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September 1, 1997Remote Sensing of Environment1,544 citationsOpen Access

Decision tree classification of land cover from remotely sensed data

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MFM. A. FriedlBoston UniversityCBCarla E. BrodleyNortheastern University

Key Points

  • To evaluate the performance, accuracy, and operational advantages of various decision tree classification algorithms against traditional statistical classifiers for remote sensing land cover mapping.
  • Tested univariate, multivariate, and hybrid decision tree classification algorithms across three distinct remote sensing datasets.
  • Compared classification accuracy metrics directly against conventional maximum likelihood and linear discriminant function classifiers.
  • Decision tree algorithms consistently outperformed both maximum likelihood and linear discriminant function classifiers in land cover classification accuracy.
  • The hybrid decision tree model achieved the highest classification accuracies across all evaluated remote sensing datasets.
  • Decision tree classifiers demonstrated structural advantages by operating nonparametrically, successfully accommodating nonlinear patterns and noisy data without distribution assumptions.

Abstract

Decision tree classification algorithms have significant potential for land cover mapping problems and have not been tested in detail by the remote sensing community relative to more conventional pattern recognition techniques such as maximum likelihood classification. In this paper, we present several types of decision tree classification algorithms arid evaluate them on three different remote sensing data sets. The decision tree classification algorithms tested include an univariate decision tree, a multivariate decision tree, and a hybrid decision tree capable of including several different types of classification algorithms within a single decision tree structure. Classification accuracies produced by each of these decision tree algorithms are compared with both maximum likelihood and linear discriminant function classifiers. Results from this analysis show that the decision tree algorithms consistently outperform the maximum likelihood and linear discriminant function classifiers in regard to classf — cation accuracy. In particular, the hybrid tree consistently produced the highest classification accuracies for the data sets tested. More generally, the results from this work show that decision trees have several advantages for remote sensing applications by virtue of their relatively simple, explicit, and intuitive classification structure. Further, decision tree algorithms are strictly nonparametric and, therefore, make no assumptions regarding the distribution of input data, and are flexible and robust with respect to nonlinear and noisy relations among input features and class labels.

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Cite This Study

Friedl et al. (1997) studied this question.

synapsesocial.com/papers/69eb0ab7da7b3d8040ef251ahttps://doi.org/10.1016/s0034-4257(97)00049-7
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