Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-09T12:53:45.993773Z
Paper Citation Record · LEDGER
As of 10 August 2026, this Paper Citation Record lists 74 of 74 outbound references and 1 inbound Pith citation observation for arXiv:2502.02257.
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 2026-08-09T12:53:45.993773Z
One-hop event checks from named stored sources.
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Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-05-18T16:28:48.494939Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-18T16:31:37.163858Z
74 of 74 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation ecdfed03-3eed-41fc-93b6-fb2bbd2124a9 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation URL http://adas.cvc.uab.es/elektra/enigma-portfolio/cvc-14-visible-fir-day-night-pedestrian-sequen\ -dataset/
Reference 1
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Observation f661000d-08b5-406c-87b8-2dc8de7392a2 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation URL http://adas.cvc.uab.es/elektra/enigma-portfolio/item-1/
Reference 2
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Observation 99ab05ae-3cf1-485e-a047-dab78a864d71 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Iris thermal/visible face database
Reference 3
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Observation 5ab870f1-877c-49ca-85b3-6ff56d90588d · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Bahnsen and Thomas B
Reference 4
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Yuille, Yuyin Zhou, and Cihang Xie
Reference 5
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation BeiT : BERT pre-training of image transformers
Reference 6
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation BIRDSAI : A dataset for detection and tracking in aerial thermal infrared videos
Reference 7
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation End-to-end object detection with transformers
Reference 8
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Observation 767aa3da-77b0-49c8-a00a-6d2b46303dad · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Emerging properties in self-supervised vision transformers
Reference 9
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Observation d3c79189-4940-48f1-be90-9bc9edf1020e · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Atmospheric transmission and thermal inertia induced blind road segmentation with a large-scale dataset tbrsd
Reference 10
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Observation 875dc59f-dbca-4569-aaa5-8ebd5dcb29c9 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Infrared city database, 2021 a
Reference 11
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Encoder-decoder with atrous separable convolution for semantic image segmentation
Reference 12
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Observation de35f0ef-166c-4db2-9611-5323efde0063 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation An empirical study of training self-supervised vision transformers
Reference 13
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Vision transformer adapter for dense predictions
Reference 14
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Observation e20fe6da-33e0-4295-a876-a71c20c5b731 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Schwing, Alexander Kirillov, and Rohit Girdhar
Reference 15
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Observation e2aecf06-a01f-421f-bde8-4d26a9e0d4f2 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation MMSegmentation : Openmmlab semantic segmentation toolbox and benchmark, 2020
Reference 16
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Observation 3f57a3f1-7b94-4e6e-8c94-d964b8109b52 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation ImageNet : A large-scale hierarchical image database
Reference 17
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Observation 3ecfe921-c9cb-4b61-8dd9-f105fb9fb15f · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation An image is worth 16x16 words: Transformers for image recognition at scale
Reference 18
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Observation c12ada7f-9741-42f0-bd59-334a6599126d · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation EVA : Exploring the limits of masked visual representation learning at scale
Reference 19
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Rethinking Patch Dependence for Masked Autoencoders
Reference 20
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Observation 9b0ff69b-d1c5-4bd8-8a6f-ff0686c5f593 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation MFNet : Towards real-time semantic segmentation for autonomous vehicles with multi-spectral scenes
Reference 21
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Observation d92efad2-dd4e-4a5d-8c52-a0e29d1b083c · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Deep residual learning for image recognition
Reference 22
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Masked autoencoders are scalable vision learners
Reference 23
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Observation 75981902-5ef5-4217-aab1-685adc883c40 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Distilling the Knowledge in a Neural Network
Reference 24
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Observation 50b8b9ef-af47-49b8-bf0c-c684e5cb8907 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation MILAN: Masked Image Pretraining on Language Assisted Representation
Reference 25
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Observation be2c3218-204e-49a9-a4eb-0badbf6522d7 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Multispectral pedestrian detection: Benchmark dataset and baselines
Reference 26
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Observation eca246d3-694e-4732-85dd-fb629d3c154c · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation LLVIP : A visible-infrared paired dataset for low-light vision
Reference 27
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Billion-scale similarity search with gpus
Reference 28
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Observation b8ae9f8a-63fb-4911-bd4f-afcada548726 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Similarity of neural network representations revisited
Reference 29
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Observation 7908c5ec-55af-417d-ab1b-611f96547a05 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation RGB-T object tracking: Benchmark and baseline
Reference 30
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Observation 956581c6-7e6e-4530-89ed-821aa1e07754 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Segmenting objects in day and night: Edge-conditioned cnn for thermal image semantic segmentation
Reference 31
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Observation efa97621-003f-49c7-8ed4-c1b282264929 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation LasHeR : A large-scale high-diversity benchmark for rgbt tracking
Reference 32
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Infrared ship database, 2021
Reference 33
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Ni, and Heung-Yeung Shum
Reference 34
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation On-vehicle visible and infrared object detection database, 2021 b
Reference 35
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Exploring plain vision transformer backbones for object detection
Reference 36
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Observation 0ee4218e-7b8c-46f7-889e-7683ecfb2da1 · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Lawrence Zitnick
Reference 37
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation InfMAE: A Foundation Model in the Infrared Modality
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Target-aware dual adversarial learning and a multi-scenario multi-modality benchmark to fuse infrared and visible for object detection
Reference 39
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Cross-modal collaborative representation learning and a large-scale rgbt benchmark for crowd counting
Reference 40
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Observation 915019a6-bd30-459a-9c2d-d8dfaf2fe80c · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation LSOTB-TIR : A large-scale high-diversity thermal infrared object tracking benchmark
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation General-purpose dual-sensor (infrared/visible) video database, 2021 b
Reference 42
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Infrared aerial photography database, 2021 c
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Exploring target representations for masked autoencoders
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Fully convolutional networks for semantic segmentation
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Seasons in Drift : A long term thermal imaging dataset for studying concept drift
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Reference 47
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Multi-modal rgb--depth--thermal human body segmentation
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation What do self-supervised vision transformers learn? In ICLR, 2023
Reference 49
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation PyTorch : An imperative style, high-performance deep learning library
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Mathematical contributions to the theory of evolution
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Training data-efficient image transformers & distillation through attention
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation RGBT Salient Object Detection : A large-scale dataset and benchmark
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Unified perceptual parsing for scene understanding
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Alvarez, and Ping Luo
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation EfficientSAM : Leveraged masked image pretraining for efficient segment anything
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation ROMA : Cross-domain region similarity matching for unpaired nighttime infrared to daytime visible video translation
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Visible-Thermal UAV Tracking : A large-scale benchmark and new baseline
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation PAD: Self-Supervised Pre-Training with Patchwise-Scale Adapter for Infrared Images
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Pyramid scene parsing network
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Image BERT pre-training with online tokenizer
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation @esa (Ref
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UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Unresolved cited work
Reference 73
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Observation 986f4085-e807-449d-89f8-17c94dba445d · outbound
UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation Therefore, we focus on enhancing small pre-trained models by introducing a comprehensive framework, UNIP, and validating its effectiveness through extensive experiments
Reference 74
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Observation deedfaa1-d2b8-4a73-a7ab-be4fab009306 · inbound
UNIV: Unified Foundation Model for Infrared and Visible Modalities UNIP: Rethinking Pre-trained Attention Patterns for Infrared Semantic Segmentation
Reference 43
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