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Domain Generalizable Adaptation of 3D Vision-Language Models via Regularized Fine-Tuning

About

Domain adaptation remains a central challenge in 3D vision, especially for multimodal foundation models that align 3D point clouds with visual and textual data. While these models demonstrate strong general capabilities, adapting them to downstream domains with limited data often leads to overfitting and catastrophic forgetting. To address this, we introduce ReFine3D, a regularized fine-tuning framework designed for domain-generalizable tuning of 3D large multimodal models (LMMs). ReFine3D combines selective layer tuning with two targeted regularization strategies: multi-view consistency across augmented point clouds and text diversity through synonym-based prompts generated by large language models. Additionally, we incorporate point-rendered vision supervision and a test-time augmentation mechanism with confidence-based aggregation to further enhance robustness. Extensive experiments across different 3D domain generalization benchmarks show that ReFine3D improves base-to-novel class generalization by 1.36%, cross-dataset transfer by 2.43%, robustness to corruption by 1.80%, and few-shot accuracy by up to 3.11%, outperforming prior state-of-the-art methods with minimal added computational overhead.

Sneha Paul, Zachary Patterson, Nizar Bouguila• 2026

Related benchmarks

TaskDatasetResultRank
3D Point Cloud ClassificationModelNet40 (test)
OA78.34
307
3D Object ClassificationModelNet40--
89
3D Point Cloud ClassificationModelNet40 Clean (test)
Accuracy88.23
34
3D Object ClassificationShapeNet v2
Accuracy91.56
18
Base-to-new class generalizationScanObjectNN S-PB_T50_RS (test)
Base Class Accuracy76
14
Base-to-new class generalizationScanObjectNN S-OBJ_ONLY (test)
Base Accuracy84.05
14
Base-to-new class generalizationShapeNetCore V2 (test)
Base Score94.82
14
3D Object ClassificationS-OBJ_BG (test)
Accuracy86.28
10
3D Point Cloud ClassificationS-PB T50 RS (test)
Accuracy75.9
10
3D Point Cloud ClassificationS-OBJ_ONLY (test)
Accuracy83.51
10
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