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sustainable and future-proof. At the same time, we are developing the chips and sensors of the future, whilst also setting the foundations for the software technologies to run on this new generation
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networks, Internet of Things sensors, and analytics platforms that gather data from those infrastructures, as well as telecommunications networks. To fully support the operation of cities, telecommunications
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our daily lives. Technology such as the electricity grid, which our faculty is helping to make completely sustainable and future-proof. At the same time, we are developing the chips and sensors
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physicists at the University of Amsterdam who are building a new type of atom interferometer. Atom interferometers are quantum sensors that exploit the wave-particle duality of matter to achieve exceptional
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work at ultimately low-noise and energy efficient amplifiers to interface photonic spectral sensors for measuring at the same time Temperature and Pressure using optical fibers. The two steps are nicely
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analog circuits for implementing ONNs for computing. Modeling, simulate and benchmark different computing tasks such as sensor data processing. Explore ONN implementation topology and its energy efficiency
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? Join our vibrant team in designing and demonstrating cryo-CMOS integrated circuits to interface quantum computers and quantum sensors! Job description Quantum computers promise to solve problems
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and spatially complex nature of MRI signals. Each MRI examination involves multiple pulse sequences, with signal acquisition being sensitive to coil placement, sensor geometry, B0/B1 inhomogeneities
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a primary emphasis on designing smart algorithms to trigger non-invasive blood pressure (NIBP) measurements at critical times. This will involve leveraging physiological sensor signals such as the
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to source localization based on microphone arrays or distributed sensors. This PhD project will focus on the development of novel methods and algorithms for airborne noise source localization in generic urban