targz
In this episode of targz, Franco Maria Nardini [https://www.linkedin.com/in/fmnardini/], Research Director at ISTI-CNR [https://www.linkedin.com/company/cnr-isti/], explains Seismic, a two-level inverted index for fast retrieval over learned sparse representations. It beats graph-based state-of-the-art methods by up to 3.5x in speed with comparable memory, and opens new directions in inference-free and edge retrieval. Want to know more? checkout the paper: Efficient Inverted Indexes for Approximate Retrieval over Learned Sparse Representations [https://arxiv.org/abs/2404.18812]
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