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基于圖像處理的深海底障礙物和地形識別及檢測

Identification and detection of deep-sea obstacles and terrains based on image processing

  • 摘要: 針對海底集礦機采礦環境圖像,采用分段線性變換提高圖像細節,中值濾波去除懸浮物干擾.利用形態學抗噪聲梯度算子提取地形和障礙物輪廓,并用分段線性擬合計算出地表亮度變化率.根據表面亮度變化特征判斷障礙物類型,采用自適應形態學對輪廓進行細化與連接.通過障礙投影變換計算出障礙物的距離、高度和寬度等信息.對陸地圖像進行了分析,證明位置、高度和坡度等參數計算的可行性.利用上述方法對深海底的圖像進行處理,不僅保留了邊界信息,且提高了抗干擾能力和抗邊界間相互影響能力,可有效識別深海底地形和障礙物,得出位置和形狀等參數,可以為集礦機避障系統信息融合技術提供可靠數據.

     

    Abstract: Aimed at the mining environment image of a seabed nodule-collecting vehicle,the detail of the image was enhanced by subsection linear transformation,and the interferences of suspensions were removed with a median filter.The profile of terrains and obstacles was extracted by an anti-noise gradient operator in morphology,and the rate of change of surface brightness was computed by subsection-linear fitting.According to the feature of the brightness variation,the type of obstacles was estimated,and the profile was detailed and linked by self-adapting morphology.Based on the image information of obstacles,the distance,height and width of the obstacles were computed by projection transformation.Close analysis of land images demonstrated the reliability of computing such parameters as position,height and gradient.This method not only reserves the profile information,but also improves the anti-noisy ability and the anti-interconnection ability,detects the deep-seabed terrains and obstacles efficiently,and works out the position and figure efficiently,so it can be used to provide reliable data for the information fusion technology of the obstacle-avoiding system in a nodule-collecting vehicle.

     

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