Cascaded Batch Prompting

August 27, 2026 ยท Grace Period ยท ๐Ÿ› EMNLP 2026 Findings

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Authors Sho Hoshino, Peinan Zhang arXiv ID 2608.27038 Category cs.CL: Computation & Language Citations 0 Venue EMNLP 2026 Findings
Abstract
Although batch prompting makes large language model inference more efficient by processing multiple instances simultaneously, it suffers from unpredictable downstream task performance. We propose cascaded batch prompting, a two-stage approach designed to resolve the unpredictability of conventional batch prompting by disentangling complex reasoning from symbol grounding. Experiments on multiple-choice question answering and natural language inference demonstrate that the proposed method outperforms the standard single prompting baseline while achieving a speedup proportional to batch size, establishing a new state of the art on the Pareto frontier.
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