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Distance Measurements by Taping01:18

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Tapes are essential in surveying for accurate, durable, and short-distance measurements. Made from lightweight, nylon-coated steel, they offer flexibility and strength for rugged outdoor use. The nylon coating protects against rust and wear, extending the tape's life. Standard lengths, around 30 meters, are marked in meters and millimeters for precision.Surveyors select tapes based on site conditions and accuracy needs. Lightweight, nylon-coated tapes are commonly used for ease of handling and...

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body2vec: 3D Point Cloud Reconstruction for Precise Anthropometry with Handheld Devices.

Magda Alexandra Trujillo-Jiménez1,2, Pablo Navarro1,2,3, Bruno Pazos1,2,3

  • 1Laboratorio de Ciencias de las Imágenes, Departamento de Ingeniería Eléctrica y Computadoras, Universidad Nacional del Sur, and CONICET, Bahía Blanca B8000, Argentina.

Journal of Imaging
|August 30, 2021
PubMed
Summary

Body2vec, a novel neural network tool, enhances 3D human body point cloud reconstruction from smartphone videos. This method significantly improves anthropometric measurements and reduces noise compared to traditional photogrammetry and LiDAR.

Keywords:
3D point cloudanthropometrydeep learningneural networksstructure from motion

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Area of Science:

  • Computer Vision
  • Medical Imaging
  • Biometrics

Background:

  • Photogrammetry-based point cloud extraction often yields spurious detections, hindering 3D mesh reconstruction and accurate measurements.
  • Existing noise removal techniques for point clouds are computationally intensive and struggle with semantic noise.

Purpose of the Study:

  • To introduce body2vec, a model-based body segmentation tool utilizing a specialized Neural Network architecture.
  • To enable high-quality human body point cloud reconstruction and anthropometric measurements from videos captured by handheld devices.
  • To mitigate spurious point generation common in photogrammetric reconstruction through an effective background removal process.

Main Methods:

  • Development and application of a specifically trained Neural Network architecture for body segmentation.
  • Utilizing videos from handheld devices (smartphones/tablets) for point cloud reconstruction.
  • Implementing a background removal step to eliminate spurious points.
  • Comparison against LiDAR-based 3D meshes and expert anthropometric measurements.

Main Results:

  • Body2vec achieved high-quality anthropometric measurements, outperforming traditional methods.
  • The quality of point cloud reconstruction was significantly enhanced compared to LiDAR-based meshes.
  • The method demonstrated a background removal capability, preventing usual spurious point generation.

Conclusions:

  • Body2vec offers a robust solution for accurate 3D human body reconstruction and measurement using accessible technology.
  • The tool achieves results comparable to LiDAR reconstruction while being more efficient.
  • This approach significantly improves the quality of point cloud data and anthropometric measurements derived from consumer devices.