نتایج جستجو برای: minmax autocorrelation factor analysis

تعداد نتایج: 3481414  

2011
Abusayeed Saifullah You Xu Chenyang Lu Yixin Chen

Interference between concurrent transmissions can cause severe performance degradation in wireless sensor networks (WSNs). While multiple channels available in WSN technology such as IEEE 802.15.4 can be exploited to mitigate interference, channel allocation can have a significant impact on the performance of multi-channel communication. This paper proposes a set of distributed algorithms for n...

2007

This paper is concerned with the estimation of the autoregressive parameter in a widely considered spatial autocorrelation model. The typical estimator for this parameter considered in the literature is the (quasi) maximum likelihood estimator corresponding to a normal density. However, as discussed in this paper, the (quasi) maximum likelihood estimator may not be computationally feasible in m...

2007
Jonathan P. Doh Eugene D. Hahn

Spatial and geographic constructs have been incorporated into strategy research since its inception. Yet, strategy researchers have been slow to take advantage of methods designed specifically for these variables. This is despite the fact that spatial methods can be used to identify and remediate spatial autocorrelation—eliminating a potentially important source of bias in empirical results—and...

1999
Harry H. Kelejian Ingmar R. Prucha

This paper is concerned with the estimation of the autoregressive parameter in a widely considered spatial autocorrelation model. The typical estimator for this parameter considered in the literature is the (quasi) maximum likelihood estimator corresponding to a normal density. However, as discussed in the paper, the (quasi) maximum likelihood estimator may not be computationally feasible in ma...

Journal: :Symposium - International Astronomical Union 1978

2014
Stephan Stahlschmidt Wolfgang Karl Härdle Helmut Thome Wolfgang K. Härdle

Principal component analysis denotes a popular algorithmic technique to dimension reduction and factor extraction. Spatial variants have been proposed to account for the particularities of spatial data, namely spatial heterogeneity and spatial autocorrelation, and we present a novel approach which transfers principal component analysis into the spatio-temporal realm. Our approach, named stPCA, ...

Journal: :Journal of Mathematical Analysis and Applications 1965

Journal: :Journal of Mathematical Analysis and Applications 1984

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