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Revisiting Parallel Context Windows: A Frustratingly Simple Alternative and Chain-of-Thought Deterioration

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arxiv 2305.15262 v1 pith:RG4EBXKU submitted 2023-05-24 cs.CL

classification cs.CL
keywords contextchain-of-thoughtdeteriorationlanguagemodelsparallelsimplewindows
verification ladder T0 review T1 audit T2 compute T3 formal
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We identify two crucial limitations in the evaluation of recent parallel-integrated method Parallel Context Windows (PCW), which extends the maximum context lengths of language models, e.g., 2048 for LLaMA, by harnessing window-wise attention and positional embedding techniques. We first show that a simple yet strong baseline, weighted sum ensemble, is missing for the in-context few-shot classification. Moreover, on more challenging Chain-of-Thought (CoT) reasoning (e.g., HotpotQA), PCW would present unexpected deterioration regarding question miscomprehension and false inference. Based on our findings, we suggest that the existing PCW design may not guarantee sufficient improvement and practicality in handling lengthy documents in real-world applications. More community efforts on enabling language models' long context understanding ability should be paid.

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    cs.CL 2025-02 conditional novelty 6.0 of 10

    RoToR makes a frozen LLM order-invariant by circularly rotating a single global sort of segment position IDs, and Selective Routing combines it with the original model for mixed lists.

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