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Papers/Deep Multi-instance Networks with Sparse Label Assignment ...

Deep Multi-instance Networks with Sparse Label Assignment for Whole Mammogram Classification

Wentao Zhu, Qi Lou, Yeeleng Scott Vang, Xiaohui Xie

2017-05-23Suspicous (BIRADS 4,5)-no suspicous (BIRADS 1,2,3) per image classificationGeneral ClassificationClassification
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Abstract

Mammogram classification is directly related to computer-aided diagnosis of breast cancer. Traditional methods rely on regions of interest (ROIs) which require great efforts to annotate. Inspired by the success of using deep convolutional features for natural image analysis and multi-instance learning (MIL) for labeling a set of instances/patches, we propose end-to-end trained deep multi-instance networks for mass classification based on whole mammogram without the aforementioned ROIs. We explore three different schemes to construct deep multi-instance networks for whole mammogram classification. Experimental results on the INbreast dataset demonstrate the robustness of proposed networks compared to previous work using segmentation and detection annotations.

Results

TaskDatasetMetricValueModel
Binary ClassificationInBreastAUC0.89AlexNet+Sparse MIL INbr. Auto.
Binary ClassificationInBreastAUC0.84AlexNet+Label Assign. MIL INbr. Auto.
Binary ClassificationInBreastAUC0.83AlexNet+Max Pooling MIL
Binary ClassificationInBreastAUC0.79AlexNet

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