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Tool-IQA: Augmenting Image Quality Assessment with Simple Tools

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Vision-Language Models (VLMs) have been increasingly adopted for Image Quality Assessment (IQA). However, current methods typically employ a static one-shot scoring paradigm, despite the fact that humans assess image quality through dynamic visual inspection, e.g., selectively adjusting views to verify details and subtle artifacts. Specifically, relying solely on a single-pass observation introduces two primary limitations: first, perceiving the image only at a global scale restricts the assessment of finer local details; second, the original intensity distribution of the image may overwhelm the visibility, leading to insufficient inspection of image quality. To address these issues, we propose Tool-IQA, shifting the assessment mechanism from passive scoring to a tool-augmented workflow. In particular, we equip VLMs with simple yet effective view tools: a Magnifier to inspect local details, and a Gamma Corrector to uncover visibility and hidden artifacts. The assessment follows a structured pipeline that consists of an initial observation with rubric notes, a tool-augmented in-depth inspection, and a final quantification for calibrated quality score. Furthermore, to ensure efficient and purposeful tool callings, we introduce a batch-aware training strategy to reward tool interactions that can yield positive contributions rather than simply encouraging usage. Experiments on a variety of IQA benchmarks demonstrate that, with effective tool calling and calibrated assessment, our proposed Tool-IQA significantly outperforms existing state-of-the-art models, e.g., it achieves a PLCC of 0.854 on the challenging CLIVE dataset.

Guanyi Qin, Junjie Zhang, Chunming He, Yibing Fu, Jie Liang, Tianhe Wu, Lei Zhang• 2026

Related benchmarks

TaskDatasetResultRank
Image Quality AssessmentSPAQ
SRCC0.905
311
Image Quality AssessmentKADID
SRCC0.721
167
Image Quality AssessmentKonIQ
SRCC0.825
167
Image Quality AssessmentPIPAL
SRCC0.479
162
Blind Image Quality AssessmentBID
SRCC0.828
77
Image Quality AssessmentCLIVE
SRCC0.889
71
Image Quality AssessmentSRIQA
SRCC0.751
31
Image Quality AssessmentDeblur
SRCC84.8
20
Image Quality AssessmentTID13
SRCC0.733
16
Image Quality AssessmentDehaze
SRCC0.73
14
Showing 10 of 11 rows

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