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基于閾值判斷的CamShift目標跟蹤算法
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常州輕工職業(yè)技術(shù)學(xué)院,常州輕工職業(yè)技術(shù)學(xué)院,常州大學(xué)信息科學(xué)與工程學(xué)院

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tp391.8

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國家自然科學(xué)基金(61201096);機器人技術(shù)與系統國家重點(diǎn)實(shí)驗室開(kāi)放基金重點(diǎn)項目(SKLRS-2010-2D-09,SKLRS-2010-MS-10);江蘇省自然科學(xué)青年基金(BK20140266);江蘇省高校自然科學(xué)研究面上項目(14KJB210001)。


Moving target detection and tracking algorithm based on contour and ASIFT feature matching
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Changzhou Vocational Institute of Light Industry,Changzhou Vocational Institute of Light Industry,School of Information Science and Engineering

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    摘要:

    針對CamShift算法只利用目標的顏色信息,在跟蹤過(guò)程中,易受目標相似物、遮擋以及光照等復雜背景影響導致目標搜索窗口發(fā)散,跟蹤穩定性能降低,提出了一種基于閾值判斷的目標跟蹤方法。該方法將OTSU法和Snake模型結合,利用OTSU法以最佳閾值對圖像進(jìn)行分割,分離前景區域和背景區域,初步提取目標輪廓作為Snake模型的初始輪廓,經(jīng)收斂得到目標的精準輪廓,利用輪廓外接最小矩形框內的像素計算目標質(zhì)心,判斷與CamShift算法中目標搜索窗口質(zhì)心之間的歐式距離,如果未超出閾值,則直接使用CamShift算法跟蹤目標,反之,則將計算出的目標質(zhì)心作為CamShift算法中當前幀目標搜索窗口的質(zhì)心跟蹤目標。實(shí)驗結果表明,該算法跟蹤目標具有較好的實(shí)時(shí)性,跟蹤性能穩定、可靠。

    Abstract:

    In the process of target tracking, the CamShift algorithm only uses the color information of the target to achive tracking, and the complex background such as similar objects, occlusion, the interference of light and so on, which would lead to the divergence of the target search window and reduce tracking performance. In order to solve the defect of the CamShift algorithm, a method of target tracking based on threshold value judgement was proposed. The method combined the OTSU algorithm with the Snake model which used OTSU to segment the image with the best threshold to separate the foreground and background, then the initial contour of the target was extracted that was taken as the input contour of the Snake model, and the precise contour of the target would generate. And the target centroid could be calculated by using the pixels in the minimum rectangle region that outsided the precise contour. The Euclidean distance between the centroid of the target search window in the CamShift algorithm and the new centroid could be as the basis for tracking. If the Euclidean distance within the set threshold, the CamShift algorithm would be used to track the target directly; On the contrary, the new target centroid was regarded as the centroid of the target search window in the current frame to achieve target tracking through the CamShift algorithm. The experimental results showed that the new algorithm had good real-time performance, and the tracking performance was stable and reliable.

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引用本文

顧蘇杭,陸兵,戎海龍.基于閾值判斷的CamShift目標跟蹤算法計算機測量與控制[J].,2016,24(8):18.

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歷史
  • 收稿日期:2016-05-09
  • 最后修改日期:2016-08-05
  • 錄用日期:2016-06-01
  • 在線(xiàn)發(fā)布日期: 2016-08-18
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