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基于YOLOv3和EPnP算法的多藥盒姿態(tài)估計
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浙江工業(yè)大學(xué) 信息工程學(xué)院

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TP391

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Multi-pillbox Attitude Estimation Based on YOLOv3 and EPnP Algorithm
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    摘要:

    針對機械臂藥盒抓取操作中對藥盒定位和姿態(tài)估計的要求,提出一種基于YOLOv3深度學(xué)習算法和EPnP算法相結合的多藥盒姿態(tài)估計方法,此方法主要分為多藥盒定位和姿態(tài)估計兩部分。首先通過(guò)YOLOv3算法實(shí)現藥盒的快速精確定位,并通過(guò)定位框分割出單個(gè)藥盒。然后進(jìn)行特征提取和特征匹配并估計單應矩陣。通過(guò)對單應矩陣的透視矩陣變換求得藥盒平面四個(gè)角點(diǎn)的像素坐標并作為EPnP求解所需的2D點(diǎn),結合藥盒先驗尺寸信息在相機坐標系下構建藥盒對應的3D點(diǎn)坐標以實(shí)現藥盒姿態(tài)求解。通過(guò)結合OptiTrack系統設計了藥盒姿態(tài)精度對比實(shí)驗,結果表明,本算法充分發(fā)揮了YOLOv3算法兼具快速性和準確性的優(yōu)勢,并且具有良好的姿態(tài)估計精度,總體算法速度達到15FPS,藥盒姿態(tài)估計平均誤差小于0.5度。

    Abstract:

    A multi-pill box attitude estimation method based on the YOLOv3 deep learning algorithm and the EPnP algorithm is proposed to deal with requirements for location and attitude estimation of pill boxes in the manipulator-gripping operation for pill boxes. This method is constructed by the multi-pill box location part and the attitude estimated part. First, the YOLOv3 algorithm is used to achieve the fast and accurate location of pill boxes, and located pill boxes are distinguished by location boxes. Then, feature extraction and feature matching are performed and the homography matrix is estimated. Pixel coordinates of four corner points in the pill-box plane are obtained by transforming the perspective matrix of the homography matrix, and these pixel coordinates are used as 2D points for EPnP solution. 3D coordinates of pill boxes are constructed under the camera frame by using pill boxes’ prior size information to compute postures of pill boxes. A comparative experiment for box attitude accuracy is designed based on the OptiTrack system, and experimental results show that the algorithm fully utilizes the advantages of the YOLOv3 algorithm e.g., high speed and accuracy, and has good attitude estimation accuracy. The overall computational speed reaches 15FPS, the estimated average error is less than 0.5 degree.

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仇翔,王國順,趙揚揚,滕游,俞立.基于YOLOv3和EPnP算法的多藥盒姿態(tài)估計計算機測量與控制[J].,2021,29(2):126-131.

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歷史
  • 收稿日期:2020-06-03
  • 最后修改日期:2020-07-12
  • 錄用日期:2020-07-13
  • 在線(xiàn)發(fā)布日期: 2021-02-08
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