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.
180
datasets available to search
ShareScore release 0.9.0
Dataset results
180 results for “chaos”
FIGURE 29 in The Sarcophagidae (Insecta: Diptera) described by Chien-ming Chao and Xue-zhong Zhang
FIGURE 29. Kozlovea cetu Chao & Zhang, 1978 [= Sarcophaga (Kozlovea) tshernovi (Rohdendorf, 1937)], male, holotype. A. Body, lateral view. B. Terminalia, lateral view. C. Head, anterior view. D. Head, anterolateral view. E. Head, lateral view. F. Abdomen, dorsal view. G. Labels. Scales: A= 3.00 mm, B= 0.50 mm, C–E= 1.00 mm, F= 2.00 mm.
FIGURE 28 in The Sarcophagidae (Insecta: Diptera) described by Chien-ming Chao and Xue-zhong Zhang
FIGURE 28. Heteronychia (Eupierretia) tenupenialis Chao & Zhang, 1988 [= Sarcophaga (Heteronychia) shnitnikovi (Rohdendorf, 1937)], male, holotype. A. Body, lateral view. B. Terminalia, lateral view. C. Head, anterior view. D. Head, anterolateral view. E. Head, lateral view. F. Body, dorsal view. G. Labels. Scales: A & F= 3.00 mm, B= 0.50 mm, C–E= 1.00 mm.
FIGURE 25 in The Sarcophagidae (Insecta: Diptera) described by Chien-ming Chao and Xue-zhong Zhang
FIGURE 25. Blaesoxipha (Servaisia) nigridorsalis Chao & Zhang, 1988, males. A. Body, lateral view, holotype. B. Terminalia, lateral view, holotype. C. Head, anterior view, holotype. D. Head, anterolateral view, paratype. E. Head, lateral view, paratype. F. Abdomen, dorsal view, holotype. G. Labels, holotype. H. Labels, paratype. Scales: A= 3.00 mm, B= 0.50 mm, C–F= 1.00 mm.
Data of the Publication: Master of Chaos and Order:Opposite Microstructures of PCL-co-PGA-co-PLA Accesible by a Single catalyst
<p>NMR, DSC and MALDI-ToF-MS data of the copolymers discussed in the publication "Master of Chaos and Order: Opposite Microstructures of PCL-co-PGA-co-PLA Accessible by a Single Catalyst".</p>
FIGURE 5. Lycorina spilonotae Chao, female A in Discovery of the Darwin wasp subfamily Lycorininae Cushman & Rohwer (Hymenoptera: Ichneumonidae) from India with description of a new species from Kashmir
FIGURE 5. Lycorina spilonotae Chao, female A) habitus, lateral view; B) head, anterior view; C) head, dorsal view; D) head & mesosoma, lateral view; E) propodeum, dorsal view; F) metasoma, dorsal view.
Supplementary material for the manuscript "Transition to chaos and modal structure of magnetized Taylor–Couette flow"
<p>These data and codes are the supplementary materials for the manuscript "Transition to chaos and modal structure of magnetized Taylor–Couette flow". The description of the data is in the file "DATA_OVERVIEW.txt".</p>
Supplementary material 5 from: Chao Y-S, Ebihara A, Chiou W-L, Huang Y-M (2017) Pteris latipinna sp. nov. (Pteridaceae), a new species segregated from Pteris fauriei. PhytoKeys 85: 95-108. https://doi.org/10.3897/phytokeys.85.14884
Figure S5. : Explanation note: Holotype of Pteris wulaiensis C.M. Kuo in TAI (S.-J. Moore4383, TAI283138).
Supplementary material 2 from: Chao Y-S, Ebihara A, Chiou W-L, Huang Y-M (2017) Pteris latipinna sp. nov. (Pteridaceae), a new species segregated from Pteris fauriei. PhytoKeys 85: 95-108. https://doi.org/10.3897/phytokeys.85.14884
Figure S2. : Explanation note: Type material of Pteris fauriei var. minor Hieron. in B (U. Fauriei 685, B200128109).
Supplementary material 1 from: Chao Y-S, Ebihara A, Chiou W-L, Huang Y-M (2017) Pteris latipinna sp. nov. (Pteridaceae), a new species segregated from Pteris fauriei. PhytoKeys 85: 95-108. https://doi.org/10.3897/phytokeys.85.14884
Figure S1. : Explanation note: Type material of Pteris fauriei Hieron. var. fauriei in B (B20012819).
Supplementary material 3 from: Chao Y-S, Ebihara A, Chiou W-L, Huang Y-M (2017) Pteris latipinna sp. nov. (Pteridaceae), a new species segregated from Pteris fauriei. PhytoKeys 85: 95-108. https://doi.org/10.3897/phytokeys.85.14884
Figure S3. : Explanation note: Holotype of Pteris natiensis Tagawa in KYO (G. Koidzumi s.n. Aug. 3, 1922).
Dataset related to article "Polynomial Chaos Expansion of SAR and temperature increase variability in 3 T MRI due to stochastic input data"
<p>Dataset related to simulations described in article:</p> <p>Polynomial Chaos Expansion of SAR and temperature increase variability in 3 T MRI due to stochastic input data. Article citation: Bottauscio et al 2024 <em>Phys. Med. Biol.</em> <a href="https://doi.org/10.1088/1361-6560/ad5070" target="_blank" rel="noopener">https://doi.org/10.1088/1361-6560/ad5070</a></p>
Data underpinning "Classical Chaos in Quantum Computers"
<div> <div> <div> <div> <p>We provide the data used to produce the figures shown in our publication "Classical Chaos in Quantum Computer" and a Jupyter Notebook to reproduce all figures.</p> <h3>Abstract: </h3> <div> <div> <div> <div> <p>The development of quantum computing hardware is facing the challenge that current-day quantum processors, comprising 50-100 qubits, already operate outside the range of quantum simulation on silicon computers. In this paper, we demonstrate that the simulation of classical limits can be a potent diagnostic tool potentially mitigating this problem. As a testbed for our approach, we consider the transmon qubit processor, a computing platform in which the coupling of large numbers of nonlinear quantum oscillators may trigger destabilizing chaotic resonances. We find that classical and quantum simulations lead to similar stability metrics (classical Lyapunov exponents vs. quantum wave function participation ratios) in systems with O(10) transmons. However, the big advantage of classical simulation is that it can be pushed to large systems comprising up to thousands of qubits. We exhibit the utility of this classical toolbox by simulating all current IBM transmon chips, including the recently announced 433-qubit processor of the Osprey generation, as well as future devices with 1,121 qubits (Condor generation). For realistic system parameters, we find a systematic increase of Lyapunov exponents in system size, suggesting that larger layouts require added efforts in information protection.</p> </div> </div> </div> </div> </div> </div> </div> </div>
FIGURE 5. Calliaster chaos n in New genera, species and occurrence records of Goniasteridae (Asteroidea; Echinodermata) from the Indian Ocean
FIGURE 5. Calliaster chaos n. sp. Holotype IE-2013-6998. R=9.5, r=3.4 cm. Scale bar=1.0 cm. throughout. A. Abactinal surface. B. Closeup showing spines, superomarginal side. C. Actinal surface. D. Closeup of actinal surface and inferomarginals. E. Inferomarginal plates. F. Furrow and adambulacral spines.
Influence of Feedback Phase on Time Delay Signature and Chaos Bandwidth in a Laser subject to Dual Optical Feedback
<p>This archive provides all the data and information needed to reproduce the simulation results from the paper titled "Influence of Feedback Phase on Time Delay Signature and Chaos Bandwidth in a Laser subject to Dual Optical Feedback". You can access the paper on ArXiv: https://arxiv.org/abs/2311.14449</p> <p> </p> <p> </p>
Data_Fugitive_Gas_Migration_Chao_et_al
<p>Processed data for supporting the fugitive gas research from EERI at University of British Columbia.</p>
Chaos and Predictability HW
<p>ECMWF reforecast 500hPa geopotential height (Jan 2001)</p>
FIGURE 9. Styloperla inae Chao, 1947 in The little-known larval morphology of two stoneflies of Styloperlidae (Insecta: Plecoptera) in China
FIGURE 9. Styloperla inae Chao, 1947, male larva. (A) Basal segments of cercus, lateral view. (B) Apical segments of cercus, lateral view. Scale bars, 0.1 mm.
FIGURE 7. Styloperla inae Chao, 1947 in The little-known larval morphology of two stoneflies of Styloperlidae (Insecta: Plecoptera) in China
FIGURE 7. Styloperla inae Chao, 1947, male larva. (A) Right foreleg, ventral view. (B) Right foreleg, dorsal view. (C) Right midleg, ventral view. (D) Right midleg, dorsal view. (E) Right hind leg, ventral view. (F) Right hind leg, dorsal view. (G) Details on apex of right hind leg, dorsal view. Scale bars, 0.5 mm.
FIGURE 6. Styloperla inae Chao, 1947 in The little-known larval morphology of two stoneflies of Styloperlidae (Insecta: Plecoptera) in China
FIGURE 6. Styloperla inae Chao, 1947, male larva. (A) Right mandible, ventral view. (B) Right mandible, dorsal view. (C) Left mandible, dorsal view. (D) Left mandible, ventral view. Scale bars, 0.1 mm.
FIGURE 5. Styloperla inae Chao, 1947 in The little-known larval morphology of two stoneflies of Styloperlidae (Insecta: Plecoptera) in China
FIGURE 5. Styloperla inae Chao, 1947, male larva. (A) Right maxilla, ventral view. (B) Left maxilla, dorsal view. (C) Left maxilla, dorsal view. (D) Right maxilla, dorsal view. Scale bars, 0.1 mm.
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.