Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-15T22:25:16.517001Z
Paper Citation Record · LEDGER
As of 23 August 2026, this Paper Citation Record lists 68 of 68 outbound references and 0 inbound Pith citation observations for arXiv:2505.07219.
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 2026-08-15T22:25:16.517001Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-22T06:32:14.747728+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
68 of 68 outbound references displayed
External citation measurements
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Observation b8c88ce7-a4e2-4245-9c1a-473ab0eb6fe4 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection YOLOv4: Optimal Speed and Accuracy of Object Detection
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection End-to- end object detection with transformers
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Harmonizing transferability and discriminability for adapting object detectors
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Observation d0c6e4f3-e1fa-43f2-b7ca-04c46fae9f9e · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Meta-causal learning for single domain generalization
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection RobustNet: Improving domain generalization in urban-scene segmentation via in- stance selective whitening
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Attention consistency on visual corruptions for single-source domain generalization
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Observation 1abd49f7-1f84-4d0a-a40b-f50d9ac0b082 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Saquib Sarfraz, and Mohsen Ali
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Observation 2fdf022f-dc76-4b70-a475-bbc4a10c09fe · outbound
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection An image is worth 16x16 words: Transformers for image recognition at scale
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Observation fd83cf6c-d91d-4c71-8d78-5d3afe879950 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection The pascal visual object classes (VOC) challenge
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Observation 0f50987d-0b88-4298-9204-f87d2d615bf9 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection PØDA: Prompt-driven zero- shot domain adaptation
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Observation 02bdb2c4-09b0-456a-8ba3-466413931578 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Towards robust ob- ject detection invariant to real-world domain shifts
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Adversarially adaptive normalization for single domain generalization
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection AcroFOD: An adaptive method for cross-domain few-shot object detection
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection AsyFOD: An asymmetric adaptation paradigm for few-shot domain adaptive object detection
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Gatys, Alexander S
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Deep residual learning for image recognition
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Mask R-CNN
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Observation ce21655a-da3a-4dcf-a7c7-70e46e154a98 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection StyleMix: Sep- arating content and style for enhanced data augmentation
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Observation df7a2b1c-7d15-4f6e-a84a-89417a09b322 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Itera- tive normalization: Beyond standardization towards efficient whitening
Reference 27
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Arbitrary style transfer in real-time with adaptive instance normalization
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Observation b8147039-78c9-43a1-8445-b9b553cfa105 · outbound
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Reference 30
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Observation 4570bbc3-8ef7-49de-91b8-f10ebb5933d2 · outbound
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Driving in the Matrix: Can Virtual Worlds Replace Human-Generated Annotations for Real World Tasks?
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Observation 679bf784-ab74-409e-bfab-af58f0be8ac0 · outbound
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Observation 4fbba91e-927a-4e74-9626-d14fd7918a83 · outbound
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Observation 6211c985-c9c5-47cf-91d3-b74b4894c81c · outbound
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Reference 38
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Observation 42b702c9-1d03-4ba6-853b-e99716bc0ca6 · outbound
Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection You only look once: Unified, real-time object de- tection
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection FCOS: A simple and strong anchor-free object detector
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection Manifold mixup: Better representations by interpolating hidden states
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Language-Driven Dual Style Mixing for Single-Domain Generalized Object Detection CLIP the gap: A single domain generalization approach for object detection
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Observation 26f6ee15-1374-4d52-b798-1e1e0c55fb63 · outbound
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Reference 65
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Reference 66
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Reference 67
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Reference 68
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No inbound Pith citation observations are available.