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, adaptable facility that can be used to test advanced control algorithms, generate data for modeling of equipment, test new ideas for grid responsiveness, etc. References Pertzborn, A.J. (2022) ‘Implementation
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location 50.68.31.B7380 Gaithersburg, MD NIST only participates in the February and August reviews. Advisers name email phone Jason J. Gorman gorman@nist.gov 301.975.3446 Description We are developing
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modalities such as MRI, computed tomography (CT), positron emission tomography (PET), and ultrasound (US). These combined techniques such as PET-MR or MR-US have unique challenges when developing quantitative
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to develop traceable materials and methods to characterize the performance of magnetic resonance imaging (MRI) scanners, particularly their ability to noninvasively measure diffusion properties, such as the
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stephanie.watson@nist.gov 301.975.6448 Description This research focuses on developing improved methodologies for characterizing and understanding the deterioration and durability of concrete materials, which
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Description Developing next-generation joint communcations and sensing applications requires precise measurements of the radio frequency propagation environment as well as sensing target characterization
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NIST only participates in the February and August reviews. This opportunity focuses on the development and implementation of liquid chromatography mass spectrometry methods for the quantitation
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volume and quality that is consistent with the use of statistical methods; machine learning techniques for knowledge discovery; protein-protein interaction network analysis; novel algorithms for next
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these complex communities by developing sample preparation techniques that are compatible with NMR and mass spectrometry-based techniques. This will allow parallel multimodal analysis including proteomic
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preparation, manipulation, and electrical probing in conjunction with electron microscopy (SEM). Such probes not only have proven research utility, but are also used in industrial development and process