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mOS: A Reusable Networking Stack for Flow Monitoring Middleboxes.

, , , , and . NSDI, page 113-129. USENIX Association, (2017)

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Scaling the Performance of Network Intrusion Detection with Many-core Processors., , , , and . ANCS, page 191-192. IEEE Computer Society, (2015)Reducing tail latency using duplication: a multi-layered approach., , , , , , and . CoNEXT, page 246-259. ACM, (2019)A Case for a Stateful Middlebox Networking Stack., , , , and . SIGCOMM, page 355-356. ACM, (2015)Reducing Tail Latency via Safe and Simple Duplication., , , , , , and . CoRR, (2019)AccelTCP: Accelerating Network Applications with Stateful TCP Offloading., , , and . NSDI, page 77-92. USENIX Association, (2020)mOS: A Reusable Networking Stack for Flow Monitoring Middleboxes., , , , and . NSDI, page 113-129. USENIX Association, (2017)APUNet: Revitalizing GPU as Packet Processing Accelerator., , , , and . NSDI, page 83-96. USENIX Association, (2017)Kargus: a highly-scalable software-based intrusion detection system., , , , , , , and . CCS, page 317-328. ACM, (2012)Suppressing bot traffic with accurate human attestation., , and . ApSys, page 43-48. ACM, (2010)mTCP: a Highly Scalable User-level TCP Stack for Multicore Systems., , , , , , and . NSDI, page 489-502. USENIX Association, (2014)