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Machine Learning for Archaeological Applications in R

Expected online publication date:  13 December 2024

Denisse L. Argote
Affiliation:
Instituto Nacional de Antropología e Historia
Pedro A. López-­García
Affiliation:
Escuela Nacional de Antropología e Historia
Manuel A. Torres-­García
Affiliation:
Instituto Nacional de Antropología e Historia
Michael C. Thrun
Affiliation:
Philipps-Universität Marburg, Germany

Summary

This Element highlights the employment within archaeology of classification methods developed in the field of chemometrics, artificial intelligence, and Bayesian statistics. These run in both high- and low-dimensional environments and often have better results than traditional methods. Instead of a theoretical approach, it provides examples of how to apply these methods to real data using lithic and ceramic archaeological materials as case studies. A detailed explanation of how to process data in R (The R Project for Statistical Computing), as well as the respective code, are also provided.
Type
Element
Information
Online ISBN: 9781009506625
Publisher: Cambridge University Press

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Machine Learning for Archaeological Applications in R
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Machine Learning for Archaeological Applications in R
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Machine Learning for Archaeological Applications in R
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