Title :
Defect Tolerance Based on Graceful Degradation and Dynamic Reconfiguration for Digital Microfluidics-Based Biochips
Author :
Su, Fei ; Chakrabarty, Krishnendu
Author_Institution :
Dept. of Electr. & Comput. Eng., Duke Univ., Durham, NC
Abstract :
Defect tolerance is an important design consideration for microfluidics-based biochips that are used for safety-critical applications. The authors propose a defect-tolerance methodology based on graceful degradation and dynamic reconfiguration. A tile-based biochip architecture is first introduced, which is scalable for large-scale bioassays. A clustered defect model is used to evaluate the graceful-degradation method for tile-based biochips. The proposed schemes ensure that the bioassays mapped to a droplet-based microfluidic array during design can be executed on a defective biochip through operation rescheduling and/or resource rebinding. Real-life biochemical procedures, namely polymerase chain reaction and multiplexed in vitro diagnostics on human physiological fluids, are used to evaluate the proposed defect-tolerance schemes
Keywords :
bioMEMS; microfluidics; biochips; clustered defect; defect tolerance; digital microfluidics; dynamic reconfiguration; graceful degradation; large scale bioassays; tile based biochip architecture; Biomedical monitoring; Degradation; Humans; In vitro; Laboratories; Large-scale systems; Microfluidics; Polymers; Sugar; Testing; Defect tolerance; graceful degradation; microfluidics; reconfiguration;
Journal_Title :
Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TCAD.2006.882480