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广州中医药大学 中药学院,广州 510006
[第一作者] 陈仕妍,在读硕士,从事中药质量标准研究,E-mail:1476619732@qq.com
*卢文彪,博士,副教授,从事中药及其制剂质量标准研究,E-mail:luwb1@gzucm.edu.cn
收稿日期:2019-07-16,
网络出版日期:2019-10-11,
纸质出版日期:2020-03-20
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陈仕妍, 卢文彪, 王凤梅. 基于颜色匹配模板的中药饮片图像识别[J]. 中国实验方剂学杂志, 2020,26(6):158-162.
Shi-yan CHEN, Wen-biao LU, Feng-mei WANG. Image Recognition of Chinese Herbal Pieces Based on Color Matching Template[J]. Chinese journal of experimental traditional medical formulae, 2020, 26(6): 158-162.
陈仕妍, 卢文彪, 王凤梅. 基于颜色匹配模板的中药饮片图像识别[J]. 中国实验方剂学杂志, 2020,26(6):158-162. DOI: 10.13422/j.cnki.syfjx.20200311.
Shi-yan CHEN, Wen-biao LU, Feng-mei WANG. Image Recognition of Chinese Herbal Pieces Based on Color Matching Template[J]. Chinese journal of experimental traditional medical formulae, 2020, 26(6): 158-162. DOI: 10.13422/j.cnki.syfjx.20200311.
目的:
2
利用中药饮片图像中颜色的种类和分布特征,构建与尺度和旋转无关的颜色匹配模板,建立中药饮片的颜色表征及图像识别方法。
方法:
2
选取根茎类、花、种子和果实类中药饮片共20种,每种样品各选取相应的2个观察面摄取图像,经图像分割,RGB颜色模型转换为
L
*
a
*
b
*
等图像处理过程,提取各观察面的图像前景的颜色参数。2个观察面的颜色向量按降序排序,插值缩放至一定尺度,按1∶1的权重构造综合颜色向量。对于具有向心分布的观察面(如横切面)图像,采用腐蚀操作由外至内逐圈提取各环带的颜色分量,并进行排序、缩放操作。以综合颜色向量作初始模板进行训练,计算各样本与模板的相关系数,结合
t
检验对阳性样本进行区间估计,以总识别率为考察指标,确定最优模板尺度、环带宽度和训练量。
结果:
2
不同种类饮片训练后的综合颜色模板的可视化结果易于目视辨别;测试260个饮片样本,由
a
*
,
b
*
2个颜色分量构建的综合颜色模板的识别性能优于
L
*
,
a
*
,
b
*
3个分量的模板,其总识别率为95.8%(249个/200个)。
结论:
2
整合中药饮片2个不同观察面的图像颜色特征以构建综合颜色特征向量,对于相同药用部位的样品和不同药用部位的样品均可获得较好的识别分类结果;该方法对样品的形状、取样部位及颜色的随机变化有较强的抗干扰能力。
Objective:
2
To construct the color matching template irrelevant to size and rotation according to the types and distribution characteristics of colors in images of Chinese herbal pieces
in order to establish color characterization and image identification methods for Chinese herbal pieces.
Method:
2
Totally 20 types of Chinese herbal pieces were selected
including rhizomes
flowers
seeds and fruits.For each sample
two observation surfaces were selected to extract color parameters in foreground through image processing such as image segmentation
model transformation from RGB to
L
*
a
*
b
*
.Color vectors of the two observation surfaces were sequenced in a descending order
scaled to a certain size by interpolating
and combined into an integrated color vector in a weight ratio of 1∶1.As for centripetally distributed observation surface images(e.g.transverse section)
corrosion operation was conducted to extract the color components of each ring from outer to inner by circles
which were then ordered and scaled.The integrated color vector was used as initial template for training
the correlation coefficient between each sample and the template was calculated
and the interval estimation of positive samples were carried out by
t
test.With the total recognition rate as an indicator
the optimal template dimensions
width of ring and training volume were ultimately determined.
Result:
2
The visualization results of the trained templates of the varied herbal pieces were easy to be visually distinguished.After 260 samples of the herbal pieces were tested
the template of a and b components was better than that of
L
*
a
*
and
b
*
in terms of recognition performance
with
a
*
recognition accuracy of 95.8%(249/200).
Conclusion:
2
Color characteristics of images from two observation surfaces of Chinese herbal pieces are integrated to obtain the combined color feature vector
so as to achieve preferable recognition results for samples from both the same and different medicinal parts.This method boasts a strong anti-interference ability of random variation of sample shape
sampling part and color.
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