Search Results for author: Kuangrong Hao

Found 10 papers, 0 papers with code

Multi-Objective Evolutionary for Object Detection Mobile Architectures Search

no code implementations5 Nov 2022 Haichao Zhang, Jiashi Li, Xin Xia, Kuangrong Hao, Xuefeng Xiao

Our improved backbone network can reduce the computational effort while improving the accuracy of the object detection network.

Image Classification Neural Architecture Search +3

Distribution Learning Based on Evolutionary Algorithm Assisted Deep Neural Networks for Imbalanced Image Classification

no code implementations26 Jul 2022 Yudi Zhao, Kuangrong Hao, Chaochen Gu, Bing Wei

To address the trade-off problem of quality-diversity for the generated images in imbalanced classification tasks, we research on over-sampling based methods at the feature level instead of the data level and focus on searching the latent feature space for optimal distributions.

Image Classification imbalanced classification

Vision Transformer with Convolutions Architecture Search

no code implementations20 Mar 2022 Haichao Zhang, Kuangrong Hao, Witold Pedrycz, Lei Gao, Xuesong Tang, Bing Wei

The high-performance backbone network searched by VTCAS introduces the desirable features of convolutional neural networks into the Transformer architecture while maintaining the benefits of the multi-head attention mechanism.

Image Classification object-detection +2

Visual Sensation and Perception Computational Models for Deep Learning: State of the art, Challenges and Prospects

no code implementations8 Sep 2021 Bing Wei, Yudi Zhao, Kuangrong Hao, Lei Gao

Visual sensation and perception refers to the process of sensing, organizing, identifying, and interpreting visual information in environmental awareness and understanding.

Enhanced Gradient for Differentiable Architecture Search

no code implementations23 Mar 2021 Haichao Zhang, Kuangrong Hao, Lei Gao, Xuesong Tang, Bing Wei

At the stage of block-level search, a relaxation method based on the gradient is proposed, using an enhanced gradient to design high-performance and low-complexity blocks.

Classification General Classification +2

MLMA-Net: multi-level multi-attentional learning for multi-label object detection in textile defect images

no code implementations31 Jan 2021 Bing Wei, Kuangrong Hao, Lei Gao

For the sake of recognizing and classifying textile defects, deep learning-based methods have been proposed and achieved remarkable success in single-label textile images.

object-detection Object Detection

Adaptive Prototypical Networks with Label Words and Joint Representation Learning for Few-Shot Relation Classification

no code implementations10 Jan 2021 Yan Xiao, Yaochu Jin, Kuangrong Hao

First, based on the prototypical networks, we propose an adaptive mixture mechanism to add label words to the representation of the class prototype, which, to the best of our knowledge, is the first attempt to integrate the label information into features of the support samples of each class so as to get more interactive class prototypes.

Few-Shot Relation Classification Relation +1

Optimizing Deep Neural Networks through Neuroevolution with Stochastic Gradient Descent

no code implementations21 Dec 2020 Haichao Zhang, Kuangrong Hao, Lei Gao, Bing Wei, Xuesong Tang

Deep neural networks (DNNs) have achieved remarkable success in computer vision; however, training DNNs for satisfactory performance remains challenging and suffers from sensitivity to empirical selections of an optimization algorithm for training.

Hybrid Attention-Based Transformer Block Model for Distant Supervision Relation Extraction

no code implementations10 Mar 2020 Yan Xiao, Yaochu Jin, Ran Cheng, Kuangrong Hao

With an exponential explosive growth of various digital text information, it is challenging to efficiently obtain specific knowledge from massive unstructured text information.

Relation Relation Extraction +2

Sampled Training and Node Inheritance for Fast Evolutionary Neural Architecture Search

no code implementations7 Mar 2020 Haoyu Zhang, Yaochu Jin, Ran Cheng, Kuangrong Hao

Recently, evolutionary neural architecture search (ENAS) has received increasing attention due to the attractive global optimization capability of evolutionary algorithms.

Evolutionary Algorithms Neural Architecture Search

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