FalconFS: Distributed File System for Large-Scale Deep Learning Pipeline
Jingwei Xu, Junbin Kang, Mingkai Dong, Mingyu Liu, Lu Zhang, Shaohong Guo, Ziyan Qiu, Mingzhen You, Ziyi Tian, Anqi Yu, Tianhong Ding, Xinwei Hu, Haibo Chen
摘要
Client-side metadata caching has long been considered an effective method for accelerating metadata operations in distributed file systems (DFSs). However, we have found that client-side state (e.g., caching) is not only ineffective but also consumes valuable memory resources in the deep learning pipelines. We thus propose FalconFS, a DFS optimized for deep learning pipelines with the stateless-client architecture. Specifically, instead of performing client-side path resolution and caching, FalconFS efficiently resolves paths on the server side using hybrid metadata indexing and lazy namespace replication. FalconFS also boosts server concurrency with concurrent request merging and provides easy deployment with VFS shortcut. Evaluations against CephFS and Lustre show that FalconFS achieves up to 5.72 throughput for small file read/write and up to 12.81 throughput for deep learning model training. FalconFS has been running in Huawei autonomous driving system's production environment with 10,000 NPUs for one year and has been open-sourced.
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引用它的顶会 Paper2
- SwitchFS: Asynchronous Metadata Updates for Distributed Filesystems with In-Network CoordinationJingwei Xu, Mingkai Dong, Qiulin Tian, Ziyi Tian 等EuroSys 2026 · 被引用 1 次
- Accelerating Metadata Management of DFS via Speculative Permission CheckingYiduo Wang, Linghang Meng, Liang Li, Jie WuICDE 2026
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- Hermes: A Fast, Fault-Tolerant and Linearizable Replication ProtocolAntonios Katsarakis, Vasilis Gavrielatos, M. R. Siavash Katebzadeh, Arpit Joshi 等ASPLOS 2020 · 被引用 47 次
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