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180 results for “chaos”
Data underlying submission "Tracing stream flow in confluent rivers – a journey from chaos to order"
<p>These data underly the analysis presented in the manuscript "Tracing stream flow in confluent rivers – a journey from chaos to order" by Erwin Zehe, Samuel Schroers and Hubert Savenije.</p> <p>The data used for this analysis are available were taken from the globally available the HydroSHEDS data base <em>at https://www.hydrosheds.org created by Lehner et al. (2008)</em>. The extracted data for analyzing the 18 of the largest Rivers are stored as csv files sorted by river names. The metadata are provided in "HydroSHEDS_TechDoc_v1_4.pdf" and "BasinATLAS_Catalog_v10.pdf".</p> <p>The matal codes for data analysis and simulations were tested and should be self-explaining.</p> <p> Lehner, B., Verdin, K. & Jarvis, A. New Global Hydrography Derived From Spaceborne Elevation Data. <em>Eos, Transactions American Geophysical Union</em> <strong>89</strong>, 93-94, doi:<a href="https://doi.org/10.1029/2008EO100001">https://doi.org/10.1029/2008EO100001</a> (2008).</p>
Dataset for "Binary-coupling sparse Sachdev-Ye-Kitaev model: an improved model of quantum chaos and holography"
<p>Spectral data for binary, unary and Gaussian-coupling, sparse and dense Sachdev-Ye-Kitaev model used for the publication.</p> <p>Directories are named by the number of Majorana fermions, and the coupling type (binary, Gaussian, unary) and the number of non-zero couplings are indicated in the file name.</p> <p>In each file, the computed eigenenergies are given in little-endian double-precision floating numbers, eight bytes for each eigenstate, in ascending order for each parity sector (even followed by odd) for each generated sample.</p> <p>Except for N = 32 and 34 where a single sample is given, each file contains 2^{24-(N/2)} samples, 131 072 for N = 14, 65 536 for N = 16, ..., and 512 for N = 30.</p>
Fig. 7. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–E in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 7. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–E. Keijella gonia Zhao & Whatley, 1989. A. Carapace, left lateral view, SUT-20SS-C310. B. Carapace, left lateral view, SUT-20SS-C311. C. Carapace, left lateral view, SUT-20SS-C312. D. Carapace, right lateral view, SUT- 20SS-C288. E. Carapace, right lateral view, SUT-20SS-C286. – F. Pistocythereis sp. Carapace, right lateral view, SUT-20SS-C305. –G–I. Stigmatocythere bona Chen in Hou, Chen, Yang, Ho, Zhou & Tian, 1982. G. Carapace, right lateral view, SUT-20SS-C201. H. Carapace, left lateral view, SUT-20SS-C200. I. Valve, internal view of right valve, SUT-20SS-C190. – J–O. Keijella multisulcus Whatley & Zhao, 1988. J. Valve, juvenile, right lateral view, SUT-20SS-C231. K. Valve, juvenile, internal view of right valve, SUT-20SS-C213. L. Carapace, male, left lateral view, SUT-20SS-C225. M. Carapace, female, left lateral view, SUT-20SS-C242.N. Carapace, female, left lateral view, SUT-20SS-C206. O. Carapace, female, left lateral view, SUT-20SS-C243. Scale bars = 0.1. mm.
Fig. 9 in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 9. Height and length scatter plot of Keijella multisulcus Whatley & Zhao, 1988 found at the whalefall excavation site in Samut Sakhon Province, north of the Gulf of Thailand. Scale bars = 0.1 mm.
Fig. 6. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–C in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 6. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–C. Neomonoceratina iniqua (Brady, 1868). A. Valve, male, right lateral view, SUT-20SS-C097. B. Valve, male, left lateral view, SUT- 20SS-C095. C. Valve, male, right lateral view, SUT-20SS-C093. –D–I. Neomonoceratina rhomboidei (Brady, 1968). D. Carapace, male, right lateral view, SUT-20SS-C113. E. Carapace, male, right lateral view, SUT- 20SS-C120. F. Carapace, female, right lateral view, SUT-20SS-C099. G. Carapace, female, left lateral view, SUT-20SS-C107. H. Carapace, female, dorsal view, SUT-20SS-C114. I. Sieve pores. – J. Neomonoceratina columbiformis Kingma, 1948. Carapace, left lateral view, SUT-20SS-C181. – K–N. Neomonoceratina mediterranea mediterranea (Ruggieri, 1953). K. Carapace, female, right lateral view, SUT-20SS-C167. L. Carapace, female, right lateral view, SUT-20SS-C173. M. Carapace, female, left lateral view, SUT- 20SS-C164. N. Carapace, female, dorsal view, SUT-20SS-C174. – O–T. Neomonoceratina mediterranea malayensis Zhao & Whatley, 1988. O. Carapace, male, right lateral view, SUT-20SS-C159. P. Carapace, male, left lateral view, SUT-20SS-C157. Q. Carapace, male, dorsal view, SUT-20SS-C161. R. Carapace, male, left lateral view, SUT-20SS-C152. S. Carapace, male, left lateral view, SUT-20SS-C141. T. Valve, male, internal view of left valve, SUT-20SS-C160. Scale bars = 1 mm.
Fig. 8. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–I in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 8. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–I. Keijella multisulcus Whatley & Zhao, 1988. A. Valve, juvenile, right lateral view, SUT-20SS-C254. B. Valve, female, left lateral view, SUT-20SS-C269. C. Carapace, juvenile, left lateral view, SUT-20SS-C270. D. Valve, juvenile, right lateral view, SUT-20SS-C267. E. Valve, juvenile, left lateral view, SUT-20SS-C286. F. Valve, juvenile, right lateral view, SUT-20SS-C253. G. Valve, juvenile, right lateral view, SUT- 20SS-C272. H. Valve, juvenile, left lateral view, SUT-20SS-C273. I. Valve, female, right lateral view, SUT-20SS-C257. – J–L. Ammonia tepida (Cushman, 1926), spiral side, SUT-20SS-F001. – M. Spiroloculina sp., side view, SUT-20SS-F002. – N. Quinqueloculina sp., side view, SUT-20SS-F003. – O–Q. Asterorotalia pulchella (d'Orbigny, 1839), side view, SUT-20SS-F004-6. Scale bars = 0.1 mm.
Fig. 5. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–C. Aglaiocypris pellucida Mostafawi, 2003. A in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 5. Holocene ostracods from Samut Sakhon Province, Central Thailand. A–C. Aglaiocypris pellucida Mostafawi, 2003. A. Carapace, right lateral view, SUT-20SS-C003. B. Carapace, left lateral view, SUT-20SS-C007. C. Carapace, left lateral view, SUT-20SS-C003. – D–H. Propontocypris bengalensis Maddocks, 1969. D. Carapace, left lateral view, SUT-20SS-C012. E. Carapace, left lateral view, SUT- 20SS-C020. F. Carapace, left lateral view, SUT-20SS-C014. G. Carapace, right lateral view, SUT- 20SS-C027. H. Carapace, left lateral view, SUT-20SS-C022. – I–O. Sinocytheridea impressa (Brady, 1869). I. Carapace, female, right lateral view, SUT-20SS-C063. J. Carapace, male, right lateral view, SUT-20SS-C040. K. Internal view of right valve, male, SUT-20SS-C049. L. Carapace, female, left lateral view, SUT-20SS-C071. M. Carapace, male, left lateral view, SUT-20SS-C071. N. Internal view of left valve, male, SUT-20SS-C048. O. Internal view of left valve, female, SUT-20SS-C064. Scale bars = 0.1. mm.
Fig. 4 in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 4. Distribution of Holocene ostracods below and above the whale skeleton level at the whale-fall excavation site in Samut Sakhon Province, north of Gulf of Thailand.
Fig. 3 in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 3. Lithostratigraphy of the studied section at whale-fall excavation site in Samut Sakhon Province. A. Lithologic log modified after Nuamnim et al. (2021). B. Lithologic log of the studied section (this study).
Fig. 2 in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 2. Map of the studied section. A–B. Position of the study area at the northern coast of the Gulf of Thailand. C. Location of the whale-fall excavation site in Samut Sakhon Province (Google Map, 2021).
Fig. 1 in Holocene ostracods (Crustacea) from a whale-fall excavation site from the Chao Phraya delta, Central Thailand
Fig. 1. Whale-fall excavation site, fifteen kilometers away from recent shoreline in Samut Sakhon Province, north of the Gulf of Thailand. A. First appearance of large skeletons eroded off the pit wall. B. The excavation during November–December 2020. C. Nearly complete, well preserved whale skeleton. All photos from ThaiWhales (https://www.facebook.com/thaiwhales/photos/?ref=page_internal).
Data from: Order among chaos: high throughput MYCroplanters can distinguish interacting drivers of host infection in a highly stochastic system
Open the record for dataset details and reuse information.
Emergent programmable behavior and chaos in dynamically driven active filaments
Open the record for dataset details and reuse information.
Dataset related to the publication "Nonlinear dynamics and chaos in an optomechanical beam", DOI: 10.1038/ncomms14965
<p>This folder contains the raw data from which the graphs in paper "Nonlinear dynamics and chaos in an optomechanical beam", DOI: 10.1038/ncomms14965, have been obtained</p>
Figure 2. Bird species accumulation curve and estimated richness curve obtained from the Chao 1 in Avifauna of the region of the Volta Grande Hydroelectric Power Plant in Southeast Brazil
Figure 2. Bird species accumulation curve and estimated richness curve obtained from the Chao 1 index for the study area located throughout the reservoir of the Volta Grande Hydroelectric Power Plant in Southeast Brazil. Vertical bars represent the standard deviation of the estimate.
Chaos in Inhomogeneous Neutrino Fast Flavor Instability
<p>Data from paper "Chaos in inhomogeneos fast flavor instability".</p> <p>Dense neutrino gases exhibit complex flavor oscillations due to coherent forward scattering among neutrinos. The potentially chaotic nature of these oscillations challenges the prediction of neutrino flavor transformations in simulations. By studying small flavor perturbations in a small region within a NSM and a simplified neutrino distribution, we observe chaotic paths in the flavor state space, making micro-scale neutrino flavor changes unpredictable. However, this chaos has minimal impact on the stability of the domain-averaged neutrino density matrix, indicating that despite exponential errors, domain-averaged quantities remain reliable.</p> <p>For information regarding the data read the "information.txt" files in "nsm.tar.gz" and "fiducial.tar.gz".</p>
Data and code for "Quantum chaos on edge" (matfiles, a matlab script, and figures)
<p>The data files and matlab script to generate Figure 5,7,8 of the manuscript "Quantum chaos on edge" are uploaded.</p> <ul> <li>In 'script' folder, there is a single matlab file to generate Fig 5,7,8. </li> <li>In 'raw_data' folder, there are mat-files to be processed by the script file.</li> <li>In 'figures' folder, the generated figures are included.</li> </ul>
Replication Archive for "Chaos Before Order: Productivity Patterns in U.S. Manufacturing"
<p>This archive includes the public-use data and STATA code to replicate the analyses based on the public-use data in the referenced paper.</p>
Code of "Inclusion of flood diversion canal operation in the H08 hydrological model with a case study from the Chao Phraya River basin: model development and validation"
<p>Code used to prepare a paper entitled "Inclusion of flood diversion canal operation in the H08 hydrological model with a case study from the Chao Phraya River basin: model development and validation" which was submitted to Hydrology and Earth System Sciences.</p>
Raw Experimental Data for work presented in 'Leveraging Chaos for Wave-Based Analog Computation: Demonstration with Indoor Wireless Communication Signals'
<p>This is the raw experimental data for the work presented in 'Leveraging Chaos for Wave-Based Analog Computation: Demonstration with Indoor Wireless Communication Signals', to be published in Physical Review X.</p> <p> </p> <p>https://journals.aps.org/prx/accepted/dc07aKdcFa91ea06d2949139dac733fa62ce1c02c</p> <p> </p> <p>See the README files and sample pieces of codes for an explanation of the data.</p>
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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.