Feng-mei WANG, Wen-biao LU, Shi-yan CHEN. Microscopic Image Recognition of Chinese Medicinal Materials Based on Gray-level Matching Template[J]. Chinese journal of experimental traditional medical formulae, 2019, 25(11): 167-172.
DOI:
Feng-mei WANG, Wen-biao LU, Shi-yan CHEN. Microscopic Image Recognition of Chinese Medicinal Materials Based on Gray-level Matching Template[J]. Chinese journal of experimental traditional medical formulae, 2019, 25(11): 167-172. DOI: 10.13422/j.cnki.syfjx.20190914.
Microscopic Image Recognition of Chinese Medicinal Materials Based on Gray-level Matching Template
To build a gray-level matching template by using the gray level information of the microscopic image of the transverse section of Chinese medicinal materials
in order to realize the automatic recognition of the images of Chinese medicinal materials independent of scale and orientation.
Method:
2
By using the embedding method of polyethylene glycol (PEG)
the transverse slices of 19 kinds of common rhizomatous medicinal materials were obtained. The images of the slices were taken by digital microscopic imaging technology
and the mosaic grayscale images were obtained by image registration
noise removal and boundary location. The center of the structure of the materials in the images was selected to establish the polar coordinate system
so as to divide grids from the radial and angular directions. By counting the gray information in each grid
the gray information digital matrix that can characterize the microscopic identification characteristics of the materials was obtained. Images in an appropriate sample size was used to train the matrix for generalization of the matrix. The covariance coefficients between the matrix of positive or negative verification sample and the template matrix were calculated to set the best identification parameters. For each medicinal material
80 fan-shaped images were prepared
including 70% of training samples
15% of validation samples and 15% of test samples
and single template and template set were tested with test samples.
Result:
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In the test of 240 images including non-template-set medicinal materials
the correct recognition rate of single-template test was 90.1%
and that of template-set test was 92.5%.
Conclusion:
2
This method can well characterize the microscopic identification characteristics of Chinese medicinal materials
with a strong anti-interference ability and less subjective-errors
acquire sample images easily
and provide technical support for the digitization of morphological quality control of Chinese medicinal materials.
YAN S , LI Y L , SONG Y X , et al . Identification of Chinese materia medicals in microscopic powder images [J]. Tsinghua Sci Technol , 2012 , 17 ( 2 ): 209 - 217 .
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Related Author
Feng-mei WANG
Shi-yan CHEN
LIN Bing
WANG Xianshu
ZHANG Wenhui
LIU Xiaoqin
ZHUO Yuzhou
Ji-ping LI
Related Institution
School of Pharmacy,Research Center for Development of Medical Mineral and Resource, Guizhou University of Traditional Chinese Medicine
Center for Drug Evaluation,National Medical Products Administration
Institute of Chinese Materia Medica,China Academy of Chinese Medical Sciences
National Institutes for Food and Drug Control
School of Pharmacy,State Key Laboratory of Characteristic Chinese Drug Resources in Southwest China,Chengdu University of Traditional Chinese Medicine(TCM)