4,157 results on '"Reed, D."'
Search Results
252. Repair of Spontaneous Left Atrial Dissection Resulting in Severe Paravalvular Native Mitral Valve Regurgitation
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Eldridge, Tayler B., primary, Shah, Jay N., additional, Poltak, Justin, additional, Powers, James B., additional, Quinn, Reed D., additional, Diaz, Marco N., additional, and Robich, Michael P., additional
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- 2020
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253. Modeling Muscle Synergies as a Gaussian Process: Estimating Unmeasured Muscle Excitations using a Measured Subset
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Gurchiek, Reed D., primary, Ursiny, Anna T., additional, and McGinnis, Ryan S., additional
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- 2020
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254. ARDS and Non-Pulmonary Organ Failure Are Common in Alcoholic Leukopenic Pneumococcal Sepsis (ALPS): A Propensity Matched Analysis
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Douglas, I.S., primary, Reed, D., additional, Rosenthal, C.A., additional, Hiller, T., additional, and Gray, K., additional
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- 2020
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255. Measuring Resident Physiciansʼ reflections on Quality Improvement Opportunities: Temporal Stability and Associations with Preventability and Specialty Choice: 20
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Wittich, C, Reed, D, Drefahl, M, McDonald, F, Halvorsen, A, and Beckman, T
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- 2010
256. An increasing proportion of patients achieve a low disease activity state or remission when switched from infliximab to abatacept regardless of initial infliximab treatment response: results from the ATTEST trial: 0840
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Schiff, M, Keiserman, M, Moniz-Reed, D, Le Bars, M, Becker, J C, Zhao, C, and Dougados, M
- Published
- 2010
257. THE SURGICAL MANAGEMENT OF HOFFAʼS FAT PAD TUMOURS
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Dean, B JF, Matthews, J J, Reed, D W, Pandit, H, McNally, E, Athanasou, N, and Gibbons, C MLH
- Published
- 2010
258. A Thermal Evolution Study of the Interaction of Helium with Nickel
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Reed, D. J.
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530.412 - Published
- 1976
259. Suspended sediment transport in salt marsh creeks
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Reed, D. J.
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551.48 ,Hydrology & limnology - Published
- 1985
260. Mechanistic studies of sterically-hindered organosilicon compounds
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Reed, D. E.
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547 ,Organic chemistry - Published
- 1982
261. Deterministic Modelling of Catchment Systems
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Reed, D. W.
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551.4 - Published
- 1976
262. Does Use of Bilateral Internal Mammary Artery Grafting Reduce Long-Term Risk of Repeat Coronary Revascularization?
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Reed D. Quinn, Anthony W. DiScipio, David J. Malenka, Gerald L. Sardella, John D. Klemperer, Benjamin M. Westbrook, Paul W. Weldner, Alexander Iribarne, Joseph D. Schmoker, Jock N. McCullough, Joseph P. DeSimone, Bruce J. Leavitt, Elaine M. Olmstead, and Robert S. Kramer
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medicine.medical_specialty ,Percutaneous ,business.industry ,medicine.medical_treatment ,Hazard ratio ,Percutaneous coronary intervention ,Retrospective cohort study ,030204 cardiovascular system & hematology ,Surgery ,03 medical and health sciences ,0302 clinical medicine ,medicine.anatomical_structure ,Physiology (medical) ,Internal medicine ,Cardiology ,Medicine ,030212 general & internal medicine ,Circumflex ,Cardiology and Cardiovascular Medicine ,business ,Survival rate ,Body mass index ,Artery - Abstract
Background: Although previous studies have demonstrated that patients receiving bilateral internal mammary artery (BIMA) conduits during coronary artery bypass grafting have better long-term survival than those receiving a single internal mammary artery (SIMA), data on risk of repeat revascularization are more limited. In this analysis, we compare the timing, frequency, and type of repeat coronary revascularization among patients receiving BIMA and SIMA. Methods: We conducted a multicenter, retrospective analysis of 47 984 consecutive coronary artery bypass grafting surgeries performed from 1992 to 2014 among 7 medical centers reporting to a prospectively maintained clinical registry. Among the study population, 1482 coronary artery bypass grafting surgeries with BIMA were identified, and 1297 patients receiving BIMA were propensity-matched to 1297 patients receiving SIMA. The primary end point was freedom from repeat coronary revascularization. Results: The median duration of follow-up was 13.2 (IQR, 7.4–17.7) years. Patients were well matched by age, body mass index, major comorbidities, and cardiac function. There was a higher freedom from repeat revascularization among patients receiving BIMA than among patients receiving SIMA (hazard ratio [HR], 0.78 [95% CI, 0.65–0.94]; P =0.009). Among the matched cohort, 19.4% (n=252) of patients receiving SIMA underwent repeat revascularization, whereas this frequency was 15.1% (n=196) among patients receiving BIMA ( P =0.004). The majority of repeat revascularization procedures were percutaneous coronary interventions (94.2%), and this did not differ between groups ( P =0.274). Groups also did not differ in the ratio of native versus graft vessel percutaneous coronary intervention ( P =0.899), or regarding percutaneous coronary intervention target vessels; the most common targets in both groups were the right coronary ( P =0.133) and circumflex arteries ( P =0.093). In comparison with SIMA, BIMA grafting was associated with a reduction in all-cause mortality at 12 years of follow-up (HR, 0.79 [95% CI, 0.69–0.91]; P =0.001), and there was no difference in in-hospital morbidity. Conclusions: BIMA grafting was associated with a reduced risk of repeat revascularization and an improvement in long-term survival and should be considered more frequently during coronary artery bypass grafting.
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- 2017
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263. The use of a single inertial sensor to estimate 3-dimensional ground reaction force during accelerative running tasks
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Herman van Werkhoven, Alan R. Needle, Jeffrey M. McBride, Reed D. Gurchiek, and Ryan S. McGinnis
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Adult ,Male ,Mean squared error ,Correlation coefficient ,Posture ,Biomedical Engineering ,Biophysics ,Magnitude (mathematics) ,Accelerometer ,Running ,Young Adult ,03 medical and health sciences ,0302 clinical medicine ,Inertial measurement unit ,Orientation (geometry) ,Accelerometry ,medicine ,Humans ,Orthopedics and Sports Medicine ,Ground reaction force ,Mathematics ,Rehabilitation ,030229 sport sciences ,Geodesy ,Sagittal plane ,Biomechanical Phenomena ,medicine.anatomical_structure ,Female ,Algorithms ,030217 neurology & neurosurgery - Abstract
The purpose of this investigation was to determine the feasibility of using a single inertial measurement unit (IMU) placed on the sacrum to estimate 3-dimensional ground reaction force (F) during linear acceleration and change of direction tasks. Force plate measurements of F and estimates from the proposed IMU method were collected while subjects (n=15) performed a standing sprint start (SS) and a 45° change of direction task (COD). Error in the IMU estimate of step-averaged component and resultant F was quantified by comparison to estimates from the force plate using Bland-Altman 95% limits of agreement (LOA), root mean square error (RMSE), Pearson's product-moment correlation coefficient (r), and the effect size (ES) of the differences between the two systems. RMSE of the IMU estimate of step-average F ranged from 37.70 N to 77.05 N with ES between 0.04 and 0.47 for SS while for COD, RMSE was between 54.19 N to 182.92 N with ES between 0.08 and 1.69. Correlation coefficients between the IMU and force plate measurements were significant (p≤0.05) for all values (r=0.53 to 0.95) except the medio-lateral component of step-average F. The average angular error in the IMU estimate of the orientation of step-average F was ≤10° for all tasks. The results of this study suggest the proposed IMU method may be used to estimate sagittal plane components and magnitude of step-average F during a linear standing sprint start as well as the vertical component and magnitude of step-average F during a 45° change of direction task.
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- 2017
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264. Perioperative Stroke and Long-Term Survival After Coronary Bypass Graft Surgery
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Dacey, Lawrence J., Likosky, Donald S., Leavitt, Bruce J., Lahey, Stephen J., Quinn, Reed D., Hernandez, Felix, Jr, Quinton, Hebe B., Desimone, Joseph P., Ross, Cathy S., and O'Connor, Gerald T.
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- 2005
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265. Interaction of Np(v) with borate in alkaline, dilute-to-concentrated, NaCl and MgCl₂ solutions
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Hinz, K., Fellhauer, D., Gaona, X., Vespa, M., Dardenne, K., Schild, D., Yokosawa, T., Silver, M. A., Reed, D. T., Albrecht-Schmitt, T. E., Altmaier, M., and Geckeis, H.
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Technology ,ddc:600 - Published
- 2020
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266. Archaeological Building Recording of two Outbuildings to the rear of Longhoughton Hall, Longhoughton, Northumberland, April 2020
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Reed, D.
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Archaeology ,Grey Literature - Abstract
Archaeological Building Recording of two former stable block before conversion to holiday lets
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- 2020
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267. Calcium taste preferences: genetic analysis and genome screen of C57BL/6J × PWK/PhJ hybrid mice
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Tordoff, M. G., Reed, D. R., and Shao, H.
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- 2008
268. Blood naltrexone levels over time following naltrexone implant☆
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Ngo, H. T.T., Arnold-Reed, D. E., Hansson, R. C., Tait, R. J., and Hulse, G. K.
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- 2008
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269. Kinematic and kinetic comparison between American and Japanese collegiate pitchers
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Walter A. Laughlin, Caitlin P. Owen, Reed D. Gurchiek, Micheal J. Luera, Brittany Dowling, Glenn S. Fleisig, and Benjamin R. Hansen
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Ball velocity ,Male ,medicine.medical_specialty ,Shoulder ,Knee flexion ,Acceleration ,Physical Therapy, Sports Therapy and Rehabilitation ,Kinematics ,Baseball ,Upper Extremity ,03 medical and health sciences ,Young Adult ,0302 clinical medicine ,Physical medicine and rehabilitation ,Japan ,Risk Factors ,medicine ,Elbow ,Humans ,Orthopedics and Sports Medicine ,Knee ,030212 general & internal medicine ,Ball release ,biology ,Athletes ,Body Weight ,Torso ,030229 sport sciences ,biology.organism_classification ,Body Height ,United States ,Biomechanical Phenomena ,Kinetics ,Increased risk ,Motor Skills ,Time and Motion Studies ,Arm ,Psychology ,Throwing ,Physical Conditioning, Human - Abstract
Objectives Understanding the differences in baseball pitching biomechanics between American and Japanese pitchers may help with training and developing these athletes. The purpose of this study was to investigate the kinematic and kinetic differences in collegiate baseball pitchers from United States of American and Japan. Design Controlled laboratory study. Methods Data were analyzed for 11 American and 11 Japanese collegiate pitchers throwing fastballs using 3D motion capture (480 Hz). Results The Americans were heavier (95 ± 7 kg vs 81 ± 7 kg), taller (189 ± 3 cm vs 180 ± 6 cm), and had faster ball velocity (39 ± 1 m/s vs 35 ± 2 m/s). By the end of arm cocking phase, the American pitchers had rotated their shoulder to a greater degree (p = 0.021, d = 1.5) and at ball release the Japanese had greater knee flexion (p = 0.020, d = 1.2). American pitchers exhibited greater peak kinetics on the throwing arm; however, when normalized for height and weight only three differences remained. Conclusion The differences found between the American and Japanese players could contribute to the increased ball velocity in the American pitchers. Additionally, throwing arm peak kinetics were greater in the American pitchers which may help generate greater ball velocity; however, increased kinetics may also lead to increased risk of injury.
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- 2019
270. Reviewing Reservoir Operations: Can Federal Water Projects Adapt to Change?
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Benson, Reed D.
- Abstract
The Army Corps of Engineers and the Bureau of Reclamation spent much of the twentieth century building large dams that dramatically altered the nation’s rivers. The “big dam era” of federal water policy may have ended decades ago, but the dams that went up in that era are still in place today. These dams form reservoirs that provide a range of benefits including water supply, flood control, and hydropower, and whatever the arguments in favor of taking out some specific ones, few if any major federal dams will be removed anytime soon. Yet each existing dam faces an important question about its future: should it be operated differently than it is now? Every reservoir stores and releases water to serve specific purposes, and an operating plan directs the timing and rate of storage and releases from a particular reservoir. Many federal water projects—dams, reservoirs and associated facilities—have operating plans that are decades old, because the projects were built at least forty years ago and their plans have not been significantly revised since they were fairly new. The Corps and the Bureau, along with existing project beneficiaries, might argue that projects continue to perform just fine under the existing operating plans, and “if it ain’t broke, don’t fix it.” But there are good reasons for the agencies to revisit the old plans, because their reservoirs operate in such a dramatically changing context. First, the area served and affected by a federal water project may have changed greatly since the project was built. Second, the legal and policy context has evolved significantly since the Corps and Bureau built most of their projects. Third, science has advanced significantly, providing better understanding of the positive and negative effects of dam operating practices on the downstream environment. Fourth, climate change has serious implications for dam operating plans. Even before climate change became a front-burner issue in water management, water policy experts were calling for review of water project operations. The Corps and the Bureau, however, rarely revise the operating plans for their dams. Although each agency has its own policies and practices in this regard, neither has a regular program of updating and revising the operating plans for all the dams it manages, and with certain exceptions neither has been eager to revisit the operating plan for a specific dam. Thus, the agencies continue to store and release water from their dams more or less as they have for decades, never officially considering—or providing an opportunity for others to propose—potential changes that could be beneficial. Because of this operational inertia, the Corps and the Bureau are missing an opportunity to adapt their water projects to changes that have already occurred and to prepare for future challenges, especially those posed by climate change. This Article begins by reviewing the purposes for federal water projects, and identifies some of the trade-offs involved in operating projects for certain purposes. It then addresses the legal factors that determine or influence project operations, beginning with project authorizing statutes and ending with federal environmental laws. The Article examines Corps and Bureau policies regarding project operating plans, the reasons for agency reluctance to review and revise their plans, and some of the factors that prompt the agencies to proceed with reviews. It then summarizes periodic review requirements in two analogous contexts—federal land management plans, and hydropower project licenses—and considers the potential significance of these requirements for federal water projects. Finally, the Article examines what the Corps and the Bureau, along with the courts and Congress, are already doing on this issue, and what more they could do to ensure that project operating plans are reviewed and revised. It concludes with some brief observations about why the agencies should proceed with such reviews., Columbia Journal of Environmental Law, Vol. 42 No. 2 (2017): Volume 42.2
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- 2019
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271. Abstract 154: Human Highly Proliferative Cells Acquire Endothelial Phenotype and Promote Healing After Experimental Myocardial Infarction
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Calvin P.H. Vary, Sergey Ryzhov, Michael P. Robich, Douglas B. Sawyer, Robert S. Kramer, Reed D. Quinn, and Haifeng Yin
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Cell type ,Physiology ,Angiogenesis ,business.industry ,Mesenchymal stem cell ,Infarction ,medicine.disease ,Phenotype ,Cell therapy ,medicine ,Cancer research ,Myocardial infarction ,Cardiology and Cardiovascular Medicine ,business - Abstract
Introduction: The human adult heart contains a subset of mesenchymal cells characterized by high proliferative potential and capability to differentiate into different cell types. We recently demonstrated that a high level of ErbB2 expression is associated with differentiation of human highly proliferative cells (hHiPC) into endothelial cells in vitro. Based on our findings, we hypothesized that ErbB2 high hHiPC play a critical role in early revascularization and repair of injured heart. To test this hypothesis, we performed xenotransplantation of human ERBB2 high hHiPC into mouse hearts and analyzed the phenotype of transplanted cells and cardiac function on day 7 after experimental myocardial infarction (MI). Methods: The effect of ErbB2 high hHiPC was tested in immunodeficient NSG mice. MI was induced by permanent ligation of the left coronary artery. Human ERBB2 high hHiPC (2.5 x 10 5 cells) were injected into the peri-infarct zone immediately after MI. Echocardiography was performed on unsedated mice before and on days 7 after MI. Examination of transplantation efficiency and hHiPC phenotype was performed using flow cytometric analysis of cell suspension obtained from left ventricles (LV). Results: We found that up to 25% of cardiac endothelial cells were represented by cells that originated from hHiPC, as identified by specific expression of human CD31, in mouse LV, on day 7 after MI. The total number of cells expressing mouse or human endothelial cell markers, CD31 and CD105, within non-immune cardiac cell population was higher in mice that received injection of hHiPC compared to control mice (PBS injection) (4.7 vs. 2.9 x 10 5 cells, hHiPC vs. PBS, p= 0.026 ). Echocardiographic analysis revealed that mice which received an injection of ERBB2 high cells demonstrated significantly improved cardiac function compared to control mice injected with PBS (fractional shortening: 21.6% vs. 15.3% for hHiPC vs. PBS, p=0.023 ). Conclusion: ERBB2 high hHiPC survive, undergo endothelial cell differentiation in vivo, and contribute to the pool of cardiac endothelial cells after experimental myocardial infarction. A population of ErbB2 high hHiPC obtained from adult human hearts can be used to improve the revascularization of injured myocardium or other tissues.
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- 2019
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272. Control of density and composition in an engineered two-member bacterial community
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Richard M. Murray, Reed D. McCardell, and Ayush Pandey
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Modeling and simulation ,Computer science ,Circuit performance ,Robustness (evolution) ,Total population ,Biological system - Abstract
As studies continue to demonstrate how our health is related to the status of our various commensal microbiomes, synthetic biologists are developing tools and approaches to control these microbiomes and stabilize healthy states or remediate unhealthy ones. Building on previous work to control bacterial communities, we have constructed a synthetic two-member bacterial consortium engineered to reach population density and composition steady states set by inducer inputs. We detail a screening strategy to search functional parameter space in this high-complexity genetic circuit as well as initial testing of a functional two-member circuit.We demonstrate non-independent changes in total population density and composition steady states with a limited set of varying inducer concentrations. After a dilution to perturb the system from its steady state, density and composition steady states are not regained. Modeling and simulation suggest a need for increased degradation of intercellular signals to improve circuit performance. Future experiments will implement increased signal degradation and investigate the robustness of control of each characteristic to perturbations from steady states.
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- 2019
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273. Remote Gait Analysis Using Wearable Sensors Detects Asymmetric Gait Patterns in Patients Recovering from ACL Reconstruction
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Rebecca H. Choquette, Ryan S. McGinnis, James R. Slauterbeck, Reed D. Gurchiek, Timothy W. Tourville, Michael J. Toth, and Bruce D. Beynnon
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medicine.medical_specialty ,education.field_of_study ,medicine.diagnostic_test ,Computer science ,Anterior cruciate ligament ,010401 analytical chemistry ,Population ,STRIDE ,030229 sport sciences ,Electromyography ,Accelerometer ,01 natural sciences ,Gait ,0104 chemical sciences ,Preferred walking speed ,03 medical and health sciences ,0302 clinical medicine ,medicine.anatomical_structure ,Physical medicine and rehabilitation ,Gait analysis ,medicine ,education ,human activities - Abstract
This paper presents an automated, wearable sensor-based remote gait analysis method and demonstrates its utility by evaluating gait in patients recovering from anterior cruciate ligament (ACL) reconstruction. Patients wore a single wearable sensor over the rectus femoris of each leg to collect over 15 hours of 3-axis accelerometer and surface electromyography data during daily life. A support vector machine classifier was used to identify four second windows of walking activity. Across all subjects 10,451 strides were extracted from these windows and categorized as occurring during either fast or slow walking. Muscle activation and 3-axis thigh acceleration time-series for each stride were resampled as a percentage of stride cycle and ensemble curves from both legs were compared using correlation as an index of gait pattern symmetry. Our results suggest the proposed method successfully identifies time-series gait asymmetries between affected and unaffected legs when comparing patients early post-surgery ( $ weeks) and later ( $> \pmb {14}$ weeks) in recovery for each walking speed. These results point toward future use of this approach as a digital biomarker for rehabilitation progress in this population.
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- 2019
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274. Giving Voice to Vulnerable Children: Machine Learning Analysis of Speech Detects Anxiety and Depression in Early Childhood
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Jessica Hruschak, Maria Muzik, Steven P. Anderau, Katherine L. Rosenblum, Kate D. Fitzgerald, Nestor L. Lopez-Duran, Reed D. Gurchiek, Ryan S. McGinnis, and Ellen W. McGinnis
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Male ,education ,Internalizing disorder ,Psychological intervention ,Health Informatics ,Anxiety ,Machine learning ,computer.software_genre ,Article ,Machine Learning ,03 medical and health sciences ,0302 clinical medicine ,Health Information Management ,medicine ,Humans ,Speech ,0501 psychology and cognitive sciences ,Early childhood ,Electrical and Electronic Engineering ,Child ,Depression (differential diagnoses) ,Psychopathology ,business.industry ,Depression ,05 social sciences ,Signal Processing, Computer-Assisted ,medicine.disease ,Computer Science Applications ,Substance abuse ,Child, Preschool ,Task analysis ,Female ,Artificial intelligence ,medicine.symptom ,business ,computer ,030217 neurology & neurosurgery ,050104 developmental & child psychology - Abstract
Childhood anxiety and depression often go undiagnosed. If left untreated these conditions, collectively known as internalizing disorders, are associated with long-term negative outcomes including substance abuse and increased risk for suicide. This paper presents a new approach for identifying young children with internalizing disorders using a 3-min speech task. We show that machine learning analysis of audio data from the task can be used to identify children with an internalizing disorder with 80% accuracy (54% sensitivity, 93% specificity). The speech features most discriminative of internalizing disorder are analyzed in detail, showing that affected children exhibit especially low-pitch voices, with repeatable speech inflections and content, and high-pitched response to surprising stimuli relative to controls. This new tool is shown to outperform clinical thresholds on parent-reported child symptoms, which identify children with an internalizing disorder with lower accuracy (67–77% versus 80%), and similar specificity (85–100% versus 93%), and sensitivity (0–58% versus 54%) in this sample. These results point toward the future use of this approach for screening children for internalizing disorders so that interventions can be deployed when they have the highest chance for long-term success.
- Published
- 2019
275. Intake of ethanol, sodium chloride, sucrose, citric acid, and quinine hydrochloride solutions by mice: A genetic analysis
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Bachmanov, A. A., Reed, D. R., Tordoff, M. G., Price, R. A., and Beauchamp, G. K.
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- 1996
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276. Genetic Dissection of Sweet Taste in Mice
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Bachmanov, A. A., primary, Reed, D. R., additional, Li, X., additional, and Beauchamp, G. K., additional
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- 2003
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277. How good is good enough? Information quality needs for management decision making.
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Reed, D. D., primary and Jones, E. A., additional
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- 2003
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278. Olfactory responses of the parasitoidDiaeretiella rapae (Hymenoptera: Aphidiidae) to odor of plants, aphids, and plant-aphid complexes
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Reed, H. C., Tan, S. H., Haapanen, K., Killmon, M., Reed, D. K., and Elliott, N. C.
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- 1995
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279. The steroidogenic response to angiotensin II in the Australian lungfish, Neoceratodus forsteri
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Joss, J. M. P., Arnold-Reed, D. E., and Balment, R. J.
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- 1994
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280. Effects of an open-coast oil-production outfall on patterns of giant kelp (Macrocystis pyrifera) recruitment
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Reed, D. C., Lewis, R. J., and Anghera, M.
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- 1994
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281. Effects of an oil and gas-production effluent on the colonization potential of giant kelp (Macrocystis pyrifera) zoospores
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Reed, D. C. and Lewis, R. J.
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- 1994
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282. The FLUXNET2015 dataset and the ONEFlux processing pipeline for eddy covariance data
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Pastorello, G, Trotta, C, Canfora, E, Chu, H, Christianson, D, Cheah, Y-W, Poindexter, C, Chen, J, Elbashandy, A, Humphrey, M, Isaac, P, Polidori, D, Ribeca, A, van Ingen, C, Zhang, L, Amiro, B, Ammann, C, Arain, MA, Ardo, J, Arkebauer, T, Arndt, SK, Arriga, N, Aubinet, M, Aurela, M, Baldocchi, D, Barr, A, Beamesderfer, E, Marchesini, LB, Bergeron, O, Beringer, J, Bernhofer, C, Berveiller, D, Billesbach, D, Black, TA, Blanken, PD, Bohrer, G, Boike, J, Bolstad, PV, Bonal, D, Bonnefond, J-M, Bowling, DR, Bracho, R, Brodeur, J, Bruemmer, C, Buchmann, N, Burban, B, Burns, SP, Buysse, P, Cale, P, Cavagna, M, Cellier, P, Chen, S, Chini, I, Christensen, TR, Cleverly, J, Collalti, A, Consalvo, C, Cook, BD, Cook, D, Coursolle, C, Cremonese, E, Curtis, PS, D'Andrea, E, da Rocha, H, Dai, X, Davis, KJ, De Cinti, B, de Grandcourt, A, De Ligne, A, De Oliveira, RC, Delpierre, N, Desai, AR, Di Bella, CM, di Tommasi, P, Dolman, H, Domingo, F, Dong, G, Dore, S, Duce, P, Dufrene, E, Dunn, A, Dusek, J, Eamus, D, Eichelmann, U, ElKhidir, HAM, Eugster, W, Ewenz, CM, Ewers, B, Famulari, D, Fares, S, Feigenwinter, I, Feitz, A, Fensholt, R, Filippa, G, Fischer, M, Frank, J, Galvagno, M, Gharun, M, Gianelle, D, Gielen, B, Gioli, B, Gitelson, A, Goded, I, Goeckede, M, Goldstein, AH, Gough, CM, Goulden, ML, Graf, A, Griebel, A, Gruening, C, Gruenwald, T, Hammerle, A, Han, S, Han, X, Hansen, BU, Hanson, C, Hatakka, J, He, Y, Hehn, M, Heinesch, B, Hinko-Najera, N, Hoertnagl, L, Hutley, L, Ibrom, A, Ikawa, H, Jackowicz-Korczynski, M, Janous, D, Jans, W, Jassal, R, Jiang, S, Kato, T, Khomik, M, Klatt, J, Knohl, A, Knox, S, Kobayashi, H, Koerber, G, Kolle, O, Kosugi, Y, Kotani, A, Kowalski, A, Kruijt, B, Kurbatova, J, Kutsch, WL, Kwon, H, Launiainen, S, Laurila, T, Law, B, Leuning, R, Li, Y, Liddell, M, Limousin, J-M, Lion, M, Liska, AJ, Lohila, A, Lopez-Ballesteros, A, Lopez-Blanco, E, Loubet, B, Loustau, D, Lucas-Moffat, A, Lueers, J, Ma, S, Macfarlane, C, Magliulo, V, Maier, R, Mammarella, I, Manca, G, Marcolla, B, Margolis, HA, Marras, S, Massman, W, Mastepanov, M, Matamala, R, Matthes, JH, Mazzenga, F, McCaughey, H, McHugh, I, McMillan, AMS, Merbold, L, Meyer, W, Meyers, T, Miller, SD, Minerbi, S, Moderow, U, Monson, RK, Montagnani, L, Moore, CE, Moors, E, Moreaux, V, Moureaux, C, Munger, JW, Nakai, T, Neirynck, J, Nesic, Z, Nicolini, G, Noormets, A, Northwood, M, Nosetto, M, Nouvellon, Y, Novick, K, Oechel, W, Olesen, JE, Ourcival, J-M, Papuga, SA, Parmentier, F-J, Paul-Limoges, E, Pavelka, M, Peichl, M, Pendall, E, Phillips, RP, Pilegaard, K, Pirk, N, Posse, G, Powell, T, Prasse, H, Prober, SM, Rambal, S, Rannik, U, Raz-Yaseef, N, Reed, D, de Dios, VR, Restrepo-Coupe, N, Reverter, BR, Roland, M, Sabbatini, S, Sachs, T, Saleska, SR, Sanchez-Canete, EP, Sanchez-Mejia, ZM, Schmid, HP, Schmidt, M, Schneider, K, Schrader, F, Schroder, I, Scott, RL, Sedlak, P, Serrano-Ortiz, P, Shao, C, Shi, P, Shironya, I, Siebicke, L, Sigut, L, Silberstein, R, Sirca, C, Spano, D, Steinbrecher, R, Stevens, RM, Sturtevant, C, Suyker, A, Tagesson, T, Takanashi, S, Tang, Y, Tapper, N, Thom, J, Tiedemann, F, Tomassucci, M, Tuovinen, J-P, Urbanski, S, Valentini, R, van der Molen, M, van Gorsel, E, van Huissteden, K, Varlagin, A, Verfaillie, J, Vesala, T, Vincke, C, Vitale, D, Vygodskaya, N, Walker, JP, Walter-Shea, E, Wang, H, Weber, R, Westermann, S, Wille, C, Wofsy, S, Wohlfahrt, G, Wolf, S, Woodgate, W, Zampedri, R, Zhang, J, Zhou, G, Zona, D, Agarwal, D, Biraud, S, Torn, M, Papale, D, Pastorello, G, Trotta, C, Canfora, E, Chu, H, Christianson, D, Cheah, Y-W, Poindexter, C, Chen, J, Elbashandy, A, Humphrey, M, Isaac, P, Polidori, D, Ribeca, A, van Ingen, C, Zhang, L, Amiro, B, Ammann, C, Arain, MA, Ardo, J, Arkebauer, T, Arndt, SK, Arriga, N, Aubinet, M, Aurela, M, Baldocchi, D, Barr, A, Beamesderfer, E, Marchesini, LB, Bergeron, O, Beringer, J, Bernhofer, C, Berveiller, D, Billesbach, D, Black, TA, Blanken, PD, Bohrer, G, Boike, J, Bolstad, PV, Bonal, D, Bonnefond, J-M, Bowling, DR, Bracho, R, Brodeur, J, Bruemmer, C, Buchmann, N, Burban, B, Burns, SP, Buysse, P, Cale, P, Cavagna, M, Cellier, P, Chen, S, Chini, I, Christensen, TR, Cleverly, J, Collalti, A, Consalvo, C, Cook, BD, Cook, D, Coursolle, C, Cremonese, E, Curtis, PS, D'Andrea, E, da Rocha, H, Dai, X, Davis, KJ, De Cinti, B, de Grandcourt, A, De Ligne, A, De Oliveira, RC, Delpierre, N, Desai, AR, Di Bella, CM, di Tommasi, P, Dolman, H, Domingo, F, Dong, G, Dore, S, Duce, P, Dufrene, E, Dunn, A, Dusek, J, Eamus, D, Eichelmann, U, ElKhidir, HAM, Eugster, W, Ewenz, CM, Ewers, B, Famulari, D, Fares, S, Feigenwinter, I, Feitz, A, Fensholt, R, Filippa, G, Fischer, M, Frank, J, Galvagno, M, Gharun, M, Gianelle, D, Gielen, B, Gioli, B, Gitelson, A, Goded, I, Goeckede, M, Goldstein, AH, Gough, CM, Goulden, ML, Graf, A, Griebel, A, Gruening, C, Gruenwald, T, Hammerle, A, Han, S, Han, X, Hansen, BU, Hanson, C, Hatakka, J, He, Y, Hehn, M, Heinesch, B, Hinko-Najera, N, Hoertnagl, L, Hutley, L, Ibrom, A, Ikawa, H, Jackowicz-Korczynski, M, Janous, D, Jans, W, Jassal, R, Jiang, S, Kato, T, Khomik, M, Klatt, J, Knohl, A, Knox, S, Kobayashi, H, Koerber, G, Kolle, O, Kosugi, Y, Kotani, A, Kowalski, A, Kruijt, B, Kurbatova, J, Kutsch, WL, Kwon, H, Launiainen, S, Laurila, T, Law, B, Leuning, R, Li, Y, Liddell, M, Limousin, J-M, Lion, M, Liska, AJ, Lohila, A, Lopez-Ballesteros, A, Lopez-Blanco, E, Loubet, B, Loustau, D, Lucas-Moffat, A, Lueers, J, Ma, S, Macfarlane, C, Magliulo, V, Maier, R, Mammarella, I, Manca, G, Marcolla, B, Margolis, HA, Marras, S, Massman, W, Mastepanov, M, Matamala, R, Matthes, JH, Mazzenga, F, McCaughey, H, McHugh, I, McMillan, AMS, Merbold, L, Meyer, W, Meyers, T, Miller, SD, Minerbi, S, Moderow, U, Monson, RK, Montagnani, L, Moore, CE, Moors, E, Moreaux, V, Moureaux, C, Munger, JW, Nakai, T, Neirynck, J, Nesic, Z, Nicolini, G, Noormets, A, Northwood, M, Nosetto, M, Nouvellon, Y, Novick, K, Oechel, W, Olesen, JE, Ourcival, J-M, Papuga, SA, Parmentier, F-J, Paul-Limoges, E, Pavelka, M, Peichl, M, Pendall, E, Phillips, RP, Pilegaard, K, Pirk, N, Posse, G, Powell, T, Prasse, H, Prober, SM, Rambal, S, Rannik, U, Raz-Yaseef, N, Reed, D, de Dios, VR, Restrepo-Coupe, N, Reverter, BR, Roland, M, Sabbatini, S, Sachs, T, Saleska, SR, Sanchez-Canete, EP, Sanchez-Mejia, ZM, Schmid, HP, Schmidt, M, Schneider, K, Schrader, F, Schroder, I, Scott, RL, Sedlak, P, Serrano-Ortiz, P, Shao, C, Shi, P, Shironya, I, Siebicke, L, Sigut, L, Silberstein, R, Sirca, C, Spano, D, Steinbrecher, R, Stevens, RM, Sturtevant, C, Suyker, A, Tagesson, T, Takanashi, S, Tang, Y, Tapper, N, Thom, J, Tiedemann, F, Tomassucci, M, Tuovinen, J-P, Urbanski, S, Valentini, R, van der Molen, M, van Gorsel, E, van Huissteden, K, Varlagin, A, Verfaillie, J, Vesala, T, Vincke, C, Vitale, D, Vygodskaya, N, Walker, JP, Walter-Shea, E, Wang, H, Weber, R, Westermann, S, Wille, C, Wofsy, S, Wohlfahrt, G, Wolf, S, Woodgate, W, Zampedri, R, Zhang, J, Zhou, G, Zona, D, Agarwal, D, Biraud, S, Torn, M, and Papale, D
- Abstract
The FLUXNET2015 dataset provides ecosystem-scale data on CO2, water, and energy exchange between the biosphere and the atmosphere, and other meteorological and biological measurements, from 212 sites around the globe (over 1500 site-years, up to and including year 2014). These sites, independently managed and operated, voluntarily contributed their data to create global datasets. Data were quality controlled and processed using uniform methods, to improve consistency and intercomparability across sites. The dataset is already being used in a number of applications, including ecophysiology studies, remote sensing studies, and development of ecosystem and Earth system models. FLUXNET2015 includes derived-data products, such as gap-filled time series, ecosystem respiration and photosynthetic uptake estimates, estimation of uncertainties, and metadata about the measurements, presented for the first time in this paper. In addition, 206 of these sites are for the first time distributed under a Creative Commons (CC-BY 4.0) license. This paper details this enhanced dataset and the processing methods, now made available as open-source codes, making the dataset more accessible, transparent, and reproducible.
- Published
- 2020
283. The FLUXNET2015 dataset and the ONEFlux processing pipeline for eddy covariance data
- Author
-
Pastorello, G. (Gilberto), Trotta, C. (Carlo), Canfora, E. (Eleonora), Chu, H. (Housen), Christianson, D. (Danielle), Cheah, Y.-W. (You-Wei), Poindexter, C. (Cristina), Chen, J. (Jiquan), Elbashandy, A. (Abdelrahman), Humphrey, M. (Marty), Isaac, P. (Peter), Polidori, D. (Diego), Ribeca, A. (Alessio), van Ingen, C. (Catharine), Zhang, L. (Leiming), Amiro, B. (Brian), Ammann, C. (Christof), Arain, M. A. (M. Altaf), Ardo, J. (Jonas), Arkebauer, T. (Timothy), Arndt, S. K. (Stefan K.), Arriga, N. (Nicola), Aubinet, M. (Marc), Aurela, M. (Mika), Baldocchi, D. (Dennis), Barr, A. (Alan), Beamesderfer, E. (Eric), Marchesini, L. B. (Luca Belelli), Bergeron, O. (Onil), Beringer, J. (Jason), Bernhofer, C. (Christian), Berveiller, D. (Daniel), Billesbach, D. (Dave), Black, T. A. (Thomas Andrew), Blanken, P. D. (Peter D.), Bohrer, G. (Gil), Boike, J. (Julia), Bolstad, P. V. (Paul V.), Bonal, D. (Damien), Bonnefond, J.-M. (Jean-Marc), Bowling, D. R. (David R.), Bracho, R. (Rosvel), Brodeur, J. (Jason), Bruemmer, C. (Christian), Buchmann, N. (Nina), Burban, B. (Benoit), Burns, S. P. (Sean P.), Buysse, P. (Pauline), Cale, P. (Peter), Cavagna, M. (Mauro), Cellier, P. (Pierre), Chen, S. (Shiping), Chini, I. (Isaac), Christensen, T. R. (Torben R.), Cleverly, J. (James), Collalti, A. (Alessio), Consalvo, C. (Claudia), Cook, B. D. (Bruce D.), Cook, D. (David), Coursolle, C. (Carole), Cremonese, E. (Edoardo), Curtis, P. S. (Peter S.), D'Andrea, E. (Ettore), da Rocha, H. (Humberto), Dai, X. (Xiaoqin), Davis, K. J. (Kenneth J.), De Cinti, B. (Bruno), de Grandcourt, A. (Agnes), De Ligne, A. (Anne), De Oliveira, R. C. (Raimundo C.), Delpierre, N. (Nicolas), Desai, A. R. (Ankur R.), Di Bella, C. M. (Carlos Marcelo), di Tommasi, P. (Paul), Dolman, H. (Han), Domingo, F. (Francisco), Dong, G. (Gang), Dore, S. (Sabina), Duce, P. (Pierpaolo), Dufrene, E. (Eric), Dunn, A. (Allison), Dusek, J. (Jiri), Eamus, D. (Derek), Eichelmann, U. (Uwe), ElKhidir, H. A. (Hatim Abdalla M.), Eugster, W. (Werner), Ewenz, C. M. (Cacilia M.), Ewers, B. (Brent), Famulari, D. (Daniela), Fares, S. (Silvano), Feigenwinter, I. (Iris), Feitz, A. (Andrew), Fensholt, R. (Rasmus), Filippa, G. (Gianluca), Fischer, M. (Marc), Frank, J. (John), Galvagno, M. (Marta), Gharun, M. (Mana), Gianelle, D. (Damiano), Gielen, B. (Bert), Gioli, B. (Beniamino), Gitelson, A. (Anatoly), Goded, I. (Ignacio), Goeckede, M. (Mathias), Goldstein, A. H. (Allen H.), Gough, C. M. (Christopher M.), Goulden, M. L. (Michael L.), Graf, A. (Alexander), Griebel, A. (Anne), Gruening, C. (Carsten), Gruenwald, T. (Thomas), Hammerle, A. (Albin), Han, S. (Shijie), Han, X. (Xingguo), Hansen, B. U. (Birger Ulf), Hanson, C. (Chad), Hatakka, J. (Juha), He, Y. (Yongtao), Hehn, M. (Markus), Heinesch, B. (Bernard), Hinko-Najera, N. (Nina), Hoertnagl, L. (Lukas), Hutley, L. (Lindsay), Ibrom, A. (Andreas), Ikawa, H. (Hiroki), Jackowicz-Korczynski, M. (Marcin), Janous, D. (Dalibor), Jans, W. (Wilma), Jassal, R. (Rachhpal), Jiang, S. (Shicheng), Kato, T. (Tomomichi), Khomik, M. (Myroslava), Klatt, J. (Janina), Knohl, A. (Alexander), Knox, S. (Sara), Kobayashi, H. (Hideki), Koerber, G. (Georgia), Kolle, O. (Olaf), Kosugi, Y. (Yoshiko), Kotani, A. (Ayumi), Kowalski, A. (Andrew), Kruijt, B. (Bart), Kurbatova, J. (Julia), Kutsch, W. L. (Werner L.), Kwon, H. (Hyojung), Launiainen, S. (Samuli), Laurila, T. (Tuomas), Law, B. (Bev), Leuning, R. (Ray), Li, Y. (Yingnian), Liddell, M. (Michael), Limousin, J.-M. (Jean-Marc), Lion, M. (Marryanna), Liska, A. J. (Adam J.), Lohila, A. (Annalea), Lopez-Ballesteros, A. (Ana), Lopez-Blanco, E. (Efren), Loubet, B. (Benjamin), Loustau, D. (Denis), Lucas-Moffat, A. (Antje), Lueers, J. (Johannes), Ma, S. (Siyan), Macfarlane, C. (Craig), Magliulo, V. (Vincenzo), Maier, R. (Regine), Mammarella, I. (Ivan), Manca, G. (Giovanni), Marcolla, B. (Barbara), Margolis, H. A. (Hank A.), Marras, S. (Serena), Massman, W. (William), Mastepanov, M. (Mikhail), Matamala, R. (Roser), Matthes, J. H. (Jaclyn Hatala), Mazzenga, F. (Francesco), McCaughey, H. (Harry), McHugh, I. (Ian), McMillan, A. M. (Andrew M. S.), Merbold, L. (Lutz), Meyer, W. (Wayne), Meyers, T. (Tilden), Miller, S. D. (Scott D.), Minerbi, S. (Stefano), Moderow, U. (Uta), Monson, R. K. (Russell K.), Montagnani, L. (Leonardo), Moore, C. E. (Caitlin E.), Moors, E. (Eddy), Moreaux, V. (Virginie), Moureaux, C. (Christine), Munger, J. W. (J. William), Nakai, T. (Taro), Neirynck, J. (Johan), Nesic, Z. (Zoran), Nicolini, G. (Giacomo), Noormets, A. (Asko), Northwood, M. (Matthew), Nosetto, M. (Marcelo), Nouvellon, Y. (Yann), Novick, K. (Kimberly), Oechel, W. (Walter), Olesen, J. E. (Jorgen Eivind), Ourcival, J.-M. (Jean-Marc), Papuga, S. A. (Shirley A.), Parmentier, F.-J. (Frans-Jan), Paul-Limoges, E. (Eugenie), Pavelka, M. (Marian), Peichl, M. (Matthias), Pendall, E. (Elise), Phillips, R. P. (Richard P.), Pilegaard, K. (Kim), Pirk, N. (Norbert), Posse, G. (Gabriela), Powell, T. (Thomas), Prasse, H. (Heiko), Prober, S. M. (Suzanne M.), Rambal, S. (Serge), Rannik, U. (Ullar), Raz-Yaseef, N. (Naama), Reed, D. (David), de Dios, V. R. (Victor Resco), Restrepo-Coupe, N. (Natalia), Reverter, B. R. (Borja R.), Roland, M. (Marilyn), Sabbatini, S. (Simone), Sachs, T. (Torsten), Saleska, S. R. (Scott R.), Sanchez-Canete, E. P. (Enrique P.), Sanchez-Mejia, Z. M. (Zulia M.), Schmid, H. P. (Hans Peter), Schmidt, M. (Marius), Schneider, K. (Karl), Schrader, F. (Frederik), Schroder, I. (Ivan), Scott, R. L. (Russell L.), Sedlak, P. (Pavel), Serrano-Ortiz, P. (Penelope), Shao, C. (Changliang), Shi, P. (Peili), Shironya, I. (Ivan), Siebicke, L. (Lukas), Sigut, L. (Ladislav), Silberstein, R. (Richard), Sirca, C. (Costantino), Spano, D. (Donatella), Steinbrecher, R. (Rainer), Stevens, R. M. (Robert M.), Sturtevant, C. (Cove), Suyker, A. (Andy), Tagesson, T. (Torbern), Takanashi, S. (Satoru), Tang, Y. (Yanhong), Tapper, N. (Nigel), Thom, J. (Jonathan), Tiedemann, F. (Frank), Tomassucci, M. (Michele), Tuovinen, J.-P. (Juha-Pekka), Urbanski, S. (Shawn), Valentini, R. (Riccardo), van der Molen, M. (Michiel), van Gorsel, E. (Eva), van Huissteden, K. (Ko), Varlagin, A. (Andrej), Verfaillie, J. (Joseph), Vesala, T. (Timo), Vincke, C. (Caroline), Vitale, D. (Domenico), Vygodskaya, N. (Natalia), Walker, J. P. (Jeffrey P.), Walter-Shea, E. (Elizabeth), Wang, H. (Huimin), Weber, R. (Robin), Westermann, S. (Sebastian), Wille, C. (Christian), Wofsy, S. (Steven), Wohlfahrt, G. (Georg), Wolf, S. (Sebastian), Woodgate, W. (William), Li, Y. (Yuelin), Zampedri, R. (Roberto), Zhang, J. (Junhui), Zhou, G. (Guoyi), Zona, D. (Donatella), Agarwal, D. (Deb), Biraud, S. (Sebastien), Torn, M. (Margaret), Papale, D. (Dario), Pastorello, G. (Gilberto), Trotta, C. (Carlo), Canfora, E. (Eleonora), Chu, H. (Housen), Christianson, D. (Danielle), Cheah, Y.-W. (You-Wei), Poindexter, C. (Cristina), Chen, J. (Jiquan), Elbashandy, A. (Abdelrahman), Humphrey, M. (Marty), Isaac, P. (Peter), Polidori, D. (Diego), Ribeca, A. (Alessio), van Ingen, C. (Catharine), Zhang, L. (Leiming), Amiro, B. (Brian), Ammann, C. (Christof), Arain, M. A. (M. Altaf), Ardo, J. (Jonas), Arkebauer, T. (Timothy), Arndt, S. K. (Stefan K.), Arriga, N. (Nicola), Aubinet, M. (Marc), Aurela, M. (Mika), Baldocchi, D. (Dennis), Barr, A. (Alan), Beamesderfer, E. (Eric), Marchesini, L. B. (Luca Belelli), Bergeron, O. (Onil), Beringer, J. (Jason), Bernhofer, C. (Christian), Berveiller, D. (Daniel), Billesbach, D. (Dave), Black, T. A. (Thomas Andrew), Blanken, P. D. (Peter D.), Bohrer, G. (Gil), Boike, J. (Julia), Bolstad, P. V. (Paul V.), Bonal, D. (Damien), Bonnefond, J.-M. (Jean-Marc), Bowling, D. R. (David R.), Bracho, R. (Rosvel), Brodeur, J. (Jason), Bruemmer, C. (Christian), Buchmann, N. (Nina), Burban, B. (Benoit), Burns, S. P. (Sean P.), Buysse, P. (Pauline), Cale, P. (Peter), Cavagna, M. (Mauro), Cellier, P. (Pierre), Chen, S. (Shiping), Chini, I. (Isaac), Christensen, T. R. (Torben R.), Cleverly, J. (James), Collalti, A. (Alessio), Consalvo, C. (Claudia), Cook, B. D. (Bruce D.), Cook, D. (David), Coursolle, C. (Carole), Cremonese, E. (Edoardo), Curtis, P. S. (Peter S.), D'Andrea, E. (Ettore), da Rocha, H. (Humberto), Dai, X. (Xiaoqin), Davis, K. J. (Kenneth J.), De Cinti, B. (Bruno), de Grandcourt, A. (Agnes), De Ligne, A. (Anne), De Oliveira, R. C. (Raimundo C.), Delpierre, N. (Nicolas), Desai, A. R. (Ankur R.), Di Bella, C. M. (Carlos Marcelo), di Tommasi, P. (Paul), Dolman, H. (Han), Domingo, F. (Francisco), Dong, G. (Gang), Dore, S. (Sabina), Duce, P. (Pierpaolo), Dufrene, E. (Eric), Dunn, A. (Allison), Dusek, J. (Jiri), Eamus, D. (Derek), Eichelmann, U. (Uwe), ElKhidir, H. A. (Hatim Abdalla M.), Eugster, W. (Werner), Ewenz, C. M. (Cacilia M.), Ewers, B. (Brent), Famulari, D. (Daniela), Fares, S. (Silvano), Feigenwinter, I. (Iris), Feitz, A. (Andrew), Fensholt, R. (Rasmus), Filippa, G. (Gianluca), Fischer, M. (Marc), Frank, J. (John), Galvagno, M. (Marta), Gharun, M. (Mana), Gianelle, D. (Damiano), Gielen, B. (Bert), Gioli, B. (Beniamino), Gitelson, A. (Anatoly), Goded, I. (Ignacio), Goeckede, M. (Mathias), Goldstein, A. H. (Allen H.), Gough, C. M. (Christopher M.), Goulden, M. L. (Michael L.), Graf, A. (Alexander), Griebel, A. (Anne), Gruening, C. (Carsten), Gruenwald, T. (Thomas), Hammerle, A. (Albin), Han, S. (Shijie), Han, X. (Xingguo), Hansen, B. U. (Birger Ulf), Hanson, C. (Chad), Hatakka, J. (Juha), He, Y. (Yongtao), Hehn, M. (Markus), Heinesch, B. (Bernard), Hinko-Najera, N. (Nina), Hoertnagl, L. (Lukas), Hutley, L. (Lindsay), Ibrom, A. (Andreas), Ikawa, H. (Hiroki), Jackowicz-Korczynski, M. (Marcin), Janous, D. (Dalibor), Jans, W. (Wilma), Jassal, R. (Rachhpal), Jiang, S. (Shicheng), Kato, T. (Tomomichi), Khomik, M. (Myroslava), Klatt, J. (Janina), Knohl, A. (Alexander), Knox, S. (Sara), Kobayashi, H. (Hideki), Koerber, G. (Georgia), Kolle, O. (Olaf), Kosugi, Y. (Yoshiko), Kotani, A. (Ayumi), Kowalski, A. (Andrew), Kruijt, B. (Bart), Kurbatova, J. (Julia), Kutsch, W. L. (Werner L.), Kwon, H. (Hyojung), Launiainen, S. (Samuli), Laurila, T. (Tuomas), Law, B. (Bev), Leuning, R. (Ray), Li, Y. (Yingnian), Liddell, M. (Michael), Limousin, J.-M. (Jean-Marc), Lion, M. (Marryanna), Liska, A. J. (Adam J.), Lohila, A. (Annalea), Lopez-Ballesteros, A. (Ana), Lopez-Blanco, E. (Efren), Loubet, B. (Benjamin), Loustau, D. (Denis), Lucas-Moffat, A. (Antje), Lueers, J. (Johannes), Ma, S. (Siyan), Macfarlane, C. (Craig), Magliulo, V. (Vincenzo), Maier, R. (Regine), Mammarella, I. (Ivan), Manca, G. (Giovanni), Marcolla, B. (Barbara), Margolis, H. A. (Hank A.), Marras, S. (Serena), Massman, W. (William), Mastepanov, M. (Mikhail), Matamala, R. (Roser), Matthes, J. H. (Jaclyn Hatala), Mazzenga, F. (Francesco), McCaughey, H. (Harry), McHugh, I. (Ian), McMillan, A. M. (Andrew M. S.), Merbold, L. (Lutz), Meyer, W. (Wayne), Meyers, T. (Tilden), Miller, S. D. (Scott D.), Minerbi, S. (Stefano), Moderow, U. (Uta), Monson, R. K. (Russell K.), Montagnani, L. (Leonardo), Moore, C. E. (Caitlin E.), Moors, E. (Eddy), Moreaux, V. (Virginie), Moureaux, C. (Christine), Munger, J. W. (J. William), Nakai, T. (Taro), Neirynck, J. (Johan), Nesic, Z. (Zoran), Nicolini, G. (Giacomo), Noormets, A. (Asko), Northwood, M. (Matthew), Nosetto, M. (Marcelo), Nouvellon, Y. (Yann), Novick, K. (Kimberly), Oechel, W. (Walter), Olesen, J. E. (Jorgen Eivind), Ourcival, J.-M. (Jean-Marc), Papuga, S. A. (Shirley A.), Parmentier, F.-J. (Frans-Jan), Paul-Limoges, E. (Eugenie), Pavelka, M. (Marian), Peichl, M. (Matthias), Pendall, E. (Elise), Phillips, R. P. (Richard P.), Pilegaard, K. (Kim), Pirk, N. (Norbert), Posse, G. (Gabriela), Powell, T. (Thomas), Prasse, H. (Heiko), Prober, S. M. (Suzanne M.), Rambal, S. (Serge), Rannik, U. (Ullar), Raz-Yaseef, N. (Naama), Reed, D. (David), de Dios, V. R. (Victor Resco), Restrepo-Coupe, N. (Natalia), Reverter, B. R. (Borja R.), Roland, M. (Marilyn), Sabbatini, S. (Simone), Sachs, T. (Torsten), Saleska, S. R. (Scott R.), Sanchez-Canete, E. P. (Enrique P.), Sanchez-Mejia, Z. M. (Zulia M.), Schmid, H. P. (Hans Peter), Schmidt, M. (Marius), Schneider, K. (Karl), Schrader, F. (Frederik), Schroder, I. (Ivan), Scott, R. L. (Russell L.), Sedlak, P. (Pavel), Serrano-Ortiz, P. (Penelope), Shao, C. (Changliang), Shi, P. (Peili), Shironya, I. (Ivan), Siebicke, L. (Lukas), Sigut, L. (Ladislav), Silberstein, R. (Richard), Sirca, C. (Costantino), Spano, D. (Donatella), Steinbrecher, R. (Rainer), Stevens, R. M. (Robert M.), Sturtevant, C. (Cove), Suyker, A. (Andy), Tagesson, T. (Torbern), Takanashi, S. (Satoru), Tang, Y. (Yanhong), Tapper, N. (Nigel), Thom, J. (Jonathan), Tiedemann, F. (Frank), Tomassucci, M. (Michele), Tuovinen, J.-P. (Juha-Pekka), Urbanski, S. (Shawn), Valentini, R. (Riccardo), van der Molen, M. (Michiel), van Gorsel, E. (Eva), van Huissteden, K. (Ko), Varlagin, A. (Andrej), Verfaillie, J. (Joseph), Vesala, T. (Timo), Vincke, C. (Caroline), Vitale, D. (Domenico), Vygodskaya, N. (Natalia), Walker, J. P. (Jeffrey P.), Walter-Shea, E. (Elizabeth), Wang, H. (Huimin), Weber, R. (Robin), Westermann, S. (Sebastian), Wille, C. (Christian), Wofsy, S. (Steven), Wohlfahrt, G. (Georg), Wolf, S. (Sebastian), Woodgate, W. (William), Li, Y. (Yuelin), Zampedri, R. (Roberto), Zhang, J. (Junhui), Zhou, G. (Guoyi), Zona, D. (Donatella), Agarwal, D. (Deb), Biraud, S. (Sebastien), Torn, M. (Margaret), and Papale, D. (Dario)
- Abstract
The FLUXNET2015 dataset provides ecosystem-scale data on CO2, water, and energy exchange between the biosphere and the atmosphere, and other meteorological and biological measurements, from 212 sites around the globe (over 1500 site-years, up to and including year 2014). These sites, independently managed and operated, voluntarily contributed their data to create global datasets. Data were quality controlled and processed using uniform methods, to improve consistency and intercomparability across sites. The dataset is already being used in a number of applications, including ecophysiology studies, remote sensing studies, and development of ecosystem and Earth system models. FLUXNET2015 includes derived-data products, such as gap-filled time series, ecosystem respiration and photosynthetic uptake estimates, estimation of uncertainties, and metadata about the measurements, presented for the first time in this paper. In addition, 206 of these sites are for the first time distributed under a Creative Commons (CC-BY 4.0) license. This paper details this enhanced dataset and the processing methods, now made available as open-source codes, making the dataset more accessible, transparent, and reproducible.
- Published
- 2020
284. The FLUXNET2015 dataset and the ONEFlux processing pipeline for eddy covariance data.
- Author
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Pastorello G, Trotta C, Canfora E, Chu H, Christianson D, Cheah Y-W, Poindexter C, Chen J, Elbashandy A, Humphrey M, Isaac P, Polidori D, Ribeca A, van Ingen C, Zhang L, Amiro B, Ammann C, Arain MA, Ardö J, Arkebauer T, Arndt SK, Arriga N, Aubinet M, Aurela M, Baldocchi D, Barr A, Beamesderfer E, Marchesini LB, Bergeron O, Beringer J, Bernhofer C, Berveiller D, Billesbach D, Black TA, Blanken PD, Bohrer G, Boike J, Bolstad PV, Bonal D, Bonnefond J-M, Bowling DR, Bracho R, Brodeur J, Brümmer C, Buchmann N, Burban B, Burns SP, Buysse P, Cale P, Cavagna M, Cellier P, Chen S, Chini I, Christensen TR, Cleverly J, Collalti A, Consalvo C, Cook BD, Cook D, Coursolle C, Cremonese E, Curtis PS, D'Andrea E, da Rocha H, Dai X, Davis KJ, De Cinti B, de Grandcourt A, De Ligne A, De Oliveira RC, Delpierre N, Desai AR, Di Bella CM, di Tommasi P, Dolman H, Domingo F, Dong G, Dore S, Duce P, Dufrêne E, Dunn A, Dušek J, Eamus D, Eichelmann U, ElKhidir HAM, Eugster W, Ewenz CM, Ewers B, Famulari D, Fares S, Feigenwinter I, Feitz A, Fensholt R, Filippa G, Fischer M, Frank J, Galvagno M, Gharun M, Gianelle D, Gielen B, Gioli B, Gitelson A, Goded I, Goeckede M, Goldstein AH, Gough CM, Goulden ML, Graf A, Griebel A, Gruening C, Grünwald T, Hammerle A, Han S, Han X, Hansen BU, Hanson C, Hatakka J, He Y, Hehn M, Heinesch B, Hinko-Najera N, Hörtnagl L, Hutley L, Ibrom A, Ikawa H, Jackowicz-Korczynski M, Janouš D, Jans W, Jassal R, Jiang S, Kato T, Khomik M, Klatt J, Knohl A, Knox S, Kobayashi H, Koerber G, Kolle O, Kosugi Y, Kotani A, Kowalski A, Kruijt B, Kurbatova J, Kutsch WL, Kwon H, Launiainen S, Laurila T, Law B, Leuning R, Li Y, Liddell M, Limousin J-M, Lion M, Liska AJ, Lohila A, López-Ballesteros A, López-Blanco E, Loubet B, Loustau D, Lucas-Moffat A, Lüers J, Ma S, Macfarlane C, Magliulo V, Maier R, Mammarella I, Manca G, Marcolla B, Margolis HA, Marras S, Massman W, Mastepanov M, Matamala R, Matthes JH, Mazzenga F, McCaughey H, McHugh I, McMillan AMS, Merbold L, Meyer W, Meyers T, Miller SD, Minerbi S, Moderow U, Monson RK, Montagnani L, Moore CE, Moors E, Moreaux V, Moureaux C, Munger JW, Nakai T, Neirynck J, Nesic Z, Nicolini G, Noormets A, Northwood M, Nosetto M, Nouvellon Y, Novick K, Oechel W, Olesen JE, Ourcival J-M, Papuga SA, Parmentier F-J, Paul-Limoges E, Pavelka M, Peichl M, Pendall E, Phillips RP, Pilegaard K, Pirk N, Posse G, Powell T, Prasse H, Prober SM, Rambal S, Rannik Ü, Raz-Yaseef N, Reed D, de Dios VR, Restrepo-Coupe N, Reverter BR, Roland M, Sabbatini S, Sachs T, Saleska SR, Sánchez-Cañete EP, Sanchez-Mejia ZM, Schmid HP, Schmidt M, Schneider K, Schrader F, Schroder I, Scott RL, Sedlák P, Serrano-Ortíz P, Shao C, Shi P, Shironya I, Siebicke L, Šigut L, Silberstein R, Sirca C, Spano D, Steinbrecher R, Stevens RM, Sturtevant C, Suyker A, Tagesson T, Takanashi S, Tang Y, Tapper N, Thom J, Tiedemann F, Tomassucci M, Tuovinen J-P, Urbanski S, Valentini R, van der Molen M, van Gorsel E, van Huissteden K, Varlagin A, Verfaillie J, Vesala T, Vincke C, Vitale D, Vygodskaya N, Walker JP, Walter-Shea E, Wang H, Weber R, Westermann S, Wille C, Wofsy S, Wohlfahrt G, Wolf S, Woodgate W, Zampedri R, Zhang J, Zhou G, Zona D, Agarwal D, Biraud S, Torn M, Papale D, Pastorello G, Trotta C, Canfora E, Chu H, Christianson D, Cheah Y-W, Poindexter C, Chen J, Elbashandy A, Humphrey M, Isaac P, Polidori D, Ribeca A, van Ingen C, Zhang L, Amiro B, Ammann C, Arain MA, Ardö J, Arkebauer T, Arndt SK, Arriga N, Aubinet M, Aurela M, Baldocchi D, Barr A, Beamesderfer E, Marchesini LB, Bergeron O, Beringer J, Bernhofer C, Berveiller D, Billesbach D, Black TA, Blanken PD, Bohrer G, Boike J, Bolstad PV, Bonal D, Bonnefond J-M, Bowling DR, Bracho R, Brodeur J, Brümmer C, Buchmann N, Burban B, Burns SP, Buysse P, Cale P, Cavagna M, Cellier P, Chen S, Chini I, Christensen TR, Cleverly J, Collalti A, Consalvo C, Cook BD, Cook D, Coursolle C, Cremonese E, Curtis PS, D'Andrea E, da Rocha H, Dai X, Davis KJ, De Cinti B, de Grandcourt A, De Ligne A, De Oliveira RC, Delpierre N, Desai AR, Di Bella CM, di Tommasi P, Dolman H, Domingo F, Dong G, Dore S, Duce P, Dufrêne E, Dunn A, Dušek J, Eamus D, Eichelmann U, ElKhidir HAM, Eugster W, Ewenz CM, Ewers B, Famulari D, Fares S, Feigenwinter I, Feitz A, Fensholt R, Filippa G, Fischer M, Frank J, Galvagno M, Gharun M, Gianelle D, Gielen B, Gioli B, Gitelson A, Goded I, Goeckede M, Goldstein AH, Gough CM, Goulden ML, Graf A, Griebel A, Gruening C, Grünwald T, Hammerle A, Han S, Han X, Hansen BU, Hanson C, Hatakka J, He Y, Hehn M, Heinesch B, Hinko-Najera N, Hörtnagl L, Hutley L, Ibrom A, Ikawa H, Jackowicz-Korczynski M, Janouš D, Jans W, Jassal R, Jiang S, Kato T, Khomik M, Klatt J, Knohl A, Knox S, Kobayashi H, Koerber G, Kolle O, Kosugi Y, Kotani A, Kowalski A, Kruijt B, Kurbatova J, Kutsch WL, Kwon H, Launiainen S, Laurila T, Law B, Leuning R, Li Y, Liddell M, Limousin J-M, Lion M, Liska AJ, Lohila A, López-Ballesteros A, López-Blanco E, Loubet B, Loustau D, Lucas-Moffat A, Lüers J, Ma S, Macfarlane C, Magliulo V, Maier R, Mammarella I, Manca G, Marcolla B, Margolis HA, Marras S, Massman W, Mastepanov M, Matamala R, Matthes JH, Mazzenga F, McCaughey H, McHugh I, McMillan AMS, Merbold L, Meyer W, Meyers T, Miller SD, Minerbi S, Moderow U, Monson RK, Montagnani L, Moore CE, Moors E, Moreaux V, Moureaux C, Munger JW, Nakai T, Neirynck J, Nesic Z, Nicolini G, Noormets A, Northwood M, Nosetto M, Nouvellon Y, Novick K, Oechel W, Olesen JE, Ourcival J-M, Papuga SA, Parmentier F-J, Paul-Limoges E, Pavelka M, Peichl M, Pendall E, Phillips RP, Pilegaard K, Pirk N, Posse G, Powell T, Prasse H, Prober SM, Rambal S, Rannik Ü, Raz-Yaseef N, Reed D, de Dios VR, Restrepo-Coupe N, Reverter BR, Roland M, Sabbatini S, Sachs T, Saleska SR, Sánchez-Cañete EP, Sanchez-Mejia ZM, Schmid HP, Schmidt M, Schneider K, Schrader F, Schroder I, Scott RL, Sedlák P, Serrano-Ortíz P, Shao C, Shi P, Shironya I, Siebicke L, Šigut L, Silberstein R, Sirca C, Spano D, Steinbrecher R, Stevens RM, Sturtevant C, Suyker A, Tagesson T, Takanashi S, Tang Y, Tapper N, Thom J, Tiedemann F, Tomassucci M, Tuovinen J-P, Urbanski S, Valentini R, van der Molen M, van Gorsel E, van Huissteden K, Varlagin A, Verfaillie J, Vesala T, Vincke C, Vitale D, Vygodskaya N, Walker JP, Walter-Shea E, Wang H, Weber R, Westermann S, Wille C, Wofsy S, Wohlfahrt G, Wolf S, Woodgate W, Zampedri R, Zhang J, Zhou G, Zona D, Agarwal D, Biraud S, Torn M, and Papale D
- Abstract
The FLUXNET2015 dataset provides ecosystem-scale data on CO2, water, and energy exchange between the biosphere and the atmosphere, and other meteorological and biological measurements, from 212 sites around the globe (over 1500 site-years, up to and including year 2014). These sites, independently managed and operated, voluntarily contributed their data to create global datasets. Data were quality controlled and processed using uniform methods, to improve consistency and intercomparability across sites. The dataset is already being used in a number of applications, including ecophysiology studies, remote sensing studies, and development of ecosystem and Earth system models. FLUXNET2015 includes derived-data products, such as gap-filled time series, ecosystem respiration and photosynthetic uptake estimates, estimation of uncertainties, and metadata about the measurements, presented for the first time in this paper. In addition, 206 of these sites are for the first time distributed under a Creative Commons (CC-BY 4.0) license. This paper details this enhanced dataset and the processing methods, now made available as open-source codes, making the dataset more accessible, transparent, and reproducible.
- Published
- 2020
285. Predicting dark matter halo formation in N-body simulations with deep regression networks
- Author
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Bernardini, M, Mayer, L, Reed, D, Feldmann, R; https://orcid.org/0000-0002-1109-1919, Bernardini, M, Mayer, L, Reed, D, and Feldmann, R; https://orcid.org/0000-0002-1109-1919
- Abstract
Dark matter haloes play a fundamental role in cosmological structure formation. The most common approach to model their assembly mechanisms is through N-body simulations. In this work, we present an innovative pathway to predict dark matter halo formation from the initial density field using a Deep Learning algorithm. We implement and train a Deep Convolutional Neural Network to solve the task of retrieving Lagrangian patches from which dark matter haloes will condense. The volumetric multilabel classification task is turned into a regression problem by means of the Euclidean distance transformation. The network is complemented by an adaptive version of the watershed algorithm to form the entire protohalo identification pipeline. We show that splitting the segmentation problem into two distinct subtasks allows for training smaller and faster networks, while the predictive power of the pipeline remains the same. The model is trained on synthetic data derived from a single full N-body simulation and achieves deviations of ∼10 per cent when reconstructing the dark matter halo mass function at z = 0. This approach represents a promising framework for learning highly non-linear relations in the primordial density field. As a practical application, our method can be used to produce mock dark matter halo catalogues directly from the initial conditions of N-body simulations.
- Published
- 2020
286. LETTERS TO THE EDITOR
- Author
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Hulse, G K and Arnold-Reed, D E
- Published
- 2005
- Full Text
- View/download PDF
287. The major homology region of the HIV-1 gag precursor influences membrane affinity
- Author
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Ebbets-Reed, D., Scarlata, S., and Carter, C.A.
- Subjects
HIV (Viruses) ,Plasma membranes -- Research ,Biological sciences ,Chemistry - Abstract
The role of conserved residues of the major homology region (MHR) in assembly events at the membrane surface of the human immunodeficiency virus (HIV-1) was investigated. Using DNA constructs containing point mutations, it was shown that deletion of the MHR in HIV-1 Gag precursor polyproteins reduced the membrane affinity relative to the wild-type protein. It was suggested that MHR may contribute to membrane binding by HIV-1.
- Published
- 1996
288. Ovipositional preferences and progeny development of the egg parasitoid Avetianella longoi: factors mediating replacement of one species by a congener in a shared habitat
- Author
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Luhring, K.A., Millar, J.G., Paine, T.D., Reed, D., and Christiansen, H.
- Published
- 2004
- Full Text
- View/download PDF
289. Multivariable prediction of in-hospital mortality associated with aortic and mitral valve surgery in Northern New England
- Author
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Nowicki, Edward R, Birkmeyer, Nancy J.O, Weintraub, Ronald W, Leavitt, Bruce J, Sanders, John H, Dacey, Lawrence J, Clough, Robert A, Quinn, Reed D, Charlesworth, David C, Sisto, Donato A, Uhlig, Paul N, Olmstead, Elaine M, and O'Connor, Gerald T
- Published
- 2004
- Full Text
- View/download PDF
290. Effects of genotype on the response of Populus tremuloides michx. To ozone and nitrogen deposition
- Author
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Karnosky, D. F., Gagnon, Z. E., Reed, D. D., and Witter, J. A.
- Published
- 1992
- Full Text
- View/download PDF
291. Phenotypic correlations among fitness and its components in a population of the housefly
- Author
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REED, D. H. and BRYANT, E. H.
- Published
- 2004
292. Blue Gene/L programming and operating environment
- Author
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Moreira, J.E., Almasi, G., Archer, C., Bellofatto, R., Bergner, P., Brunheroto, J.R., Brutman, M., Castanos, J.G., Crumley, P.G., Gupta, M., Inglett, T., Lieber, D., Limpert, D., McCarthy, P., Megerian, M., Mendell, M., Mundy, M., Reed, D., Sahoo, R.K., Sanomiya, A., Shok, R., Smith, B., and Stewart, G.G.
- Subjects
Supercomputer ,Operating system ,64-bit operating system ,32-bit operating system ,Parallel computers -- Research ,Supercomputers -- Research ,Operating systems -- Research - Abstract
With up to 65,536 compute nodes and a peak performance of more than 360 teraflops, the Blue Gene[R]/L (BG/L) supercomputer represents a new level of massively parallel systems. The system software stack for BG/L creates a programming and operating environment that harnesses the raw power of this architecture with great effectiveness. The design and implementation of this environment followed three major principles: simplicity, performance, and familiarity. By specializing the services provided by each component of the system architecture, we were able to keep each one simple and leverage the BG/L hardware features to deliver high performance to applications. We also implemented standard programming interfaces and programming languages that greatly simplified the job of porting applications to BG/L. The effectiveness of our approach has been demonstrated by the operational success of several prototype and production machines, which have already been scaled to 16,384 nodes.
- Published
- 2005
293. Characterization of castor bean neutral lipids by mass spectrometry/mass spectrometry
- Author
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Hogge, L. R., Taylor, D. C., Reed, D. W., and Underhill, E. W.
- Published
- 1991
- Full Text
- View/download PDF
294. Biological actions of atrial natriuretic factor in flatfish
- Author
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Arnold-Reed, D., Hazon, N., and Balment, R. J.
- Published
- 1991
- Full Text
- View/download PDF
295. Abdominal obesity and carotid artery wall thickness. The Los Angeles Atherosclerosis Study
- Author
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Reed, D, Dwyer, K M, and Dwyer, J H
- Published
- 2003
296. Vegetation:environment relationships and water management in Shark Slough, Everglades National Park
- Author
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Ross, M. S., Reed, D. L., Sah, J. P., Ruiz, P. L., and Lewin, M. T.
- Published
- 2003
- Full Text
- View/download PDF
297. Vegetation environment relationships and water management in Shark Slough, Everglades National Park
- Author
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Ross, M. S., Reed, D. L., Sah, J. P., Ruiz, P. L., and Lewin, M. T.
- Published
- 2003
298. Making a wrong thing right: ending the 'spread' of reclamation project water.
- Author
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Benson, Reed D. and Priestley, Kimberley J.
- Subjects
Irrigation -- Laws, regulations and rules ,Water rights -- Environmental aspects ,United States. Bureau of Reclamation -- Contracts - Published
- 1994
299. Characterization of ovarian follicular fluids of sheep, pigs and cows using proton nuclear magnetic resonance spectroscopy
- Author
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Gosden, R. G., Sadler, I. H., Reed, D., and Hunter, R. H. F.
- Published
- 1990
- Full Text
- View/download PDF
300. Foreword
- Author
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REED, D, primary
- Published
- 1999
- Full Text
- View/download PDF
Catalog
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