Remote sensing image content retrieval method for semi-supervised deep adversarial self-coding Hash learning
A remote sensing image and self-encoding technology, which is applied in the field of remote sensing image processing, can solve the problems of loss of retrieval accuracy and consumption of class label information, and achieve the effects of increasing convergence speed, increasing retrieval efficiency, and improving retrieval accuracy
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[0055] The invention provides a remote sensing image content retrieval method based on semi-supervised deep anti-self-encoding hash learning, and establishes a remote sensing image feature library{F 1 , F 2 ,...,F N}; Select 20% samples from each category to build a training feature library {F 1 , F 2 ,...,F l}; training depth against self-encoded hash learning model; use the trained depth against self-encoded hash learning, for the entire image feature library {F 1 , F 2 ,...,F N} for hash encoding to get the hash database of the image {B 1 ,B 2 ,...,B N}; For the query image input by the user, use the same mode as extracting the remote sensing image feature library to obtain the feature F' of the query image, and encode B' with the trained depth-adversarial self-encoding hash learning model; calculate the query image hash Encode the similar distance between B' and the hash codes of all images in the hash database, and return the number of images required by the user...
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