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  2. From Parity to Preference-based Notionsof Fairness in Classification…

    https://mlg.eng.cam.ac.uk/adrian/NeurIPS17-from-parity-to-preference.pdf
    19 Jun 2024: W (100)M (200) W (200). f2. f1Acc: 0.83. Benefit: 0% (M), 67% (W). ... M (100). W (100)M (200) W (200). f2. f1Acc: 0.72. Benefit: 22% (M), 22% (W)Acc: 1.00.
  3. Now You See Me (CME): Concept-based Model Extraction

    https://mlg.eng.cam.ac.uk/adrian/AIMLAI20-CME.pdf
    19 Jun 2024: This dataset consists of 11,788 im-ages of 200 bird species with every image annotatedusing 312 binary concept labels (e.g. ... 28] C. Wah, S. Branson, P. Welinder, P. Perona, S. Be-longie, The caltech-ucsd birds-200-2011 dataset(2011).
  4. Ode to an ODE Krzysztof Choromanski ∗Robotics at Google ...

    https://mlg.eng.cam.ac.uk/adrian/NeurIPS20-ODEtoODE.pdf
    19 Jun 2024: Inall experiments we used k = 200 perturbations per iteration [15]. ... mentioned above, in allexperiments we used k = 200).
  5. Beyond Distributive Fairness in Algorithmic Decision Making: Feature…

    https://mlg.eng.cam.ac.uk/adrian/AAAI18-BeyondDistributiveFairness.pdf
    19 Jun 2024: For a given dataset, we gather responses to the abovequestions from 200 different AMT workers (that is, each fea-ture is judged by 200 different workers).
  6. 2018 Formatting Instructions for Authors Using LaTeX

    https://mlg.eng.cam.ac.uk/adrian/AIES18-crowd_signals.pdf
    19 Jun 2024: Weuse this set of 200 labeled tweets as our ground truth dataset.
  7. Methods for Inference in Graphical Models

    https://mlg.eng.cam.ac.uk/adrian/phd_FINAL.pdf
    19 Jun 2024: Methods for Inference in Graphical Models. Adrian Weller. Submitted in partial fulfillment of the. requirements for the degree. of Doctor of Philosophy. in the Graduate School of Arts and Sciences. COLUMBIA UNIVERSITY. 2014. c2014. Adrian Weller.
  8. Network Ranking With Bethe Pseudomarginals Kui TangColumbia…

    https://mlg.eng.cam.ac.uk/adrian/2013_NeurIPS_DiscML_Network.pdf
    19 Jun 2024: We drew independent nodescores from a mixture of Gaussians and a scale free network (100 nodes, 200 edges) from the Barabsi-Albertmodel [12].
  9. Blind Justice: Fairness with Encrypted Sensitive Attributes

    https://mlg.eng.cam.ac.uk/adrian/ICML18-BlindJustice.pdf
    19 Jun 2024: Blind Justice: Fairness with Encrypted Sensitive Attributes. Niki Kilbertus 1 2 Adrià Gascón 3 4 Matt Kusner 3 4 Michael Veale 5 Krishna P. Gummadi 6 Adrian Weller 2 3. AbstractRecent work has explored how to train machinelearning models which
  10. Leader Stochastic Gradient Descent for DistributedTraining of Deep…

    https://mlg.eng.cam.ac.uk/adrian/NeurIPS2019_LSGD_preprint.pdf
    19 Jun 2024: Leader Stochastic Gradient Descent for DistributedTraining of Deep Learning Models. Yunfei Teng,1yt1208@nyu.edu. Wenbo Gao,2wg2279@columbia.edu. Francois Chaluschalusf3@gmail.com. Anna Choromanskaac5455@nyu.edu. Donald Goldfarbgoldfarb@columbia.edu.
  11. You Shouldn’t Trust Me: Learning Models WhichConceal Unfairness From…

    https://mlg.eng.cam.ac.uk/adrian/ECAI20-You_Shouldn%E2%80%99t_Trust_Me.pdf
    19 Jun 2024: 373 10.573 6.200 0.9 2.5 14.3 0.0 4029.1 28.6 1.2 0.0SHAP 3.7 12.9 9.2 4.499 12.027

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