Machine learning and computation-enabled intelligent sensor design
نویسندگان
چکیده
Over the past several decades dramatic increase in availability of computational resources, coupled with maturation machine learning, has profoundly impacted sensor technology. In this Perspective, we discuss sensing a focus on intelligent system design. By leveraging inverse design and learning techniques, data acquisition hardware can be fundamentally redesigned to ‘lock-in’ optimal respect user-defined cost function or constraint. We envision new generation systems that reduce burden while also improving capabilities, enabling low-cost compact implementations engineered through iterative analysis data-driven outcomes. believe methodologies discussed Perspective will permeate phase hardware, thereby change challenge traditional, intuition-driven readout designs favour application-targeted perhaps highly non-intuitive implementations. Such sensors enabled by therefore foster widely distributed applications benefit from ‘big data’ analytics internet things create powerful networks, impacting various fields, including for example, biomedical diagnostics, environmental global health, among others. Traditional techniques apply at output separate signal noise. A new, more holistic potentially approach proposed is designing data, making use leaning strategies.
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ژورنال
عنوان ژورنال: Nature Machine Intelligence
سال: 2021
ISSN: ['2522-5839']
DOI: https://doi.org/10.1038/s42256-021-00360-9