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Section System components describes the main components used in the implementation of the sensor node.
Optoelectronic components have been used as sensible elements, allowing a relatively simple and quite reliable implementation of the sensor.
In a model study, implementation of the sensor was validated by measuring the high sensitivity C-reactive protein (hs-CRP) level in human serum.
The sensor can be integrated in CMOS and uses a technology similar to the magnetic random access memory (MRAM) technology; therefore the implementation of the sensor is expected to be cost-effective in ICs containing embedded MRAM.
The structure of the sensor and measurement system are designed with auto- zeroing and auto-compensation, and its sensitivity, noise level, and drift compensation are calculated to offer quantitative guidance for the design and implementation of the sensor.
Implementation of the sensor technology in animal studies may provide new opportunities for combined studies of VDR modulation and drug kinetics and delivery.
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Measures of power consumption confirm the feasibility of the implementation of this sensor network.
These results also suggest that a MEMS implementation of this sensor should provide the capability of measuring wall shear stress fluctuations in turbulent flows.
The design and implementation of the tactile sensor are described.
The paper details the design and implementation of the proposed sensor and sensing methodology.
Sections 4 and 5 focus on the design and implementation of the wearable sensor and smart home infrastructure, respectively.
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