Deep learning-based intelligent indoor intrusion detection method and system
A technology of deep learning and intrusion detection, which is applied in closed-circuit television systems, instruments, biological neural network models, etc., can solve the problems of inaccurate detection and identification of moving objects and intruders, save server overhead, improve training speed, and ensure convergence correctness effect
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[0040] Embodiments of the present invention will be described below in conjunction with the accompanying drawings.
[0041] like figure 1 As shown, the present invention has designed a kind of intelligent indoor intrusion detection method based on deep learning, comprising the following steps:
[0042] Step 1. Establish a BP neural network model, and train the BP neural network model according to input training data including user images. In the method, the first time the model is used to input training data, the BP neural network model is trained, and the steps include initializing weights and thresholds, adopting the PRP conjugate gradient algorithm to adjust the weights and thresholds layer by layer, iterating to the maximum iteration frequency. The process is as follows:
[0043] Input training data to the BP neural network model using the PRP conjugate gradient algorithm, the training data at least includes user body images and user face images with different postures,...
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