default search action
Benjamin G. Lee
Person information
Refine list
refinements active!
zoomed in on ?? of ?? records
view refined list in
export refined list as
2020 – today
- 2022
- [c29]Benjamin G. Lee:
Driving Down Link Energy and Driving Up Link Density in GPU Networks. OFC 2022: 1-3 - [c28]Pavlos Maniotis, Nicolas Dupuis, Laurent Schares, Benjamin G. Lee, Daniel M. Kuchta:
Intra-node High-performance Computing Network Architecture with Fast Optical Switch Fabrics. OECC/PSC 2022: 1-4 - 2021
- [j9]Pavlos Maniotis, Laurent Schares, Benjamin G. Lee, Marc A. Taubenblatt, Daniel M. Kuchta:
Toward lower-diameter large-scale HPC and data center networks with co-packaged optics. JOCN 13(1): A67-A77 (2021) - 2020
- [j8]Pavlos Maniotis, Nicolas Dupuis, Laurent Schares, Daniel M. Kuchta, Marc A. Taubenblatt, Benjamin G. Lee:
Intra-node high-performance computing network architecture with nanosecond-scale photonic switches [Invited]. JOCN 12(12): 367-377 (2020) - [c27]Nicolas Dupuis, Jonathan E. Proesel, Nicolas Boyer, Herschel A. Ainspan, Christian W. Baks, Fuad E. Doany, Elaine Cyr, Benjamin G. Lee:
An 8×8 Silicon Photonic Switch Module with Nanosecond-Scale Reconfigurability. OFC 2020: 1-3 - [c26]Pavlos Maniotis, Laurent Schares, Benjamin G. Lee, Marc A. Taubenblatt, Daniel M. Kuchta:
Scaling HPC Networks with Co-Packaged Optics. OFC 2020: 1-3 - [c25]Jonathan E. Proesel, Nicolas Dupuis, Herschel A. Ainspan, Christian W. Baks, Fuad E. Doany, Nicolas Boyer, Elaine Cyr, Benjamin G. Lee:
A Monolithically Integrated Silicon Photonics 8×8 Switch in 90nm SOI CMOS. VLSI Circuits 2020: 1-2
2010 – 2019
- 2019
- [c24]Nicolas Dupuis, Fuad E. Doany, Russell A. Budd, Laurent Schares, Christian W. Baks, Daniel M. Kuchta, Takako Hirokawa, Benjamin G. Lee:
A Nonblocking 4×4 Mach-Zehnder Switch with Integrated Gain and Nanosecond-Scale Reconfiguration Time. OFC 2019: 1-3 - [c23]Benjamin G. Lee, Nicolas Dupuis, Fuad E. Doany, Laurent Schares, Nicolas Boyer, Nathalie Normand, Herschel A. Ainspan, Christian W. Baks, Jonathan E. Proesel, Isabel De Sousa, Mounir Meghelli, Marc A. Taubenblatt:
Toward Optical Networks using Rapid Amplified Multi-Wavelength Photonic Switches. OFC 2019: 1-3 - 2018
- [j7]Ilter Özkaya, Alessandro Cevrero, Pier Andrea Francese, Christian Menolfi, Thomas Morf, Matthias Braendli, Daniel M. Kuchta, Lukas Kull, Christian W. Baks, Jonathan E. Proesel, Marcel A. Kossel, Danny Luu, Benjamin G. Lee, Fuad E. Doany, Mounir Meghelli, Yusuf Leblebici, Thomas Toifl:
A 60-Gb/s 1.9-pJ/bit NRZ Optical Receiver With Low-Latency Digital CDR in 14-nm CMOS FinFET. IEEE J. Solid State Circuits 53(4): 1227-1237 (2018) - [c22]Alex Forencich, Valerija Kamchevska, Nicolas Dupuis, Benjamin G. Lee, Christian W. Baks, George Papen, Laurent Schares:
System-Level Demonstration of a Dynamically Reconfigured Burst-Mode Link Using a Nanosecond Si-Photonic Switch. OFC 2018: 1-3 - [c21]Benjamin G. Lee:
Photonic Switch Fabrics in Computer Communications Systems. OFC 2018: 1-22 - [c20]Benjamin G. Lee, Nicolas Dupuis, Jason Orcutt, Javier Ayala, Karen Nummy, Herschel A. Ainspan, Jonathan E. Proesel, Christian W. Baks, Douglas M. Gill, Mounir Meghelli, William M. J. Green:
FEC-Free 60-Gb/s Silicon Photonic Link Using SiGe-Driver ICs Hybrid-Integrated with Photonics-Enabled CMOS. OFC 2018: 1-3 - 2017
- [j6]Ilter Özkaya, Alessandro Cevrero, Pier Andrea Francese, Christian Menolfi, Thomas Morf, Matthias Braendli, Daniel M. Kuchta, Lukas Kull, Christian W. Baks, Jonathan E. Proesel, Marcel A. Kossel, Danny Luu, Benjamin G. Lee, Fuad E. Doany, Mounir Meghelli, Yusuf Leblebici, Thomas Toifl:
A 64-Gb/s 1.4-pJ/b NRZ Optical Receiver Data-Path in 14-nm CMOS FinFET. IEEE J. Solid State Circuits 52(12): 3458-3473 (2017) - [c19]Benjamin G. Lee:
Silicon Photonic Switching: Technology and Architecture. ECOC 2017: 1-3 - [c18]Alessandro Cevrero, Ilter Özkaya, Pier Andrea Francese, Christian Menolfi, Thomas Morf, Matthias Braendli, Daniel M. Kuchta, Lukas Kull, Jonathan E. Proesel, Marcel A. Kossel, Danny Luu, Benjamin G. Lee, Fuad E. Doany, Mounir Meghelli, Yusuf Leblebici, Thomas Toifl:
29.1 A 64Gb/s 1.4pJ/b NRZ optical-receiver data-path in 14nm CMOS FinFET. ISSCC 2017: 482-483 - [c17]Benjamin G. Lee, Nicolas Dupuis, Renato Rimolo-Donadio, Tam N. Huynh, Christian W. Baks, Douglas M. Gill, William M. J. Green:
Driver-integrated 56-Gb/s segmented electrode silicon Mach Zehnder modulator using optical-domain equalization. OFC 2017: 1-3 - 2016
- [c16]Petar K. Pepeljugoski, Nicolas Dupuis, Benjamin G. Lee:
Scalability of optical circuit switches using 2×2 Mach-Zehnder switches as a building block. OFC 2016: 1-3 - [c15]Laurent Schares, Tam N. Huynh, M. G. Wood, Russell A. Budd, Fuad E. Doany, Daniel M. Kuchta, Nicolas Dupuis, Benjamin G. Lee, Clint L. Schow, Martin Moehrle, Ariane Sigmund, W. Rehbein, Tsung-Yang Liow, L. W. Luo, G. Q. Lo:
A gain-integrated silicon photonic carrier with SOA-array for scalable optical switch fabrics. OFC 2016: 1-3 - 2015
- [j5]Alexander V. Rylyakov, Jonathan E. Proesel, Sergey V. Rylov, Benjamin G. Lee, John F. Bulzacchelli, Abhijeet Ardey, Benjamin D. Parker, Michael P. Beakes, Christian W. Baks, Clint Schow, Mounir Meghelli:
A 25 Gb/s Burst-Mode Receiver for Low Latency Photonic Switch Networks. IEEE J. Solid State Circuits 50(12): 3120-3132 (2015) - [c14]Alexander V. Rylyakov, Jonathan E. Proesel, Sergey V. Rylov, Benjamin G. Lee, John F. Bulzacchelli, Abhijeet Ardey, Benjamin D. Parker, Michael P. Beakes, Christian W. Baks, Clint Schow, Mounir Meghelli:
22.1 A 25Gb/s burst-mode receiver for rapidly reconfigurable optical networks. ISSCC 2015: 1-3 - [c13]Benjamin G. Lee, Renato Rimolo-Donadio, Alexander V. Rylyakov, Jonathan E. Proesel, John F. Bulzacchelli, Christian W. Baks, Mounir Meghelli, Clint L. Schow, Anand Ramaswamy, Jonathan E. Roth, Jae-Hyuk Shin, Brian R. Koch, Daniel K. Sparacin, Gregory A. Fish:
A WDM-Compatible 4 × 32-Gb/s CMOS-driven electro-absorption modulator array. OFC 2015: 1-3 - [c12]Anand Ramaswamy, Jonathan E. Roth, Erik J. Norberg, Robert S. Guzzon, Jae-Hyuk Shin, J. T. Imamura, Brian R. Koch, Daniel K. Sparacin, Gregory A. Fish, Benjamin G. Lee, Renato Rimolo-Donadio, Christian W. Baks, Alexander V. Rylyakov, Jonathan E. Proesel, Mounir Meghelli, Clint L. Schow:
A WDM 4×28Gbps integrated silicon photonic transmitter driven by 32nm CMOS driver ICs. OFC 2015: 1-3 - [c11]Alexander V. Rylyakov, Jonathan E. Proesel, Sergey V. Rylov, Benjamin G. Lee, John F. Bulzacchelli, Abhijeet Ardey, Clint Schow, Mounir Meghelli:
A 25 Gb/s burst-mode receiver for low latency photonic switch networks. OFC 2015: 1-3 - 2014
- [j4]Laurent Schares, Benjamin G. Lee, Fabio Checconi, Russell A. Budd, Alexander V. Rylyakov, Nicolas Dupuis, Fabrizio Petrini, Clint Schow, Pablo Fuentes, Oliver Mattes, Cyriel Minkenberg:
A Throughput-Optimized Optical Network for Data-Intensive Computing. IEEE Micro 34(5): 52-63 (2014) - [c10]Nicolas Dupuis, Benjamin G. Lee, Jonathan E. Proesel, Alexander V. Rylyakov, Renato Rimolo-Donadio, Christian W. Baks, Clint L. Schow, Anand Ramaswamy, Jonathan E. Roth, Robert S. Guzzon, Brian R. Koch, Daniel K. Sparacin, Gregory A. Fish:
30Gbps optical link utilizing heterogeneously integrated III-V/Si photonics and CMOS circuits. OFC 2014: 1-3 - [c9]Petar K. Pepeljugoski, Fuad E. Doany, Daniel M. Kuchta, Benjamin G. Lee, Clint Schow, Laurent Schares:
Connector performance analysis for D-shaped multi-core multi mode fiber. OFC 2014: 1-3 - 2013
- [c8]Benjamin G. Lee:
High-throughput fiber links for computercom interconnects. OFC/NFOEC 2013: 1-3 - [c7]Benjamin G. Lee, Alexander V. Rylyakov, William M. J. Green, Solomon Assefa, Christian W. Baks, Renato Rimolo-Donadio, Daniel M. Kuchta, Marwan H. Khater, Tymon Barwicz, Carol Reinholm, Edward Kiewra, Steven M. Shank, Clint L. Schow, Yurii A. Vlasov:
Four- and eight-port photonic switches monolithically integrated with digital CMOS logic and driver circuits. OFC/NFOEC 2013: 1-3 - [c6]Jonathan E. Proesel, Benjamin G. Lee, Christian W. Baks, Clint L. Schow:
35-Gb/s VCSEL-Based optical link using 32-nm SOI CMOS circuits. OFC/NFOEC 2013: 1-3 - 2012
- [j3]Jonathan E. Proesel, Benjamin G. Lee, Alexander V. Rylyakov, Christian W. Baks, Clint L. Schow:
Ultra-Low-Power 10 to 285 Gb/s CMOS-Driven VCSEL-Based Optical Links [Invited]. JOCN 4(11): B114-B123 (2012) - [j2]Alexander V. Rylyakov, Clint Schow, Benjamin G. Lee, William M. J. Green, Solomon Assefa, Fuad E. Doany, Min Yang, Joris Van Campenhout, Christopher V. Jahnes, Jeffrey A. Kash, Yurii A. Vlasov:
Silicon Photonic Switches Hybrid-Integrated With CMOS Drivers. IEEE J. Solid State Circuits 47(1): 345-354 (2012) - 2011
- [c5]Alexander V. Rylyakov, Clint Schow, Benjamin G. Lee, William M. J. Green, Joris Van Campenhout, Min Yang, Fuad E. Doany, Solomon Assefa, Christopher V. Jahnes, Jeffrey A. Kash, Yurii A. Vlasov:
A 3.9ns 8.9mW 4×4 silicon photonic switch hybrid integrated with CMOS driver. ISSCC 2011: 222-224
2000 – 2009
- 2009
- [j1]Michele Petracca, Benjamin G. Lee, Keren Bergman, Luca P. Carloni:
Photonic NoCs: System-Level Design Exploration. IEEE Micro 29(4): 74-85 (2009) - [c4]Gilbert Hendry, Shoaib Kamil, Aleksandr Biberman, Johnnie Chan, Benjamin G. Lee, Marghoob Mohiyuddin, Ankit Jain, Keren Bergman, Luca P. Carloni, John Kubiatowicz, Leonid Oliker, John Shalf:
Analysis of photonic networks for a chip multiprocessor using scientific applications. NOCS 2009: 104-113 - 2008
- [c3]Michele Petracca, Benjamin G. Lee, Keren Bergman, Luca P. Carloni:
Design Exploration of Optical Interconnection Networks for Chip Multiprocessors. Hot Interconnects 2008: 31-40 - 2007
- [c2]Assaf Shacham, Benjamin G. Lee, Aleksandr Biberman, Keren Bergman, Luca P. Carloni:
Photonic NoC for DMA Communications in Chip Multiprocessors. Hot Interconnects 2007: 29-38 - 2005
- [c1]Assaf Shacham, Benjamin G. Lee, Keren Bergman:
A Scalable, Self-Routed, Terabit Capacity, Photonic Interconnection Network. Hot Interconnects 2005: 147-150
Coauthor Index
manage site settings
To protect your privacy, all features that rely on external API calls from your browser are turned off by default. You need to opt-in for them to become active. All settings here will be stored as cookies with your web browser. For more information see our F.A.Q.
Unpaywalled article links
Add open access links from to the list of external document links (if available).
Privacy notice: By enabling the option above, your browser will contact the API of unpaywall.org to load hyperlinks to open access articles. Although we do not have any reason to believe that your call will be tracked, we do not have any control over how the remote server uses your data. So please proceed with care and consider checking the Unpaywall privacy policy.
Archived links via Wayback Machine
For web page which are no longer available, try to retrieve content from the of the Internet Archive (if available).
Privacy notice: By enabling the option above, your browser will contact the API of archive.org to check for archived content of web pages that are no longer available. Although we do not have any reason to believe that your call will be tracked, we do not have any control over how the remote server uses your data. So please proceed with care and consider checking the Internet Archive privacy policy.
Reference lists
Add a list of references from , , and to record detail pages.
load references from crossref.org and opencitations.net
Privacy notice: By enabling the option above, your browser will contact the APIs of crossref.org, opencitations.net, and semanticscholar.org to load article reference information. Although we do not have any reason to believe that your call will be tracked, we do not have any control over how the remote server uses your data. So please proceed with care and consider checking the Crossref privacy policy and the OpenCitations privacy policy, as well as the AI2 Privacy Policy covering Semantic Scholar.
Citation data
Add a list of citing articles from and to record detail pages.
load citations from opencitations.net
Privacy notice: By enabling the option above, your browser will contact the API of opencitations.net and semanticscholar.org to load citation information. Although we do not have any reason to believe that your call will be tracked, we do not have any control over how the remote server uses your data. So please proceed with care and consider checking the OpenCitations privacy policy as well as the AI2 Privacy Policy covering Semantic Scholar.
OpenAlex data
Load additional information about publications from .
Privacy notice: By enabling the option above, your browser will contact the API of openalex.org to load additional information. Although we do not have any reason to believe that your call will be tracked, we do not have any control over how the remote server uses your data. So please proceed with care and consider checking the information given by OpenAlex.
last updated on 2024-09-28 01:27 CEST by the dblp team
all metadata released as open data under CC0 1.0 license
see also: Terms of Use | Privacy Policy | Imprint