Genetic design automation
Chris J. Myers, Nathan Barker, Hiroyuki Kuwahara, Kevin R. Jones, Curtis Madsen, Nam Nguyen
Abstract
Chris J. Myers, Nathan Barker, Hiroyuki Kuwahara, Kevin R. Jones, Curtis Madsen, Nam Nguyen
Abstract
Electronic design automation (EDA) tools have facilitated the design of ever more complex integrated circuits each year. Synthetic biology would also benefit from the development of genetic design automation (GDA) tools. Existing GDA tools require biologists to design genetic circuits at the molecular level, roughly equivalent to designing electronic circuits at the layout level. Analysis of these circuits is also performed at this very low level. This paper presents the background and issues involved in the development of such a GDA tool for modeling, analysis, and design.
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Electronic design automation (EDA) tools have facilitated the design of ever more complex integrated circuits each year. Synthetic biology would also benefit from the development of genetic design automation (GDA) tools. Existing GDA tools require biologists to design genetic circuits at the molecular level, roughly equivalent to designing electronic circuits at the layout level. Analysis of these circuits is also performed at this very low level. This paper presents the background and issues involved in the development of such a GDA tool for modeling, analysis, and design.
Key concepts: Electronic design automation, Automation, Computer-automated design, Computer science, Electronic circuit, Circuit design, Systems engineering, Electronics