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networks for quantum communication and networking. In contrast to classical optical signals, quantum states are extremely fragile and degrade rapidly due to loss, noise, and decoherence, especially over long
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consumption, range, cavitation, noise and operational robustness. Vehicle dynamics and high-speed control: Developing dynamic models and control strategies for high-speed USV operation. This may include
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loads exerted by runners on civil infrastructure. This will be investigated through both controlled experiments and measurements conducted during real-world running events. In addition, the dynamic
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a superconducting resonator. The student will gain expertise in cryogenics and low-noise radio-frequency measurements in a 10 mK dilution cryostat — applying experimental techniques similar to those
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intrinsic many-body dynamics of a system protect quantum information against errors and noise? Combining methods from statistical mechanics, quantum information, and condensed matter, you will map noisy and
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on sensors & actuators, seismic attenuation and controls. Seismic noise is a dominant low-frequency limitation for ground-based gravitational wave detectors, and is mitigated by multi-stage attenuation systems
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quantum control and noise mitigation techniques to prepare, manipulate, and protect fragile quantum states, improving the performance of mechanical systems for sensing, metrology, and tests of fundamental
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traditionally focused on environmental noise monitoring and regulatory compliance. However, the rich information contained within acoustic signals remains largely underutilized, offering significant opportunities