Intelligent substation human body target tracking method based on adaptive feature fusion

A smart substation and human target technology, which is applied in the field of smart substation human target tracking, can solve the problems of tracking targets being blocked by equipment, unable to adapt to large posture changes of tracking targets, blurring, occlusion, and low frame rate of substation video, etc., to achieve multi-scale targets Efficient detection capability and improved target detection accuracy

Pending Publication Date: 2021-04-16
ELECTRIC POWER RES INST OF GUANGDONG POWER GRID
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Problems solved by technology

However, the traditional algorithm often relies on the similarity of the underlying features of the image. Although the speed is fast, it cannot adapt to the large pose changes of the tracking target and the blurring and occlusion caused by the camera shooting, and it is difficult to output reliable images in more complex scenes. result
[0003] The substation target tracking method in the prior art mainly has the following deficiencies: (1) The tracking target of substation video surveillance is generally the staff in the station, and there is also a certain demand for engineering vehicles or intruding foreign objects in specific occasions
(2) The substation monitoring video has a low frame rate and low definition, and it is easy for the tracking target to be blocked by the equipment, which poses a great challenge to the intelligent monitoring algorithm

Method used

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  • Intelligent substation human body target tracking method based on adaptive feature fusion
  • Intelligent substation human body target tracking method based on adaptive feature fusion
  • Intelligent substation human body target tracking method based on adaptive feature fusion

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Embodiment Construction

[0039] In order to make the purpose, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only It is a part of the embodiments of this application, not all of them.

[0040] In the method for tracking a human object in a smart substation based on adaptive feature fusion in this embodiment, firstly, an image of a human object in a smart substation site is acquired. The acquired training data is manually calibrated to form a training data set for the deep learning algorithm. Constructing a neural network framework for human target tracking in smart substations with adaptive feature fusion. Such as figure 1 As shown, first, the original image is sent to the ResNet-50 deep convolutional network to extract the...

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Abstract

The invention provides an intelligent substation human body target tracking method based on adaptive feature fusion. According to the method, while an accurate tracking result is rapidly given, a fine mask can be segmented from a target object, feature maps of all levels of the FPN are sent to an ASF of a multi-ratio anchor frame, an ASF output feature map is enhanced through a Gaussian non-local attention mechanism, target area features are highlighted, non-target and background features are inhibited, and the detection precision is effectively improved.

Description

technical field [0001] The invention relates to the field of target tracking, in particular to a human target tracking method in an intelligent substation with adaptive feature fusion. Background technique [0002] Nowadays, many positioning and tracking systems use ultra-wideband (UW) technology to complete personnel positioning and tracking based on hardware technology, but this method is costly and requires the monitored object to always carry a signal generator such as a bracelet, which cannot Track trespassers or construction vehicles. In terms of visual algorithms, some monitoring systems use traditional tracking algorithms such as adaptive mean shift (Camshift), support vector machine (SVM), adaptive enhancement (AdaBoost) or background extraction (ViBe), and Kalman filter to personnel or engineering vehicles to track. However, the traditional algorithm often relies on the similarity of the underlying features of the image. Although the speed is fast, it cannot adap...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06T7/246G06K9/62
Inventor 杨强张子瑛彭明洋陈扬钱美伊
Owner ELECTRIC POWER RES INST OF GUANGDONG POWER GRID
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