Tiếng Việt

Nanchang University has made progress in intelligent photoacoustic tomography imaging

141
2024-08-13 15:14:55
Xem bản dịch

Photoacoustic tomography (PAT) is a novel hybrid medical imaging technique that enables precise imaging of biological tissue structures at different spatial scales. It has been widely used in various fields, including brain imaging, cancer detection, and cardiovascular disease diagnosis. However, due to limitations in data acquisition conditions, photoacoustic tomography systems typically can only collect photoacoustic signals from a limited detection angle, which inevitably leads to a decrease in the image quality of photoacoustic tomography. How to achieve high-quality reconstruction under limited perspective sampling has always been an urgent problem that PAT needs to solve.

Recently, a research team from the Imaging and Visual Representation Laboratory at Nanchang University proposed a high-quality photoacoustic tomography imaging method based on a fractional diffusion model under limited viewing angles. The achievement was published in Photoacoustics, a top journal in the field of optoacoustics, under the title "Score based generative model assisted information compensation for high-quality limited view reconstruction in photoacoustic tomography".

Main research content
The research team proposed a photoacoustic tomography reconstruction method based on the fractional diffusion model. During the training phase, the model learns the data distribution of the samples by gradually adding noise to the existing samples. In the reconstruction stage, this method uses the prior information about image reconstruction learned by the diffusion model as the regularization term in the iterative reconstruction algorithm, and through cyclic iteration, high-quality photoacoustic tomography imaging under limited viewing angles can be achieved.

Figure 1. Process diagram of PAT reconstruction based on diffusion model method from a limited perspective.

As a validation, the research team evaluated the performance of the proposed method using experimental data from circular phantoms and live mice. In the circular phantom reconstruction experiment, this method was compared with traditional delay summation method (DAS), gradient descent method without regularization term (GD), gradient descent method with Tikhonov regularization term, U-Net method, and GAN method. The results are shown in Figure 2. The proposed method shows higher quality and clearer contours in the reconstruction results under different limited viewing angles. At a limited viewing angle of 70 °, the proposed method achieved peak signal-to-noise ratio (PSNR) and structural similarity (SSIM) of 31.57dB and 0.95, respectively, which were improved by 203% and 48% compared to the delay summation method.

Figure 2. Reconstruction results of circular phantom.
From the experimental results of the simulated small balls and live mice (experimental data), it can be seen that this method still has good performance (Figure 3). Specifically, in extremely limited detection angles (such as a 90 ° limited angle), this method outperforms the U-Net method significantly. In live mouse experiments, this method achieved an SSIM/PSNR of 0.80/29.18 dB in reconstructed images with a limited viewing angle of 90 °. Compared to the U-Net method, the PSNR increased by 64% and the SSIM increased by 48%.

Figure 3. Reconstruction results of live data from different detection perspectives.

Conclusion and Prospect
This study proposes a new high-quality photoacoustic tomography imaging strategy based on the fractional diffusion model under limited viewing angles. This method combines the physical model of PAT with the diffusion model, and introduces high-dimensional prior information learned by the diffusion model deep network in the model-based iteration process. This method significantly improves the imaging quality and effectively solves the problem of image quality degradation caused by limited viewing angle sampling in PAT, with the potential to accelerate PAT imaging speed and expand its application range.

Guo Kangjun, master's student Zheng Zhiyuan, master's student Zhong Wenhua, and master's student Li Zilong from Nanchang University are co first authors of the article. Professor Liu Qiegen and Associate Professor Song Xianlin are co corresponding authors. This study was supported by the National Natural Science Foundation of China and the Key Research and Development Project of Jiangxi Province.

Source: Opticsky

Đề xuất liên quan
  • Real time measurement of femtosecond dynamics of relativistic intense laser driven ultra-hot electron beams

    In the interaction between ultra short and ultra strong laser and matter, electrons with short pulse width and high energy are generated, commonly referred to as "hot electrons". The generation and transport of hot electrons is one of the important fundamental issues in high-energy density physics of lasers. Superhot electrons can excite a wide range of ultrafast electromagnetic radiation, as well...

    2024-04-30
    Xem bản dịch
  • British scientists pioneered groundbreaking laser tools to help discover exoplanets

    Physicists from the University of Heriot and the University of Cambridge have developed an innovative laser system called Astrocomb, which can significantly improve the detection of exoplanets. This advanced tool can accurately measure the spectra emitted by nearby stars, which fluctuate due to the gravitational influence of orbiting planets. It is expected that this technology will enhance resear...

    2024-04-02
    Xem bản dịch
  • Stratasys announces Q3 2024 financial report, with a net loss of $26.6 million

    Stratasys (Nasdaq: SSYS) has announced its earnings for the third quarter of 2024, indicating a bright future for the company. The company is increasing profits and gross margins by cutting costs and focusing more on rapidly growing industries such as aerospace, automotive, defense, medical equipment, and dentistry. CEO Yoav Zeif shared that the new F3300 3D printer has performed well in the marke...

    2024-11-15
    Xem bản dịch
  • Oxford University Tokamak Energy Company develops laser technology for fusion power plants

    Tokamak Energy is currently developing a new laser measurement technology for controlling extreme conditions inside fusion power plants.The laser based dispersion interferometer system is being tested at the company's headquarters in Oxford and will be installed on its world record breaking fusion machine ST40 later this year.Clean, safe, and renewable nuclear fusion power generation occurs inside...

    2024-03-14
    Xem bản dịch
  • Microcomb launches a simplified design for powerful lasers based on chips

    Researchers at the University of Rochester have created new micro comb lasers that go beyond previous limitations and have simple designs suitable for various applications. The research results are published in Nature Communications.Optical frequency combs are optical measurement instruments that have revolutionized atomic clocks, spectroscopy, metrology, and other fields. However, the difficulty ...

    2024-05-25
    Xem bản dịch