This paper presents an FPGA feasibility study of two digital processing blocks for a future real-time Visible Light Positioning (VLP) receiver: a Sliding Discrete Fourier Transform (SDFT) stage for carrier-magnitude extraction and a hardware-optimized Multi-Layer Perceptron (MLP) inference engine for coordinate estimation. The localization model is trained and evaluated offline with experimental data from the four-photodiode VLP system reported in the reference work, whereas the SDFT and MLP FPGA blocks are validated separately on a physical Visible Light Communication (VLC) hardware platform. Therefore, the reported 1–2 mm spatial accuracy belongs to the offline reference dataset and model, whereas the FPGA results quantify module latency, numerical fidelity, implementation resources, and tool-estimated power, not physical end-to-end coordinate accuracy. The design was implemented on a AMD Xilinx Zynq-7000 (xa7z020clg484-1Q) SoC FPGA device and operated at 100 MHz. The SDFT block requires 61,655 clock cycles, corresponding to 616.55 μs, while the MLP variants require between 607 and 6612 clock cycles, corresponding to 6.07 μs and 66.12 μs, respectively. All MLP implementations reproduce the offline software reference with HW/SW MSE values on the order of 10−6. The resulting blocks and the reported first HLS integration estimates establish an implementation path while identifying the acquisition, synchronization, and multi-tone validation work still required for a complete receiver.
Field-programmable gate arrays (FPGAS) have emerged as a powerful platform for real-time image processing due to their inherent parallelism and configurability. This paper presents an optimized hardware implementation of fundamental image processing algorithms including Sobel edge detection, Thresholding contrast stret...
Pramod Moud, P. Sharma· International Journal of Lat...· 0 citations
This paper presents an FPGA (Field-Programmable Gate Array) implementation of a low-power VLSI (Very Large-Scale Integration) architecture for medical image scaling in portable diagnostic systems. The proposed architecture employs bilinear interpolation optimized through FSM (Finite-State-Machine)-based control, a cloc...
Mrinalini Joshi-Pangaonkar, P. Shingare· Journal of Low Power Electro...· 0 citations
Large-format infrared focal plane arrays are increasingly used in remote sensing, industrial inspection, night-vision imaging, and other scenarios that require wide-field perception and stable image acquisition under complex conditions. As the detector format continues to expand, real-time infrared imaging systems must...
Xian-Jie Lin, Zhuo-Yi Xu, Xiao-Shuang Chen et al.· Global Intelligent Industry...· 0 citations
Real-time image denoising requires a filtering architecture that simultaneously preserves image structure and satisfies strict hardware constraints on area, latency, and power. This paper presents an FPGA-oriented real-time impulse noise removal (RTINR) architecture built around a decision-based multiplexer and an adap...
Dr. Srinivasa Reddy Dumpa, B. Radhika, A Aishwarya· International Journal of Adv...· 0 citations
A second-order all-digital phase-locked loop (ADPLL) architecture based on fixed-point Gardner timing error extraction is proposed, which employs a physical oversampling strategy to trade memory bus bandwidth for core computational power.
Abstract
The increasing demand for energy-efficient digital systems in portable, embedded, and Internet of Things (IoT) applications has made low-power design an important objective in modern VLSI and FPGA-based systems. This work presents the design and FPGA implementation of a Low-Power Leakage-Aware Digital Process...
Embadi Thirumala, Dr B Rajanna· International Scientific Jou...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.