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11,837 results for “Stress;”

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zenodo36/100

Heat Stress Exposure Maps - Urban Planning Scenario 2026 - 2045: Antwerp, Belgium

<p><strong>Antwerp heat stress exposure map: average number of heatwave days per year versus socio economic data - urban planning scenario (2026-2045)</strong></p> <p>Heat stress exposure maps for Antwerp representing the average number of heatwave days per year versus socio economic data per statistical unit.&nbsp; The average number of heatwave days per year has been modeled over the reference period 2026-2045 using the present land use / cover situation for the city but combined with urban planning projects information until 2030. Hence, the urban morphology has been updated accordingly.</p> <p><strong>Exposure mapping variable include:</strong><br /> * Total population 2030<br /> * Population density inhabitants per hectare 2030</p>

openother-openJul 2015View details →
zenodo36/100

Heat Stress Exposure Maps - Urban Planning Scenario 2026 - 2045: Almada, Portugal

<p><strong>Almada heat stress exposure map: average number of heatwave days per year versus socio economic data - urban planning scenario (2026-2045)</strong></p> <p>Heat stress exposure maps for the city of Almada representing the average number of heatwave days per year versus socio economic data per statistical unit.&nbsp; The average number of heatwave days per year has been modeled over the reference period 2026-2045 using the present land use / cover situation for the city but combined with urban planning projects information until 2030. Hence, the urban morphology has been updated accordingly.</p> <p>Exposure mapping variable include:<br /> * Total population 2011<br /> * Population density inhabitants per hectare 2011</p>

openother-openJul 2015View details →
zenodo36/100

Heat Stress Maps - Base Scenarios 1986-2005 / 2026 - 2045 / 2081 - 2100: Almada, Portugal

<p>Heat stress maps for the city of Almada representing<br /> * the average number of heatwave days<br /> &nbsp;&nbsp; (1986 &ndash; 2005 | 2026 &ndash; 2045 | 2081 &ndash; 2100)<br /> &nbsp; &nbsp;per statistical unit or per grid</p> <p>* The Urban Heat Island effect at 11pm per year<br /> &nbsp; &nbsp;(1986 - 2005) per statistical unit or per grid</p> <p>The heat stress parameter considered has been modelled over the reference period using the present land use / cover situation for the city.</p> <p>Please note that only the base scenario 1986-2005 has got maps with the 2 heat stress parameters:<br /> * Average number of heat wave days per year<br /> * Urban Heat Island effect at 11pm per year</p>

openother-openJul 2015View details →
zenodo36/100

Heat Stress Maps - Base Scenarios 1986-2005 / 2026 - 2045 / 2081 - 2100: Berlin, Germany

<p>Heat stress maps for Berlin representing<br /> * the average number of heatwave days<br /> &nbsp;&nbsp; (1986 &ndash; 2005 | 2026 &ndash; 2045 | 2081 &ndash; 2100)<br /> &nbsp; &nbsp;per statistical unit or per grid</p> <p>* The Urban Heat Island effect at 11pm per year<br /> &nbsp; &nbsp;(1986 - 2005) per statistical unit or per grid</p> <p>The heat stress parameter considered has been modelled over the reference period using the present land use / cover situation for the city.</p> <p>Please note that only the base scenario 1986-2005 has got maps with the 2 heat stress parameters:<br /> * Average number of heat wave days per year<br /> * Urban Heat Island effect at 11pm per year</p> <p>Scenario: Base scenario (situation LULC today)</p>

openother-openJul 2015View details →
zenodo36/100

Heat Stress Maps - Base Scenarios 1986-2005 / 2026 - 2045 / 2081 - 2100: Antwerp, Belgium

<p>Heat stress maps for Antwerp representing<br /> * the average number of heatwave days<br /> &nbsp;&nbsp; (1986 &ndash; 2005 | 2026 &ndash; 2045 | 2081 &ndash; 2100)<br /> &nbsp; &nbsp;per statistical unit or per grid</p> <p>* The Urban Heat Island effect at 11pm per year<br /> &nbsp; &nbsp;(1986 - 2005) per statistical unit or per grid</p> <p>The heat stress parameter considered has been modelled over the reference period using the present land use / cover situation for the city.</p> <p>Please note that only the base scenario 1986-2005 has got maps with the 2 heat stress parameters:<br /> * Average number of heat wave days per year<br /> * Urban Heat Island effect at 11pm per year</p>

openother-openJul 2015View details →
zenodo36/100

Heat Stress Exposure Maps - Base Scenario 1986 - 2005: Antwerp, Belgium

<p>Average number of heatwave days per year versus socio economic data - base scenario (1986-2005)</p> <p>Heat stress exposure maps for the city of Antwerp representing the average number of heatwave days per year versus socio economic data per statistical unit.&nbsp; The average number of heatwave days per year has been modelled over the reference period 1986-2005 using the present land use / cover situation for the city.</p> <p><strong>Exposure mapping variable include the following: </strong></p> <p>Total population 2014</p> <p>Population density inhabitants per hectare 2014</p> <p>Number of inhabitants aged 0 to 4 years 2014</p> <p>Number of inhabitants aged 0 to 17 years 2014</p> <p>Number of inhabitants aged 18 to 65 years 2014</p> <p>Number of inhabitants aged +65 years 2014</p> <p>Number of schools 2014</p> <p>Number of childcare centers 2014</p> <p>Number of hospitals 2014</p> <p>Number of elderly stay facilities 2014</p>

openother-openJul 2015View details →
zenodo36/100

Heat Stress Exposure Maps - Base Scenario 1986 - 2005: Berlin, Germany (Map-2 & Map-3)

<p>Heat Stress Exposure Maps - Base Scenario 1986 - 2005: Berlin, Germany</p> <p>Map-2 &amp; Map-3 (zip.file) ref. to DOI: 10.5281/zenodo.45015</p>

openother-openJul 2015View details →
zenodo36/100

Heat Stress Exposure Maps - Base Scenario 1986 - 2005: Berlin, Germany

<p><strong>Average number of heatwave days per year versus socio economic data - base scenario (1986-2005)</strong></p> <p>Heat stress exposure maps for the city of Berlin representing the average number of heatwave days per year versus socio economic data per statistical unit.&nbsp; The average number of heatwave days per year has been modelled over the reference period 1986-2005 using the present land use / cover situation for the city.</p> <p><strong>Exposure mapping variable include the following:</strong></p> <p>Total population 2013</p> <p>Population density inhabitants per hectare 2013</p> <p>Number of inhabitants aged 0 to 17 years 2013</p> <p>Number of inhabitants aged 18 to 65 years 2013</p> <p>Number of inhabitants aged +65 years 2013</p> <p>Number of schools 2014</p> <p>Number of childcare centers 2014</p> <p>Number of hospitals 2014</p> <p>Number of elderly stay facilities 2014</p>

openother-openJul 2015View details →
zenodo36/100

Developmental stress elicits preference for methamphetamine in the spontaneously hypertensive rat model of attention-deficit/hyperactivity disorder

<p>The raw data of the manuscript, &quot;Developmental stress elicits preference for methamphetamine in the spontaneously hypertensive rat model of attention-deficit/hyperactivity disorder&quot;.</p>

opencc-zeroMay 2016View details →
zenodo36/100

HREBSD data set for stress fields near deformation twins

<p>HR-EBSD measurements made on a deformed Zircaloy-2 sample.</p> <p>This data set was imported into Abaqus CAE to study the effects of reorientation and shear transfer on the load sharing of twin/parent pairs&nbsp;using a crystal plasticity model developed by Hamidreza Abdolvand. The work and further analysis of the results is described in:</p> <p>&quot;On the effects of reorientation and shear transfer during twin formation: comparison between high resolution electron backscatter diffraction experiments and a crystal plasticity finite element model&quot;,&nbsp;International Journal of Plasticity, 2016,&nbsp;doi:10.1016/j.ijplas.2016.05.006</p> <p>&nbsp;</p> <p>&nbsp;</p> <p>Other relevant papers:</p> <p>Abdolvand, H., Wilkinson, A. J., &ldquo;Assessment of Residual Stress Fields at Deformation Twin Tips and the Surrounding Environment&rdquo;, <em>Acta Materialia</em>, February 2016, Vol 105, Page 219-231, DOI: 10.1016/j.actamat.2015.11.036</p> <p>&nbsp;</p> <p>Abdolvand, H., Majkut, M., Oddershede, J., Wright, J., Daymond, M. R., &ldquo;Study of 3-D Stress Development in Parent and Twin Pairs of a Hexagonal Close-Packed Polycrystal: Part I- In situ Three-Dimensional X-ray Diffraction Measurement&rdquo;, <em>Acta Materialia</em>, July 2015, Vol 93, Page 246-255, DOI: 10.1016/j.actamat.2015.04.020</p> <p>&nbsp;</p> <p>Abdolvand, H., Majkut, M., Oddershede, J., Wright, J., Daymond, M. R., &ldquo;Study of 3-D Stress Development in Parent and Twin Pairs of a Hexagonal Close-Packed Polycrystal: Part II- Crystal Plasticity Finite Element Modeling&rdquo;, <em>Acta Materialia</em>, July 2015, Vol 93, Page 235-245, DOI: 10.1016/j.actamat.2015.04.025</p> <p>&nbsp;</p> <p>Abdolvand, H., Majkut, M., Oddershede, J., Schmidt, S., Lienert, U., Diak, B., Withers, P. J., Daymond, M. R., &ldquo;On the Deformation Twinning of MgAZ31B: a Three-Dimensional X-ray Diffraction Experiment and Crystal Plasticity Finite Element Model&rdquo;, <em>International Journal of Plasticity</em>, July 2015, Vol 70, Page 77-97,&nbsp;DOI: 10.1016/j.ijplas.2015.03.001</p> <p>&nbsp;</p> <p>Abdolvand, H., Daymond, M. R., &ldquo;Multi-Scale Modeling and Experimental Study of Twin Inception and Propagation in Hexagonal Close-Packed Materials Using a Crystal Plasticity Finite Element Approach; Part I: Average Behavior&rdquo;, <em>Journal of The Mechanics and Physics of Solids</em>, 2013, Vol 61 (3), Page 783-802,&nbsp;10.1016/j.jmps.2012.10.013</p> <p>&nbsp;</p> <p>Abdolvand, H., Daymond, M. R., &ldquo;Multi-Scale Modeling and Experimental Study of Twin Inception and Propagation in Hexagonal Close-Packed Materials Using a Crystal Plasticity Finite Element Approach; Part II: Local Behavior&rdquo;, <em>Journal of The Mechanics and Physics of Solids</em>, 2013, Vol 61 (3), Page 803-818, DOI: 10.1016/j.jmps.2012.10.017</p> <p>&nbsp;</p> <p>Abdolvand, H., Daymond, M. R., Mareau, C., &ldquo;Incorporation of Twinning into a Crystal Plasticity Finite Element Model: Evolution of Lattice Strains and Texture in Zircaloy-2&rdquo; <em>International Journal of Plasticity</em>, 2011, Vol 27 (11), Page 1721-1738. DOI:10.1016/j.ijplas.2011.04.005</p> <p>&nbsp;</p> <p>&nbsp;</p>

opencc-zeroMay 2016View details →
zenodo36/100

Bug in CCFD stress profile calculation of GROMACS-LS?

<p>In Martini simulations (15 us, last 5 us analyzed) of an asymmetric GM1+POPC lipid bilayer (5+95 upper, 0+100 lower leaflet)&nbsp;strong stress fluctuations arising from the dihedral contributions of CCF decomposition are found. It is&nbsp;possible&nbsp;that these are due to a slight&nbsp;bug in the GROMACS-LS (http://mdstress.org) code, because:</p> <p>1) The fluctuations do not show converge, when more data is added, see the attached plot &lsquo;effect_of_sampling_rate.pdf&rsquo;.</p> <p>2) The fluctuations (but no other features of the stress profiles) visibly depend on the chosen frame of reference, see &lsquo;effect_of_centering_schemes.pdf&rsquo;.</p> <p>3) The stress profiles calculated along the coordinates that lay in the membrane plane (x and y), are not constant in CCFD, see &lsquo;profiles_along_x_and_y.pdf&rsquo;.</p> <p>&nbsp;</p> <p>To assist debugging the code, this repository contains:</p> <p><strong>5to95_0to100_0.trr</strong> ---&nbsp;1st 33.3% of a&nbsp;5 us trajectory with snapshots every 100 ps<br> <strong>5to95_0to100_0.trr</strong> ---&nbsp;2nd&nbsp;33.3% of a&nbsp;5 us trajectory with snapshots every 100 ps<br> <strong>5to95_0to100_0.trr</strong> --- 3rd&nbsp;33.3% of a&nbsp;5 us trajectory with snapshots every 100 ps</p> <p><strong>5to95_0to100.tpr</strong> --- tpr used for production (Gromacs 5.1.1)<br> <strong>5to95_0to100_rerun.tpr</strong> --- tpr used for stress analysis and centering</p> <p><strong>5to95_0to100.gro</strong> --- gro file after 15 us (10 us relaxation, 5 us production)</p> <p><strong>index.ndx</strong> --- index file used in production<br> <strong>5to95_0to100.ndx</strong> --- index file used in analysis</p> <p><strong>system.top</strong> --- topology file<br> <strong>martini_v2.0_ions.itp</strong> --- martini FF file (system.top expects this to be in folder toppar/)<br> <strong>martini_v2.0_lipids_all_201506.itp</strong> --- martini FF file (system.top expects this to be in folder toppar/)<br> <strong>martini_v2.2.itp</strong> --- martini FF file (system.top expects this to be in folder toppar/)</p> <p><strong>martini_straight_GM1_saveVels.mdp</strong> --- run input file used for production (Gromacs 5.1.1)<br> <strong>martini_straight_GM1_rerunForP.mdp</strong> --- run input&nbsp;file used for analysis and centering</p> <p><strong>effect_of_sampling_rate.pdf</strong>&nbsp;--- plot of results&nbsp;showing that&nbsp;fluctuations in CCFD do not appear to converge when data is added<br> <strong>profiles_along_x_and_y.pdf</strong> ---&nbsp;plot of results showing that&nbsp;in CCFD pressure profiles along the membrane directions are not constant<br> <strong>effect_of_centering_schemes.pdf</strong>&nbsp;---&nbsp;plot of results showing that&nbsp;choice of center of mass (here three possibilities are shown: CoM of POPC GL1 beads,&nbsp;CoM of POPCs, and CoM of all lipids)&nbsp;visibly&nbsp;affects CCFD fluctuations, but not other features of the stress profile<br> <strong>effect_of_centering_schemes_2.pdf</strong>&nbsp;---&nbsp;plot of results (similar to&nbsp;&#39;effect_of_centering_schemes.pdf&#39;, but the center of the bilayer is at 3.7 nm instead at 0.0 /&nbsp;7.4 nm)<br> <strong>individual_components.pdf</strong>&nbsp;---&nbsp;plot of results showing that the fluctuations in CCFD arise from dihedrals<br> <strong>CCFD_gridsize.pdf</strong>&nbsp;---&nbsp;plot of results showing that decreasing gridsize has no clear effect on the CCFD fluctuations</p>

opencc-by-4.0Jun 2016View details →
zenodo36/100

Airchive stress test cumulative results

<p>These are the cumulative stress test results for experiment 2, as exported by Locust. Five repetitions for each test. The links on which HTTP GET requests were submitted are:</p> <ul> <li>Test 1: http://airchive.logismi.co/</li> <li>Test 2: http://airchive.logismi.co/getdata/?quantity=Pressure&amp;fromtime=2016-11-04 22:08:00&amp;totime=2016-11-04 22:14:51&amp;sensor=DigitalPressure&amp;station=AiRCHIVE&amp;filter=none&amp;format=flot</li> <li>Test 3: http://airchive.logismi.co/SOS/?request=GetObservation&amp;observedProperty=Pressure&amp;eventTime=2016-11-04 22:07:39/2016-11-04 22:14:51&amp;offering=urn:offering:AiRCHIVE&amp;procedure=DigitalPressure</li> </ul> <p>Locust configuration file utilized for the stress test can be found on: http://doi.org/10.5281/zenodo.167326</p>

opencc-by-4.0Nov 2016View details →
zenodo36/100

ROS-specific Huntingtin Interactions: Oxidative Stress Optimization H2O2

<p>Optimization step in the lead up to mass spec identification of ROS-specific huntingtin protein-protein interactions.</p>

opencc-by-4.0Aug 2017View details →
zenodo36/100

Unraveling the Connection between Subsurface Stress and Geomorphic Features: Dataset

<p>This repository stores data using for the manuscript: <strong>Unraveling the Connection between Subsurface Stress and Geomorphic Features</strong></p> <p>The data file used in this study is <strong>'Input_stress_fault_river_BK_091525.csv'</strong>.</p> <p>The code used to reproduce all figures in the manuscript is <strong>'Kuhasubpasin_et_al_2025.ipynb'</strong></p> <p>The file contain these following data:</p> <table style="width: 77.6938%; height: 1881px;"> <thead> <tr style="height: 19.5938px;"> <th style="width: 13.2765%; height: 19.5938px;">Column</th> <th style="width: 7.79537%; height: 19.5938px;">unit</th> <th style="width: 13.6419%; height: 19.5938px;">range</th> <th style="width: 65.2862%; height: 19.5938px;">description</th> </tr> </thead> <tbody> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">lat</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(-90, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">Latitude</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">lon</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(-180, 180)</td> <td style="width: 65.2862%; height: 19.5938px;">Longitude</td> </tr> <tr style="height: 39.1875px;"> <td style="width: 13.2765%; height: 39.1875px;">azi_R</td> <td style="width: 7.79537%; height: 39.1875px;">degree</td> <td style="width: 13.6419%; height: 39.1875px;">(0, 180)*</td> <td style="width: 65.2862%; height: 39.1875px;">Interpolated azimuth of river network (interpolate without considering river order)</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_r1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 1'-order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_r2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 2'-order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_r3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 3'-order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_r4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 4'-order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_r5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 5'-order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">Drainage_area</td> <td style="width: 7.79537%; height: 19.5938px;">cell</td> <td style="width: 13.6419%; height: 19.5938px;">-</td> <td style="width: 65.2862%; height: 19.5938px;">Drainage area</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">river_order</td> <td style="width: 7.79537%; height: 19.5938px;">order</td> <td style="width: 13.6419%; height: 19.5938px;">(1, 7)</td> <td style="width: 65.2862%; height: 19.5938px;">Majority of the order river in grid cell</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">elev</td> <td style="width: 7.79537%; height: 19.5938px;">km</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 5.1375)</td> <td style="width: 65.2862%; height: 19.5938px;">Elevation</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">TcstDens</td> <td style="width: 7.79537%; height: 19.5938px;">g/cm^3</td> <td style="width: 13.6419%; height: 19.5938px;">(2.7439,2.962)</td> <td style="width: 65.2862%; height: 19.5938px;">Average crustal density from CRUST 1.0</td> </tr> <tr style="height: 39.1875px;"> <td style="width: 13.2765%; height: 39.1875px;">TcstThk</td> <td style="width: 7.79537%; height: 39.1875px;">km</td> <td style="width: 13.6419%; height: 39.1875px;">(5.0731 73.517)</td> <td style="width: 65.2862%; height: 39.1875px;">Total crustal thickness from CRUST 1.0</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">crust_type</td> <td style="width: 7.79537%; height: 19.5938px;">&nbsp;</td> <td style="width: 13.6419%; height: 19.5938px;">&nbsp;</td> <td style="width: 65.2862%; height: 19.5938px;">Crustal type from ECM1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">Te</td> <td style="width: 7.79537%; height: 19.5938px;">km</td> <td style="width: 13.6419%; height: 19.5938px;">(1,200)</td> <td style="width: 65.2862%; height: 19.5938px;">Effective elastic thickness</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">MI</td> <td style="width: 7.79537%; height: 19.5938px;">-</td> <td style="width: 13.6419%; height: 19.5938px;">(-1,1)</td> <td style="width: 65.2862%; height: 19.5938px;">Mantle influence index</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_Z</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Topographic aspect</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_F</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of faults</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">reg_F</td> <td style="width: 7.79537%; height: 19.5938px;">-</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 1)</td> <td style="width: 65.2862%; height: 19.5938px;">Regime of F</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SO</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of feature 𝜎𝑂 from WSM</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">reg_SO</td> <td style="width: 7.79537%; height: 19.5938px;">-</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 1)</td> <td style="width: 65.2862%; height: 19.5938px;">Regime of 𝜎𝑂</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SO_010</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 𝜎𝑂 measured between 0-10 km</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SO_1020</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 𝜎𝑂 measured between 10-20 km</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SO_2030</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 𝜎𝑂 measured between 20-30 km</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SO_3040</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 𝜎𝑂 measured between 30-40 km</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SO_nofm</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 𝜎𝑂 measured from focal mechanism</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SO_fm</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 𝜎𝑂 measured from other techniques</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SL</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of 𝜎𝐿</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">reg_SL</td> <td style="width: 7.79537%; height: 19.5938px;">-</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 1)</td> <td style="width: 65.2862%; height: 19.5938px;">Regime of 𝜎𝐿</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">sp1_SL</td> <td style="width: 7.79537%; height: 19.5938px;">Pa</td> <td style="width: 13.6419%; height: 19.5938px;">-</td> <td style="width: 65.2862%; height: 19.5938px;">Magnitude of principal stress 1 for 𝜎𝐿</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">sp2_SL</td> <td style="width: 7.79537%; height: 19.5938px;">Pa</td> <td style="width: 13.6419%; height: 19.5938px;">-</td> <td style="width: 65.2862%; height: 19.5938px;">Magnitude of principal stress 2 for 𝜎𝐿</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SM</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of feature 𝜎𝑀</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">reg_SM</td> <td style="width: 7.79537%; height: 19.5938px;">-</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 1)</td> <td style="width: 65.2862%; height: 19.5938px;">Regime of 𝜎𝑀</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">sp1_SM</td> <td style="width: 7.79537%; height: 19.5938px;">Pa</td> <td style="width: 13.6419%; height: 19.5938px;">-</td> <td style="width: 65.2862%; height: 19.5938px;">Magnitude of principal stress 1 for 𝜎𝑀</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">sp2_SM</td> <td style="width: 7.79537%; height: 19.5938px;">Pa</td> <td style="width: 13.6419%; height: 19.5938px;">-</td> <td style="width: 65.2862%; height: 19.5938px;">Magnitude of principal stress 2 for 𝜎𝑀</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_ST</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of feature 𝜎𝑇</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">reg_ST</td> <td style="width: 7.79537%; height: 19.5938px;">-</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 1)</td> <td style="width: 65.2862%; height: 19.5938px;">Regime of 𝜎𝑇</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">sp1_ST</td> <td style="width: 7.79537%; height: 19.5938px;">Pa</td> <td style="width: 13.6419%; height: 19.5938px;">-</td> <td style="width: 65.2862%; height: 19.5938px;">Magnitude of principal stress 1 for 𝜎𝑇</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">sp2_ST</td> <td style="width: 7.79537%; height: 19.5938px;">Pa</td> <td style="width: 13.6419%; height: 19.5938px;">-</td> <td style="width: 65.2862%; height: 19.5938px;">Magnitude of principal stress 2 for 𝜎𝑇</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">azi_SB</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 180)*</td> <td style="width: 65.2862%; height: 19.5938px;">Interpolated azimuth of feature 𝜎𝐵</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_F</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝐹</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_F</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝐹</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_F</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝐹</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_F</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝐹</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_F</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝐹</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_R1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝑅1 :1' order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_R1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝑅1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_R1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝑅1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_R1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝑅1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_R1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝑅1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_F_R1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝐹&minus;𝑅1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_R2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝑅2 :2' order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_R2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝑅2</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_R2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝑅2</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_R2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝑅2</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_R2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝑅2</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_F_R2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝐹&minus;𝑅2</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_R3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝑅3 :3' order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_R3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝑅3</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_R3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝑅3</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_R3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝑅3</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_R3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝑅3</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_F_R3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝐹&minus;𝑅3</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_R4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝑅4 :4' order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_R4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝑅4</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_R4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝑅4</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_R4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝑅4</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_R4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝑅4</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_F_R4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝐹&minus;𝑅4</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_R5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝑅5 :5' order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_R5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝑅5</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_R5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝑅5</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_R5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝑅5</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_R5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝑅5</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_F_R5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝐹&minus;𝑅5</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_R&gt;1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝑅&gt;1 :&gt;1' order river</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_R&gt;1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝑅&gt;1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_R&gt;1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝑅&gt;1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_R&gt;1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝑅&gt;1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_R&gt;1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝑅&gt;1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_F_R&gt;1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝐹&minus;𝑅&gt;1</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SO_Z</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑂&minus;𝑍</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SL_Z</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐿&minus;𝑍</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SM_Z</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑀&minus;𝑍</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_ST_Z</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝑇&minus;𝑍</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_SB_Z</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝜎𝐵&minus;𝑍</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_F_Z</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;">&Delta;𝐹&minus;𝑍</td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_Z_R1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;"><span><span><span><span>&Delta;</span><span>𝑍</span><span>&minus;</span><span>𝑅</span><span>1</span></span></span></span><span>&nbsp;:1' order river</span></td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_Z_R2</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;"><span><span><span><span>&Delta;</span><span>𝑍</span><span>&minus;</span><span>𝑅</span><span>2</span></span></span></span><span>&nbsp;:2' order river</span></td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_Z_R3</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;"><span><span><span><span>&Delta;</span><span>𝑍</span><span>&minus;</span><span>𝑅</span><span>3</span></span></span></span><span>&nbsp;:3' order river</span></td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_Z_R4</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;"><span><span><span><span>&Delta;</span><span>𝑍</span><span>&minus;</span><span>𝑅</span><span>4</span></span></span></span><span>&nbsp;:4' order river</span></td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_Z_R5</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;"><span><span><span><span>&Delta;</span><span>𝑍</span><span>&minus;</span><span>𝑅</span><span>5</span></span></span></span><span>&nbsp;:5' order river</span></td> </tr> <tr style="height: 19.5938px;"> <td style="width: 13.2765%; height: 19.5938px;">delta_Z_R&gt;1</td> <td style="width: 7.79537%; height: 19.5938px;">degree</td> <td style="width: 13.6419%; height: 19.5938px;">(0, 90)</td> <td style="width: 65.2862%; height: 19.5938px;"> <p><span><span><span><span>&Delta;</span><span>𝑍</span><span>&minus;</span><span>𝑅</span><span>&gt;</span><span>1</span></span></span></span><span>&nbsp;:&gt;1' order river</span></p> </td> </tr> </tbody> </table> <p>*The range is not (0,360) because we only consider azimuth not direction</p>

opencc-by-4.0Jul 2024View details →
dryad36/100

The effects of water-stress, temperature, and plant traits on the outbreak potential of a specialist and generalist spider mite species (Acari: Tetranychidae)

<p>The host-generalist two-spotted spider mite [<em>Tetranychus</em> <em>urticae</em> (Acari: Tetranychidae); TSM] and host-specialist Banks grass mite [<em>Oligonychus</em> <em>pratensis</em> (Acari: Tetranychidae); BGM] are common pests of corn (<em>Zea</em> <em>mays</em> L.) in the arid western United States. Climate warming and decreased precipitation may promote conditions favored by these spider mites. However, rapid evolution of spider mite resistance to commercially available acaricides is driving the need for alternative solutions for managing outbreaks. Planting of drought-tolerant corn hybrids has been proposed to be a dual-purpose strategy for mitigating water deficits for irrigation and reducing leaf conditions favorable for BGM outbreaks. However, understanding of the mechanisms responsible for reducing the BGM in the field is lacking, and determining whether outbreaks of the TSM can also be averted using drought-tolerant corn is a pressing concern. We conducted a two-year field study testing a drought-tolerant corn hybrid and an analogous drought-susceptible hybrid under water-stress with artificially-infested spider mite populations. Drought-tolerant corn had larger stem diameter, more massive cobs, and greater leaf water mass compared to the drought-susceptible corn under water stress. We also found that the BGM populations were reduced on drought-tolerant plants under water-stress, as expected, but we found an opposite trend in the TSM. Lastly, water-stressed leaves were warmer, transpired less, and had higher carbon concentration, which contributed to larger investment in eggs and growth in the BGM. We anticipate that further evaluation of irrigation and crop drought-tolerance in management of agriculture systems for multiple pest species will be increasingly impactful in arid regions.</p>

opencc-zeroOct 2023View details →
dryad36/100

Data from: A pioneering experimental investigation of a novel in-situ dynamic characterization of the tensile/compression stress-strain mechanism on human plantar soft tissue

<p><span>We have conducted the first in-situ and in-vivo dynamic mechanical test on human plantar soft tissue. A dynamic mechanical analysis (DMA)-like device has been invented to perform the in-situ and in-vivo stress-strain tests on living plantar in order to characterize the material mechanism of biological soft tissue, whereas it is nearly impossible to prepare a sample from a living body for classical tests. A series of pioneering tests of tensile/compression on the heel of ten volunteers are reported, with the reference of tests on mimic foot model made by silicon rubber, standard silicon rubber brick sample, and finite elementary analysis. In addition to demonstrating the effectiveness of the device and approach, interesting correlations between the results and clinic data were found, suggesting considerable potential for the invention in future research.</span></p>

opencc-zeroNov 2023View details →
zenodo36/100

Prometheus stress testing data from the microservices-demo "sockshop" application

<p>Stress testing done with Locust, stressing the various microservice API endpoints available from the sockshop microservices demo found in https://microservices-demo.github.io/&nbsp;</p><p>Part of &nbsp;a master's thesis project</p>

opencc-by-4.0Nov 2023View details →
zenodo36/100

Slow slip as an indicator of fault stress criticality

<p>This dataset contains simulated data used in Lambert (submitted): Slow slip as an indicator of fault stress criticality.</p>

opencc-by-4.0Nov 2023View details →
zenodo36/100

Rheological structure and lithospheric stress interaction in the Alaska subduction zone gleaned from the 2018 Mw 7.9 oceanic crustal earthquake

<p>This&nbsp;repository contains the observed and modeled first 2-year timeseries of postseismic deformation at GPS sites in the best-fit model associated with the 2018 Mw 7.9 Kodiak, Alaska earthquake (Timeseries.rar), as well as the preferred afterslip on the fault (Afterslip.rar).</p>

opencc-by-4.0Nov 2023View details →
zenodo36/100

Regulation of stress-induced sleep fragmentation by preoptic glutamatergic neurons

<p>Paper source data and original code. Please use The Script Information.txt file for information on which scripts were used to generate which figures.</p>

opencc-by-4.0Nov 2023View details →

ScienceDex guides

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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.

Compare curated 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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record