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dc.contributor.authorSuárez-Cetrulo, Andrés L.
dc.contributor.authorQuintana, David
dc.contributor.authorCervantes, Alejandro
dc.date2023-06
dc.date.accessioned2023-07-11T11:48:04Z
dc.date.available2023-07-11T11:48:04Z
dc.identifier.issn1989-1660
dc.identifier.urihttps://reunir.unir.net/handle/123456789/15032
dc.description.abstractRecent crises, recessions and bubbles have stressed the non-stationary nature and the presence of drastic structural changes in the financial domain. The most recent literature suggests the use of conventional machine learning and statistical approaches in this context. Unfortunately, several of these techniques are unable or slow to adapt to changes in the price-generation process. This study aims to survey the relevant literature on Machine Learning for financial prediction under regime change employing a systematic approach. It reviews key papers with a special emphasis on technical analysis. The study discusses the growing number of contributions that are bridging the gap between two separate communities, one focused on data stream learning and the other on economic research. However, it also makes apparent that we are still in an early stage. The range of machine learning algorithms that have been tested in this domain is very wide, but the results of the study do not suggest that currently there is a specific technique that is clearly dominant.es_ES
dc.language.isoenges_ES
dc.publisherInternational Journal of Interactive Multimedia and Artificial Intelligencees_ES
dc.relation.ispartofseries;In Press
dc.relation.urihttps://www.ijimai.org/journal/bibcite/reference/3331es_ES
dc.rightsopenAccesses_ES
dc.subjectconcept driftes_ES
dc.subjectfinancees_ES
dc.subjectmachine learninges_ES
dc.subjectmetamodeles_ES
dc.subjectregime changees_ES
dc.subjectsystematic reviewes_ES
dc.subjectIJIMAIes_ES
dc.titleMachine Learning for Financial Prediction Under Regime Change Using Technical Analysis: A Systematic Reviewes_ES
dc.typearticlees_ES
reunir.tag~IJIMAIes_ES
dc.identifier.doihttps://doi.org/10.9781/ijimai.2023.06.003


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