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Journal ArticleDOI

Application of deep learning and image feature retrieval in E-commerce transaction and customer management

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TLDR
The results show that the proposed algorithm works well and can be applied to practice and can provide theoretical reference for subsequent related research.
Abstract
The huge amount of digital image data in e-commerce transactions brings serious problems to the rapid retrieval and storage of images. Image hashing technology can convert image data of arbitrary resolution into a binary code sequence of tens or hundreds of bits through a hash function. In view of this, based on the image content characteristics, this study improved the traditional hash function and proposed a hash method based on bilateral random projection. At the same time, the projection vectors are acquired in the low-rank sparse decomposition process of the image data matrix, and the projection vectors are group orthogonalized. In addition, this study designed contrast test to carry out research and analysis on the effectiveness of the algorithm. The results show that the proposed algorithm works well and can be applied to practice and can provide theoretical reference for subsequent related research.

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References
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Journal ArticleDOI

Assessing the effects of consumers’ product evaluations and trust on repurchase intention in e-commerce environments

TL;DR: This study investigates how perceived value influences the perceptions of online trust among online buyers and their willingness to repurchase from the same website and proposes a research model that compares the relative importance of perceived value and online trust to perceived usefulness.
Journal ArticleDOI

GEO matching regions: multiple regions of interests using content based image retrieval based on relative locations

TL;DR: A system for image retrieval based on region provides a user interface for availing to designate the watershed ROI within an input image and evaluates the proposed approach on images dataset from Flickr and CIFAR-10.
Journal ArticleDOI

Content based image retrieval with sparse representations and local feature descriptors : A comparative study

TL;DR: The most successful approach in the CBIR framework is to use LLC for Coil20 data set and FBSR for Corel1000 data set, and three methods recently proposed in literature (Online Dictionary Learning, Locality-constrained Linear Coding and Feature-based Sparse Representation) are tested and compared with the framework results.
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A new image feature descriptor for content based image retrieval using scale invariant feature transform and local derivative pattern

TL;DR: A new image descriptor using SIFT and LDP is introduced that is able to find similarities and matches between images and produces highly discriminative features for describing image content.
Journal ArticleDOI

Saliency-based multi-feature modeling for semantic image retrieval

TL;DR: An approach integrating visual saliency model with BOW is proposed for semantic image retrieval and the results evaluated in terms of mean Average Precision show that this proposal outperforms the referred state-of-the-art approaches.