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dc.contributor.authorLu, Guan-Rueien_US
dc.contributor.authorBanerjee, Ansumanen_US
dc.contributor.authorBhattacharya, Bhargab B.en_US
dc.contributor.authorHo, Tsung-Yien_US
dc.contributor.authorChen, Hung-Mingen_US
dc.date.accessioned2019-04-02T06:00:34Z-
dc.date.available2019-04-02T06:00:34Z-
dc.date.issued2018-10-01en_US
dc.identifier.issn1550-4832en_US
dc.identifier.urihttp://dx.doi.org/10.1145/3229052en_US
dc.identifier.urihttp://hdl.handle.net/11536/148789-
dc.description.abstractIn the area of biomedical engineering, digital-microfluidic biochips (DMFBs) have received considerable attention because of their capability of providing an efficient and reliable platform for conducting point-of-care clinical diagnostics. System reliability, in turn, mandates error-recoverability while implementing biochemical assays on-chip for medical applications. Unfortunately, the technology of DMFBs is not yet fully equipped to handle error-recovery from various microfluidic operations involving droplet motion and reaction. Recently, a number of cyber-physical systems have been proposed to provide real-time checking and error-recovery in assays based on the feedback received from a few on-chip checkpoints. However, to synthesize robust feedback systems for different types of DMFBs, certain practical issues need to be considered such as co-optimization of checkpoint placement, error-recoverability, and layout of droplet-routing pathways. For application-specific DMFBs, we propose here an algorithm that minimizes the number of checkpoints and determines their locations to cover every path in a given droplet-routing solution. Next, for general-purpose DMFBs, where the checkpoints are pre-deployed in specific locations, we present a checkpoint-aware routing algorithm such that every droplet-routing path passes through at least one checkpoint to enable error-recovery and to ensure physical routability of all droplets. Furthermore, we also propose strategies for executing the algorithms in reliable mode to enhance error-recoverability. The proposed methods thus provide reliability-hardening mechanisms for a wide class of cyber-physical DMFBs.en_US
dc.language.isoen_USen_US
dc.subjectPhysical design automationen_US
dc.subjectcheckpointen_US
dc.subjectsensoren_US
dc.subjectdroplet routingen_US
dc.subjectmicrofluidicsen_US
dc.subjectbiochipsen_US
dc.titleReliability Hardening Mechanisms in Cyber-Physical Digital-Microfluidic Biochipsen_US
dc.typeArticleen_US
dc.identifier.doi10.1145/3229052en_US
dc.identifier.journalACM JOURNAL ON EMERGING TECHNOLOGIES IN COMPUTING SYSTEMSen_US
dc.citation.volume14en_US
dc.contributor.department電子工程學系及電子研究所zh_TW
dc.contributor.departmentDepartment of Electronics Engineering and Institute of Electronicsen_US
dc.identifier.wosnumberWOS:000457140900003en_US
dc.citation.woscount0en_US
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