NAITNAITNov 30, 2018

Dynamic Spike Super-resolution and Applications to Ultrafast Ultrasound Imaging

arXiv:1803.0325116 citationsh-index: 61
AI Analysis

For researchers in super-resolution imaging and ultrafast ultrasound, this work provides a novel dynamical approach that simultaneously recovers positions and velocities with super-resolution, offering potential improvements over static-then-tracking methods.

The paper proposes a fully dynamical method for super-resolution recovery of positions and velocities of moving particles from low-frequency static measurements, demonstrating advantages over existing techniques in numerical simulations and applying it to ultrafast ultrasound imaging for blood vessel and flow velocity recovery.

We consider the dynamical super-resolution problem consisting in the recovery of positions and velocities of moving particles from low-frequency static measurements taken over multiple time steps. The standard approach to this issue is a two-step process: first, at each time step some static reconstruction method is applied to locate the positions of the particles with super-resolution and, second, some tracking technique is applied to obtain the velocities. In this paper we propose a fully dynamical method based on a phase-space lifting of the positions and the velocities of the particles, which are simultaneously reconstructed with super-resolution. We provide a rigorous mathematical analysis of the recovery problem, both for the noiseless case and in presence of noise (in the discrete setting). Several numerical simulations illustrate and validate our method, which shows some advantage over existing techniques. We then discuss the application of this approach to the dynamical super-resolution problem in ultrafast ultrasound imaging: blood vessels' locations and blood flow velocities are recovered with super-resolution.

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