Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links
Paper Citation Record · LEDGER
As of 19 August 2026, this Paper Citation Record lists 0 of 0 outbound references and 63 inbound Pith citation observations for arXiv:1912.02757.
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
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-19T06:32:44.657259+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-16T11:56:26.454798Z
A source-named dated measurement, never combined with another source.
Source: pith, observed 2026-08-05T02:28:24.338817Z
0 of 0 outbound references displayed
External citation measurements
351
pith, observed 2026-08-05T02:28:24.338817Z
No outbound reference observations are available for this paper version.
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Reference 25
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Observation 2ac440c7-7f62-4ab7-bf67-45782f0580e9 · inbound
Deep Loss Convexification for Learning Iterative Models Deep Ensembles: A Loss Landscape Perspective
Reference 23
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Unavailable: canonical work link unavailable.
Observation acb3714f-600e-4050-bde6-81eacb8901e7 · inbound
Why you don't overfit, and don't need Bayes if you only train for one epoch Deep Ensembles: A Loss Landscape Perspective
Reference 2020
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Observation 2f1d7f52-78b1-4120-9860-6806f61cd7c9 · inbound
Ex Uno Pluria: Insights on Ensembling in Low Precision Number Systems Deep Ensembles: A Loss Landscape Perspective
Reference 2021
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Observation 547c63c4-d2f5-4162-b7d4-877fc6051214 · inbound
Customer Lifetime Value Prediction with Uncertainty Estimation Using Monte Carlo Dropout Deep Ensembles: A Loss Landscape Perspective
Reference 39
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Observation 3795009c-91b8-405e-93d9-74bc2f753b1e · inbound
AI-powered Digital Twin of the Ocean: Reliable Uncertainty Quantification for Real-time Wave Height Prediction with Deep Ensemble Deep Ensembles: A Loss Landscape Perspective
Reference 53
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Observation 8217c723-6701-4d76-984a-28957de6a37e · inbound
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Reference 12
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Observation d4f9108c-99e0-4f3c-b6bb-ab7449e41af2 · inbound
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Reference 23
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Observation af0217b8-9ac3-4e31-99b8-e17abaf3d2a5 · inbound
Early Failure Detection in Autonomous Surgical Soft-Tissue Manipulation via Uncertainty Quantification Deep Ensembles: A Loss Landscape Perspective
Reference 13
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Observation 7360fbcf-18d8-46a8-9b60-7ecb94eb1e0f · inbound
Ensembles of Low-Rank Expert Adapters Deep Ensembles: A Loss Landscape Perspective
Reference 20
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Observation 3b0ef962-353c-4f60-ba77-9b9f2d1668fe · inbound
UASTHN: Uncertainty-Aware Deep Homography Estimation for UAV Satellite-Thermal Geo-localization Deep Ensembles: A Loss Landscape Perspective
Reference 32
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Observation 2f64d21f-ebc5-48b6-acc8-a6b76331b8a2 · inbound
Loss Landscape Analysis for Reliable Quantized ML Models for Scientific Sensing Deep Ensembles: A Loss Landscape Perspective
Reference 14
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Observation 635f33ac-0bf5-4e80-9df6-fa8552a1e172 · inbound
Learning from Stochastic Teacher Representations Using Student-Guided Knowledge Distillation Deep Ensembles: A Loss Landscape Perspective
Reference 9
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Observation 849279e6-23bb-46c0-b943-4ee17848ae71 · inbound
The effect of the number of parameters and the number of local feature patches on loss landscapes in distributed quantum neural networks Deep Ensembles: A Loss Landscape Perspective
Reference 17
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Observation 6b7221ef-c268-4d1b-bd1c-cff1a09d73e8 · inbound
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Reference 7
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Observation e6bb8558-ca52-432f-9eb0-80b85c0fdacd · inbound
Uncertainty quantification with approximate variational learning for wearable photoplethysmography prediction tasks Deep Ensembles: A Loss Landscape Perspective
Reference 40
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Observation ab55122c-64ce-4a6a-9fc6-57d0a554e119 · inbound
SPIEDiff: robust learning of long-time macroscopic dynamics from short-time particle simulations with quantified epistemic uncertainty Deep Ensembles: A Loss Landscape Perspective
Reference 28
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Observation 441716cf-2151-4685-a6b6-9933a8a788d0 · inbound
Automated Fetal Biometry Assessment with Deep Ensembles using Sparse-Sampling of 2D Intrapartum Ultrasound Images Deep Ensembles: A Loss Landscape Perspective
Reference 7
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Observation c10780f4-52c4-481a-b710-b08327abbb3a · inbound
NAN: A Training-Free Solution to Coefficient Estimation in Model Merging Deep Ensembles: A Loss Landscape Perspective
Reference 12
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Observation a5ca5e0a-a4d4-4818-b051-271d96a6202d · inbound
NeuroTrails: Training with Dynamic Sparse Heads as the Key to Effective Ensembling Deep Ensembles: A Loss Landscape Perspective
Reference 17
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Observation 62f62517-646a-42d8-8c4b-04dbf953a21a · inbound
Diverse Prototypical Ensembles Improve Robustness to Subpopulation Shift Deep Ensembles: A Loss Landscape Perspective
Reference 3
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Observation fde0c10e-f5de-4a42-8961-229a547211bb · inbound
CXR-LT 2024: A MICCAI challenge on long-tailed, multi-label, and zero-shot disease classification from chest X-ray Deep Ensembles: A Loss Landscape Perspective
Reference 51
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Observation 0cf1255b-44f2-4e4b-a0e2-83970c4f9ab6 · inbound
Membership Inference Attacks as Privacy Tools: Reliability, Disparity and Ensemble Deep Ensembles: A Loss Landscape Perspective
Reference 12
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Observation 49232dc7-0318-406e-a6d5-11414a6990d6 · inbound
Enhanced accuracy through ensembling of randomly initialized auto-regressive models for time-dependent PDEs Deep Ensembles: A Loss Landscape Perspective
Reference 28
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Observation bae07758-fc9d-4d00-a3cf-32931d685c12 · inbound
Accelerating Hamiltonian Monte Carlo for Bayesian Inference in Neural Networks and Neural Operators Deep Ensembles: A Loss Landscape Perspective
Reference 16
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Observation 946022fc-54ce-413d-8b79-8ca975dae7d5 · inbound
LVM-GP: Uncertainty-Aware PDE Solver via coupling latent variable model and Gaussian process Deep Ensembles: A Loss Landscape Perspective
Reference 30
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Observation 0e984262-de88-4d80-b691-f7cd603485f0 · inbound
ART: Adaptive Relation Tuning for Generalized Relation Prediction Deep Ensembles: A Loss Landscape Perspective
Reference 7
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Observation bafb494b-ca48-4dec-96c6-069d7883c20a · inbound
Structured Basis Function Networks: Loss-Centric Multi-Hypothesis Ensembles with Controllable Diversity Deep Ensembles: A Loss Landscape Perspective
Reference 15
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Observation aa2a93e4-5636-46ef-ae4f-96e5503c0a48 · inbound
Trajectory-Aware Information Matching for Multi-Step Gradient Inversion in Federated Learning Deep Ensembles: A Loss Landscape Perspective
Reference 2012
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Observation 1591e577-4fab-4aed-bcba-88f4e02df218 · inbound
Exploring the Rashomon Set for Concept-Based Models Deep Ensembles: A Loss Landscape Perspective
Reference 15
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Observation 9a0685f0-527c-4ddf-91ca-62e07420a21d · inbound
Expectation and Acoustic Neural Network Representations Enhance Music Identification from Brain Activity Deep Ensembles: A Loss Landscape Perspective
Reference 45
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Observation fe138a92-b651-4d54-8eab-56c334d54e61 · inbound
FLAME: Condensing Ensemble Diversity into a Single Network for Efficient Sequential Recommendation Deep Ensembles: A Loss Landscape Perspective
Reference 13
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Observation f7499393-2050-47bd-84a6-cc33d660643c · inbound
Rethinking Data Mixing from the Perspective of Large Language Models Deep Ensembles: A Loss Landscape Perspective
Reference 2
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Observation 8f8f5ce4-e471-4707-877c-b33c09d80de1 · inbound
Physics-Informed Neural Networks for Methane Sorption: Cross-Gas Transfer Learning, Ensemble Collapse Under Physics Constraints, and Monte Carlo Dropout Uncertainty Quantification Deep Ensembles: A Loss Landscape Perspective
Reference 78
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Observation ac5e7557-7b9b-4f1c-905e-b8dd7ba53d18 · inbound
Scalable Hyperparameter-Divergent Ensemble Training with Automatic Learning Rate Exploration for Large Models Deep Ensembles: A Loss Landscape Perspective
Reference 6
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Observation 7705e54b-00c7-4c5b-b5b6-66beb1943856 · inbound
Experience Sharing in Mutual Reinforcement Learning for Heterogeneous Language Models Deep Ensembles: A Loss Landscape Perspective
Reference 19
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Observation 33db8a8a-6d39-47fe-ac1e-fd393bd07e41 · inbound
Flowing with Confidence Deep Ensembles: A Loss Landscape Perspective
Reference 6
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Observation c5f336b9-caf7-47f3-82f5-e996135714db · inbound
Causal Unlearning in Collaborative Optimization: Exact and Approximate Influence Reversal under Adversarial Contributions Deep Ensembles: A Loss Landscape Perspective
Reference 30
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Observation f3452912-5c5f-4f08-83b6-881e631a30a4 · inbound
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Reference 22
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Observation e9d26d6d-cad4-4bd0-8790-cb443d187b63 · inbound
Do Deep Ensembles Actually Capture Uncertainty in Graph Neural Networks? Deep Ensembles: A Loss Landscape Perspective
Reference 16
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Observation 1d0c996c-2ecd-434c-b836-5bf348793e51 · inbound
Convergence Without Understanding: When Language Models Agree on Representations but Disagree on Reasoning Deep Ensembles: A Loss Landscape Perspective
Reference 7
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Observation eebe9cdf-b1a5-484d-b50b-02f5f8184962 · inbound
ChainzRule: Sample-Efficient, Robust Deep Learning Across Tabular, NLP, and Vision Tasks Deep Ensembles: A Loss Landscape Perspective
Reference 16
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Observation a59a3d25-6aa2-4fa0-b581-be20e248fb46 · inbound
Soft Specialists: $\alpha$-R\'enyi Ensembles for Uncertainty-Aware LLM Post-Training Deep Ensembles: A Loss Landscape Perspective
Reference 32
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Observation 27447cfa-63b2-45ef-b7d4-b15991a88960 · inbound
DAMEL: Dual-Axis Multi-Expert Learning for Class-Imbalanced Learning Deep Ensembles: A Loss Landscape Perspective
Reference 20
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Observation 9f60fd2c-3402-47c3-a733-a2c449d7590e · inbound
q0: Primitives for Hyper-Epoch Pretraining Deep Ensembles: A Loss Landscape Perspective
Reference 10
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Observation 11a24d47-9570-4d5e-afc6-989e127fc4ba · inbound
Recoverable but Not Stationary:Local Linear Structures in Weights and Activations Deep Ensembles: A Loss Landscape Perspective
Reference 4
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Observation 4ebe8da0-c827-4faa-aa34-bf55fc3fb08c · inbound
The FID Lottery: Quantifying Hidden Randomness in Generative-Model Evaluation Deep Ensembles: A Loss Landscape Perspective
Reference 29
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Observation 4af57d2d-cf0a-47dc-9e82-36f5e02bce6b · inbound
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Reference 15
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TabPack: Efficient Hyperparameter Ensembles for Tabular Deep Learning Deep Ensembles: A Loss Landscape Perspective
Reference 136
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Reference 9
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Efficient Bayesian Deep Ensembles via Analytic Predictive Inference Deep Ensembles: A Loss Landscape Perspective
Reference 2
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Ensemble Diversity Optimization for Subjective Supervision Deep Ensembles: A Loss Landscape Perspective
Reference 74
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Reference 29
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Reference 19
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Reference 9
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Reference 12
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Observation 3ed1613b-8745-4b57-befb-6c541f13a9f6 · inbound
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Reference 14
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Observation 7f511372-101c-4e3b-89dc-c5b7aeed645c · inbound
Search for new scalars via $X \rightarrow SH \rightarrow b\bar{b}b\bar{b}$ in proton-proton collisions at $\sqrt{s} = 13$ TeV with the ATLAS detector Deep Ensembles: A Loss Landscape Perspective
Reference 84
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Observation 93e117e7-9fff-4377-b667-baee1ddb69cc · inbound
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Reference 14
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Controllable Diversity in Normalization-Based Implicit Ensembles via Softmax-Temperature Modulation Deep Ensembles: A Loss Landscape Perspective
Reference 2022
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Uncertainty quantification for trustworthy deep learning: Methods and measures Deep Ensembles: A Loss Landscape Perspective
Reference 1914
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Observation c7cc8097-465b-4035-88b7-a1fd8ba23983 · inbound
Uncertainty-guided active learning for surrogate prediction of stream-finishing wear fields Deep Ensembles: A Loss Landscape Perspective
Reference 24
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Using Diffusion Models to Estimate Uncertainties in Analytic Continuation Deep Ensembles: A Loss Landscape Perspective
Reference 74
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