STREAMLINED DEVELOPMENT AND DEPLOYMENT OF AUTOENCODERS

    公开(公告)号:US20240152756A1

    公开(公告)日:2024-05-09

    申请号:US18548805

    申请日:2022-03-25

    CPC classification number: G06N3/08

    Abstract: In one embodiment, a method of training an autoencoder neural network includes determining autoencoder design parameters for the autoencoder neural network, including an input image size for an input image, a compression ratio for compression of the input image into a latent vector, and a latent vector size for the latent vector. The input image size is determined based on a resolution of training images and a size of target features to be detected. The compression ratio is determined based on entropy of the training images. The latent vector size is determined based on the compression ratio. The method further includes training the autoencoder neural network based on the autoencoder design parameters and the training dataset, and then saving the trained autoencoder neural network on a storage device.

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