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Extending the software-defined network boundary., , and . SIGCOMM, page 381-382. ACM, (2014)Augmenting cloud architectures to support decentralized applications., , and . IM, page 544-547. IEEE, (2017)Physics Community Needs, Tools, and Resources for Machine Learning., , , , , , , , , and 11 other author(s). CoRR, (2022)The Zwicky Transient Facility: System Overview, Performance, and First Results, , , , , , , , , and 106 other author(s). (2019)cite arxiv:1902.01932Comment: Published in PASP Focus Issue on the Zwicky Transient Facility (https://dx.doi.org/10.1088/1538-3873/aaecbe). 21 Pages, 12 Figures.A Software Ecosystem for Deploying Deep Learning in Gravitational Wave Physics., , , , , , , and . FlexScience@HPDC, page 9-17. ACM, (2022)Trusted Click: Overcoming Security issues of NFV in the Cloud., , and . SDN-NFV@CODASPY, page 31-36. ACM, (2017)Apps with Hardware: Enabling Run-time Architectural Customization in Smart Phones., , and . USENIX Annual Technical Conference, page 621-634. USENIX Association, (2016)Enhancing gravitational-wave science with machine learning., , , , , , , , , and 16 other author(s). Mach. Learn. Sci. Technol., 2 (1): 11002 (2021)Tails: Chasing Comets with the Zwicky Transient Facility and Deep Learning., , , , , , , , , and 5 other author(s). CoRR, (2021)A high-energy neutrino coincident with a tidal disruption event, , , , , , , , , and 48 other author(s). (2020)cite arxiv:2005.05340Comment: 55 pages, 8 figures, 8 tables.