Nonparametric background modelling and segmentation to detect micro air vehicles using RGB-D sensor

IF 1.5 4区 工程技术 Q2 ENGINEERING, AEROSPACE
Navid Dorudian, S. Lauria, S. Swift
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引用次数: 5

Abstract

A novel approach to detect micro air vehicles in GPS-denied environments using an external RGB-D sensor is presented. The nonparametric background subtraction technique incorporating several innovative mechanisms allows the detection of high-speed moving micro air vehicles by combining colour and depth information. The proposed method stores several colour and depth images as models and then compares each pixel from a frame with the stored models to classify the pixel as background or foreground. To adapt to scene changes, once a pixel is classified as background, the system updates the model by finding and substituting the closest pixel to the camera with the current pixel. The background model update presented uses different criteria from existing methods. Additionally, a blind update model is added to adapt to background sudden changes. The proposed architecture is compared with existing techniques using two different micro air vehicles and publicly available datasets. Results showing some improvements over existing methods are discussed.
使用RGB-D传感器检测微型飞行器的非参数背景建模和分割
提出了一种利用外接RGB-D传感器在gps拒绝环境中检测微型飞行器的新方法。结合几种创新机制的非参数背景减法技术可以通过结合颜色和深度信息来检测高速移动的微型飞行器。该方法存储多个颜色和深度图像作为模型,然后将一帧中的每个像素与存储的模型进行比较,从而将像素分类为背景或前景。为了适应场景的变化,一旦一个像素被分类为背景,系统就会更新模型,找到最接近相机的像素并用当前像素替换。所提出的背景模型更新使用了不同于现有方法的标准。此外,还增加了一个盲更新模型,以适应背景的突然变化。使用两种不同的微型飞行器和公开可用的数据集,将所提出的架构与现有技术进行了比较。结果表明在现有方法的基础上有所改进。
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来源期刊
CiteScore
3.00
自引率
7.10%
发文量
13
审稿时长
>12 weeks
期刊介绍: The role of the International Journal of Micro Air Vehicles is to provide the scientific and engineering community with a peer-reviewed open access journal dedicated to publishing high-quality technical articles summarizing both fundamental and applied research in the area of micro air vehicles.
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