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TREEBY, B. JAROŠ, J. COX, B.
Original Title
Advanced photoacoustic image reconstruction using the k-Wave toolbox
Type
conference paper
Language
English
Original Abstract
Reconstructing images from measured time domain signals is an essential step in tomography-mode photoacoustic imaging. However, in practice, there are many complicating factors that make it difficult to obtain high-resolution images. These include incomplete or undersampled data, filtering effects, acoustic and optical attenuation, and uncertainties in the material parameters. Here, the processing and image reconstruction steps routinely used by the Photoacoustic Imaging Group at University College London are discussed. These include correction for acoustic and optical attenuation, spatial resampling, material parameter selection, image reconstruction, and log compression. The effect of each of these steps is demonstrated using a representative in vivo dataset. All of the algorithms discussed form part of the open-source k-Wave toolbox (available from http://www.k-wave.org).
Keywords
k-Wave toolbox, photoacoustic image reconstruction
Authors
TREEBY, B.; JAROŠ, J.; COX, B.
Released
18. 3. 2016
Publisher
SPIE - the international society for optics and photonics
Location
San Francisco
ISBN
978-1-62841-942-9
Book
Progress in Biomedical Optics and Imaging - Proceedings of SPIE
Edition
Pages from
1
Pages to
14
Pages count
URL
http://spie.org/Publications/Proceedings/Paper/10.1117/12.2209254
BibTex
@inproceedings{BUT130952, author="Bradley {Treeby} and Jiří {Jaroš} and Ben {Cox}", title="Advanced photoacoustic image reconstruction using the k-Wave toolbox", booktitle="Progress in Biomedical Optics and Imaging - Proceedings of SPIE", year="2016", series="Progress in Biomedical Optics and Imaging - Proceedings of SPIE", volume="9708", pages="1--14", publisher="SPIE - the international society for optics and photonics", address="San Francisco", doi="10.1117/12.2209254", isbn="978-1-62841-942-9", url="http://spie.org/Publications/Proceedings/Paper/10.1117/12.2209254" }