Title :
Requirements analysis for a product family of DNA nanodevices
Author :
Lutz, Robyn R. ; Lutz, Jack H. ; Lathrop, James I. ; Klinge, Titus H. ; Mathur, Divita ; Stull, D.M. ; Bergquist, Taylor G. ; Henderson, Eric R.
Abstract :
DNA nanotechnology uses the information processing capabilities of nucleic acids to design self-assembling, programmable structures and devices at the nanoscale. Devices developed to date have been programmed to implement logic circuits and neural networks, capture or release specific molecules, and traverse molecular tracks and mazes. Here we investigate the use of requirements engineering methods to make DNA nanotechnology more productive, predictable, and safe. We use goal-oriented requirements modeling to identify, specify, and analyze a product family of DNA nanodevices, and we use PRISM model checking to verify both common properties across the family and properties that are specific to individual products. Challenges to doing requirements engineering in this domain include the error-prone nature of nanodevices carrying out their tasks in the probabilistic world of chemical kinetics, the fact that roughly a nanomole (a 1 followed by 14 0s) of devices are typically deployed at once, and the difficulty of specifying and achieving modularity in a realm where devices have many opportunities to interfere with each other. Nevertheless, our results show that requirements engineering is useful in DNA nanotechnology and that leveraging the similarities among nanodevices in the product family improves the modeling and analysis by supporting reuse.
Keywords :
DNA; biology computing; biomolecular electronics; formal verification; logic circuits; nanotechnology; neural nets; probability; DNA nanodevices; DNA nanotechnology; PRISM model checking; chemical kinetics; information processing capabilities; logic circuits; molecular maze traversing; molecular track traversing; neural networks; nucleic acids; probabilistic world; product family; programmable devices; programmable structures; requirements analysis; requirements engineering methods; self-assembling design; specific molecule capture; specific molecule release; Analytical models; DNA; Nanoscale devices; Self-assembly; Sensors; USA Councils; DNA nan-otechnology; goal-oriented; model checking; product families; requirements modeling and analysis;
Conference_Titel :
Requirements Engineering Conference (RE), 2012 20th IEEE International
Conference_Location :
Chicago, IL
Print_ISBN :
978-1-4673-2783-1
Electronic_ISBN :
1090-750X
DOI :
10.1109/RE.2012.6345806