Papers › Frustratingly Easy Test-Time Adaptation of Vision-Language Models

Frustratingly Easy Test-Time Adaptation of Vision-Language Models

28 May 2024arXiv:2405.18330archive 2025-07-28

Matteo Farina, Gianni Franchi, Giovanni Iacca, Massimiliano Mancini, Elisa Ricci

Vision-Language Models seamlessly discriminate among arbitrary semantic categories, yet they still suffer from poor generalization when presented with challenging examples. For this reason, Episodic Test-Time Adaptation (TTA) strategies have recently emerged as powerful techniques to adapt VLMs in the presence of a single unlabeled image. The recent literature on TTA is dominated by the paradigm of prompt tuning by Marginal Entropy Minimization, which, relying on online backpropagation, inevitably slows down inference while increasing memory. In this work, we theoretically investigate the properties of this approach and unveil that a surprisingly strong TTA method lies dormant and hidden within it. We term this approach ZERO (TTA with "zero" temperature), whose design is both incredibly effective and frustratingly simple: augment N times, predict, retain the most confident predictions, and marginalize after setting the Softmax temperature to zero. Remarkably, ZERO requires a single batched forward pass through the vision encoder only and no backward passes. We thoroughly evaluate our approach following the experimental protocol established in the literature and show that ZERO largely surpasses or compares favorably w.r.t. the state-of-the-art while being almost 10x faster and 13x more memory-friendly than standard Test-Time Prompt Tuning. Thanks to its simplicity and comparatively negligible computation, ZERO can serve as a strong baseline for future work in this field. The code is available at https://github.com/FarinaMatteo/zero.

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basic_clean farinamatteo/zero/clip/simple_tokenizer.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 98f385d847636a3e · report
confidence_filter farinamatteo/zero/ttas/base.py official repository ran MIT (permissive) · 23f0fc9cbefff039 · report
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whitespace_clean farinamatteo/zero/clip/simple_tokenizer.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 9542161e9640b858 · report
build_model farinamatteo/zero/maple_clip/model.py official repository unverified MIT (permissive) · 48ac2bd4dcbfb717 · report
build_model farinamatteo/zero/clip/model.py official repository unverified MIT (permissive) · aa56b568a90f8516 · report
load farinamatteo/zero/maple_clip/clip.py official repository unverified MIT (permissive) · fbf8c0143d9c48e3 · report
load farinamatteo/zero/clip/clip.py official repository unverified MIT (permissive) · 88d0e8acec4aead0 · report

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Test-time Adaptation

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Softmax

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