Oxbow: A Coordinated Architecture for Multi-Component File Systems
Jongyul Kim, Jaehwan Lee, Inhoe Koo, Peizhe Liu, Jiyuan Zhang, Junho Ahn, Tianyin Xu, Youngjin Kwon
Abstract
Fast storage hardware and computational SSDs have outpaced the traditional kernel-centric or kernel-bypass file system designs, fragmenting modern storage stacks across library file systems, kernel subsystems, and in-device file systems. Each architecture offers only a subset of desired properties: userlevel designs deliver low latency but lose kernel services and isolation, kernel file systems retain rich functionality but become CPU-bound and slow, and device-resident logic reduces host load but suffers from PCIe latency and wimpy processors. This paper presents Oxbow, a coordinated storage architecture that composes kernel, user-space, and device components to achieve all four goals simultaneously: high performance, strong kernel interoperability, low CPU consumption, and fast development velocity. Oxbow combines a kernel-based read path with a kernel-bypassing write path, shared-ownership metadata, and Split Journaling, a host–device journaling mechanism that decouples fsync from background commits using staging areas and DMA-based snapshots. We demonstrate that Oxbow delivers kernel-level protection and sharing semantics while matching or exceeding the performance of state-of-the-art user-level file systems and substantially reducing host CPU use through offload to computational SSDs.
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