177 evolution-"https:"-"https:"-"https:"-"https:"-"https:"-"https:"-"CEA-Saclay" positions at NIST
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. The NIST channel sounding measurement team specializes in the development and use of instrumentation in the 10s of GHz based on phased array antennas that is optimized to capture dynamically evolving
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insights into medical inquiry and in the development of medical diagnostics to advance human health, significant gaps persist in the measurement services and measurement science tools needed to obtain
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topics include 1) the development of measurement methods and techniques to collect, sample, and characterize release material from nanocomposites under various use scenarios to aid downstream hazard
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devices, coatings, food-related materials, and personal care. Work emphasizes the development of analytical methods for quantitative measurement of engineered nanoparticle properties, including bulk and
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. The development of specific genome editing technologies leads to the emerging of epigenetic editing, which now allows the epigenetic editing at specific loci and enables direct study of functional relevance
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on the development and application of high-resolution measurement methods to study fundamental problems with broad industrial impact in areas such as the service life prediction of polymeric materials. Recent projects
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. This project will focus on the development of systematic, reliable methods for measuring viability of individual cells in a population. Understanding the effect of sublethal dosing chemical, antibiotic or UV
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are interested in using Machine Learning and AI techniques to enable autonomous, AI-Driven, experimental research. There are many aspects of this nascent field that require further development. This includes
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the last 2 decades.[1] However, corresponding development of robust and reproducible in vitro assays for evaluating the critical quality attributes and/or the biological responses of these nano-enabled drug
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against experiment and by development of reference problems. Important issues include controlling round-off and truncation error to obtain high accuracy solutions in complex, large scale simulations, and