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Comparison of Pallet Detection and Location Using COTS Sensors and AI Based Applications

  • Daniele Caldana,
  • Raquel Carvalho,
  • Paulo M. Rebelo,
  • Manuel F. Silva,
  • Pedro Costa,
  • Héber Sobreira,
  • Nuno Cruz

摘要

Autonomous Mobile Robots (AMR) are seeing an increased introduction in distinct areas of daily life. Recently, their use has expanded to intralogistics, where forklift type AMR are applied in many situations handling pallets and loading/unloading them into trucks. One of the these vehicles requirements, is that they are able to correctly identify the location and status of pallets, so that the forklifts AMR can insert the forks in the right place. Recently, some commercial sensors have appeared in the market for this purpose. Given these considerations, this paper presents a comparison of the performance of two different approaches for pallet detection: using a commercial off-the-shelf (COTS) sensor and a custom developed application based on Artificial Intelligence algorithms applied to an RGB-D camera, where both the RGB and depth data are used to estimate the position of the pallet pockets.