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Paper · arXiv 2408.12245

Scalable Autoregressive Image Generation with Mamba

Haopeng Li, Jinyue Yang, Kexin Wang, Xuerui Qiu, Yuhong Chou, Xin Li, Guoqi Li

26 upvotesAugust 22, 2024arXiv 预印本
AI 摘要

AiM, an autoregressive image generative model using the Mamba state-space architecture, achieves superior quality and faster inference speed compared to existing AR and diffusion models.

autoregressive (AR) image generative modelMamba architecturestate-space modellong-sequence modelinglinear time complexityTransformersnext-token prediction paradigmvisual generative tasksefficient long-sequence modelingscalabilityFIDImageNet1Kdiffusion models

Abstract

We introduce AiM, an autoregressive (AR) image generative model based on Mamba architecture. AiM employs Mamba, a novel state-space model characterized by its exceptional performance for long-sequence modeling with linear time complexity, to supplant the commonly utilized Transformers in AR image generation models, aiming to achieve both superior generation quality and enhanced inference speed. Unlike existing methods that adapt Mamba to handle two-dimensional signals via multi-directional scan, AiM directly utilizes the next-token prediction paradigm for autoregressive image generation. This approach circumvents the need for extensive modifications to enable Mamba to learn 2D spatial representations. By implementing straightforward yet strategically targeted modifications for visual generative tasks, we preserve Mamba's core structure, fully exploiting its efficient long-sequence modeling capabilities and scalability. We provide AiM models in various scales, with parameter counts ranging from 148M to 1.3B. On the ImageNet1K 256*256 benchmark, our best AiM model achieves a FID of 2.21, surpassing all existing AR models of comparable parameter counts and demonstrating significant competitiveness against diffusion models, with 2 to 10 times faster inference speed. Code is available at https://github.com/hp-l33/AiM

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