DocumentCode
2795587
Title
Classification of Bovine Reproductive Cycle Phase using Ultrasound-Detected Features
Author
Maldonado-Castillo, Idalia ; Eramian, Mark G. ; Pierson, Roger A. ; Singh, Jaswant ; Adams, Gregg P.
Author_Institution
Univ. of Saskatchewan, Saskatoon
fYear
2007
fDate
28-30 May 2007
Firstpage
258
Lastpage
265
Abstract
Studies of ovarian development in female mammals have shown a relationship between the day in the estrous cycle and the size of the main structures and physiological status of the ovary. This paper presents an algorithm for the automatic classification of bovine ovaries into temporal categories using information extracted from ultrasound images. The temporal classes corresponded roughly to the metestrus, diestrus, and proestrus phases of the bovine reproductive cycle. Features based on the sizes of ovarian structures formed the patterns on which the classification was performed. A Naive Bayes classifier was able to correctly classify the stage of the estrous cycle for 86.36% of the test patterns. A decision tree classified 100% of the test patterns correctly. The decision tree inference algorithm used to build the classifier constructed a tree that used only two of the five available features indicating that they form a sufficiently rich set of features for robust classification.
Keywords
Bayes methods; feature extraction; gynaecology; image classification; medical image processing; automatic classification; bovine ovaries; bovine reproductive cycle phase; estrous cycle; information extraction; naive Bayes classifier; ovarian development; temporal categories; ultrasound images; Biomedical imaging; Bovine; Classification tree analysis; Computer science; Decision trees; Drives; Educational institutions; Gynaecology; Testing; Ultrasonic imaging;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer and Robot Vision, 2007. CRV '07. Fourth Canadian Conference on
Conference_Location
Montreal, Que.
Print_ISBN
0-7695-2786-8
Type
conf
DOI
10.1109/CRV.2007.16
Filename
4228547
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