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公开(公告)号:US20230334656A1
公开(公告)日:2023-10-19
申请号:US17922809
申请日:2021-05-03
Applicant: KONINKLIJKE PHILIPS N.V.
Inventor: Vidya Madapusi Srinivas PRASAD , Srinivasa Rao KUNDETI , Manikanda Krishnan V , Vijayananda JAGANNATHA
IPC: G06T7/00 , G06T3/40 , G06V10/44 , G06V10/42 , G06V10/82 , G06V10/774 , G06V10/764 , G16H30/40 , G16H50/20
CPC classification number: G06T7/0012 , G06T3/4053 , G06V10/44 , G06V10/42 , G06V10/82 , G06V10/774 , G06V10/764 , G16H30/40 , G16H50/20 , G06T2207/20084 , G06T2207/20081 , G06T2207/10116 , G06T2207/30004 , G06V2201/031
Abstract: Disclosed herein is a method and system for identifying abnormal images in a set of medical images for optimal assessment of the medical images. A plurality of global features from each medical image is extracted based on pretrained weights associated with each global feature. Similarly, plurality of local features from each medical image is extracted analyzing a predefined number of image patches generated from a higher resolution image corresponding to each medical image. Further, an abnormality score for each medical image is determined based on weights associated with a combined feature set obtained by concatenating the plurality of global features and the plurality of local features. Thereafter, the medical image is identified as an abnormal image when the abnormality score of the medical image is higher than a predefined first threshold score.