An Image Retrieval Pipeline in a Medical Data Integration Center

Author:

Cheng Ka Yung1,Pazmino Santiago1,Bergh Björn1,Lange-Hegermann Markus2,Schreiweis Björn1

Affiliation:

1. Institute for Medical Informatics and Statistics, Kiel University and University Hospital Schleswig-Holstein, Kiel, Germany

2. inIT—Institute Industrial IT, OWL University of Applied Sciences and Arts, Lemgo, Germany

Abstract

Medical images need annotations with high-level semantic descriptors, so that domain experts can search for the desired dataset among an enormous volume of visual media within a Medical Data Integration Center. This article introduces a processing pipeline for storing and annotating DICOM and PNG imaging data by applying Elasticsearch, S3 and Deep Learning technologies. The proposed method processes both DICOM and PNG images to generate annotations. These image annotations are indexed in Elasticsearch with the corresponding raw data paths, where they can be retrieved and analyzed.

Publisher

IOS Press

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