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Antonio Artés-Rodríguez

4 accepted papers

2020

Continual Learning for Infinite Hierarchical Change-Point Detection

ICASSP 2020accepted

Change-point detection (CPD) aims to locate abrupt transitions in the generative model of a sequence of observations. When Bayesian methods are considered, the standard practice is to infer the posterior distribution of the change-point locations. However, for complex models (high-dimensional or het…

Cited by 0SourceScholar
2016

A hierarchical algorithm for causality discovery among atrial fibrillation electrograms

ICASSP 2016accepted

Multi-channel intracardiac electrocardiograms (electrograms) are sequentially acquired, at the electrophysiology laboratory, in order to guide radio frequency catheter ablation during heart surgery performed on patients with sustained atrial fibrillation (AF). These electrograms are used by cardiolo…

Cited by 0SourceScholar
2015

Discriminative spectral learning of hidden markov models for human activity recognition

ICASSP 2015accepted

Hidden Markov Models (HMMs) are one of the most important techniques to model and classify sequential data. Maximum Likelihood (ML) and (parametric and non-parametric) Bayesian estimation of the HMM parameters suffers from local maxima and in massive datasets they can be specially time consuming. In…

Cited by 0SourceScholar