Comparison of denoising tools for the reconstruction of nonlinear multimodal images

Author:

Houhou Rola1ORCID,Quansah Elsie1,Meyer-Zedler Tobias1,Schmitt Michael1ORCID,Hoffmann Franziska2ORCID,Guntinas-Lichius Orlando2,Popp Jürgen1ORCID,Bocklitz Thomas13ORCID

Affiliation:

1. Friedrich Schiller University

2. Jena University Hospital

3. University Bayreuth

Abstract

Biophotonic multimodal imaging techniques provide deep insights into biological samples such as cells or tissues. However, the measurement time increases dramatically when high-resolution multimodal images (MM) are required. To address this challenge, mathematical methods can be used to shorten the acquisition time for such high-quality images. In this research, we compared standard methods, e.g., the median filter method and the phase retrieval method via the Gerchberg-Saxton algorithm with artificial intelligence (AI) based methods using MM images of head and neck tissues. The AI methods include two approaches: the first one is a transfer learning-based technique that uses the pre-trained network DnCNN. The second approach is the training of networks using augmented head and neck MM images. In this manner, we compared the Noise2Noise network, the MIRNet network, and our deep learning network namely incSRCNN, which is derived from the super-resolution convolutional neural network and inspired by the inception network. These methods reconstruct improved images using measured low-quality (LQ) images, which were measured in approximately 2 seconds. The evaluation was performed on artificial LQ images generated by degrading high-quality (HQ) images measured in 8 seconds using Poisson noise. The results showed the potential of using deep learning on these multimodal images to improve the data quality and reduce the acquisition time. Our proposed network has the advantage of having a simple architecture compared with similar-performing but highly parametrized networks DnCNN, MIRNet, and Noise2Noise.

Funder

Thueringer Universitaetsund Landesbibliothek Jena

Deutsche Forschungsgemeinschaft

Freistaat Thüringen

Horizon 2020 Framework Programme

Bundesministerium für Bildung und Forschung

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics,Biotechnology

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