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Data from A Containerized Software System for Generation, Management, and Exploration of Features from Whole Slide Tissue Images

Posted on 2023-03-31 - 01:46
Abstract

Well-curated sets of pathology image features will be critical to clinical studies that aim to evaluate and predict treatment responses. Researchers require information synthesized across multiple biological scales, from the patient to the molecular scale, to more effectively study cancer. This article describes a suite of services and web applications that allow users to select regions of interest in whole slide tissue images, run a segmentation pipeline on the selected regions to extract nuclei and compute shape, size, intensity, and texture features, store and index images and analysis results, and visualize and explore images and computed features. All the services are deployed as containers and the user-facing interfaces as web-based applications. The set of containers and web applications presented in this article is used in cancer research studies of morphologic characteristics of tumor tissues. The software is free and open source. Cancer Res; 77(21); e79–82. ©2017 AACR.

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AUTHORS (12)

  • Joel Saltz
    Ashish Sharma
    Ganesh Iyer
    Erich Bremer
    Feiqiao Wang
    Alina Jasniewski
    Tammy DiPrima
    Jonas S. Almeida
    Yi Gao
    Tianhao Zhao
    Mary Saltz
    Tahsin Kurc
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