Accelerated SPAD-Based Diffuse Optical Tomography With Data-Driven View Optimization

  • J Biophotonics. 2026 Jun;19(6):e70289. doi: 10.1002/jbio.70289.
Linlin Li  1 Kaiqi Kuang  1 Yang Lin  2 Jianru Zhang  3 Baile Chen  1 Jingjing Jiang  4 Jiahua Jiang  3 Claudio Bruschini  2 Edoardo Charbon  2 Wuwei Ren  1  5
Affiliations
  • 1. School of Information Science and Technology, ShanghaiTech University, Shanghai, China.
  • 2. Advanced Quantum Architecture Laboratory, École polytechnique fédérale de Lausanne, Neuchâtel, Switzerland.
  • 3. School of Mathematics, University of Birmingham, Edgbaston, UK.
  • 4. Department of Neonatology, Biomedical Optics Research Laboratory, University Hospital Zurich and University of Zurich, Zurich, Switzerland.
  • 5. State Key Laboratory of Advanced Medical Materials and Devices, ShanghaiTech University, Shanghai, China.
Abstract

Time-domain diffuse optical tomography (TD-DOT) is a non-invasive technique that utilizes near-infrared light to visualize the optical properties in tissues, showing promising applications in tumor diagnosis and functional brain imaging. The integration of advanced SPAD arrays delivers superior data quality characterized by picosecond timing precision and increased detection channels, enabling high-fidelity reconstruction of unmixed absorption and scattering properties. These gains, however, come with longer acquisition and computation times. We introduce a data-driven view-optimization strategy that exploits the statistical richness of time-resolved measurements to reduce the number of views without sacrificing image quality. We developed a noncontact TD-DOT combining a pulsed laser, a SPAD array, and a rotational stage for view selection. Simulations and phantom experiments show that the proposed method accelerates TD-DOT while maintaining robust reconstruction, comparable to those from full-view acquisition. The accelerated TD-DOT is valuable for monitoring biological dynamics, such as cerebral hemodynamics.

Keywords
diffuse optical tomography; functional brain imaging; image reconstruction; single‐photon avalanche diode; sparse view.
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