Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T17:15:25.801155Z
Paper Citation Record · LEDGER
As of 15 August 2026, this Paper Citation Record lists 71 of 71 outbound references and 0 inbound Pith citation observations for arXiv:2412.09240.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T17:15:25.801155Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-15T06:32:42.880941+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
71 of 71 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 9149ea59-ec67-4e60-979c-162b6e87f035 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Class- conditional domain adaptation for semantic seg- mentation
Reference 1
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Observation a486aa45-d82b-4e7e-9358-4ca74ab5ffd4 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation On exploring weakly supervised domain adaptation strate- gies for semantic segmentation using synthetic data
Reference 2
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VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Taming diffusion model for exemplar-based image translation
Reference 3
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Observation 7521d30b-7ff8-4ba3-9d56-304a55653042 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Learning layout generation for virtual worlds
Reference 4
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Observation 8b144e39-207a-4df7-8db5-e7366b3ae242 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Adap- tive sampling and reconstruction for gradient- domain rendering
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Observation d8d75f75-630b-454b-832a-84c92f809a95 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Multi3D: 3D-aware multimodal image synthesis
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Reference 7
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Observation 7ff878b8-8b43-4009-8a9e-5eb49371f223 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Cross-modal learning using privileged informa- tion for long-tailed image classification
Reference 8
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Observation e737a53d-b053-48c3-bccc-0d1110102e99 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Don't Stop Learning: Towards Continual Learning for the CLIP Model
Reference 9
Source-reported events for the cited work
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Observation 767a15c0-3427-4baf-a01c-c875e005cd81 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Generative Negative Text Replay for Continual Vision-Language Pretraining
Reference 10
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Observation 9c8b6349-1cef-4307-9739-a8c9ca83da1a · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Extract Free Dense Labels from CLIP
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VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation CLiMB: A Continual Learning Benchmark for Vision-and-Language Tasks
Reference 12
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Observation 93377c40-2659-42c4-849a-5087eb1df94c · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation CAT-Seg: Cost Aggre- gation for Open-Vocabulary Semantic Segmen- tation
Reference 13
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Observation b5dc3c7d-0697-4586-bc38-ef0acab4cde1 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation COCO-Stuff: Thing and Stuff Classes in Context
Reference 14
Source-reported events for the cited work
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Observation df96cb00-6c92-4ac8-b1f9-a2697ed59021 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Early Convolutions Help Transform- ers See Better
Reference 15
Source-reported events for the cited work
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Observation aecef7a2-c7a5-4447-8bf9-08434a37cd46 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Incorporating Convolution Designs Into Visual Transformers
Reference 16
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Observation 5d325a2c-9e92-4b45-bc19-bac10efe29a1 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Pyramid Geometric Consistency Learning For Seman- tic Segmentation
Reference 17
Source-reported events for the cited work
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Observation 1021ca6c-0dc0-4969-88e3-474147237285 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Learning Trans- ferable Visual Models From Natural Language Supervision
Reference 18
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Observation 3819e4ee-3112-4217-b1f4-2c855330d37e · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation SegCLIP: Patch Aggregation with Learnable Centers for Open-Vocabulary Semantic Segmentation
Reference 19
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Observation 84a9685b-dd57-40d8-a992-d22580527b0d · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Open-Vocabulary Panop- tic Segmentation with MaskCLIP
Reference 20
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Observation d4e26e95-0ffd-4089-8949-1bf12d5e809d · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Open-Vocabulary Instance Segmentation via Robust Cross-Modal Pseudo-Labeling
Reference 21
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Observation a3912096-d51f-4a9c-9ba7-9bf41dd8d088 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Collaborating Foundation Models for Domain Generalized Semantic Segmentation
Reference 22
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Observation abc3e6b0-a1ca-4196-86d5-69d9471b459e · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Side Adapter Network for Open-Vocabulary Seman- tic Segmentation
Reference 23
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Observation 435554b0-4d22-4902-afa0-ba417e3b0708 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation CLIP-SP: Vision-language model with adap- tive prompting for scene parsing
Reference 24
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Observation 4050d6f8-9303-440e-8bb2-22a9c3bf4cc6 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Exploring Visual Interpretability for Contrastive Language-Image Pre-training
Reference 25
Source-reported events for the cited work
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Observation f31e2cfa-d541-440d-9969-83287a02daed · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation A Closer Look at the Explainability of Contrastive Language-Image Pre-training
Reference 26
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Observation 442e3d55-7a7a-4a81-b7a6-3c2102367c01 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation SemiVL: Semi-Supervised Semantic Segmen- tation with Vision-Language Guidance
Reference 27
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Observation 1e112731-ae78-47cb-b957-5e97b126731d · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Open- vocabulary semantic segmentation with mask- adapted clip
Reference 28
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Observation 5674b553-33b2-4779-b909-3aa2e6eddbcd · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Decoupling Zero- Shot Semantic Segmentation
Reference 29
Source-reported events for the cited work
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Observation e2a3ae04-bfa9-4d55-9875-c128fcf818af · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation A Simple Baseline for Open Vocab- ulary Semantic Segmentation with Pre-trained Vision-language Model
Reference 30
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Observation 28854943-f192-499a-86dd-9e29ac7ada30 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Discovering latent target subdomains for domain adaptive seman- tic segmentation via style clustering
Reference 31
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Observation 01bf8997-ae71-48d2-896f-fbc57c5f04d0 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Survey on Unsupervised Domain Adaptation for Semantic Segmentation for Vi- sual Perception in Automated Driving
Reference 32
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Observation d16cb663-908a-4bf8-abaf-94bfc2bec18e · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Per-Class Curriculum for Unsupervised Domain Adaptation in Se- mantic Segmentation
Reference 33
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Observation da1c4118-ff16-4793-9f4c-ff5ee452a7bb · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Pseudo-Label : The Simple and Ef- ficient Semi-Supervised Learning Method for Deep Neural Networks
Reference 34
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Observation 7ac10ccb-3a07-46eb-8c83-e343617b6556 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation DAFormer: Im- proving Network Architectures and Training Strategies for Domain-Adaptive Semantic Seg- mentation
Reference 35
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Observation a73cdaf8-a9a6-4571-9f3d-f032f99c897e · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation HRDA: Context- Aware High-Resolution Domain-Adaptive Se- mantic Segmentation
Reference 36
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Observation 5b3a775c-17ca-4b47-980e-65a58af2f424 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation CDAC: Cross-domain Attention Consistency in Transformer for Domain Adaptive Seman- tic Segmentation
Reference 37
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Observation 5e88715c-2eaa-43af-b3c1-1b737f79cb57 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation CoN- Mix for Source-free Single and Multi-target Do- main Adaptation
Reference 38
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Observation f76192ae-c57b-480f-9cda-988256f2756b · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation MIC: Masked Image Consistency for Context- Enhanced Domain Adaptation
Reference 39
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Observation dd22711a-5e7e-4713-9552-d7dee29ab4ba · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Mean teachers are bet- ter role models: Weight-averaged consistency targets improve semi-supervised deep learning results
Reference 40
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Observation 07545c57-d634-4cf2-be3e-f9b933d50bb6 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Research On Data Model Migration In Image Semantic Segmenta- tion Based On Deep Learning
Reference 41
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Observation a94136a9-f0b0-438a-9f11-dc6e8a350fa8 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Rectifying Pseudo Label Learning via Uncertainty Estimation for Domain Adaptive Semantic Segmentation
Reference 42
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Observation 3cafea80-4c00-4a50-8706-3134ca23f6cc · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Characterizations of semantic do- mains for randomized algorithms
Reference 43
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Observation b55572fa-9ad3-44f5-a248-52543895e974 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Training Deep Networks with Synthetic Data: Bridging the Reality Gap by Domain Randomization
Reference 44
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Observation 64c48310-2a06-4787-833c-9e6c95269ff9 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Structured Domain Randomization: Bridg- ing the Reality Gap by Context-Aware Synthetic Data
Reference 45
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VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Domain randomization for neural network classification
Reference 46
Source-reported events for the cited work
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Observation 5992a64b-bf03-44e0-8caa-355209d842f0 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation DACS: Domain Adaptation via Cross-domain Mixed Sampling
Reference 47
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Observation d9afe163-a5c2-484e-bfc4-2f6e4e79360b · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation CLIP-Flow: Decoding images encoded in CLIP space
Reference 48
Source-reported events for the cited work
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Observation b9d13039-40e4-4b70-80b6-c49b5a1c41dc · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Attention is All you Need
Reference 49
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Observation 57daf410-4a92-4bfa-8b15-7a0ed06837db · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Universal Language Model Fine-tuning for Text Classification
Reference 50
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Observation ad0a3f32-a9d6-46d9-a3ca-a115df562a8b · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Fast End-to- End Trainable Guided Filter
Reference 51
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Observation 946699b8-0412-43bd-aefc-32bfd0f6213b · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
Reference 52
Source-reported events for the cited work
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VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Convolu- tional neural network architecture for geometric matching
Reference 53
Source-reported events for the cited work
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Observation ee99c6da-1570-4f5a-97f0-9f3004af3e5f · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Cost Ag- gregation with 4D Convolutional Swin Trans- former for Few-Shot Segmentation
Reference 54
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Observation e4267177-df75-4d99-8e9c-24aa3bdace12 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation The Cityscapes Dataset for Seman- tic Urban Scene Understanding
Reference 55
Source-reported events for the cited work
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Observation cc7ac1b9-f856-4855-b629-896a71dd096f · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Language Models are Few-Shot Learners
Reference 56
Source-reported events for the cited work
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Observation 3118b4e5-bcfd-475e-bbab-f467fc675065 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation The Mapillary Vistas Dataset for Semantic Understanding of Street Scenes
Reference 57
Source-reported events for the cited work
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Observation 436c1927-08eb-4dbc-af8c-449af3b1ea81 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Domain randomization for trans- ferring deep neural networks from simulation to the real world
Reference 58
Source-reported events for the cited work
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Observation 011dfbdd-e6c6-4612-8767-bc73a6854d2c · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Semantic understanding of scenes through the ade20k dataset
Reference 59
Source-reported events for the cited work
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Observation 54f0feef-b3ed-485e-b15b-366646ca2bf8 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation The Role of Con- text for Object Detection and Semantic Segmen- tation in the Wild
Reference 60
Source-reported events for the cited work
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Observation 42c4fa23-0bf1-4a6a-9f61-484cfa2de2d8 · outbound
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Reference 61
Source-reported events for the cited work
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Observation 51ae5699-3bf9-439b-9d63-74b342430223 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation The SYNTHIA Dataset: A Large Collection of Synthetic Images for Semantic Seg- mentation of Urban Scenes
Reference 62
Source-reported events for the cited work
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Observation 60493020-d06b-44f5-bb87-dfa79f3abc42 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Swin Transformer V2: Scaling Up Capacity and Res- olution
Reference 63
Source-reported events for the cited work
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Observation 574e5fd7-daf4-4b76-97f7-5c9f8f8a388c · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Segment Anything
Reference 64
Source-reported events for the cited work
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Observation 98f0da41-ea53-4989-b3ce-2dbb1ed1b582 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation FreeSeg: Unified, Universal and Open-Vocabulary Image Segmentation
Reference 65
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 7602ddb6-7910-4283-b577-be153846f188 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation MasQCLIP for Open-Vocabulary Universal Image Segmenta- tion
Reference 66
Source-reported events for the cited work
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Observation 57bb45db-d711-4a9b-9c6f-8253a3c2273f · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation ZegCLIP: Towards Adapting CLIP for Zero-Shot Seman- tic Segmentation
Reference 67
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 2146108f-ccf2-43ab-9664-ca82fc8a31f7 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Hierarchical Open-vocabulary Uni- versal Image Segmentation
Reference 68
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation c502d873-d5d6-4b36-9a7c-9b554184eb09 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Transferring Multi-Modal Domain Knowledge to Uni-Modal Domain for Urban Scene Segmenta- tion
Reference 69
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 699f93c9-4776-4a4b-8684-3765462b3551 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation DiGA: Distil To Generalize and Then Adapt for Domain Adaptive Semantic Segmentation
Reference 70
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 767cf4bb-09d9-4858-b149-96bff05e92a8 · outbound
VLMs meet UDA: Boosting Transferability of Open Vocabulary Segmentation with Unsupervised Domain Adaptation Transferring to Real- World Layouts: A Depth-aware Framework for Scene Adaptation
Reference 71
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
No inbound Pith citation observations are available.