A novel self-attention model based on cosine self-similarity for cancer classification of protein mass spectrometry

被引:4
|
作者
Tang, Long [1 ]
Xu, Ping [1 ]
Xue, Lingyun [1 ]
Liu, Yian [1 ]
Yan, Ming [1 ]
Chen, Anqi [2 ]
Hu, Shundi [2 ]
Wen, Luhong [2 ,3 ]
机构
[1] Hangzhou Dianzi Univ, Coll Automat, Hangzhou 310028, Peoples R China
[2] Ningbo Univ, Res Inst Adv Technol, Ningbo 315211, Peoples R China
[3] China Innovat Instrument Co Ltd, Ningbo 315000, Peoples R China
关键词
Mass spectrometry; Cosine self-similarity; Cancer classification; Deep learning; PROSTATE-CANCER; PROTEOMICS;
D O I
10.1016/j.ijms.2023.117131
中图分类号
O64 [物理化学(理论化学)、化学物理学]; O56 [分子物理学、原子物理学];
学科分类号
070203 ; 070304 ; 081704 ; 1406 ;
摘要
Mass spectrometry has become a popular tool for cancer classification. A novel self-attention deep learning model based on cosine self-similarity was proposed to classify cancer by mass spectrometry. First, a primary feature vector is dimensionally reduced by two fully connected layers. Second, the feature vector is transformed into the 2D feature matrix, which can be used to calculate the cosine self-similarity matrix of the self-attention model. Next, three convolutional layers are used to extract the refined feature matrix. Finally, the refined feature matrix is fed into the multi-layer fully-connected network to classify the mass spectra. Experimental results of ovarian and prostate cancer demonstrate that the proposed method outperforms the other methods.
引用
收藏
页数:8
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