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Marco Cuturi

  1. Learning with Differentiable Perturbed Optimizers
    2020/02/20 by Quentin Berthet, Berthet, Quentin, Mathieu Blondel +9 · 4 voices · 6 citations
    #cs.LG #math.OC #stat.ML
  2. Soft-DTW: a Differentiable Loss Function for Time-Series
    2017/03/05 by Marco Cuturi, Mathieu Blondel, Cuturi, Marco +1 · 39 citations
    Computer Science · #Time Series Analysis and Forecasting #Music and Audio Processing #Advanced Text Analysis Techniques
  3. Iterative Bregman Projections for Regularized Transportation Problems
    2014/12/16 by Jean‐David Benamou, Benamou, Jean-David, Guillaume Carlier +7 · 33 citations
    Decision Sciences · Mathematics · #Analysis of PDEs (math.AP) #FOS: Mathematics #Geometric Analysis and Curvature Flows #Numerical Analysis (math.NA) #Point processes and geometric inequalities #Risk and Portfolio Optimization
  4. Learning Generative Models with Sinkhorn Divergences
    2017/06/01 by Aude Genevay, Gabriel Peyré, Genevay, Aude +3 · 32 citations
    Computer Science · #Generative Adversarial Networks and Image Synthesis #Multimodal Machine Learning Applications #Face recognition and analysis
  5. Stochastic Optimization for Large-scale Optimal Transport
    2016/05/27 by Aude Genevay, Aude, Genevay, Marco Cuturi +5 · 31 citations
    Mathematics · Computer Science · #Markov Chains and Monte Carlo Methods #Stochastic Gradient Optimization Techniques #Gaussian Processes and Bayesian Inference
  6. On Wasserstein Two Sample Testing and Related Families of Nonparametric\n Tests
    2015/09/07 by Aaditya Ramdas, Ramdas, Aaditya, N. Garcı́a +3 · 20 citations
    Computer Science · Mathematics · #Advanced Statistical Methods and Models #Adversarial Robustness in Machine Learning #FOS: Computer and information sciences #FOS: Mathematics #Machine Learning (stat.ML) #Statistical Methods and Inference #Statistics Theory (math.ST)
  7. Sample Complexity of Sinkhorn divergences
    2018/10/05 by Aude Genevay, Genevay, Aude, Lénaïc Chizat +7 · 29 citations
    Computer Science · Decision Sciences · #Adversarial Robustness in Machine Learning #FOS: Mathematics #Machine Learning and Algorithms #Probabilistic and Robust Engineering Design #Statistics Theory (math.ST)
  8. Sliced Wasserstein Kernel for Persistence Diagrams
    2017/06/11 by Mathieu Carrière, Marco Cuturi, Carrière, Mathieu +3 · 12 citations
    Biochemistry, Genetics and Molecular Biology · Computer Science · Mathematics · #Algebraic Topology (math.AT) #Cell Image Analysis Techniques #Computational Geometry (cs.CG) #FOS: Computer and information sciences #FOS: Mathematics #Machine Learning (stat.ML) #Morphological variations and asymmetry #Topological and Geometric Data Analysis
  9. The Schrödinger Bridge between Gaussian Measures has a Closed Form
    2022/02/11 by Charlotte Bunne, Bunne, Charlotte, Ya‐Ping Hsieh +5 · 13 citations
    Biochemistry, Genetics and Molecular Biology · Computer Science · #Cancer Genomics and Diagnostics #FOS: Biological sciences #FOS: Computer and information sciences #Machine Learning (cs.LG) #Machine Learning and Algorithms #Quantitative Methods (q-bio.QM) #Single-cell and spatial transcriptomics
  10. Optimal Transport Tools (OTT): A JAX Toolbox for all things Wasserstein
    2022/01/28 by Marco Cuturi, Cuturi, Marco, Laetitia Meng-Papaxanthos +9 · 10 citations
    Engineering · Materials Science · #Asphalt Pavement Performance Evaluation #Electron and X-Ray Spectroscopy Techniques
  11. Differentiable Ranks and Sorting using Optimal Transport
    2019/05/28 by Marco Cuturi, Cuturi, Marco, Olivier Teboul +3 · 8 citations
    Computer Science · #Machine Learning and Algorithms #Machine Learning and Data Classification #Bayesian Methods and Mixture Models
  12. Principal Geodesic Analysis for Probability Measures under the Optimal\n Transport Metric
    2015/06/25 by Vivien Seguy, Marco Cuturi, Seguy, Vivien +1 · 6 citations
    Computer Science · Engineering · Mathematics · #Topological and Geometric Data Analysis #3D Shape Modeling and Analysis #Point processes and geometric inequalities
  13. Controlling Language and Diffusion Models by Transporting Activations
    2024/10/30 by Pau Rodríguez, Pau Rodriguez, Arno Blaas +12 · 2 voices · 8 citations
    Computer Science · #Natural Language Processing Techniques #cs.AI #cs.CL #cs.CV #cs.LG
  14. Addressing Misspecification in Simulation-based Inference through Data-driven Calibration
    2024/05/14 by Antoine Wehenkel, Juan L. Gamella, Wehenkel, Antoine +12 · 1 voice · 9 citations
    Decision Sciences · #Simulation Techniques and Applications #cs.LG #stat.ME #stat.ML
  15. Mapping cells through time and space with moscot
    2025/01/22 by Dominik Klein, Giovanni Palla, Marius Lange +17 · 1 voice · 14 citations
    Biochemistry, Genetics and Molecular Biology · #Single-cell and spatial transcriptomics #Gene Regulatory Network Analysis
  16. Simple ReFlow: Improved Techniques for Fast Flow Models
    2024/10/10 by Beomsu Kim, Kim, Beomsu, Yu-Guan Hsieh +11 · 1 voice · 12 citations
    Computer Science · #Computer Vision and Pattern Recognition (cs.CV) #FOS: Computer and information sciences #Machine Learning (cs.LG) #cs.CV #cs.LG
  17. Large Scale computation of Means and Clusters for Persistence Diagrams using Optimal Transport
    2018/05/22 by Théo Lacombe, Marco Cuturi, Lacombe, Théo +3 · 5 citations
    Computer Science · Mathematics · #Advanced Graph Neural Networks #Computational Geometry (cs.CG) #FOS: Computer and information sciences #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Markov Chains and Monte Carlo Methods #Topological and Geometric Data Analysis
  18. Projection Robust Wasserstein Distance and Riemannian Optimization
    2020/06/12 by Tianyi Lin, Chenyou Fan, Lin, Tianyi +7 · 5 citations
    Computer Science · Engineering · Mathematics · #Advanced Image Processing Techniques #FOS: Computer and information sciences #FOS: Mathematics #Geometric Analysis and Curvature Flows #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Optimization and Control (math.OC) #Sparse and Compressive Sensing Techniques
  19. GENOT: Entropic (Gromov) Wasserstein Flow Matching with Applications to Single-Cell Genomics
    2023/10/13 by Dominik Klein, Klein, Dominik, Théo Uscidda +5 · 1 voice · 6 citations
    Computer Science · Mathematics · #FOS: Computer and information sciences #Machine Learning (cs.LG) #Machine Learning (stat.ML) #cs.LG #stat.ML
  20. A Smoothed Dual Approach for Variational Wasserstein Problems
    2015/03/09 by Marco Cuturi, Gabriel Peyré, Cuturi, Marco +1 · 3 citations
    Computer Science · Mathematics · #Advanced Image Processing Techniques #FOS: Computer and information sciences #FOS: Mathematics #Geometric Analysis and Curvature Flows #Machine Learning (stat.ML) #Optimization and Control (math.OC)
  21. Wasserstein Training of Boltzmann Machines
    2015/07/07 by Grégoire Montavon, Montavon, Grégoire, Klaus‐Robert Müller +3 · 4 citations
    Computer Science · Engineering · Physics and Astronomy · #Generative Adversarial Networks and Image Synthesis #Lattice Boltzmann Simulation Studies #Model Reduction and Neural Networks
  22. Supervised Training of Conditional Monge Maps
    2022/06/28 by Charlotte Bunne, Bunne, Charlotte, Andreas Krause +3 · 4 citations
    Computer Science · #Adversarial Robustness in Machine Learning #Domain Adaptation and Few-Shot Learning #FOS: Computer and information sciences #Machine Learning (cs.LG) #Machine Learning in Healthcare
  23. Fast and Robust Comparison of Probability Measures in Heterogeneous Spaces
    2020/02/05 by Ryoma Sato, Marco Cuturi, Sato, Ryoma +5 · 3 citations
    Computer Science · #Advanced Clustering Algorithms Research #Bayesian Methods and Mixture Models #FOS: Computer and information sciences #Gaussian Processes and Bayesian Inference #Machine Learning (cs.LG) #Machine Learning (stat.ML)
  24. Multivariate Conformal Prediction using Optimal Transport
    2025/02/05 by Michal Klein, Klein, Michal, Louis Béthune +5 · 10 citations
    Computer Science · #Neural Networks and Applications
  25. Scaling Laws for Forgetting during Finetuning with Pretraining Data Injection
    2025/02/09 by Louis Béthune, Bethune, Louis, David Grangier +9 · 9 citations
    Computer Science · #Computation and Language (cs.CL) #Computer Graphics and Visualization Techniques #FOS: Computer and information sciences #Image Processing and 3D Reconstruction #Machine Learning (cs.LG) #Neural Networks and Applications
  26. Low-rank Optimal Transport: Approximation, Statistics and Debiasing
    2022/05/24 by Meyer Scetbon, Marco Cuturi, Scetbon, Meyer +1 · 3 citations
    Engineering · Computer Science · #Sparse and Compressive Sensing Techniques #Gaussian Processes and Bayesian Inference #Distributed Sensor Networks and Detection Algorithms
  27. On Projection Robust Optimal Transport: Sample Complexity and Model Misspecification
    2020/06/22 by Tianyi Lin, Lin, Tianyi, Zeyu Zheng +7 · 3 citations
    Computer Science · Decision Sciences · Environmental Science · Mathematics · #Adversarial Robustness in Machine Learning #FOS: Computer and information sciences #FOS: Mathematics #Groundwater flow and contamination studies #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Markov Chains and Monte Carlo Methods #Probabilistic and Robust Engineering Design #Statistics Theory (math.ST)
  28. Structured Transforms Across Spaces with Cost-Regularized Optimal Transport
    2023/11/09 by Othmane Sebbouh, Marco Cuturi, Sebbouh, Othmane +3 · 3 citations
    Biochemistry, Genetics and Molecular Biology · Computer Science · Decision Sciences · #Advanced Multi-Objective Optimization Algorithms #FOS: Computer and information sciences #FOS: Mathematics #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Optimization and Control (math.OC) #Probabilistic and Robust Engineering Design #Single-cell and spatial transcriptomics
  29. Learning Elastic Costs to Shape Monge Displacements
    2023/06/20 by Michal Klein, Klein, Michal, Aram-Alexandre Pooladian +9 · 2 citations
    Computer Science · Mathematics · #FOS: Computer and information sciences #Gaussian Processes and Bayesian Inference #Generative Adversarial Networks and Image Synthesis #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Statistical Methods and Inference
  30. Positive Definite Kernels in Machine Learning
    2009/11/28 by Marco Cuturi, Cuturi, Marco · 1 citation
    Computer Science · #Neural Networks and Applications #Face and Expression Recognition #Gaussian Processes and Bayesian Inference
  31. Wasserstein regularization for sparse multi-task regression
    2018/05/20 by Hicham Janati, Marco Cuturi, Janati, Hicham +3 · 1 citation
    Engineering · Medicine · #Advanced MRI Techniques and Applications #FOS: Computer and information sciences #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Photoacoustic and Ultrasonic Imaging #Sparse and Compressive Sensing Techniques
  32. Shielded Diffusion: Generating Novel and Diverse Images using Sparse Repellency
    2024/10/08 by Michael Kirchhof, Kirchhof, Michael, James Thornton +9 · 3 citations
    Engineering · Materials Science · Social Sciences · #Computational and Text Analysis Methods #Computer Vision and Pattern Recognition (cs.CV) #FOS: Computer and information sciences #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Nuclear Materials and Properties #Nuclear reactor physics and engineering
  33. On Fitting Flow Models with Large Sinkhorn Couplings
    2025/06/05 by Stephen Zhang, Zhang, Stephen, Alireza Mousavi-Hosseini +5 · 2 voices · 5 citations
    Computer Science · #Advanced Vision and Imaging #Generative Adversarial Networks and Image Synthesis #Medical Image Segmentation Techniques #cs.LG #stat.ML
  34. Debiased Sinkhorn barycenters
    2020/06/03 by Hicham Janati, Marco Cuturi, Janati, Hicham +3 · 2 citations
    Mathematics · Medicine · #Geometric Analysis and Curvature Flows #Advanced Neuroimaging Techniques and Applications
  35. Proximal Optimal Transport Modeling of Population Dynamics
    2021/06/11 by Charlotte Bunne, Bunne, Charlotte, Laetitia Meng-Papaxanthos +5 · 1 citation
    Biochemistry, Genetics and Molecular Biology · Computer Science · Physics and Astronomy · #Diffusion and Search Dynamics #FOS: Computer and information sciences #Gaussian Processes and Bayesian Inference #Machine Learning (cs.LG) #Model Reduction and Neural Networks
  36. Monge, Bregman and Occam: Interpretable Optimal Transport in High-Dimensions with Feature-Sparse Maps
    2023/02/08 by Marco Cuturi, Cuturi, Marco, Michal Klein +3 · 1 citation
    Mathematics · #FOS: Biological sciences #FOS: Computer and information sciences #Genomics (q-bio.GN) #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Statistical Methods and Inference
  37. Sample and Map from a Single Convex Potential: Generation using Conjugate Moment Measures
    2025/03/13 by Nina Vesseron, Louis Béthune, Vesseron, Nina +3 · 2 citations
    Computer Science · Mathematics · #FOS: Computer and information sciences #Generative Adversarial Networks and Image Synthesis #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Markov Chains and Monte Carlo Methods #Stochastic Gradient Optimization Techniques
  38. Tree-Sliced Variants of Wasserstein Distances
    2019/02/01 by Tam Le, Makoto Yamada, Le, Tam +5 · 1 citation
    Engineering · Environmental Science · #3D Shape Modeling and Analysis #Asphalt Pavement Performance Evaluation #FOS: Computer and information sciences #Groundwater flow and contamination studies #Machine Learning (cs.LG) #Machine Learning (stat.ML)
  39. Graph-Based Captioning: Enhancing Visual Descriptions by Interconnecting Region Captions
    2024/07/09 by Yu-Guan Hsieh, Cheng-Yu Hsieh, Hsieh, Yu-Guan +17 · 1 citation
    Computer Science · #Advanced Image and Video Retrieval Techniques #Artificial Intelligence (cs.AI) #Computer Vision and Pattern Recognition (cs.CV) #FOS: Computer and information sciences #Machine Learning (cs.LG) #Multimodal Machine Learning Applications #Video Analysis and Summarization
  40. Learning Unmasking Policies for Diffusion Language Models
    2025/12/09 by Metod Jazbec, Jazbec, Metod, Theo X. Olausson +14 · 2 citations
    Computer Science · #Domain Adaptation and Few-Shot Learning #FOS: Computer and information sciences #Generative Adversarial Networks and Image Synthesis #Machine Learning (cs.LG) #Topic Modeling