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Abstract
Inverse consistency is a desirable property for image registration. We propose a simple technique to make a neural registration network inverse consistent by construction, as a consequence of its structure, as long as it parameterizes its output transform by a Lie group. We extend this technique to multi-step neural registration by composing many such networks in a way that preserves inverse consistency. This multi-step approach also allows for inverse-consistent coarse to fine registration. We evaluate our technique on synthetic 2-D data and four 3-D medical image registration tasks and obtain excellent registration accuracy while assuring inverse consistency.
Originalsprache | Englisch |
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Seiten | 688-698 |
Seitenumfang | 11 |
DOIs | |
Publikationsstatus | Veröffentlicht - 28 Apr. 2023 |
Publikationsreihe
Name | Lecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics) |
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Band | 14229 LNCS |
ISSN (Druck) | 0302-9743 |
ISSN (elektronisch) | 1611-3349 |
Bibliographische Notiz
Publisher Copyright:© The Author(s), under exclusive license to Springer Nature Switzerland AG 2023.
Systematik der Wissenschaftszweige 2012
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Deep Learning mit persistenter Homologie: Deep Learning mit persistenter Homologie
Kwitt, R. (Projektleitung)
1/08/19 → 30/06/23
Projekt: Forschung