Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-06T14:41:14.743267Z
Paper Citation Record · LEDGER
As of 23 August 2026, this Paper Citation Record lists 39 of 39 outbound references and 0 inbound Pith citation observations for arXiv:2507.18099.
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 2026-08-06T14:41:14.743267Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-23T06:30:58.430688+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
39 of 39 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f06e37ee-5eeb-4534-8eb2-7e4b0cf26143 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Semi-supervised semantic segmentation in earth observation: The minifrance suite, dataset analysis and multi-task network study
Reference 1
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Observation aee42315-54a4-4fcd-9072-8a4f9008f664 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Classification of imbalanced land-use/land-cover data using vari- ational semi-supervised learning
Reference 2
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Observation 973cf90a-284c-4487-b882-408d1f6dbff2 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Encoder- decoder with atrous separable convolution for se- mantic image segmentation
Reference 3
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Observation f3d85698-e592-486b-ad2d-fadfd1f358f7 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Semi-supervised semantic segmentation with cross pseudo supervision
Reference 4
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Observation 7679067f-fda6-4f33-9981-fdf1aaf69579 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Tinycd: A (not so) deep learning model for change detection
Reference 5
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Observation f527d8d5-b188-43bd-9ca1-59449c76c1ad · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Xarray - https://docs
Reference 6
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Observation 00352676-5f0f-4943-8c4b-45b1101215f3 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Zarr - https://zarr
Reference 7
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Observation dc46413c-d6ac-498e-bb3a-2ac54f89ef6d · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Cross pseudo supervision framework for sparsely labelled geo-spatial images, 2024
Reference 8
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Observation a00f0a28-4b08-4467-8ecb-a8ad4aed4d61 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Land cover classification of resources survey remote sensing images based on segmentation model
Reference 9
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Observation 3436684c-5e8e-4762-8d3a-078eb28a7c61 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Shapely: manipulation and anal- ysis of geometric objects, 2007–
Reference 10
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Observation 9af80b78-6015-4f80-b4f8-9367c002a87c · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Segmentation models py- torch
Reference 11
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Observation 60ae2372-3ad4-47c2-a7a0-ad44fa6d39da · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover nnu-net: a self- configuring method for deep learning-based biomedi- cal image segmentation
Reference 12
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Observation 21244941-ad4a-4f64-93dc-64547b6a4483 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover 2d semantic labeling contest - potsdam
Reference 13
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Observation 35c878b9-4532-45cc-94d3-35c1a7537ca8 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover A Semantic Segmentation Network for Urban-Scale Building Footprint Extraction Using RGB Satellite Imagery
Reference 14
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Observation e8c80e2a-25ee-420c-b1d8-304002dcf5ad · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Salcudean
Reference 15
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Observation 1059009e-7d5f-4854-8de6-df492d026b10 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Temporal Ensembling for Semi-Supervised Learning
Reference 16
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Observation 4188f0bd-c735-4330-bdf8-7feb492426a6 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Monitoring earth surface dynamics with optical imagery
Reference 17
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Observation ebaa4d82-0efd-4246-93ab-7f1fbbb2b0c4 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover One model is enough: Toward multiclass weakly su- pervised remote sensing image semantic segmenta- tion
Reference 18
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Observation 91ea31ef-9205-47eb-a9df-ed498b5c14fb · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Simple and efficient: A semisupervised learn- ing framework for remote sensing image semantic segmentation
Reference 19
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Observation 11072844-f79a-4362-bd7e-fcbb1e830621 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover An atmospheric correction in- tegrated lulc segmentation model for high-resolution satellite imagery, 2024
Reference 20
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Observation 8017b837-7e98-4c01-ad4a-2f4401fa6bca · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Weakly supervised semantic segmentation of satel- lite images
Reference 21
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Observation e433d44a-f158-4c95-8e55-546ca9df76bf · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Planet dump re- trieved from https://planet.osm.org
Reference 22
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Observation 091bc4eb-4873-45a9-9283-bb6b0131788a · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Fast building segmentation from satellite imagery and few local labels
Reference 23
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Observation 4c73b346-531d-4514-89f9-b54f45e89b0d · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover U-net: Convolutional networks for biomed- ical image segmentation
Reference 24
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Observation e782bf1e-cb44-4628-91a2-809d1b53ece3 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Self-supervised learning on small in-domain datasets can overcome supervised learning in remote sensing
Reference 25
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Observation 8948019d-f79b-4f56-8c4c-6c5623e62fa4 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Weakly Supervised Semantic Segmentation of Satellite Images for Land Cover Mapping -- Challenges and Opportunities
Reference 26
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Observation 19bef5c9-85d7-4805-bd5b-819bd6d426bf · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Land use and land cover mapping using deep learning based segmentation ap- proaches and vhr worldview-3 images
Reference 27
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Observation 00158f74-1bb3-438e-aa0e-c7e2b0c94027 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover A novel method for estimation of aerosol radiance and its extrapolation in the atmospheric correction of satellite data over optically complex oceanic wa- ters
Reference 28
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Observation 7eb3f1da-2534-4cf3-847a-11277365f750 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Continental-Scale Building Detection from High Resolution Satellite Imagery
Reference 29
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Observation fe42d078-f957-4089-a882-8e2e8f1b3f3e · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Vermote, D
Reference 30
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Observation 6b512eeb-2658-4b37-bdba-67a92fe7c108 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Dhc: Dual- debiased heterogeneous co-training framework for class-imbalanced semi-supervised medical image seg- mentation
Reference 31
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Observation c2697309-b4ce-42bd-b5fa-14b91edb9f76 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Towards generic semi-supervised framework for volumetric medical image segmentation
Reference 32
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Observation 71ce6329-5426-47bb-86cb-beaf5da9a273 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Sd- cdnet: A semi-dual change detection network frame- work with super-weak label for remote sensing im- age
Reference 33
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Observation 1c200b35-3597-41a3-a348-f11c1075e758 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Semi-supervised semantic seg- mentation of remote sensing images with iterative contrastive network
Reference 34
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Observation daf09b98-f5a9-4e85-8f37-9019a8637911 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Self- supervised learning in remote sensing: A review
Reference 35
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Observation 5486c678-154b-4c63-bc59-0ff7570530b2 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Mask deeplab: End-to-end image segmentation for change detection in high- resolution remote sensing images
Reference 36
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Observation 888e08e6-7878-4061-a091-141f9f17ff16 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover A seman- tic segmentation method with category boundary for land use and land cover (lulc) mapping of very-high resolution (vhr) remote sensing image
Reference 37
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Observation c0ff9581-cd8d-413e-9ee7-7d4cba525793 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover Semi-supervised semantic segmen- tation network via learning consistency for remote sensing land-cover classification
Reference 38
Source-reported events for the cited work
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Observation aee29b85-fbb1-4f52-a603-068c55482dd5 · outbound
Comparison of Segmentation Methods in Remote Sensing for Land Use Land Cover A sur- vey of weakly-supervised semantic segmentation
Reference 39
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No event found in the named queried sources as of 2026-08-23T06:30:58.430688+00:00.
No inbound Pith citation observations are available.