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Scaling Context, Not Parameters: Training a Compact 7B Language Model for Efficient Long-Context Processing

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arxiv 2505.08651 v1 pith:SJSV3N4F submitted 2025-05-13 cs.CL cs.LG

classification cs.CLcs.LG
keywords modelcontextlong-contextlanguagelengthopentrainingachieve
verification ladder T0 review T1 audit T2 compute T3 formal
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We present MegaBeam-Mistral-7B, a language model that supports 512K-token context length. Our work addresses practical limitations in long-context training, supporting real-world tasks such as compliance monitoring and verification. Evaluated on three long-context benchmarks, our 7B-parameter model demonstrates superior in-context learning performance on HELMET and robust retrieval and tracing capability on RULER. It is currently the only open model to achieve competitive long-range reasoning on BABILong at 512K context length without RAG or targeted fine-tuning. Released as fully open source under the Apache 2.0 license, the model has been downloaded over 100,000 times on Hugging Face. Model available at: https://huggingface.co/aws-prototyping/MegaBeam-Mistral-7B-512k

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Cited by 1 Pith paper

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  1. SeqPE: Transformer with Sequential Position Encoding

    cs.LG 2025-06 reject novelty 6.0 of 10

    SeqPE encodes each position as a symbolic digit sequence through a small Transformer, and with contrastive plus distillation losses it reports improved extrapolation in language, QA, and image classification.

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