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Path Signatures in Machine Learning-based Analysis

Path Signatures in Machine Learning-based Analysisvon Milan Kuzmanovic
Über Path Signatures in Machine Learning-based Analysis

This paper examines the application of the rough paths theory in modelling of financial time series. The theory of rough paths provides a way to effectively and efficiently capture the relevant information about rough signals, which can be used in machine learning modelling. This approach is applied to twelve stock market indexes with a goal to predict the sign of their daily returns (positive or negative) and their realized daily volatility.

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  • Sprache:
  • Englisch
  • ISBN:
  • 9786202220750
  • Einband:
  • Taschenbuch
  • Seitenzahl:
  • 112
  • Veröffentlicht:
  • 26. Dezember 2018
  • Abmessungen:
  • 150x7x220 mm.
  • Gewicht:
  • 185 g.
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Beschreibung von Path Signatures in Machine Learning-based Analysis

This paper examines the application of the rough paths theory in modelling of financial time series. The theory of rough paths provides a way to effectively and efficiently capture the relevant information about rough signals, which can be used in machine learning modelling. This approach is applied to twelve stock market indexes with a goal to predict the sign of their daily returns (positive or negative) and their realized daily volatility.

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