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    题名 作者 年代 出处 被引量
1Individual Differences in Hyperlipidemia and Vitamin E Status in Response to Chronic Alcohol Self‐Administration in Cynomolgus Monkeys显示文摘Katie M.Lebold Kathleen A.Grant Willard M.Freeman Kristine M.Wiren Galen W.Miller CaitlinKiley Scott W.Leonard Maret G.Traber 2011Alcoholism: Clinical and Experimental Research2011,,3:1
2The neurovascular unit-on-a-chip:modeling ischemic stroke to stem cell therapy显示文摘The neurovascular unit and stem cell therapy in ischemic stroke:Ischemic stroke,accounts for approximately 85% of all stroke incidents and is a major global health burden.It is the leading cause of disability and death worldwide,posing immense societal and economic challenges due to the long-term care required for stro ke survivors and the significant healthcare costs associated with its treatment and management(Amarenco et al.,2009).Seonghun Kim Minjun Kim Gerald A.Grant Wonjae Lee 2024Neural Regeneration Research2024,19,7:0
3海下油田采油用多相泵的研制显示文摘自从1986年油价下跌以来,降低原油开发成本的要求越来越紧迫。Weir泵有限公司的Angus Grant介绍了该公司在开发海下采油系统中所作的研究,这种采油系统和固定采油平台相比,可以相当可观地降低生产费用。A.Grant 薛敦松 1991石油矿场机械1991,20,3:0
4Machine-learning-based head impact subtyping based on the spectral densities of the measurable head kinematics显示文摘Background:Traumatic brain injury can be caused by head impacts,but many brain injury risk estimation models are not equally accurate across the variety of impacts that patients may undergo,and the characteristics of different types of impacts are not well studied.We investigated the spectral characteristics of different head impact types with kinematics classification.Methods:Data were analyzed from 3262 head impacts from lab reconstruction,American football,mixed martial arts,and publicly available car crash data.A random forest classifier with spectral densities of linear acceleration and angular velocity was built to classify head impact types(e.g.,football,car crash,mixed martial arts).To test the classifier robustness,another 271 lab-reconstructed impacts were obtained from 5 other instrumented mouthguards.Finally,with the classifier,type-specific,nearest-neighbor regression models were built for brain strain.Results:The classifier reached a median accuracy of 96% over 1000 random partitions of training and test sets.The most important features in the classification included both low-and high-frequency features,both linear acceleration features and angular velocity features.Different head impact types had different distributions of spectral densities in low-and high-frequency ranges(e.g.,the spectral densities of mixed martial arts impacts were higher in the high-frequency range than in the low-frequency range).The type-specific regression showed a generally higher R2value than baseline models without classification.Conclusion:The machine-learning-based classifier enables a better understanding of the impact kinematics spectral density in different sports,and it can be applied to evaluate the quality of impact-simulation systems and on-field data augmentation.Xianghao Zhan Yiheng Li Yuzhe Liu Nicholas J.Cecchi Samuel J.Raymond Zhou Zhou Hossein Vahid Alizadeh Jesse Ruan Saeed Barbat Stephen Tiernan Olivier Gevaert Michael M.Zeineh Gerald A.Grant David B.Camarillo 2023Journal of Sport and Health Science2023,12,5:0
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