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WatchPose: A View-Aware Approach for Camera Pose Data Collection in Industrial Environments.

Cong Yang1, Gilles Simon1, John See2

  • 1MAGRIT Team, INRIA/LORIA, 54600 Nancy, France.

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Summary
This summary is machine-generated.

WatchPose is a new method for collecting camera pose data in industrial settings. It uses augmented reality to guide users, improving the accuracy and robustness of camera pose regression models.

Keywords:
augmented realitydata acquisitiondeep learningindustrial environmentspose estimation

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Area of Science:

  • Computer Vision
  • Robotics
  • Machine Learning

Background:

  • Collecting correlated scene images and camera poses is crucial for training absolute camera pose regression models.
  • Data acquisition in industrial environments is challenging due to varied object sizes and non-constant motion, leading to model sensitivity.

Purpose of the Study:

  • To present WatchPose, an efficient method for collecting camera pose data to enhance the generalization and robustness of camera pose regression models.
  • To address the challenges of data collection in constricted industrial environments.

Main Methods:

  • WatchPose utilizes nested marker tracking and augmented reality (AR) visualization to guide users.
  • It facilitates the collection of training data from diverse viewpoints and broader camera-object distances.

Main Results:

  • Experiments demonstrate that WatchPose significantly improves the accuracy of existing camera pose regression models compared to traditional methods.
  • The proposed method enhances model robustness against variations in viewpoints and distances.

Conclusions:

  • WatchPose offers a simple yet effective solution for collecting high-quality camera pose data in complex industrial settings.
  • The introduction of the Industrial10 dataset will foster further research in adapting camera pose regression for challenging environments.