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A smart monocular vision metrology system based on computer for standing long jump
by
Jia, Shijie
, Kuang, Guofang
, Liu, Yiwei
, Li, Siyuan
in
639/166
/ 639/624
/ 639/705
/ Accuracy
/ Algorithms
/ Automation
/ Computer vision
/ Deep learning
/ Efficiency
/ Field tests
/ Homography
/ Humanities and Social Sciences
/ Imaging metrology
/ Maintenance costs
/ Mapping
/ Markerless monocular measurement system
/ Methods
/ Monocular vision
/ multidisciplinary
/ Neural networks
/ Physical fitness
/ Real time
/ Robustness
/ Science
/ Science (multidisciplinary)
/ Semantic segmentation
/ Semantics
/ Standing long jump
2026
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A smart monocular vision metrology system based on computer for standing long jump
by
Jia, Shijie
, Kuang, Guofang
, Liu, Yiwei
, Li, Siyuan
in
639/166
/ 639/624
/ 639/705
/ Accuracy
/ Algorithms
/ Automation
/ Computer vision
/ Deep learning
/ Efficiency
/ Field tests
/ Homography
/ Humanities and Social Sciences
/ Imaging metrology
/ Maintenance costs
/ Mapping
/ Markerless monocular measurement system
/ Methods
/ Monocular vision
/ multidisciplinary
/ Neural networks
/ Physical fitness
/ Real time
/ Robustness
/ Science
/ Science (multidisciplinary)
/ Semantic segmentation
/ Semantics
/ Standing long jump
2026
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Do you wish to request the book?
A smart monocular vision metrology system based on computer for standing long jump
by
Jia, Shijie
, Kuang, Guofang
, Liu, Yiwei
, Li, Siyuan
in
639/166
/ 639/624
/ 639/705
/ Accuracy
/ Algorithms
/ Automation
/ Computer vision
/ Deep learning
/ Efficiency
/ Field tests
/ Homography
/ Humanities and Social Sciences
/ Imaging metrology
/ Maintenance costs
/ Mapping
/ Markerless monocular measurement system
/ Methods
/ Monocular vision
/ multidisciplinary
/ Neural networks
/ Physical fitness
/ Real time
/ Robustness
/ Science
/ Science (multidisciplinary)
/ Semantic segmentation
/ Semantics
/ Standing long jump
2026
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A smart monocular vision metrology system based on computer for standing long jump
Journal Article
A smart monocular vision metrology system based on computer for standing long jump
2026
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Overview
The standing long jump (SLJ) is widely used for large-scale fitness assessment, yet existing distance measurement solutions remain labor-intensive or hardware-dependent. We frame SLJ distance estimation as a markerless monocular imaging-metrology problem and present a reusable vision pipeline comprising key-frame selection, person detection, semantic segmentation of the heel and jump-mat, homography-based plane mapping, and distance computation with polynomial compensation for perspective-edge bias. Field tests with a high-frame-rate camera demonstrate real-time performance (≈ 23 FPS, ~ 42.7 ms per frame) and centimeter-level accuracy. Using manual tape measurement as the reference, the overall system attains an MAE of 0.71 cm; ablations show that removing key modules sharply degrades accuracy (e.g., 25.07 cm without incomplete-athlete handling; 4.35 cm without single-view perspective mapping; 2.31 cm without convex-hull/curvature-based heel extraction). Minimal calibration files and inference scripts are provided to support reproducibility and deployment in school testing.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
Subject
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