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key component at this stage will be the development of quantum characterization protocols for spin qubits in the presence of time-correlated noise, as well as reliable tools for simulating the quantum
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NIST only participates in the February and August reviews. The development of therapies and other products based on pluripotent stem cells requires control of the pluripotent and differentiated
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to profile the microbial communities based on metagenomics and transcriptomics approaches. The comprehensive profiling methodologies will provide the foundation for the development of reference materials
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are developing machine learning-driven autonomous metrology research systems, with the goal of accelerating the development of self-correcting photonic and quantum sensor networks. These systems combine machine
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and development of gene therapies. This NIST postdoctoral research opportunity focuses on developing robust protocols and refining measurement methods in infectious titer assays. Activities can include
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results. We are also pursuing advanced data analysis techniques and development of neutron instrumentation and sample environments in support of autonomous experimentation and high-throughput measurement
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to profile the microbial communities based on metagenomics and transcriptomics approaches. The comprehensive profiling methodologies will provide the foundation for the development of reference materials
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properties, facilitating the development of accurate standard tests and predictive methods, and their safe use at full-scale. Keywords Laminar burning velocity; Refrigerant flammability; Numerical flame
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identification of spectral features by computer vision and machine learning. Our computational methods development has three primary goals. The first goal is continued support of expert-driven biomolecular
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of materials under operational conditions improves fundamental understanding and accelerates development of highly-reliable materials and devices. Applicants will work to develop relevant test approaches