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1906.08324
Cited By
The Functional Neural Process
19 June 2019
Christos Louizos
Xiahan Shi
Klamer Schutte
Max Welling
BDL
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Papers citing
"The Functional Neural Process"
50 / 58 papers shown
Title
Dimension Agnostic Neural Processes
Hyungi Lee
Chaeyun Jang
Dongbok Lee
Juho Lee
UQCV
AI4CE
47
0
0
28 Feb 2025
Bridge the Inference Gaps of Neural Processes via Expectation Maximization
Q. Wang
Marco Federici
H. V. Hoof
UQCV
BDL
34
13
0
08 Jan 2025
Large Scale Hierarchical Industrial Demand Time-Series Forecasting incorporating Sparsity
Harshavardhan Kamarthi
Aditya B. Sasanur
Xinjie Tong
Xingyu Zhou
James Peters
Joe Czyzyk
B. Aditya Prakash
AI4TS
26
2
0
02 Jul 2024
Learning Graph Structures and Uncertainty for Accurate and Calibrated Time-series Forecasting
Harshavardhan Kamarthi
Lingkai Kong
Alexander Rodríguez
Chao Zhang
B Aditya Prakash
AI4TS
38
0
0
02 Jul 2024
Spectral Convolutional Conditional Neural Processes
Peiman Mohseni
Nick Duffield
27
3
0
19 Apr 2024
Multi-Fidelity Residual Neural Processes for Scalable Surrogate Modeling
Ruijia Niu
D. Wu
Kai Kim
Yi-An Ma
D. Watson‐Parris
Rose Yu
AI4CE
22
2
0
29 Feb 2024
PEMS: Pre-trained Epidemic Time-series Models
Harshavardhan Kamarthi
B. A. Prakash
AI4TS
24
2
0
14 Nov 2023
Latent Task-Specific Graph Network Simulators
Philipp Dahlinger
Niklas Freymuth
Michael Volpp
Tai Hoang
Gerhard Neumann
AI4CE
22
0
0
09 Nov 2023
When Rigidity Hurts: Soft Consistency Regularization for Probabilistic Hierarchical Time Series Forecasting
Harshavardhan Kamarthi
Lingkai Kong
Alexander Rodríguez
Chao Zhang
B. Prakash
AI4TS
28
5
0
17 Oct 2023
Machine Learning for Infectious Disease Risk Prediction: A Survey
Mutong Liu
Yang Liu
Jiming Liu
LM&MA
AI4CE
16
0
0
06 Aug 2023
NP-SemiSeg: When Neural Processes meet Semi-Supervised Semantic Segmentation
Jianfeng Wang
Daniela Massiceti
Xiaolin Hu
Vladimir Pavlovic
Thomas Lukasiewicz
UQCV
28
3
0
05 Aug 2023
Geometric Neural Diffusion Processes
Emile Mathieu
Vincent Dutordoir
M. Hutchinson
Valentin De Bortoli
Yee Whye Teh
Richard E. Turner
DiffM
36
8
0
11 Jul 2023
Disentangled Multi-Fidelity Deep Bayesian Active Learning
D. Wu
Ruijia Niu
Matteo Chinazzi
Yi-An Ma
Rose Yu
AI4CE
20
7
0
07 May 2023
Martingale Posterior Neural Processes
Hyungi Lee
Eunggu Yun
G. Nam
Edwin Fong
Juho Lee
UQCV
16
7
0
19 Apr 2023
NP-Match: Towards a New Probabilistic Model for Semi-Supervised Learning
Jianfeng Wang
Xiaolin Hu
Thomas Lukasiewicz
AAML
BDL
23
0
0
31 Jan 2023
Bayesian Convolutional Deep Sets with Task-Dependent Stationary Prior
Yohan Jung
Jinkyoo Park
BDL
12
0
0
22 Oct 2022
Spectral Diffusion Processes
Angus Phillips
Thomas Seror
M. Hutchinson
Valentin De Bortoli
Arnaud Doucet
Emile Mathieu
DiffM
54
14
0
28 Sep 2022
Compositional Law Parsing with Latent Random Functions
Fan Shi
Bin Li
Xiangyang Xue
CoGe
19
4
0
15 Sep 2022
The Neural Process Family: Survey, Applications and Perspectives
Saurav Jha
Dong Gong
Xuesong Wang
Richard E. Turner
L. Yao
BDL
70
24
0
01 Sep 2022
Data-Centric Epidemic Forecasting: A Survey
Alexander Rodríguez
Harshavardhan Kamarthi
Pulak Agarwal
Javen Ho
Mira Patel
Suchet Sapre
B. Prakash
OOD
24
18
0
19 Jul 2022
NP-Match: When Neural Processes meet Semi-Supervised Learning
Jianfeng Wang
Thomas Lukasiewicz
Daniela Massiceti
Xiaolin Hu
Vladimir Pavlovic
A. Neophytou
BDL
63
42
0
03 Jul 2022
Category-Agnostic 6D Pose Estimation with Conditional Neural Processes
Yumeng Li
Ni Gao
Hanna Ziesche
Gerhard Neumann
24
5
0
14 Jun 2022
Multi-fidelity Hierarchical Neural Processes
D. Wu
Matteo Chinazzi
Alessandro Vespignani
Yi-An Ma
Rose Yu
AI4CE
6
13
0
10 Jun 2022
Meta-Learning Regrasping Strategies for Physical-Agnostic Objects
Ni Gao
Jingyu Zhang
Ruijie Chen
Ngo Anh Vien
Hanna Ziesche
Gerhard Neumann
30
10
0
23 May 2022
What Matters For Meta-Learning Vision Regression Tasks?
Ni Gao
Hanna Ziesche
Ngo Anh Vien
Michael Volpp
Gerhard Neumann
VLM
16
29
0
09 Mar 2022
The Internet of Federated Things (IoFT): A Vision for the Future and In-depth Survey of Data-driven Approaches for Federated Learning
Raed Al Kontar
Naichen Shi
Xubo Yue
Seokhyun Chung
E. Byon
...
C. Okwudire
Garvesh Raskutti
R. Saigal
Karandeep Singh
Ye Zhisheng
FedML
30
50
0
09 Nov 2021
ST-MAML: A Stochastic-Task based Method for Task-Heterogeneous Meta-Learning
Zhe Wang
J. E. Grigsby
Arshdeep Sekhon
Yanjun Qi
37
4
0
27 Sep 2021
CAMul: Calibrated and Accurate Multi-view Time-Series Forecasting
Harshavardhan Kamarthi
Lingkai Kong
Alexander Rodríguez
Chao Zhang
B. Prakash
AI4TS
38
17
0
15 Sep 2021
Meta-learning Amidst Heterogeneity and Ambiguity
Kyeongryeol Go
Seyoung Yun
24
1
0
05 Jul 2021
Relational VAE: A Continuous Latent Variable Model for Graph Structured Data
Charilaos Mylonas
I. Abdallah
Eleni Chatzi
BDL
6
1
0
30 Jun 2021
GP-ConvCNP: Better Generalization for Convolutional Conditional Neural Processes on Time Series Data
Jens Petersen
Gregor Koehler
David Zimmerer
Fabian Isensee
Paul F. Jäger
Klaus H. Maier-Hein
BDL
AI4TS
18
3
0
09 Jun 2021
When in Doubt: Neural Non-Parametric Uncertainty Quantification for Epidemic Forecasting
Harshavardhan Kamarthi
Lingkai Kong
Alexander Rodríguez
Chao Zhang
B. Prakash
AI4TS
BDL
8
20
0
07 Jun 2021
Deep Bayesian Active Learning for Accelerating Stochastic Simulation
D. Wu
Ruijia Niu
Matteo Chinazzi
Alessandro Vespignani
Yi-An Ma
Rose Yu
AI4CE
25
8
0
05 Jun 2021
Evidential Turing Processes
M. Kandemir
Abdullah Akgul
Manuel Haussmann
Gözde B. Ünal
EDL
UQCV
BDL
26
9
0
02 Jun 2021
Priors in Bayesian Deep Learning: A Review
Vincent Fortuin
UQCV
BDL
29
124
0
14 May 2021
Mini-Batch Consistent Slot Set Encoder for Scalable Set Encoding
Bruno Andreis
Jeffrey Willette
Juho Lee
Sung Ju Hwang
15
9
0
02 Mar 2021
Group Equivariant Conditional Neural Processes
M. Kawano
Wataru Kumagai
Akiyoshi Sannai
Yusuke Iwasawa
Y. Matsuo
BDL
45
20
0
17 Feb 2021
Autoencoding Variational Autoencoder
A. Cemgil
Sumedh Ghaisas
Krishnamurthy Dvijotham
Sven Gowal
Pushmeet Kohli
DRL
BDL
11
41
0
07 Dec 2020
Encoding the latent posterior of Bayesian Neural Networks for uncertainty quantification
Gianni Franchi
Andrei Bursuc
Emanuel Aldea
Séverine Dubuisson
Isabelle Bloch
BDL
UQCV
12
22
0
04 Dec 2020
Further Analysis of Outlier Detection with Deep Generative Models
Ziyu Wang
Bin Dai
David Wipf
Jun Zhu
9
39
0
25 Oct 2020
Incorporating Interpretable Output Constraints in Bayesian Neural Networks
Wanqian Yang
Lars Lorch
Moritz Graule
Himabindu Lakkaraju
Finale Doshi-Velez
UQCV
BDL
10
16
0
21 Oct 2020
Message Passing Neural Processes
Ben Day
Cătălina Cangea
Arian R. Jamasb
Pietro Lió
9
11
0
29 Sep 2020
Doubly Stochastic Variational Inference for Neural Processes with Hierarchical Latent Variables
Q. Wang
H. V. Hoof
BDL
14
42
0
21 Aug 2020
Bootstrapping Neural Processes
Juho Lee
Yoonho Lee
Jungtaek Kim
Eunho Yang
Sung Ju Hwang
Yee Whye Teh
UQCV
BDL
18
42
0
07 Aug 2020
Graph-Based Continual Learning
Binh Tang
David S. Matteson
BDL
CLL
18
36
0
09 Jul 2020
Meta-Learning Stationary Stochastic Process Prediction with Convolutional Neural Processes
Andrew Y. K. Foong
W. Bruinsma
Jonathan Gordon
Yann Dubois
James Requeima
Richard E. Turner
BDL
11
77
0
02 Jul 2020
Robustifying Sequential Neural Processes
Jaesik Yoon
Gautam Singh
Sungjin Ahn
16
27
0
29 Jun 2020
Calibrated Adversarial Refinement for Stochastic Semantic Segmentation
Elias Kassapis
G. Dikov
D. K. Gupta
C. Nugteren
20
17
0
23 Jun 2020
Predictive Complexity Priors
Eric T. Nalisnick
Jonathan Gordon
José Miguel Hernández-Lobato
BDL
UQCV
11
19
0
18 Jun 2020
NP-PROV: Neural Processes with Position-Relevant-Only Variances
Xuesong Wang
Lina Yao
Xianzhi Wang
Feiping Nie
BDL
17
3
0
15 Jun 2020
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