Face parallel identification method based on deep learning and Spark
A technology of deep learning and face recognition, which is applied in the field of parallel recognition of face recognition, can solve problems such as low recognition rate, poor real-time performance, and long training time of classifier models, so as to improve training, improve overall speed, and improve classification The effect of recognition accuracy
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[0015] Below, according to the accompanying drawings and the content of the invention, the specific embodiments of the present invention will be further described in detail. The following examples are used to illustrate the present invention, but are not used to limit the scope of the present invention.
[0016] Step 1: First, divide the extracted facial features into blocks and then process and store them on the HDFS file system, input them into Spark, and convert them into Blocks;
[0017] Step 2: After the Spark data input forms an RDD, in the Transition stage, the TensorFlow framework is used on each node, and the deep learning classifier model trained by TensorFlow is called in the framework to process the features and achieve the purpose of classification. The deep learning classifier model is trained by a convolutional neural network. The convolutional neural network structure is: convolutional layer, downsampling layer, and full connection layer;
[0018] Step 3: The j...
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