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  1. A Convolutional Autoencoder Approach for Feature Extraction

    Jan 1, 2018 · In this paper, we present a Deep Learning method for semi-supervised feature extraction based on Convolutional Autoencoders that is able to overcome the aforementioned …

  2. Convolutional Autoencoder for Feature Extraction in Tactile …

    Instead of using various complex perception algorithms, and/or manually choosing task-specific data features, this unsupervised feature extraction method allows simultaneous online …

  3. Convolutional Autoencoder Based Feature Extraction and …

    In this paper, we propose a deep learning-based YLP feature extraction that jointly captures daily and seasonal variations. By leveraging convolutional autoencoder (CAE), YLPs in 8,640 …

  4. Stacked Convolutional Auto-Encoders for Hierarchical Feature Extraction

    We present a novel convolutional auto-encoder (CAE) for unsupervised feature learning. A stack of CAEs forms a convolutional neural network (CNN). Each CAE is trained using conventional …

  5. 3D convolutional auto-encoder based multi-scale feature extraction

    May 1, 2022 · In this paper, we design a fully unsupervised convolutional auto-encoder combined with multi-resolution for feature extraction from multi-beam LiDAR point cloud. Multiple …

  6. We present a novel convolutional auto-encoder (CAE) for unsupervised feature learning. A stack of CAEs forms a convolutional neural network (CNN). Each CAE is trained using conventional …

  7. Feature Extraction using Self-Supervised Convolutional Autoencoder

    Abstract: This paper presents Autoencoder using Convolutional Neural Network for feature extraction in the Content-based Image Retrieval. Two type of layers are in the convolutional …

  8. How Convolutional Autoencoders Power Deep Learning …

    5 days ago · Convolutional Neural Networks (ConvNets or CNNs) are powerful tools for automatically extracting meaningful patterns from images. Instead of manually designing …

  9. Convolutional Autoencoders for Data Compression and Anomaly …

    1 hour ago · The architecture of the CAE model is based on a convolutional autoencoder (CAE) proposed in Ref. . It consists of an encoder with convolutional layers that compresses the …

  10. FeXT AutoEncoder: Extraction of Images Features - GitHub

    FeXT AutoEncoder is a project centered around the implementation, training and evaluation of a Convolutional AutoEncoder (CAE) model specifically designed for efficient image feature …

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