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Microfluidic Very Large Scale Integration (VLSI) - Modeling, Simulation, Testing, Compilation and Physical Synthesis... Microfluidic Very Large Scale Integration (VLSI) - Modeling, Simulation, Testing, Compilation and Physical Synthesis (Hardcover, 1st ed. 2016)
Paul Pop, Wajid Hassan Minhass, Jan Madsen
R4,194 R3,600 Discovery Miles 36 000 Save R594 (14%) Ships in 12 - 19 working days

This book presents the state-of-the-art techniques for the modeling, simulation, testing, compilation and physical synthesis of mVLSI biochips. The authors describe a top-down modeling and synthesis methodology for the mVLSI biochips, inspired by microelectronics VLSI methodologies. They introduce a modeling framework for the components and the biochip architecture, and a high-level microfluidic protocol language. Coverage includes a topology graph-based model for the biochip architecture, and a sequencing graph to model for biochemical application, showing how the application model can be obtained from the protocol language. The techniques described facilitate programmability and automation, enabling developers in the emerging, large biochip market.

Microfluidic Very Large Scale Integration (VLSI) - Modeling, Simulation, Testing, Compilation and Physical Synthesis... Microfluidic Very Large Scale Integration (VLSI) - Modeling, Simulation, Testing, Compilation and Physical Synthesis (Paperback, Softcover reprint of the original 1st ed. 2016)
Paul Pop, Wajid Hassan Minhass, Jan Madsen
R2,873 Discovery Miles 28 730 Ships in 10 - 15 working days

This book presents the state-of-the-art techniques for the modeling, simulation, testing, compilation and physical synthesis of mVLSI biochips. The authors describe a top-down modeling and synthesis methodology for the mVLSI biochips, inspired by microelectronics VLSI methodologies. They introduce a modeling framework for the components and the biochip architecture, and a high-level microfluidic protocol language. Coverage includes a topology graph-based model for the biochip architecture, and a sequencing graph to model for biochemical application, showing how the application model can be obtained from the protocol language. The techniques described facilitate programmability and automation, enabling developers in the emerging, large biochip market.

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