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Reproducing Kernel Hilbert Space, Mercer's Theorem, Eigenfunctions,
  Nyström Method, and Use of Kernels in Machine Learning: Tutorial and Survey

Reproducing Kernel Hilbert Space, Mercer's Theorem, Eigenfunctions, Nyström Method, and Use of Kernels in Machine Learning: Tutorial and Survey

15 June 2021
Benyamin Ghojogh
A. Ghodsi
Fakhri Karray
Mark Crowley
ArXivPDFHTML

Papers citing "Reproducing Kernel Hilbert Space, Mercer's Theorem, Eigenfunctions, Nyström Method, and Use of Kernels in Machine Learning: Tutorial and Survey"

22 / 22 papers shown
Title
A Distributional Treatment of Real2Sim2Real for Vision-Driven Deformable Linear Object Manipulation
A Distributional Treatment of Real2Sim2Real for Vision-Driven Deformable Linear Object Manipulation
Georgios Kamaras
Subramanian Ramamoorthy
34
0
0
25 Feb 2025
STAF: Sinusoidal Trainable Activation Functions for Implicit Neural Representation
STAF: Sinusoidal Trainable Activation Functions for Implicit Neural Representation
Alireza Morsali
MohammadJavad Vaez
Hossein Soltani
A. Kazerouni
Babak Taati
Morteza Mohammad-Noori
156
1
0
02 Feb 2025
ProKeR: A Kernel Perspective on Few-Shot Adaptation of Large Vision-Language Models
ProKeR: A Kernel Perspective on Few-Shot Adaptation of Large Vision-Language Models
Yassir Bendou
Amine Ouasfi
Vincent Gripon
A. Boukhayma
VLM
51
0
0
19 Jan 2025
Convolutional Filtering with RKHS Algebras
Convolutional Filtering with RKHS Algebras
Alejandro Parada-Mayorga
Leopoldo Agorio
Alejandro Ribeiro
J. Bazerque
38
0
0
02 Nov 2024
Learning to Embed Distributions via Maximum Kernel Entropy
Learning to Embed Distributions via Maximum Kernel Entropy
Oleksii Kachaiev
Stefano Recanatesi
OOD
49
0
0
01 Aug 2024
Attention as Robust Representation for Time Series Forecasting
Attention as Robust Representation for Time Series Forecasting
Peisong Niu
Tian Zhou
Xue Wang
Liang Sun
Rong Jin
AI4TS
24
4
0
08 Feb 2024
Rethinking Backdoor Attacks on Dataset Distillation: A Kernel Method
  Perspective
Rethinking Backdoor Attacks on Dataset Distillation: A Kernel Method Perspective
Ming-Yu Chung
Sheng-Yen Chou
Chia-Mu Yu
Pin-Yu Chen
Sy-Yen Kuo
Tsung-Yi Ho
DD
44
6
0
28 Nov 2023
Pseudo-keypoint RKHS Learning for Self-supervised 6DoF Pose Estimation
Pseudo-keypoint RKHS Learning for Self-supervised 6DoF Pose Estimation
Yangzheng Wu
Michael A. Greenspan
18
1
0
16 Nov 2023
Optimal Transport for Kernel Gaussian Mixture Models
Optimal Transport for Kernel Gaussian Mixture Models
Jung Hun Oh
Rena Elkin
Anish K. Simhal
Jiening Zhu
Joseph O. Deasy
Allen Tannenbaum
OT
35
0
0
28 Oct 2023
An Exact Kernel Equivalence for Finite Classification Models
An Exact Kernel Equivalence for Finite Classification Models
Brian Bell
Michaela Geyer
David Glickenstein
Amanda Fernandez
Juston Moore
27
2
0
01 Aug 2023
Taming graph kernels with random features
Taming graph kernels with random features
K. Choromanski
32
12
0
29 Apr 2023
On Mitigating the Utility-Loss in Differentially Private Learning: A new
  Perspective by a Geometrically Inspired Kernel Approach
On Mitigating the Utility-Loss in Differentially Private Learning: A new Perspective by a Geometrically Inspired Kernel Approach
Mohit Kumar
Bernhard A. Moser
Lukas Fischer
11
2
0
03 Apr 2023
Learning Inter-Annual Flood Loss Risk Models From Historical Flood
  Insurance Claims and Extreme Rainfall Data
Learning Inter-Annual Flood Loss Risk Models From Historical Flood Insurance Claims and Extreme Rainfall Data
Joaquín Salas
Anamitra Saha
S. Ravela
AI4CE
13
0
0
15 Dec 2022
Contrastive Corpus Attribution for Explaining Representations
Contrastive Corpus Attribution for Explaining Representations
Christy Lin
Hugh Chen
Chanwoo Kim
Su-In Lee
SSL
19
8
0
30 Sep 2022
Parameterized Quantum Circuits with Quantum Kernels for Machine
  Learning: A Hybrid Quantum-Classical Approach
Parameterized Quantum Circuits with Quantum Kernels for Machine Learning: A Hybrid Quantum-Classical Approach
Daniel T. Chang
30
4
0
28 Sep 2022
Understanding the Role of Nonlinearity in Training Dynamics of
  Contrastive Learning
Understanding the Role of Nonlinearity in Training Dynamics of Contrastive Learning
Yuandong Tian
MLT
26
13
0
02 Jun 2022
Diverse Weight Averaging for Out-of-Distribution Generalization
Diverse Weight Averaging for Out-of-Distribution Generalization
Alexandre Ramé
Matthieu Kirchmeyer
Thibaud Rahier
A. Rakotomamonjy
Patrick Gallinari
Matthieu Cord
OOD
199
128
0
19 May 2022
Spectral, Probabilistic, and Deep Metric Learning: Tutorial and Survey
Spectral, Probabilistic, and Deep Metric Learning: Tutorial and Survey
Benyamin Ghojogh
A. Ghodsi
Fakhri Karray
Mark Crowley
52
20
0
23 Jan 2022
Generative Adversarial Networks and Adversarial Autoencoders: Tutorial
  and Survey
Generative Adversarial Networks and Adversarial Autoencoders: Tutorial and Survey
Benyamin Ghojogh
A. Ghodsi
Fakhri Karray
Mark Crowley
GAN
34
12
0
26 Nov 2021
Sufficient Dimension Reduction for High-Dimensional Regression and
  Low-Dimensional Embedding: Tutorial and Survey
Sufficient Dimension Reduction for High-Dimensional Regression and Low-Dimensional Embedding: Tutorial and Survey
Benyamin Ghojogh
A. Ghodsi
Fakhri Karray
Mark Crowley
25
2
0
18 Oct 2021
Johnson-Lindenstrauss Lemma, Linear and Nonlinear Random Projections,
  Random Fourier Features, and Random Kitchen Sinks: Tutorial and Survey
Johnson-Lindenstrauss Lemma, Linear and Nonlinear Random Projections, Random Fourier Features, and Random Kitchen Sinks: Tutorial and Survey
Benyamin Ghojogh
A. Ghodsi
Fakhri Karray
Mark Crowley
23
11
0
09 Aug 2021
Unified Framework for Spectral Dimensionality Reduction, Maximum
  Variance Unfolding, and Kernel Learning By Semidefinite Programming: Tutorial
  and Survey
Unified Framework for Spectral Dimensionality Reduction, Maximum Variance Unfolding, and Kernel Learning By Semidefinite Programming: Tutorial and Survey
Benyamin Ghojogh
A. Ghodsi
Fakhri Karray
Mark Crowley
16
4
0
29 Jun 2021
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