2017
DOI: 10.5815/ijigsp.2017.01.07
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Subspace based Expression Recognition Using Combinational Gabor based Feature Fusion

Abstract: Abstract-This paper demonstrates mainly on enhancement of extracted feature and proposes a novel approach for feature level fusion for efficient expression recognition. Extracted Gabor filter magnitude feature vector has been fused with upper face part geometrical features and Gabor phase feature vector has been fused with lower face part geometrical features respectively. Both these high dimensional feature dataset have been projected into low dimensional subspace for decorrelating the feature data redundancy… Show more

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Cited by 5 publications
(2 citation statements)
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“…Therefore Eq. (16) can be decomposed as [8,9,10] It is worthy to note that the above-mentioned diagonal matrix directly corresponds to the common element positions of the antenna array elements which can be computed from the diagonal elements of this matrix. Hence, the estimates of the common element positions can be computed as follows: According to our further study [12], the state-space method, the forward-backward matrix pencil method and extended matrix pencil method presented respectively by Y. Liu et al in [2,3] are related and show nearly the same performance for the synthesis of the shaped-beam patterns.…”
Section: The Combined Matrix Structurementioning
confidence: 99%
“…Therefore Eq. (16) can be decomposed as [8,9,10] It is worthy to note that the above-mentioned diagonal matrix directly corresponds to the common element positions of the antenna array elements which can be computed from the diagonal elements of this matrix. Hence, the estimates of the common element positions can be computed as follows: According to our further study [12], the state-space method, the forward-backward matrix pencil method and extended matrix pencil method presented respectively by Y. Liu et al in [2,3] are related and show nearly the same performance for the synthesis of the shaped-beam patterns.…”
Section: The Combined Matrix Structurementioning
confidence: 99%
“…In the feature and model based approaches [13][14][15][16], [21][22][23][24], [39][40][41][42] the classification are major role of the real time facial expression system. In that we survey [31][32][33] Twin Support Vector Machines is better performance II.…”
Section: Introductionmentioning
confidence: 99%