid lines, and non-significant trends in dotted lines.
Figure 2. - A in High statistics measurement of the positron fraction in primary cosmic rays of 0.5-500 GeV with the alpha magnetic spectrometer on the international space station
Figure 2. - A: Sea lamprey (Petromyzon marinus); B: shad (either Alosa fallax or A. algeriensis). Scale bars = 10 cm. Photographs: M. JácomeFlores and B. Adrados.
Figure 1 in High statistics measurement of the positron fraction in primary cosmic rays of 0.5-500 GeV with the alpha magnetic spectrometer on the international space station
Figure 1. - Map showing previously known records of the sea lamprey (Petromyzon marinus) in north-western Africa (grey squares) and the record from the mouth of Oued Moulouya (black square). References for previous records: 1: Furnestin et al. (1958); 2: Boutellier (1918), adjacent records; 3: Dollfus (1955); 4: Bacha and Amara (2007); 5: records compiled by Renaud (2011).
Fig. 9. Nine eggs from a female measuring 533 in Notes on the natural history and morphology of the Ningshan Lined Snake (Stichophanes ningshaanensis Yuen, 1983; Ophidia: Colubridae) and its distribution in the Shennongjia National Nature Reserve, China
Fig. 9. Nine eggs from a female measuring 533 mm SVL and 673 mm TL on 30 June 2006. Photo by Kevin R. Messenger.
Fig. 2. Schematic drawing showing measured parameters and descriptive terminology used for sclerite types A–H in Trachyplax arctica, a new multiplated problematic fossil from the lower Cambrian of North Greenland
Fig. 2. Schematic drawing showing measured parameters and descriptive terminology used for sclerite types A–H. Abbreviations: A, apical angle; Ai, apex interarea; L, length; Lr, length of rostrum; Ls, length of shield; H, height; W, width; Wai, width of apex interarea; Wr, width of rostrum; Ws, width of shield. Not to scale.
Fig. 2. Measurement system for cervical vertebrae. A in The first discovery of pterosaurs from the Upper Cretaceous of Mongolia
Fig. 2. Measurement system for cervical vertebrae. A. Atlas−axis complex in anterior (A), right lateral (A), ventral (A), and posterior (A) views. B. 3rd 1 2 3 4 cervical in anterior (B1), posterior (B2), right lateral (B3), dorsal (B4), and ventral (B5) views. C. Posterior part of a middle cervical in dorsal (C1), ventral (C2), and posterior (C3) views. Specific measurements are as follows: 1, total length; 2, length of centrum; 3, width of anterior part; 4, width of middle point of centrum; 5, width of posterior part with postzygapophyses; 6, width of posterior part of centrum; 7, width including postexapophyses; 8, height of neural arch on posterior part.
Fig. 4. Allometric relationships among bone measurements concerning four sexually dimorphic skeletal ratios. A in New information on sexual dimorphism and allometric growth in Keichousaurus hui, a pachypleurosaur from the Middle Triassic of Guizhou, South China
Fig. 4. Allometric relationships among bone measurements concerning four sexually dimorphic skeletal ratios. A. Humerus length vs. snout-vent length. B. Femur length vs. snout-vent length. C. Humerus vs. femur length. D. Maximum vs. minimum width of humerus.
Fig. 1. Measurement scheme for the canid radius, illustrated using a in Ecomorphology of radii in Canidae: Application to fragmentary fossils from Plio-Pleistocene hominin assemblages
Fig. 1. Measurement scheme for the canid radius, illustrated using a left radius of Cuon alpinus, NHMUK M1888.2.5.22_159.d, in posterior view (A1), proximal (A2) and distal (A3) end; lateral view proximal (B1) and distal (B2) end; distal view of radius lower extremity (C), proximal (D) and distal (E) views of radius epiphyses. Not to scale. Explanation of radial measurements 1–29 in Table 1.
Fig. 2. Illustration showing measurement conventions. A in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 2. Illustration showing measurement conventions. A. Body in lateral view. B. Median fin in lateral view. C. Mid−dorsal scales in dorsal view.
data for "Could we achieve the on-line Measurements of the Optical Fractal Dimensions of Black Carbon?"
Open the record for dataset details and reuse information.
Odonata Dataset: Measurements
Various Odonata measurements that were gathered from various locations.<p></p>
ScienceDex guides
Understand access before you commit
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.