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Emre Acartürk

4 accepted papers

2024

General Identifiability and Achievability for Causal Representation Learning

AISTATS 2024poster

This paper focuses on causal representation learning (CRL) under a general nonparametric latent causal model and a general transformation model that maps the latent data to the observational data. It establishes identifiability and achievability results using two hard uncoupled interventions per nod…

2024

Linear Causal Representation Learning from Unknown Multi-node Interventions

NeurIPS 2024poster

Despite the multifaceted recent advances in interventional causal representation learning (CRL), they primarily focus on the stylized assumption of single-node interventions. This assumption is not valid in a wide range of applications, and generally, the subset of nodes intervened in an interventio…

2024

Sample Complexity of Interventional Causal Representation Learning

NeurIPS 2024poster

Consider a data-generation process that transforms low-dimensional _latent_ causally-related variables to high-dimensional _observed_ variables. Causal representation learning (CRL) is the process of using the observed data to recover the latent causal variables and the causal structure among them.…

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