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1501.02103
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Margins of discrete Bayesian networks
9 January 2015
R. Evans
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Papers citing
"Margins of discrete Bayesian networks"
31 / 31 papers shown
Title
Deriving Causal Order from Single-Variable Interventions: Guarantees & Algorithm
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When does the ID algorithm fail?
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4
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Comparing Causal Frameworks: Potential Outcomes, Structural Models, Graphs, and Abstractions
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Thomas Icard
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75
10
0
25 Jun 2023
Supermodular Rank: Set Function Decomposition and Optimization
Rishi Sonthalia
A. Seigal
Guido Montúfar
LRM
38
1
0
24 May 2023
A Layered Architecture for Universal Causality
Sridhar Mahadevan
AI4CE
48
0
0
18 Dec 2022
On the Complexity of Counterfactual Reasoning
Yunqiu Han
Yizuo Chen
Adnan Darwiche
62
7
0
24 Nov 2022
Causal Discovery in Linear Latent Variable Models Subject to Measurement Error
Yuqin Yang
AmirEmad Ghassami
M. Nafea
Negar Kiyavash
Kun Zhang
I. Shpitser
CML
45
8
0
08 Nov 2022
Unifying Causal Inference and Reinforcement Learning using Higher-Order Category Theory
Sridhar Mahadevan
51
4
0
13 Sep 2022
On The Universality of Diagrams for Causal Inference and The Causal Reproducing Property
Sridhar Mahadevan
70
5
0
06 Jul 2022
Causal Structure Learning: a Combinatorial Perspective
C. Squires
Caroline Uhler
CML
120
47
0
02 Jun 2022
On Testability of the Front-Door Model via Verma Constraints
Rohit Bhattacharya
Razieh Nabi
85
9
0
01 Mar 2022
Variable elimination, graph reduction and efficient g-formula
F. R. Guo
Emilija Perković
A. Rotnitzky
CML
74
7
0
24 Feb 2022
Partial Counterfactual Identification from Observational and Experimental Data
Junzhe Zhang
Jin Tian
Elias Bareinboim
71
64
0
12 Oct 2021
An Automated Approach to Causal Inference in Discrete Settings
Guilherme Duarte
N. Finkelstein
D. Knox
Jonathan Mummolo
I. Shpitser
96
49
0
28 Sep 2021
Causal Homotopy
Sridhar Mahadevan
CML
44
6
0
20 Sep 2021
Learning latent causal graphs via mixture oracles
Bohdan Kivva
Goutham Rajendran
Pradeep Ravikumar
Bryon Aragam
CML
82
48
0
29 Jun 2021
Partial Identifiability in Discrete Data With Measurement Error
N. Finkelstein
R. Adams
Suchi Saria
I. Shpitser
75
11
0
23 Dec 2020
Differentiable Causal Discovery Under Unmeasured Confounding
Rohit Bhattacharya
Tushar Nagarajan
Daniel Malinsky
I. Shpitser
CML
80
61
0
14 Oct 2020
Faster algorithms for Markov equivalence
Zhongyi Hu
R. Evans
82
12
0
05 Jul 2020
Full Law Identification In Graphical Models Of Missing Data: Completeness Results
Razieh Nabi
Rohit Bhattacharya
I. Shpitser
61
50
0
10 Apr 2020
Semiparametric Inference For Causal Effects In Graphical Models With Hidden Variables
Rohit Bhattacharya
Razieh Nabi
I. Shpitser
CML
108
64
0
27 Mar 2020
Estimation of causal effects with small data in the presence of trapdoor variables
Jouni Helske
Santtu Tikka
Juha Karvanen
CML
34
9
0
06 Mar 2020
Causality-based Feature Selection: Methods and Evaluations
Kui Yu
Xianjie Guo
Lin Liu
Jiuyong Li
Hao Wang
Zhaolong Ling
Xindong Wu
CML
92
97
0
17 Nov 2019
Quantum Inflation: A General Approach to Quantum Causal Compatibility
Elie Wolfe
Alejandro Pozas-Kerstjens
Matan Grinberg
D. Rosset
A. Acín
M. Navascués
AI4CE
92
56
0
23 Sep 2019
Towards Characterising Bayesian Network Models under Selection
A. Armen
R. Evans
CML
61
1
0
13 Nov 2018
Algebraic Equivalence of Linear Structural Equation Models
T. V. Ommen
Joris M. Mooij
70
5
0
10 Jul 2018
Constraint-based Causal Discovery for Non-Linear Structural Causal Models with Cycles and Latent Confounders
Patrick Forré
Joris M. Mooij
CML
92
56
0
09 Jul 2018
The Inflation Technique Completely Solves the Causal Compatibility Problem
M. Navascués
Elie Wolfe
71
35
0
20 Jul 2017
Algebraic Problems in Structural Equation Modeling
Mathias Drton
72
48
0
18 Dec 2016
Foundations of Structural Causal Models with Cycles and Latent Variables
Stephan Bongers
Patrick Forré
J. Peters
Joris M. Mooij
95
167
0
18 Nov 2016
Smooth, identifiable supermodels of discrete DAG models with latent variables
R. Evans
Thomas S. Richardson
CML
69
22
0
21 Nov 2015
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