Implementation of an FPGA-Based 3D Shape Measurement System Using High-Level Synthesis

Author:

Kim Tae-Hyeon1,Lee Hyunki2,Ok Seung-Ho3ORCID

Affiliation:

1. Department of Artificial Intelligence, Dong-eui University, Busan 47340, Republic of Korea

2. Division of Intelligent Robot, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu 42988, Republic of Korea

3. Department of Robot Automation Engineering, Dong-eui University, Busan 47340, Republic of Korea

Abstract

Three-dimensional(3D) shape measurement using point clouds has recently gained significant attention. Phase measuring profilometry (PMP) is widely preferred for its robustness against external lighting changes and high-precision results. However, PMP suffers from long computation times due to complex calculations and its high memory usage. It also faces a 2π ambiguity issue, as the measured phase is limited to the 2π range. This is typically resolved using dual-wavelength methods. However, these methods require separate measurements of phase changes at two wavelengths, increasing the data processing volume and computation times. Our study addresses these challenges by implementing a 3D shape measurement system on a System-on-Chip (SoC)-type Field-Programmable Gate Array (FPGA). We developed a PMP algorithm with dual-wavelength methods, accelerating it through high-level synthesis (HLS) on the FPGA. This hardware implementation significantly reduces computation time while maintaining measurement accuracy. The experimental results demonstrate that our system operates correctly on the SoC-type FPGA, achieving computation speeds approximately 11.55 times higher than those of conventional software implementations. Our approach offers a practical solution for real-time 3D shape measurement, potentially benefiting applications in fields such as quality control, robotics, and computer vision.

Funder

Korean Government

Busan Metropolitan City and Busan Techno Park

Publisher

MDPI AG

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