Submitted:
10 September 2025
Posted:
11 September 2025
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Abstract
Keywords:
1. Introduction
2. Related Work
- Pre-trained V&L Transformers
- Self-supervised Representation Learning
- Unsupervised Multilingual Language Models
- Unsupervised Grounding and Captioning
- Cross-modal Alignment without Pairing
- Multimodal Learning under Resource Constraints
- Vision-Language Models with Weak Supervision

3. Proposed Framework
3.1. Supervised Pre-Training with Aligned Pairs
| Algorithm 1:Unsupervised Pre-training Procedure of VISTRA |
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3.2. Unsupervised Pre-Training on Disjoint Modalities
3.2.1. Dual-Stream Masked Modeling
3.2.2. Semantic Anchoring via Detector Tags
3.2.3. Unified Embedding and Multimodal Projection
3.2.4. Final Training Objective
4. Experiments
4.1. Evaluation with Simulated Alignment Removal
Overall Benchmark Results.
Case Study: Flickr30K Retrieval.
Efficiency Considerations.
4.2. Experiments with Realistic Unaligned Sources
Training on Disjoint Text and Image Corpora.
Training on Purely General-Domain Text.
Broader Implications.
| Model | Text Type | VQA | NLVR | Flickr30K | RefCOCO+ | ||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Caption | General | Test-Dev | Dev | Test-P | R@1 | R@5 | R@10 | Dev | TestA | TestB | |
| Base | - | - | 69.26 | 68.40 | 68.65 | 42.86 | 73.62 | 83.28 | 70.66 | 77.06 | 61.43 |
| VISTRA | CC | BC | 70.74 | 71.74 | 71.02 | 55.37 | 82.93 | 89.84 | 72.42 | 79.11 | 64.19 |
| VISTRA-disjoint | SBU | BC | 70.70 | 71.97 | 72.11 | 56.12 | 82.82 | 90.12 | 73.05 | 79.48 | 64.19 |
| VISTRA-nocaption | - | BC | 70.47 | 71.47 | 71.19 | 54.36 | 82.22 | 89.24 | 72.96 | 79.30 | 64.25 |
4.3. Impact of Detector Tags and Semi-supervised Variants
Detector Tags as Alignment Catalysts.
Hybrid Training as a Synergistic Strategy.
4.4. Consolidated Insights
- VISTRA performs competitively with supervised methods on diverse benchmarks, even though it relies solely on unpaired corpora.
- Detector-generated tags are indispensable for unsupervised grounding, providing the structural anchors needed to link modalities in the absence of alignment.
- The framework generalizes well across challenging setups, including training on disjoint corpora and text-only datasets devoid of captions.
- Incorporating hybrid supervision further enhances performance, pointing to a promising avenue for blending annotated and unannotated resources in future research.
5. Conclusion and Future Work
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| Model | Aligned | Unaligned | VQA | NLVR | Flickr30K | RefCOCO+ | ||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Image | Text | Test-Dev | Dev | Test-P | R@1 | R@5 | R@10 | Dev | TestA | TestB | ||
| Pre-BERT | - | - | - | 70.22 | 54.1 | 54.8 | 48.60 | 77.70 | 85.20 | 65.33 | 71.62 | 56.02 |
| ViLBERT | 3M | 0 | 0 | 70.55 | - | - | 58.78 | 85.60 | 91.42 | 72.34 | 78.52 | 62.61 |
| VL-BERT | 3M | 0 | ∼50M | 71.16 | - | - | - | - | - | 71.60 | 77.72 | 60.99 |
| UNITERcc | 3M | 0 | 0 | 71.22 | - | - | - | - | - | 72.49 | 79.36 | 63.65 |
| SVB | 3M | 0 | 2.5M | 70.87±.02 | 73.44±.51 | 73.93±.51 | 61.19±.06 | 86.32±.12 | 91.90±.02 | 73.65±.11 | 79.48±.36 | 64.49±.22 |
| Base | 0 | 0 | 0 | 69.26 | 68.40 | 68.65 | 42.86 | 73.62 | 83.28 | 70.66 | 77.06 | 61.43 |
| VISTRA | 0 | 3M | 5.5M | 70.74±.06 | 71.74±.24 | 71.02±.47 | 55.37±.49 | 82.93±.07 | 89.84±.21 | 72.42±.06 | 79.11±.08 | 64.19±.54 |
| Model | VQA | NLVR2 | Flickr30K | RefCOCO+ | |||||
|---|---|---|---|---|---|---|---|---|---|
| Test-Dev | Dev | Test-P | R@1 | R@5 | R@10 | Dev | TestA | TestB | |
| Base w/o Tags | 69.06 | 51.98 | 52.73 | 48.40 | 78.20 | 87.18 | 70.15 | 76.91 | 61.72 |
| VISTRA w/o Tags | 69.87 | 67.90 | 68.92 | 50.56 | 80.22 | 88.32 | 71.94 | 77.79 | 62.38 |
| VISTRA (ours) | 70.74 | 71.74 | 71.02 | 55.37 | 82.93 | 89.84 | 72.42 | 79.11 | 64.19 |
| Supervised-VB w/o Tags | 70.49 | 72.56 | 73.53 | 60.26 | 85.58 | 91.64 | 72.70 | 77.93 | 62.99 |
| Supervised-VB (full) | 70.87 | 73.44 | 73.93 | 61.19 | 86.32 | 91.90 | 73.65 | 79.48 | 64.49 |
| Hybrid (semi-supervised) | 71.05±.02 | 73.80±.26 | 74.82±.25 | 62.42±.36 | 87.02±.35 | 92.45±.28 | 74.01±.25 | 80.18±.23 | 64.89±.24 |
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