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DAC2025顶会

StreamCSD: SSD-Autonomous Stream Management via In-Storage Content Learning

Wenjie Li, Xiang Chen, Yelin Shan, Jiapin Wang, Yunxin Huang, Yafei Yang, Tao Lu, You Zhou, Fei Wu

2025年份
1顶会引用

摘要

Write amplification (WA) from migrating valid pages during garbage collection (GC) degrades SSD performance and lifespan. Although stream management based on high-level software semantics reduces WA, existing solutions require host modifications, hindering their adoption. We introduce StreamCSD, an SSD-autonomous stream management approach using in-storage content learning, eliminating host-side changes. Leveraging compression ratios from embedded compressors in computational storage drives (CSDs), StreamCSD employs a streaming Kmeans algorithm to cost-efficiently cluster data into streams. Evaluations show that StreamCSD reduces WA from 1.7 to 1.06 under multimodal generative AI workloads, matching state-of-the-art methods with minimal impact on bandwidth. StreamCSD operates without host modifications, promoting broader adoption of multi-stream SSDs.

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