Papers › DeCoOp: Robust Prompt Tuning with Out-of-Distribution Detection

DeCoOp: Robust Prompt Tuning with Out-of-Distribution Detection

1 Jun 2024arXiv:2406.00345archive 2025-07-28

Zhi Zhou, Ming Yang, Jiang-Xin Shi, Lan-Zhe Guo, Yu-Feng Li

Vision-language models (VLMs), such as CLIP, have demonstrated impressive zero-shot capabilities for various downstream tasks. Their performance can be further enhanced through few-shot prompt tuning methods. However, current studies evaluate the performance of learned prompts separately on base and new classes. This evaluation lacks practicality for real-world applications since downstream tasks cannot determine whether the data belongs to base or new classes in advance. In this paper, we explore a problem setting called Open-world Prompt Tuning (OPT), which involves tuning prompts on base classes and evaluating on a combination of base and new classes. By introducing Decomposed Prompt Tuning framework (DePT), we theoretically demonstrate that OPT can be solved by incorporating out-of-distribution detection into prompt tuning, thereby enhancing the base-to-new discriminability. Based on DePT, we present a novel prompt tuning approach, namely, Decomposed Context Optimization (DeCoOp), which introduces new-class detectors and sub-classifiers to further enhance the base-class and new-class discriminability. Experimental results on 11 benchmark datasets validate the effectiveness of DePT and demonstrate that DeCoOp outperforms current state-of-the-art methods, providing a significant 2% average accuracy improvement.

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basic_clean WNJXYK/DeCoOp/clip/simple_tokenizer.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 98f385d847636a3e · report
get_pairs WNJXYK/DeCoOp/clip/simple_tokenizer.py official repository ran · our draft was wrong MIT (permissive) · d919ae32e5e4e616 · report
metrics_new WNJXYK/DeCoOp/utils/util_algo.py official repository ran MIT (permissive) · 222ca50ef84ca0a4 · report
metrics_old WNJXYK/DeCoOp/utils/util_algo.py official repository ran MIT (permissive) · 82134aabbea6240f · report
whitespace_clean WNJXYK/DeCoOp/clip/simple_tokenizer.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 9542161e9640b858 · report
build_model WNJXYK/DeCoOp/clip/model.py official repository unverified MIT (permissive) · f3830274a7e18d5e · report
cls_acc WNJXYK/DeCoOp/utils/util_algo.py official repository unverified MIT (permissive) · f2a0a5061e7c204e · report
listdir_nohidden WNJXYK/DeCoOp/datasets/imagenet.py official repository unverified MIT (permissive) · fe317c3d4d24147a · report
load WNJXYK/DeCoOp/clip/clip.py official repository unverified MIT (permissive) · 113f884361963106 · report

Tasks

Out-of-Distribution Detection

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Methods

BASECLIPOPT

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