OPRM, a training-free chunk-and-select inference method, improves recurrent LLMs by 14-51% on LongBench and sets a 7B-class LongBench v2 record, while raising doubts about whether recurrent models exploit long-range dependencies.
xLSTM 7B: A Recurrent LLM for Fast and Efficient Inference
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abstract
Recent breakthroughs in solving reasoning, math and coding problems with Large Language Models (LLMs) have been enabled by investing substantial computation budgets at inference time. Therefore, inference speed is one of the most critical properties of LLM architectures, and there is a growing need for LLMs that are efficient and fast at inference. Recently, LLMs built on the xLSTM architecture have emerged as a powerful alternative to Transformers, offering linear compute scaling with sequence length and constant memory usage, both highly desirable properties for efficient inference. However, such xLSTM-based LLMs have yet to be scaled to larger models and assessed and compared with respect to inference speed and efficiency. In this work, we introduce xLSTM 7B, a 7-billion-parameter LLM that combines xLSTM's architectural benefits with targeted optimizations for fast and efficient inference. Our experiments demonstrate that xLSTM 7B achieves performance on downstream tasks comparable to other similar-sized LLMs, while providing significantly faster inference speeds and greater efficiency compared to Llama- and Mamba-based LLMs. These results establish xLSTM 7B as the fastest and most efficient 7B LLM, offering a solution for tasks that require large amounts of test-time computation. Our work highlights xLSTM's potential as a foundational architecture for methods building on heavy use of LLM inference. Our model weights, model code and training code are open-source.
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cs.LG 1years
2025 1verdicts
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Overflow Prevention Enhances Long-Context Recurrent LLMs
OPRM, a training-free chunk-and-select inference method, improves recurrent LLMs by 14-51% on LongBench and sets a 7B-class LongBench v2 record, while raising doubts about whether recurrent models exploit long-range dependencies.