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theoretical results, a significant part of the project activities will be devoted to the implementation of the techniques in state-of-the-art verification tools developed at FBK and their application to real
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microsystems, mesoscale components, and printed electronic or structural elements, including those fabricated on flexible and/or biodegradable substrates, with transduction functionalities exploiting various
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, but also its safety, dependability, and resilience with respect to run-time faults. To this aim, complex systems implement mechanisms to timely detect components’ faults and to isolate them, before
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sensors. The architecture integrates (i) an ultra-low form factor microfluidic separation module and (ii) a multi-modal SiC sensor for precise analyte identification. The seamless integration of a
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into consistent object-level components and associate them with semantic categories and attributes (iii) To design mechanisms to refine incomplete or ambiguous scene regions into coherent structures (iv) To study
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functional quality. The design of such components needs a better definition of requirements to assure their functionality, intersected with their manufacturability at the extreme end of achievable accuracy
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sciencesEducation LevelMaster Degree or equivalent Skills/Qualifications We seek a highly motivated scientist who is able to work both independently and as part of a multidisciplinary team, demonstrates strong
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procedures, quality-control requirements and reproducible research practices. Ability to work both independently and as part of an interdisciplinary and international research team. Willingness and ability
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Ability to work independently and as part of an international and interdisciplinary research team Good written and spoken English Desirable skills: Experience with laser-based fabrication techniques