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Related Articles from SNS
Whole-Pool Setwise Reranking with Long-Context Language Models
Announce Type: new Abstract: Previous LLM-based passage re-rankers are often expensive and slow because the input context constraints require the LLM to make many dependent model calls. We study how recent long-context LLMs change this problem: when the full set of retrieved candidate passages can be shown to the model at once, ranking no longer has to be reconstructed from many overlapping local comparisons.