Volume 45 Issue 1
Jan.  2019
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HUANG Tingting, WANG Huiwen, SAPORTA Gilbertet al. Spatial autoregressive model for compositional data[J]. Journal of Beijing University of Aeronautics and Astronautics, 2019, 45(1): 93-98. doi: 10.13700/j.bh.1001-5965.2018.0253(in Chinese)
Citation: HUANG Tingting, WANG Huiwen, SAPORTA Gilbertet al. Spatial autoregressive model for compositional data[J]. Journal of Beijing University of Aeronautics and Astronautics, 2019, 45(1): 93-98. doi: 10.13700/j.bh.1001-5965.2018.0253(in Chinese)

Spatial autoregressive model for compositional data

doi: 10.13700/j.bh.1001-5965.2018.0253
Funds:

National Natural Science Foundation of China 71420107025

More Information
  • Corresponding author: WANG Huiwen, E-mail: wanghw@vip.sina.com
  • Received Date: 03 May 2018
  • Accepted Date: 28 Jul 2018
  • Publish Date: 20 Jan 2019
  • The existing compositional linear models assume that samples are independent, which is often violated in practice. To solve this problem, we put forward a spatial autoregressive model for compositional data, which contains both compositional covariates and scalar predictors. Furthermore, a new estimation method is proposed. The new model has advantages of coping with mixed compositional and numerical data and expressing dependence between the responses. And the parameter estimators are obtained through isometric logratio (ilr) transformation, which transforms dependent compositional data into independent real vector. A Monte-Carlo simulation experiment verifies the effectiveness of the proposed estimation method.

     

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