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Investigation on Different Color Spaces on Faster RCNN for Night-Time Human Occupancy Modelling

机译:夜空人员居住模型中更快的RCNN上不同颜色空间的研究

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Convolutional Neural Network (CNN) has been shown to have worse performance for images with low illumination. This means that object detection methods using CNN, such as Faster RCNN, will have problem detecting humans during low lighting conditions. This will lower the accuracy for human occupancy modelling during night-time. In general, most methods that has been employed to improve the performance of Faster RCNN for night-time human detection depends on RGB color space. Currently, there are few papers investigating the effect of using various color spaces including RGB color space to perform Faster RCNN night-time human detection. The objective this paper is to investigate the effect of using various color space on the performance of Faster RCNN night-time human detection. This paper will be investigating the effect of using RGB, CIEXYZ, and CIELAB color space on night-time human detection. KAIST multispectral pedestrian dataset will be used for training and evaluation. Faster RCNN will use Resnet101 base network and using ImageNet pretrained weight trained using RGB images. Using log-average miss rate as evaluation metric, night-time human detection using CIEXYZ achieves 54.93% while RGB achieves 54.42%. The results of this paper show that CIEXYZ have similar performance to RGB for night-time human detection.
机译:卷积神经网络(CNN)对于低照度的图像表现出较差的性能。这意味着使用CNN的物体检测方法(例如Faster RCNN)将在光线不足的情况下检测人体时出现问题。这将降低夜间人员占用建模的准确性。通常,为提高夜间人检测的Faster RCNN性能而采用的大多数方法取决于RGB颜色空间。当前,很少有论文研究使用各种颜色空间(包括RGB颜色空间)执行Faster RCNN夜间人体检测的效果。本文的目的是研究使用各种色彩空间对Faster RCNN夜间人体检测性能的影响。本文将研究使用RGB,CIEXYZ和CIELAB色彩空间对夜间人体检测的影响。 KAIST多光谱行人数据集将用于训练和评估。更快的RCNN将使用Resnet101基本网络,并使用通过RGB图像训练的ImageNet预训练权重。使用对数平均未命中率作为评估指标,使用CIEXYZ进行夜间人体检测可达到54.93%,而RGB则可达到54.42%。本文的结果表明,对于夜间人体检测,CIEXYZ具有与RGB相似的性能。

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