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Source: paper_references, paper_reference_links, observed 2026-07-11T08:52:08.656117Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 46 of 46 outbound references and 0 inbound Pith citation observations for arXiv:2607.05098.
A citation records a reference. It does not transfer a finding from one paper to another.
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Source: paper_references, paper_reference_links, observed 2026-07-11T08:52:08.656117Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-07T06:34:17.273281+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
46 of 46 outbound references displayed
External citation measurements
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Observation 3b834bfa-00b1-4315-9723-05dcff67306b · outbound
Functional Bilevel Optimization for Predictive Fairness Unresolved cited work
Reference 1
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Observation 98fabec2-b83a-4fd3-957b-43a9c5a7303d · outbound
Functional Bilevel Optimization for Predictive Fairness A survey on bias and fairness in machine learning.ACM Computing Surveys, 54:1–35, 2021
Reference 2
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Observation 7444b6c1-9e30-4191-a409-a85324940bf7 · outbound
Functional Bilevel Optimization for Predictive Fairness Generalized demographic parity for group fairness.International Conference on Learning Representations (ICLR), 2022
Reference 3
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Observation 7f516474-7faa-43d7-9c19-9ee012b63a55 · outbound
Functional Bilevel Optimization for Predictive Fairness Equality of opportunity in supervised learning
Reference 4
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Observation 88ba9c5f-2f09-4405-807e-b7689dc7bdb1 · outbound
Functional Bilevel Optimization for Predictive Fairness Kusner, Joshua Loftus, Chris Russell, and Ricardo Silva
Reference 5
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Observation c8c4c9ff-036e-494a-a050-6e7836d2f0f8 · outbound
Functional Bilevel Optimization for Predictive Fairness MIT Press, 2023
Reference 6
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Observation c5dd8f4f-d099-4558-9758-47d0bbbdba00 · outbound
Functional Bilevel Optimization for Predictive Fairness Fair prediction with disparate impact: A study of bias in recidivism prediction instruments.Big Data, 5(2):153–163, 2017
Reference 7
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Observation 4f4bdbc4-1c2b-4d66-9499-319c0c772b7c · outbound
Functional Bilevel Optimization for Predictive Fairness Inherent trade-offs in the fair determination of risk scores
Reference 8
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Observation 39640a53-cd72-4866-9d86-dc020817d2be · outbound
Functional Bilevel Optimization for Predictive Fairness Fairness-aware classifier with prejudice remover regularizer.Machine Learning and Knowledge Discovery in Databases, pages 35–50, 2012
Reference 9
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Observation 355395c6-3a9b-44f1-8627-ab2ae78d9673 · outbound
Functional Bilevel Optimization for Predictive Fairness Teo, Le Song, Bernhard Schölkopf, and Alex J
Reference 10
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Observation ae721534-ca39-49fe-8589-6ffab107acfe · outbound
Functional Bilevel Optimization for Predictive Fairness Mitigating unwanted biases with adversarial learning.Proceedings of the Conference on AI, Ethics, and Society (AIES), pages 335–340, 2018
Reference 11
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Observation fb275d15-525f-41a5-a29f-0c2a6e8eddfb · outbound
Functional Bilevel Optimization for Predictive Fairness Censoring representations with an adversary.International Conference on Learning Representations (ICLR), 2016
Reference 12
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Observation 5a32b568-8a46-481f-bc22-d4d6cfcb442b · outbound
Functional Bilevel Optimization for Predictive Fairness Fairness-aware learning for continuous attributes and treatments.Proceedings of Machine Learning Research (PMLR), 97: 4382–4391, 2019
Reference 13
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Observation 235b1bfe-b43c-48da-b6c4-b1ce0a69b478 · outbound
Functional Bilevel Optimization for Predictive Fairness Unresolved cited work
Reference 14
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Observation 6b926f22-ea21-4a08-981d-2a7751cbd988 · outbound
Functional Bilevel Optimization for Predictive Fairness Fair Bilevel Neural Network (FairBiNN): On Balancing Fairness and Accuracy via Stackelberg Equilibrium.Advances in Neural Information Processing Systems (NeurIPS), 2024
Reference 15
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Observation fe11d639-7385-4d8a-aed7-5965c1c113d1 · outbound
Functional Bilevel Optimization for Predictive Fairness Nonconvex optimization for regression with fairness constraints
Reference 16
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Observation e7ac085b-4e61-4f01-9565-d53787f4276e · outbound
Functional Bilevel Optimization for Predictive Fairness Mitigating discrimination in insurance with wasserstein barycenters.PKDD/ECML Workshops, 2023
Reference 17
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Observation 764458a7-d6e0-41fd-8027-1df603179bbc · outbound
Functional Bilevel Optimization for Predictive Fairness Should bank stress tests be fair?Management Science, 71(1): 262–278, 2024
Reference 18
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No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.
Observation 28349ae3-8381-4830-9e74-cef217fe0089 · outbound
Functional Bilevel Optimization for Predictive Fairness FairJob: A Real-World Dataset for Fairness in Online Systems.Advances in Neural Information Processing Systems (NeurIPS), 2024
Reference 19
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Observation ae579c7b-0142-4267-9f3c-779638bf6025 · outbound
Functional Bilevel Optimization for Predictive Fairness Functional bilevel optimization for machine learning.Advances in Neural Information Processing Systems (NeurIPS), 2024
Reference 20
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Observation d57d09ee-638b-48e1-8706-748e9e061b9e · outbound
Functional Bilevel Optimization for Predictive Fairness Unresolved cited work
Reference 21
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Observation bdb25c89-0179-4fce-b68f-0fbac6da1395 · outbound
Functional Bilevel Optimization for Predictive Fairness A reductions approach to fair classification.Proceedings of Machine Learning Research (PMLR), 80:60–69, 2018
Reference 22
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Observation 638dc7ae-61fe-45f7-be92-74ff933c921a · outbound
Functional Bilevel Optimization for Predictive Fairness Unresolved cited work
Reference 23
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Observation cc74c355-9e74-4efd-97fe-8c1735e25a49 · outbound
Functional Bilevel Optimization for Predictive Fairness Fair kernel learning
Reference 24
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Observation 77b04d72-945d-479b-b442-8d512ca58f8c · outbound
Functional Bilevel Optimization for Predictive Fairness Kernel dependence reg- ularizers and Gaussian processes with applications to algorithmic fairness.Pattern Recognition, 132:108922, 2022
Reference 25
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Observation 6863828c-9851-4551-ae5b-f0a4c04f1e6c · outbound
Functional Bilevel Optimization for Predictive Fairness Fair regression with Wasserstein barycenters
Reference 26
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Observation 9136b022-79f4-4078-b090-3580f938276a · outbound
Functional Bilevel Optimization for Predictive Fairness Projection to Fairness in Statistical Learning
Reference 27
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Observation 5405e527-5521-442c-91c5-11df9bf83dba · outbound
Functional Bilevel Optimization for Predictive Fairness A minimax framework for quantifying risk-fairness trade-off in regression.The Annals of Statistics, 50(4):2416–2442, 2022
Reference 28
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Observation 78e9eb42-9f96-479a-a42a-abae68542003 · outbound
Functional Bilevel Optimization for Predictive Fairness Fair learning with Wasserstein barycenters for non-decomposable performance measures.International Conference on Artifi- cial Intelligence and Statistics (AISTATS), 2023
Reference 29
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Observation 5d639784-a209-4569-ba19-9973bb2417d4 · outbound
Functional Bilevel Optimization for Predictive Fairness Fairness-aware neural Rényi min- imization for continuous features.International Joint Conference on Artificial Intelligence (IJCAI), 2020
Reference 30
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Observation 4c8cc136-1a3e-4733-b8de-26323b0ff13a · outbound
Functional Bilevel Optimization for Predictive Fairness Unresolved cited work
Reference 31
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Observation 02a446aa-4682-4824-a158-ba45d697295a · outbound
Functional Bilevel Optimization for Predictive Fairness Fairbatch: Batch selection for model fairness.International Conference on Learning Representations (ICLR), 2021
Reference 32
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Observation 252f77ec-d756-46f4-8bdc-f5aa3236840e · outbound
Functional Bilevel Optimization for Predictive Fairness Fair machine learning under limited demographically labeled data.Workshop on Socially Responsible Machine Learning (SRML), 2022
Reference 33
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Observation 0f267f9c-6d43-4db3-bc3f-96adda2dc946 · outbound
Functional Bilevel Optimization for Predictive Fairness Fairness-informed pareto optimization : An efficient bilevel framework.arXiv preprint arXiv:2601.13448, 2026
Reference 34
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Observation bb1e007c-6b48-48a4-b9ed-d77d4a5b6ad2 · outbound
Functional Bilevel Optimization for Predictive Fairness Hyperparameter optimization with approximate gradient.Proceedings of Machine Learning Research (PMLR), 48:737–746, 2016
Reference 35
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Observation 0ff89a63-8230-40fa-bf7c-ecc74499fe9a · outbound
Functional Bilevel Optimization for Predictive Fairness UCI machine learning repository, 2019
Reference 36
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Observation 4098d77e-12c5-4ea7-8d76-b3f567d7a8cf · outbound
Functional Bilevel Optimization for Predictive Fairness van Rijn, Bernd Bischl, and Luis Torgo
Reference 37
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Observation e24004fd-79b7-4efe-b511-4f5a4d40ef13 · outbound
Functional Bilevel Optimization for Predictive Fairness Mutual information neural estimation.Proceedings of Machine Learning Research (PMLR), 80:531–540, 2018
Reference 38
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Observation aaaf88f4-e92a-4adc-8973-31ca4e3fcdd9 · outbound
Functional Bilevel Optimization for Predictive Fairness Domain-adversarial training of neural networks.Journal of Machine Learning Research (JMLR), 17(59):1–35, 2016
Reference 39
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Observation 89f7b299-d095-4fe7-8098-e1f89e3d0bdc · outbound
Functional Bilevel Optimization for Predictive Fairness We work in L2(PAout) the space of square integrable functions wrt
Reference 40
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Observation c39607c3-472d-49fb-b5f6-717ca737edc7 · outbound
Functional Bilevel Optimization for Predictive Fairness The adjointa ⋆ ω ∈L 2(PAin )solves ∂2 hhLin(ω, h⋆ ω)a⋆ ω =−∂ hLout(ω, h⋆ ω), hence 2a⋆ ω(a) =−2α(h ⋆ ω(a)−µ ω) a⋆ ω(a) =−α(h ⋆ ω(a)−µ ω), µ ω :=E A∼PAout [h⋆ ω(A)]
Reference 41
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Observation 6c05ed5c-7a01-478e-963e-ebb7def772ed · outbound
Functional Bilevel Optimization for Predictive Fairness Compute each term •Direct outer term: ∂ωLout(ω, h⋆ ω) = 2E out [(fω(X)−Y)∂ ωfω(X)]
Reference 42
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Observation 027d93be-cd14-4b3b-b4a0-4366ca6e1187 · outbound
Functional Bilevel Optimization for Predictive Fairness We compute cj =|corr(X j, y)| for every coordinate and rank coordinates in decreasing order ofc j
Reference 43
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Observation 49b55aea-2acd-4d1d-9a12-d4565d037a41 · outbound
Functional Bilevel Optimization for Predictive Fairness If this threshold leaves the pool empty, we fall back to the top-ranked coordinates without thresholding
Reference 44
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Observation a9a3f848-dc05-46e0-965b-48fdd3074bde · outbound
Functional Bilevel Optimization for Predictive Fairness Concretely, we sample up to 128 other coordinates and define pj = max c̸=j |corr(Xc, Xj)|2, where the maximum is taken over the sampled coordinates
Reference 45
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Observation c729fdd6-e31c-4362-91d3-82536f1b276a · outbound
Functional Bilevel Optimization for Predictive Fairness These selected coordinates are removed fromXbefore training the predictor
Reference 46
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No inbound Pith citation observations are available.