Invariant Moments, Textural and Deep Features for Diagnostic MR and CT Image Retrieval

Putzu L.
;
Loddo A.
;
Di Ruberto C.
2021-01-01

Abstract

Image analysis in the medical field aims to offer tools for the diagnosis and detection of life-threatening illness. This study means to propose a novel content-based image retrieval system oriented to medical diagnosis. In particular, we exploit several classic and deep image descriptors together with different similarity measures on three different data set, containing computed tomography and magnetic resonance images. Experiments show that feature selection can bring benefit if applied to deep and texture features, contrary to what observed for invariant moments. Moreover, the cityblock distance emerged to be quite suitable overall in this domain, although some other distances also exhibit satisfying robustness.
2021
Inglese
Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
978-3-030-89127-5
978-3-030-89128-2
Springer Science and Business Media Deutschland GmbH
GERMANIA
Tsapatsoulis N., Panayides A., Theocharides T., Lanitis A., Lanitis A., Pattichis C., Pattichis C., Vento M.
13052
287
297
11
19th International Conference on Computer Analysis of Images and Patterns, CAIP 2021
Contributo
Comitato scientifico
2021
Virtual, Online
internazionale
scientifica
Biomedical image retrieval
CBIR
Deep features
Hand-crafted features
no
4 Contributo in Atti di Convegno (Proceeding)::4.1 Contributo in Atti di convegno
Putzu, L.; Loddo, A.; Di Ruberto, C.
273
3
4.1 Contributo in Atti di convegno
reserved
info:eu-repo/semantics/conferencePaper
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