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Design and exploration tools for deep submicron systems

Min Gang Xu, Fadi Kurdahi

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Abstract

The importance of effective and efficient accounting of layout effects is well-established in High-Level Synthesis (HLS), since it allows more realistic exploration of the design space and the generation of solutions with predictable metrics. This feature is highly desirable in order to avoid unnecessary iterations through the design process. In this paper, we address the problem of layout-driven scheduling-binding as these steps have a direct relevance on the final performance of the design. By producing not only an RTL netlist but also an approximate physical topology of implementation at the chip level, we ensure that the solution will perform at the predicted metric once implemented, thus avoiding unnecessary delays in the design process.

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What this paper is about

The importance of effective and efficient accounting of layout effects is well-established in High-Level Synthesis (HLS), since it allows more realistic exploration of the design space and the generation of solutions with predictable metrics. This feature is highly desirable in order to avoid unnecessary iterations through the design process. In this paper, we address the problem of layout-driven scheduling-binding as these steps have a direct relevance on the final performance of the design. By producing not only an RTL netlist but also an approximate physical topology of implementation at the chip level, we ensure that the solution will perform at the predicted metric once implemented, thus avoiding unnecessary delays in the design process.

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Available abstract

The importance of effective and efficient accounting of layout effects is well-established in High-Level Synthesis (HLS), since it allows more realistic exploration of the design space and the generation of solutions with predictable metrics. This feature is highly desirable in order to avoid unnecessary iterations through the design process. In this paper, we address the problem of layout-driven scheduling-binding as these steps have a direct relevance on the final performance of the design. By producing not only an RTL netlist but also an approximate physical topology of implementation at the chip level, we ensure that the solution will perform at the predicted metric once implemented, thus avoiding unnecessary delays in the design process.

Key concepts: Netlist, Design space exploration, Computer science, High-level synthesis, Scheduling (production processes), Physical design, Process (computing), Metric (unit)

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