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Development of an efficient and resilient algorithm For lane feature extraction in image sensor-based lane detection

Author

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  • Yung-Hsiang Liu

    (Department of Aeronautics and Astronautics Engineering, National Cheng Kung University, Cheng Kung, Taiwan)

  • H. P. Hsu

    (International Degree Program on Energy Engineering National Cheng Kung University, Cheng Kung, Taiwan)

  • S. M. Yang

    (Department of Aeronautics and Astronautics Engineering, National Cheng Kung University, Cheng Kung, Taiwan)

Abstract

Lane detection is key to advanced driver assistance systems to avoid traffic accidents caused by driver’s negligence, thereby improving driver’s safety. However, most lane detection algorithms are prone to error in challenging conditions when maneuvering in high curvature lanes, strong backlighting environment, low contrast night, and heavy rain condition, rendering unreliable and hazardous detection motion. This work proposes a lane detection algorithm by robust binary lane marking identification for lane feature extraction. The algorithm combines the median local threshold, line segment detector, and binary line segment filter to remove the noise generated when operating in the above challenging conditions. After correct lane feature extraction, Hough transformed and optimized random sample consensus parabola fitting are applied to detect lane markings. Experiment results show that the proposed algorithm outperforms the previous work in achieving correct detection rate at 95% in real-time.

Suggested Citation

  • Yung-Hsiang Liu & H. P. Hsu & S. M. Yang, 2019. "Development of an efficient and resilient algorithm For lane feature extraction in image sensor-based lane detection," Journal of Advances in Technology and Engineering Research, A/Professor Akbar A. Khatibi, vol. 5(2), pages 85-92.
  • Handle: RePEc:apb:jaterr:2019:p:85-92
    DOI: 10.20474/jater-5.2.4
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    References listed on IDEAS

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    1. Amanie Hasn Alhussain, 2015. "Using Deterministic Genetic Algorithm to Provide Secured Cryptographic Pseudorandom Number Generators," International Journal of Technology and Engineering Studies, PROF.IR.DR.Mohid Jailani Mohd Nor, vol. 1(4), pages 107-116.
    2. Fatma Gongor & Onder Tutsoy & Sule Colak, 2017. "Development and implementation of a sit-to-stand motion algorithm for humanoid robots," Journal of Advances in Technology and Engineering Research, A/Professor Akbar A. Khatibi, vol. 3(6), pages 254-265.
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