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Home » [2504.13763] Decoding Vision Transformers: the Diffusion Steering Lens
arXiv AI

[2504.13763] Decoding Vision Transformers: the Diffusion Steering Lens

Advanced AI BotBy Advanced AI BotApril 24, 2025No Comments2 Mins Read
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[Submitted on 18 Apr 2025 (v1), last revised 23 Apr 2025 (this version, v2)]

View a PDF of the paper titled Decoding Vision Transformers: the Diffusion Steering Lens, by Ryota Takatsuki and 3 other authors

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Abstract:Logit Lens is a widely adopted method for mechanistic interpretability of transformer-based language models, enabling the analysis of how internal representations evolve across layers by projecting them into the output vocabulary space. Although applying Logit Lens to Vision Transformers (ViTs) is technically straightforward, its direct use faces limitations in capturing the richness of visual representations. Building on the work of Toker et al. (2024)~\cite{Toker2024-ve}, who introduced Diffusion Lens to visualize intermediate representations in the text encoders of text-to-image diffusion models, we demonstrate that while Diffusion Lens can effectively visualize residual stream representations in image encoders, it fails to capture the direct contributions of individual submodules. To overcome this limitation, we propose \textbf{Diffusion Steering Lens} (DSL), a novel, training-free approach that steers submodule outputs and patches subsequent indirect contributions. We validate our method through interventional studies, showing that DSL provides an intuitive and reliable interpretation of the internal processing in ViTs.

Submission history

From: Ryota Takatsuki [view email]
[v1]
Fri, 18 Apr 2025 16:00:53 UTC (25,556 KB)
[v2]
Wed, 23 Apr 2025 10:04:20 UTC (25,566 KB)



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