TY - GEN
T1 - The VTR project
T2 - 2012 ACM/SIGDA International Symposium on Field Programmable Gate Arrays, FPGA'12
AU - Rose, Jonathan
AU - Luu, Jason
AU - Yu, Chi Wai
AU - Densmore, Opal
AU - Goeders, Jeffrey
AU - Somerville, Andrew
AU - Kent, Kenneth B.
AU - Jamieson, Peter
AU - Anderson, Jason
N1 - Publication details (e.g. title, author(s), publication statuses and dates) are captured on an “AS IS” and “AS AVAILABLE” basis at the time of record harvesting from the data source. Suggestions for further amendments or supplementary information can be sent to [email protected].
PY - 2012
Y1 - 2012
N2 - To facilitate the development of future FPGA architectures and CAD tools - both embedded programmable fabrics and pure-play FPGAs - there is a need for a large scale, publicly available software suite that can synthesize circuits into easily-described hypothetical FPGA architectures. These circuits should be captured at the HDL level, or higher, and pass through logical and physical synthesis. Such a tool must provide detailed modelling of area, performance and energy to enable architecture exploration. As software flows themselves evolve to permit design capture at ever higher levels of abstraction, this downstream full-implementation flow will always be required. This paper describes the current status and new release of an ongoing effort to create such a flow - the 'Verilog to Routing' (VTR) project, which is a broad collaboration of researchers. There are three core tools: ODIN II for Verilog Elaboration and front-end hard-block synthesis, ABC for logic synthesis, and VPR for physical synthesis and analysis. ODIN II now has a simulation capability to help verify that its output is correct, as well as specialized synthesis at the elaboration step for multipliers and memories. ABC is used to optimize the 'soft' logic of the FPGA. The VPR-based packing, placement and routing is now fully timing-driven (the previous release was not) and includes new capability to target complex logic blocks. In addition we have added a set of four large benchmark circuits to a suite of previously-released Verilog HDL circuits. Finally, we illustrate the use of the new flow by using it to help architect a floating-point unit in an FPGA, and contrast it with a prior, much longer effort that was required to do the same thing. © 2012 ACM.
AB - To facilitate the development of future FPGA architectures and CAD tools - both embedded programmable fabrics and pure-play FPGAs - there is a need for a large scale, publicly available software suite that can synthesize circuits into easily-described hypothetical FPGA architectures. These circuits should be captured at the HDL level, or higher, and pass through logical and physical synthesis. Such a tool must provide detailed modelling of area, performance and energy to enable architecture exploration. As software flows themselves evolve to permit design capture at ever higher levels of abstraction, this downstream full-implementation flow will always be required. This paper describes the current status and new release of an ongoing effort to create such a flow - the 'Verilog to Routing' (VTR) project, which is a broad collaboration of researchers. There are three core tools: ODIN II for Verilog Elaboration and front-end hard-block synthesis, ABC for logic synthesis, and VPR for physical synthesis and analysis. ODIN II now has a simulation capability to help verify that its output is correct, as well as specialized synthesis at the elaboration step for multipliers and memories. ABC is used to optimize the 'soft' logic of the FPGA. The VPR-based packing, placement and routing is now fully timing-driven (the previous release was not) and includes new capability to target complex logic blocks. In addition we have added a set of four large benchmark circuits to a suite of previously-released Verilog HDL circuits. Finally, we illustrate the use of the new flow by using it to help architect a floating-point unit in an FPGA, and contrast it with a prior, much longer effort that was required to do the same thing. © 2012 ACM.
KW - architecture
KW - CAD
KW - FPGA
UR - https://www.scopus.com/pages/publications/84863258958
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-84863258958&origin=recordpage
U2 - 10.1145/2145694.2145708
DO - 10.1145/2145694.2145708
M3 - RGC 32 - Refereed conference paper (with host publication)
SN - 9781450311557
T3 - ACM/SIGDA International Symposium on Field Programmable Gate Arrays - FPGA
SP - 77
EP - 86
BT - FPGA'12 - Proceedings of the 2012 ACM/SIGDA International Symposium on Field Programmable Gate Arrays
Y2 - 22 February 2012 through 24 February 2012
ER -