Pulmonary nodule image classification method based on information fusion safety semi-supervised clustering
A technology of semi-supervised clustering and classification method, applied in the field of robust semi-supervised clustering algorithm, it can solve the problems such as the decline of classification effect and the failure to consider the risk of marked samples, so as to achieve the effect of accurate and robust clustering.
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[0019] combined with figure 1 To further clarify the present invention, it should be understood that these embodiments are only used to illustrate the present invention and are not intended to limit the scope of the present invention. After reading the present invention, those skilled in the art all fall within the scope of the present application to the modifications of various equivalent forms of the present invention. The scope defined by the appended claims.
[0020] In order to better illustrate the purpose and advantages of the present invention, the implementation of the method of the present invention will be further described in detail below in conjunction with the accompanying drawings and examples.
[0021] Step 1: Input feature datasets of labeled and unlabeled lung nodule images;
[0022] A subset of labeled samples of the input dataset: X l =[x 1 ...x l ], the corresponding label is y k ∈ {1,...,c}, unlabeled sample subset: X u =[x l+1 ...x n ];
[0023]...
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