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Sayan Mukherjee 0001
Person information
- affiliation: Duke University, Durham, NC, USA
- affiliation (former): Columbia University, New York, NY, USA
Other persons with the same name
- Sayan Mukherjee 0002 — Université Libre de Bruxelles, Brussels, Belgium (and 1 more)
- Sayan Mukherjee 0003 — Sivanath Sastri College, Kolkata, India
- Sayan Mukherjee 0004 — MIT Artificial Intelligence Laboratory, Cambridge, MA, USA
- Sayan Mukherjee 0005 — West Bengal State University, Department of Physiology, Kolkata, India
- Sayan Mukherjee 0006 — blueqat Co. Ltd., Tokyo, Japan
- Sayan Mukherjee 0007 — Indian Statistical Institute, Economic Research Unit, Kolkata, India
- Sayan Mukherjee 0008 — XLRI-Xavier School of Management, Delhi-NCR Campus, India
- Sayan Mukherjee 0010 — ScaDS.AI Leipzig, Center for Scalable Data Analytics and Artificial Intelligence, Germany (and 1 more)
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2020 – today
- 2024
- [j36]Henry Kirveslahti, Sayan Mukherjee:
Representing fields without correspondences: the lifted Euler characteristic transform. J. Appl. Comput. Topol. 8(1): 1-34 (2024) - [c23]Eric Roldán Roa, Erika Berenice Roldan-Roa, Doris Kristina Raave, Jo Van Herwegen, Nina Politimou, Sayan Mukherjee, Tyler Colasante, Tina Malti, Julia Mori, Marcus Specht:
Play My Math: First Development Cycle of an EdTech Tool Supporting the Teaching and Learning of Fractions Through Music in Algebraic Notation. EC-TEL (2) 2024: 241-246 - [c22]Eric Roldán Roa, Erika Berenice Roldan-Roa, Doris Kristina Raave, Jo Van Herwegen, Nina Polytimou, Sayan Mukherjee, Tyler Colasante, Tina Malti, Julia Mori:
Play My Math: Second Development Cycle of an EdTech Tool Supporting the Teaching and Learning of Fractions Through Music in Algebraic Notation. ICITL (2) 2024: 44-53 - 2023
- [j35]Michele Caprio, Sayan Mukherjee:
Concentration Inequalities and Optimal Number of Layers for Stochastic Deep Neural Networks. IEEE Access 11: 38458-38470 (2023) - [j34]Michele Caprio, Sayan Mukherjee:
Ergodic theorems for dynamic imprecise probability kinematics. Int. J. Approx. Reason. 152: 325-343 (2023) - [c21]Andrea Agazzi, Jianfeng Lu, Sayan Mukherjee:
Global optimality of Elman-type RNNs in the mean-field regime. ICML 2023: 196-227 - [c20]Youngsoo Baek, Samuel Berchuck, Sayan Mukherjee:
Asymptotics of Bayesian Uncertainty Estimation in Random Features Regression. NeurIPS 2023 - [i22]Andrea Agazzi, Jianfeng Lu, Sayan Mukherjee:
Global Optimality of Elman-type RNN in the Mean-Field Regime. CoRR abs/2303.06726 (2023) - [i21]Youngsoo Baek, Samuel I. Berchuck, Sayan Mukherjee:
Asymptotics of Bayesian Uncertainty Estimation in Random Features Regression. CoRR abs/2306.03783 (2023) - 2022
- [j33]Brian St. Thomas, Kisung You, Lizhen Lin, Lek-Heng Lim, Sayan Mukherjee:
Learning Subspaces of Different Dimensions. J. Comput. Graph. Stat. 31(1): 337-350 (2022) - [j32]Justin D. Silverman, Kimberly Roche, Zachary C. Holmes, Lawrence A. David, Sayan Mukherjee:
Bayesian Multinomial Logistic Normal Models through Marginally Latent Matrix-T Processes. J. Mach. Learn. Res. 23: 7:1-7:42 (2022) - [j31]Wai-Shing Tang, Gabriel Monteiro da Silva, Henry Kirveslahti, Erin Skeens, Bibo Feng, Timothy Sudijono, Kevin K. Yang, Sayan Mukherjee, Brenda M. Rubenstein, Lorin Crawford:
A topological data analytic approach for discovering biophysical signatures in protein dynamics. PLoS Comput. Biol. 18(5) (2022) - [j30]Kimberly Roche, Sayan Mukherjee:
The accuracy of absolute differential abundance analysis from relative count data. PLoS Comput. Biol. 18(7) (2022) - [i20]Shreya Arya, Justin Curry, Sayan Mukherjee:
A Sheaf-Theoretic Construction of Shape Space. CoRR abs/2204.09020 (2022) - [i19]Michele Caprio, Sayan Mukherjee:
Concentration inequalities and optimal number of layers for stochastic deep neural networks. CoRR abs/2206.11241 (2022) - 2021
- [j29]Kevin A. Murgas, Yanlin Ma, Lidea K. Shahidi, Sayan Mukherjee, Andrew S. Allen, Darryl Shibata, Marc D. Ryser:
A Bayesian hierarchical model to estimate DNA methylation conservation in colorectal tumors. Bioinform. 38(1): 22-29 (2021) - [j28]Tingran Gao, Jacek Brodzki, Sayan Mukherjee:
The Geometry of Synchronization Problems and Learning Group Actions. Discret. Comput. Geom. 65(1): 150-211 (2021) - [j27]Weiwei Li, Jan Hannig, Sayan Mukherjee:
Subspace Clustering through Sub-Clusters. J. Mach. Learn. Res. 22: 53:1-53:37 (2021) - [j26]Justin D. Silverman, Rachael J. Bloom, Sharon Jiang, Heather K. Durand, Eric Dallow, Sayan Mukherjee, Lawrence A. David:
Measuring and mitigating PCR bias in microbiota datasets. PLoS Comput. Biol. 17(7) (2021) - [c19]Xiangyu Zhang, Ramin Bashizade, Yicheng Wang, Sayan Mukherjee, Alvin R. Lebeck:
Statistical robustness of Markov chain Monte Carlo accelerators. ASPLOS 2021: 959-974 - [i18]Anna K. Yanchenko, Mohammadreza Soltani, Robert J. Ravier, Sayan Mukherjee, Vahid Tarokh:
Towards Explainable Convolutional Features for Music Audio Modeling. CoRR abs/2106.00110 (2021) - [i17]Ramin Bashizade, Xiangyu Zhang, Sayan Mukherjee, Alvin R. Lebeck:
Accelerating Markov Random Field Inference with Uncertainty Quantification. CoRR abs/2108.00570 (2021) - 2020
- [i16]Xiangyu Zhang, Ramin Bashizade, Yicheng Wang, Cheng Lyu, Sayan Mukherjee, Alvin R. Lebeck:
Beyond Application End-Point Results: Quantifying Statistical Robustness of MCMC Accelerators. CoRR abs/2003.04223 (2020) - [i15]Anna K. Yanchenko, Sayan Mukherjee:
Stanza: A Nonlinear State Space Model for Probabilistic Inference in Non-Stationary Time Series. CoRR abs/2006.06553 (2020) - [i14]Ziyang Ding, Sayan Mukherjee:
At the Intersection of Deep Sequential Model Framework and State-space Model Framework: Study on Option Pricing. CoRR abs/2012.07784 (2020)
2010 – 2019
- 2019
- [i13]Zilong Zou, Sayan Mukherjee, Harbir Antil, Wilkins Aquino:
Adaptive particle-based approximations of the Gibbs posterior for inverse problems. CoRR abs/1907.01551 (2019) - [i12]Xiangyu Zhang, Sayan Mukherjee, Alvin R. Lebeck:
A Case for Quantifying Statistical Robustness of Specialized Probabilistic AI Accelerators. CoRR abs/1910.12346 (2019) - 2018
- [c18]Zilong Tan, Kimberly Roche, Xiang Zhou, Sayan Mukherjee:
Scalable Algorithms for Learning High-Dimensional Linear Mixed Models. UAI 2018: 259-268 - [i11]Zilong Tan, Sayan Mukherjee:
Learning Integral Representations of Gaussian Processes. CoRR abs/1802.07528 (2018) - [i10]Zilong Tan, Kimberly Roche, Xiang Zhou, Sayan Mukherjee:
Scalable Algorithms for Learning High-Dimensional Linear Mixed Models. CoRR abs/1803.04431 (2018) - [i9]Weiwei Li, Jan Hannig, Sayan Mukherjee:
Subspace Clustering through Sub-Clusters. CoRR abs/1811.06580 (2018) - [i8]Mikael Vejdemo-Johansson, Sayan Mukherjee:
Multiple testing with persistent homology. CoRR abs/1812.06491 (2018) - 2017
- [j25]Gregory Darnell, Stoyan Georgiev, Sayan Mukherjee, Barbara E. Engelhardt:
Adaptive Randomized Dimension Reduction on Massive Data. J. Mach. Learn. Res. 18: 140:1-140:30 (2017) - [c17]Zilong Tan, Sayan Mukherjee:
Partitioned Tensor Factorizations for Learning Mixed Membership Models. ICML 2017: 3358-3367 - [i7]Zilong Tan, Sayan Mukherjee:
Efficient Learning of Graded Membership Models. CoRR abs/1702.07933 (2017) - [i6]Anna K. Yanchenko, Sayan Mukherjee:
Classical Music Composition Using State Space Models. CoRR abs/1708.03822 (2017) - 2016
- [j24]Shiwen Zhao, Chuan Gao, Sayan Mukherjee, Barbara E. Engelhardt:
Bayesian group factor analysis with structured sparsity. J. Mach. Learn. Res. 17: 196:1-196:47 (2016) - [j23]Sayan Mukherjee, John Steenbergen:
Random walks on simplicial complexes and harmonics. Random Struct. Algorithms 49(2): 379-405 (2016) - [i5]Shiwen Zhao, Barbara E. Engelhardt, Sayan Mukherjee, David B. Dunson:
Fast moment estimation for generalized latent Dirichlet models. CoRR abs/1603.05324 (2016) - [i4]Tingran Gao, Jacek Brodzki, Sayan Mukherjee:
The Geometry of Synchronization Problems and Learning Group Actions. CoRR abs/1610.09051 (2016) - 2015
- [j22]Botong Huang, Nicholas W. D. Jarrett, Shivnath Babu, Sayan Mukherjee, Jun Yang:
Cumulon: Matrix-Based Data Analytics in the Cloud with Spot Instances. Proc. VLDB Endow. 9(3): 156-167 (2015) - [j21]Garvesh Raskutti, Sayan Mukherjee:
The Information Geometry of Mirror Descent. IEEE Trans. Inf. Theory 61(3): 1451-1457 (2015) - [c16]Wuzhou Zhang, Pankaj K. Agarwal, Sayan Mukherjee:
Contour trees of uncertain terrains. SIGSPATIAL/GIS 2015: 43:1-43:10 - [c15]Garvesh Raskutti, Sayan Mukherjee:
The Information Geometry of Mirror Descent. GSI 2015: 359-368 - 2014
- [j20]John Steenbergen, Caroline J. Klivans, Sayan Mukherjee:
A Cheeger-type inequality on simplicial complexes. Adv. Appl. Math. 56: 56-77 (2014) - [j19]Katharine Turner, Yuriy Mileyko, Sayan Mukherjee, John Harer:
Fréchet Means for Distributions of Persistence Diagrams. Discret. Comput. Geom. 52(1): 44-70 (2014) - [j18]Botong Huang, Nicholas W. D. Jarrett, Shivnath Babu, Sayan Mukherjee, Jun Yang:
Cumulon: Cloud-Based Statistical Analysis from Users Perspective. IEEE Data Eng. Bull. 37(3): 77-89 (2014) - 2013
- [j17]Dina Hafez, Ting Ni, Sayan Mukherjee, Jun Zhu, Uwe Ohler:
Genome-wide identification and predictive modeling of tissue-specific alternative polyadenylation. Bioinform. 29(13): 108-116 (2013) - [j16]Patrizia F. Stifanelli, Teresa Maria Creanza, Roberto Anglani, Vania C. Liuzzi, Sayan Mukherjee, Francesco P. Schena, Nicola Ancona:
A comparative study of covariance selection models for the inference of gene regulatory networks. J. Biomed. Informatics 46(5): 894-904 (2013) - [i3]Elizabeth Munch, Paul Bendich, Katharine Turner, Sayan Mukherjee, Jonathan Mattingly, John Harer:
Probabilistic Fréchet Means and Statistics on Vineyards. CoRR abs/1307.6530 (2013) - [i2]Garvesh Raskutti, Sayan Mukherjee:
The Information Geometry of Mirror Descent. CoRR abs/1310.7780 (2013) - 2012
- [c14]Paul Bendich, Bei Wang, Sayan Mukherjee:
Local homology transfer and stratification learning. SODA 2012: 1355-1370 - [i1]Sayan Mukherjee, Caroline J. Klivans, John Steenbergen:
A Cheeger-Type Inequality on Simplicial Complexes. CoRR abs/1209.5091 (2012) - 2011
- [j15]Justin Guinney, Qiang Wu, Sayan Mukherjee:
Estimating variable structure and dependence in multitask learning via gradients. Mach. Learn. 83(3): 265-287 (2011) - 2010
- [j14]Rosalia Maglietta, Angela Distaso, Ada Piepoli, Orazio Palumbo, Massimo Carella, Annarita D'Addabbo, Sayan Mukherjee, Nicola Ancona:
On the reproducibility of results of pathway analysis in genome-wide expression studies of colorectal cancers. J. Biomed. Informatics 43(3): 397-406 (2010) - [j13]Qiang Wu, Justin Guinney, Mauro Maggioni, Sayan Mukherjee:
Learning Gradients: Predictive Models that Infer Geometry and Statistical Dependence. J. Mach. Learn. Res. 11: 2175-2198 (2010) - [c13]Paul Bendich, Sayan Mukherjee, Bei Wang:
Stratification Learning through Homology Inference. AAAI Fall Symposium: Manifold Learning and Its Applications 2010 - [c12]Kai Mao, Feng Liang, Sayan Mukherjee:
Supervised Dimension Reduction Using Bayesian Mixture Modeling. AISTATS 2010: 501-508
2000 – 2009
- 2009
- [j12]Luca Abatangelo, Rosalia Maglietta, Angela Distaso, Annarita D'Addabbo, Teresa Maria Creanza, Sayan Mukherjee, Nicola Ancona:
Comparative study of gene set enrichment methods. BMC Bioinform. 10: 275 (2009) - 2008
- [j11]Elena J. Edelman, Justin Guinney, Jen-Tsan A. Chi, Phillip G. Febbo, Sayan Mukherjee:
Modeling Cancer Progression via Pathway Dependencies. PLoS Comput. Biol. 4(2) (2008) - [c11]Angela Distaso, Luca Abatangelo, Rosalia Maglietta, Teresa Maria Creanza, Ada Piepoli, Massimo Carella, Annarita D'Addabbo, Sayan Mukherjee, Nicola Ancona:
Statistical Assessment of MSigDB Gene Sets in Colon Cancer. KES (2) 2008: 206-213 - [c10]Qiang Wu, Sayan Mukherjee, Feng Liang:
Localized Sliced Inverse Regression. NIPS 2008: 1785-1792 - 2007
- [j10]Liang Goh, Susan K. Murphy, Sayan Mukherjee, Terrence S. Furey:
Genomic sweeping for hypermethylated genes. Bioinform. 23(3): 281-288 (2007) - [j9]Natesh S. Pillai, Qiang Wu, Feng Liang, Sayan Mukherjee, Robert L. Wolpert:
Characterizing the Function Space for Bayesian Kernel Models. J. Mach. Learn. Res. 8: 1769-1797 (2007) - [c9]Jonathan L. Jesneck, Sayan Mukherjee, Loren W. Nolte, Anna E. Lokshin, Jeffrey R. Marks, Joseph Y. Lo:
Decision Fusion of Circulating Markers for Breast Cancer Detection in Premenopausal Women. BIBE 2007: 1434-1438 - 2006
- [j8]Sayan Mukherjee, Partha Niyogi, Tomaso A. Poggio, Ryan M. Rifkin:
Learning theory: stability is sufficient for generalization and necessary and sufficient for consistency of empirical risk minimization. Adv. Comput. Math. 25(1-3): 161-193 (2006) - [j7]Sayan Mukherjee, Ding-Xuan Zhou:
Learning Coordinate Covariances via Gradients. J. Mach. Learn. Res. 7: 519-549 (2006) - [j6]Sayan Mukherjee, Qiang Wu:
Estimation of Gradients and Coordinate Covariation in Classification. J. Mach. Learn. Res. 7: 2481-2514 (2006) - [j5]Zhong Wang, Huntington F. Willard, Sayan Mukherjee, Terrence S. Furey:
Evidence of Influence of Genomic DNA Sequence on Human X Chromosome Inactivation. PLoS Comput. Biol. 2(9) (2006) - [c8]Elena J. Edelman, Alessandro Porrello, Justin Guinney, Bala Balakumaran, Andrea Bild, Phillip G. Febbo, Sayan Mukherjee:
Analysis of sample set enrichment scores: assaying the enrichment of sets of genes for individual samples in genome-wide expression profiles. ISMB (Supplement of Bioinformatics) 2006: 122-116 - 2005
- [c7]Polina Golland, Feng Liang, Sayan Mukherjee, Dmitry Panchenko:
Permutation Tests for Classification. COLT 2005: 501-515 - [c6]Lior Wolf, Amnon Shashua, Sayan Mukherjee:
Gene Selection via a Spectral Approach. CVPR Workshops 2005: 140 - 2003
- [j4]Sayan Mukherjee, Pablo Tamayo, Simon Rogers, Ryan M. Rifkin, Anna Engle, Colin Campbell, Todd R. Golub, Jill P. Mesirov:
Estimating Dataset Size Requirements for Classifying DNA Microarray Data. J. Comput. Biol. 10(2): 119-142 (2003) - [j3]Ryan M. Rifkin, Sayan Mukherjee, Pablo Tamayo, Sridhar Ramaswamy, Chen-Hsiang Yeang, Michael Angelo, Michael Reich, Tomaso A. Poggio, Eric S. Lander, Todd R. Golub, Jill P. Mesirov:
An Analytical Method for Multiclass Molecular Cancer Classification. SIAM Rev. 45(4): 706-723 (2003) - 2002
- [j2]Olivier Chapelle, Vladimir Vapnik, Olivier Bousquet, Sayan Mukherjee:
Choosing Multiple Parameters for Support Vector Machines. Mach. Learn. 46(1-3): 131-159 (2002) - [c5]Neelanjan Mukherjee, Sayan Mukherjee:
Predicting Signal Peptides with Support Vector Machines. SVM 2002: 1-7 - 2001
- [c4]Bernd Heisele, Thomas Serre, Sayan Mukherjee, Tomaso A. Poggio:
Feature Reduction and Hierarchy of Classifiers for Fast Object Detection in Video Images. CVPR (2) 2001: 18-24 - [c3]Chen-Hsiang Yeang, Sridhar Ramaswamy, Pablo Tamayo, Sayan Mukherjee, Ryan M. Rifkin, Michael Angelo, Michael Reich, Eric S. Lander, Jill P. Mesirov, Todd R. Golub:
Molecular classification of multiple tumor types. ISMB (Supplement of Bioinformatics) 2001: 316-322 - 2000
- [c2]Jason Weston, Sayan Mukherjee, Olivier Chapelle, Massimiliano Pontil, Tomaso A. Poggio, Vladimir Vapnik:
Feature Selection for SVMs. NIPS 2000: 668-674
1990 – 1999
- 1996
- [j1]Shayan Mukherjee, Shree K. Nayar:
Automatic generation of RBF networks using wavelets. Pattern Recognit. 29(8): 1369-1383 (1996) - 1995
- [c1]Shayan Mukherjee, Shree K. Nayar:
Automatic Generation of GRBF Networks for Visual Learning. ICCV 1995: 794-800
Coauthor Index
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last updated on 2024-10-09 21:31 CEST by the dblp team
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