Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T00:42:36.005843Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 65 of 65 outbound references and 1 inbound Pith citation observation for arXiv:2506.12885.
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 2026-08-07T00:42:36.005843Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-07-31T15:18:55.319438Z
A source-named dated measurement, never combined with another source.
Source: cited_works
65 of 65 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 3f660532-7da4-476d-980f-73b3aa10782f · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Ai-aristotle: A physics-informed framework for systems biology gray- box identification
Reference 1
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Observation 656e47e1-e721-4388-bda0-705d7edc87bf · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Vits for sits: vision transformers for satellite image time series
Reference 2
Source-reported events for the cited work
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Observation b454a715-2013-4e30-a29e-c2606bf1dcd4 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Proba- bilistic crop type mapping for ex-ante modelling and spatial disaggregation
Reference 3
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Observation 3de8868b-bf11-4980-a873-1ed969ee639c · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Country- wide retrieval of forest structure from optical and sar satellite imagery with deep ensembles
Reference 4
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Observation 0e195396-f2d0-4b35-9908-aef57344aaef · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Mapping of crop types and crop sequences with combined time series of sentinel-1, sentinel-2 and landsat 8 data for germany
Reference 5
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Weight uncertainty in neural networks
Reference 6
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Revisiting the Encoding of Satellite Image Time Series
Reference 7
Source-reported events for the cited work
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Observation 59776f9b-af89-4f46-8a17-18e0176841a9 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Xgboost: A scalable tree boosting system
Reference 8
Source-reported events for the cited work
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Observation 49084c5a-3604-44e0-b804-f4d5d82c1b16 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Multi-year cropland mapping based on remote sensing data: A case study for the khabarovsk territory, russia
Reference 9
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Observation 5fea6499-f43a-4ae5-9c89-232a5cb8540d · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Masksembles for uncertainty estimation
Reference 10
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Observation 3e116107-f728-4f75-9fdb-0792723dfaa5 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series The climate of Switzerland, 2024
Reference 11
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Observation dc5acafa-b8c5-4a3f-901e-b55a3a98060d · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Dropout as a bayesian approximation: Representing model uncertainty in deep learning
Reference 12
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Observation 07d8f966-6fe8-4457-80c2-929db70c942f · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Training sample selection for robust multi-year within-season crop classification using machine learning
Reference 13
Source-reported events for the cited work
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Observation d06bd5b7-c420-4d4c-b202-b8b8aea1031e · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Panoptic segmentation of satellite image time series with convolu- tional temporal attention networks
Reference 14
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Observation 623aca72-cf47-4700-a5e6-9993e9d61837 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Satellite image time series clas- sification with pixel-set encoders and temporal self-attention
Reference 15
Source-reported events for the cited work
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Observation cc17812e-56d2-4089-97f7-e79c62a33995 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series White, and Michael A
Reference 16
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Imbalanced datasets
Reference 17
Source-reported events for the cited work
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Observation af9290c9-abfd-42f8-9ee4-44e4243df9b8 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Gustafsson, Martin Danelljan, and Thomas B
Reference 18
Source-reported events for the cited work
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Observation 9a45595d-98ed-4b95-a109-98debc586af7 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Lora-ensemble: Efficient uncertainty modelling for self-attention networks
Reference 19
Source-reported events for the cited work
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Observation b26ef598-bcb0-4a84-91ee-161489710ae8 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Hopcroft, and Kilian Q
Reference 20
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Observation dd005cc9-d2b6-4a38-9fb1-fe9badad40d3 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series What uncertainties do we need in bayesian deep learning for computer vision? Advances in neural information processing systems, 30, 2017
Reference 21
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Observation 8a97fa0d-e536-4414-b545-80a753c87086 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series General- ization enhancement strategies to enable cross-year cropland mapping with convolutional neural networks trained using historical samples
Reference 22
Source-reported events for the cited work
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Observation 2b3e8944-3658-45a8-9db9-b5e96f3c06de · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Simple and scalable predictive uncertainty estima- tion using deep ensembles
Reference 23
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Observation 833a1596-6cd9-4c65-bd0d-7b304d6492c9 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series A high-resolution canopy height model of the earth
Reference 24
Source-reported events for the cited work
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Observation 96deca38-37ce-49ed-b28a-05b153fbfe17 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Feature-Wise Bias Amplification
Reference 25
Source-reported events for the cited work
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Observation 1d1c045b-f968-4db4-83b6-b084799cdc1e · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Multi-year crop type mapping using sentinel-2 imagery and deep seman- tic segmentation algorithm in the hetao irrigation district in china
Reference 26
Source-reported events for the cited work
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Observation ceb9f728-4bcc-4d86-82fd-0f362d22151f · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Cropsight: Towards a large-scale operational framework for object-based crop type ground truth retrieval using street view and planetscope satellite imagery
Reference 27
Source-reported events for the cited work
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Observation 7b8dc69c-c196-46ab-ba00-fab33a32b7e0 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Refinement of cropland data layer with effective confidence layer interval and image filtering
Reference 28
Source-reported events for the cited work
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Observation 5d314873-e98d-4693-ace0-eb82c0fbfa5a · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Crop classification under varying cloud cover with neural ordinary differential equations
Reference 29
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Observation a508332f-b8fd-462b-9cea-b0c017039c1f · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series The need for biases in learning generaliza- tions
Reference 30
Source-reported events for the cited work
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Observation e464b478-4324-4b91-a6dc-851658488730 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Gener- alized classification of satellite image time series with ther- mal positional encoding
Reference 31
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Observation a389791b-5974-4208-b9c8-4b0a55539860 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Multi-year mapping of cropping systems in regions with smallholder farms from sentinel-2 images in google earth en- gine
Reference 32
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series SITSMamba for Crop Classification based on Satellite Image Time Series
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Subsampling is not Magic: Why Large Batch Sizes Work for Differentially Private Stochastic Optimisation
Reference 34
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Observation 65c51008-ed9a-4609-b964-9322a21cd4ea · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series The eurocropsml time series benchmark dataset for few-shot crop type classification in europe
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series U- net: Convolutional networks for biomedical image segmen- tation
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Source-reported events for the cited work
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Observation 31eda540-5533-456a-b518-aedd1235dc1d · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Dos Santos, Maria Vakalopoulou, Ronny H ¨ansch, Stine Hansen, Keiller Nogueira, Jonathan Prexl, and Devis Tuia
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Source-reported events for the cited work
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Observation 309b3d97-56e8-4236-9d5d-b325eacc8596 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Temporal vegetation modelling using long short-term memory networks for crop identification from medium-resolution multi-spectral satel- lite images
Reference 38
Source-reported events for the cited work
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Observation 4554fe56-dd04-4d07-a8c4-a8d7322082f3 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Temporal vegetation modelling using long short-term memory networks for crop identification from medium-resolution multi-spectral satel- lite images
Reference 39
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Multi-temporal land cover classification with sequential recurrent encoders
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Self-attention for raw optical satellite time series classification
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Breizhcrops: A satellite time series dataset for crop type identification
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series End-to-end learned early classification of time series for in-season crop type mapping
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Lightweight temporal self-attention for classifying satellite images time series
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Leveraging Class Hierarchies with Metric-Guided Prototype Learning
Reference 45
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Eurocrops: The largest harmonized open crop dataset across the european union
Reference 46
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series A sentinel-2 multiyear, multicountry benchmark dataset for crop classification and segmentation with deep learning
Reference 47
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Vits for sits: Vision transformers for satellite image time series
Reference 48
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Attention mechanism-based deep learning approach for wheat yield estimation and uncer- tainty analysis from remotely sensed variables
Reference 49
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Deep learning for vegetation clas- sification from optical satellite image time series
Reference 50
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Crop mapping from image time series: deep learning with multi-scale label hierarchies
Reference 51
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Gating revisited: Deep multi- layer rnns that can be trained
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Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series FiLM-Ensemble: Probabilistic deep learning via feature- wise linear modulation
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Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Country-wide cross-year crop map- ping from optical satellite image time series
Reference 54
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Hierarchical crop map- ping from satellite image sequences with recurrent neural networks
Reference 55
Source-reported events for the cited work
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Observation 3728aad6-9cfb-4930-bbd6-b3c58cd2f406 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Attention is all you need
Reference 56
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Equivariance and invariance inductive bias for learning from insufficient data
Reference 57
Source-reported events for the cited work
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Observation f8e3723c-a37b-46b9-9c49-f7e0110e91db · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Remote sensing for agricultural applications: A meta-review.Remote sensing of environment, 236:111402, 2020
Reference 58
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Bayesian learning via stochastic gradient langevin dynamics
Reference 59
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Segformer: Simple and efficient design for semantic segmentation with transform- ers
Reference 60
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series [44] then proposed the lightweight Temporal Atten- 12 Figure 11
Reference 61
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series [13] investigated ways to optimize the use of multi-year samples in a within-season crop classification model
Reference 62
Source-reported events for the cited work
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$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Very recently, [22] shows improved results for cross-year crop mapping combining a U-Net with photometric augmenta- tion, Tversky-Focal loss, and Monte Carlo (MC) Dropout
Reference 63
Source-reported events for the cited work
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Observation 5057863b-2095-434a-8353-e23953ea57b9 · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series In the context of crop yield and type mapping, several re- cent studies have adopted stochastic inference techniques
Reference 64
Source-reported events for the cited work
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Observation 08fa2f32-e62f-4063-92dc-9eb9596330ff · outbound
$T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series Unresolved cited work
Reference 65
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Observation 1400ecb0-0913-4522-8b7d-b022abe9c94d · inbound
Think with Extra-Image: A Farmland Segmentation Agent Driven by Spatio-Temporal Information Gain $T^{3}S$: Think in Thermal Time for Generalizable Crop Mapping from Satellite Image Time Series
Reference 23
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