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Get the time series index (date or date-time component), time series signature (feature extraction of date or date-time component for time series machine learning), and time series summary (summary attributes about time series). Create future time series based on properties of existing time series index using logistic regression. Coerce between time-based tibbles ('tbl') and 'xts', 'zoo', and 'ts'. Methods discussed herein are commonplace in machine learning, and have been cited in various literature. Refer to "Calendar Effects" in papers such as Taieb, Souhaib Ben. "Machine learning strategies for multi-step-ahead time series forecasting." Universit Libre de Bruxelles, Belgium (2014): 75-86. <http://souhaib-bentaieb.com/pdf/2014_phd.pdf>.

copied from cf-staging / r-timetk

Installers

Info: This package contains files in non-standard labels.
  • noarch v2.9.0
  • linux-64 v2.6.2
  • osx-64 v2.6.2
  • win-64 v2.6.2

conda install

To install this package run one of the following:
conda install conda-forge::r-timetk
conda install conda-forge/label/cf202003::r-timetk

Description


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