Wireless sensing networks increasingly extend into obstacle-prone deployments, where physical blockage degrades reliability and open propagation exposes transmission activity. Intelligent reflecting surfaces (IRSs) establish programmable paths around obstacles while passive elements remain constrained by severe cascaded attenuation. To address the tradeoff between reliability and covertness, we propose an unmanned aerial vehicle (UAV) -assisted active-IRS architecture under probabilistic line-of-sight and non-line-of-sight propagation conditions that accounts for direct leakage from the transmitter to the warden together with residual jammer cancellation and always-on IRS circuit noise under a finite output power budget. Furthermore, bidirectional Kullback–Leibler analysis identifies the reverse divergence as the tighter restriction and converts the covertness requirement into conservative gain bounds under warden location uncertainty and relative phase uncertainty conditions between the direct and aggregate reflected fields. Subsequently, closed-form phase control for calibrated equal-gain elements and gain monotonicity reduce the joint design to an exhaustive search over the prescribed placement grid. The numerical results demonstrate a SINR advantage over passive reflection and single-element relaying across the evaluated settings. The finite-array and hardware analyses show that gain back-off enforces a prescribed covert-outage limit while direct leakage and residual self-interference remain explicitly controlled. Overall, the framework provides a transparent basis for reliable covert sensing through UAV-assisted active reflection.
Guojie Qu, Mei Shen, Kai Liu et al.· Italian National Conference...· 0 citations
For scientific and industrial applications requiring high-accuracy and high-speed 3D shape measurement, in this Letter we propose a robust and fast binary fringe projection profilometry (BFPP) method that transcends the traditional paradigm of binary defocusing. First, a perturbed error diffusion algorithm is employed to generate 1-bit quasi-sinusoidal patterns with high accuracy, enabling high-speed 3D measurement since light modulators project 1-bit patterns at a significantly higher speed. Second, differing from traditional methods that rely on intentional projector defocusing to suppress high-order harmonics, which reduces the depth range of measurement and hinders the measurement process, our method can robustly handle both focused and defocused cases. Experimental results show that the proposed method achieves phase and height root-mean-square errors of 0.0012 rad and 0.0884 mm, respectively, demonstrating accuracy comparable to recent binary defocusing methods.
Tong Zhou, Qi-Shi Hu, Hong-Yu Li et al.· IEEE Photonics Technology Le...· 0 citations
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