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Representation Of Documents using Minimal Dictionary of Embeddings

Publication Type : Conference Paper

Source : Grenze International Journal of Engineering and Technology

Campus : Amritapuri

School : School of Computing

Department : Computer Science and Applications

Year : 2023

Abstract : With the rapid growth of the internet the availability of online information has also increased. As a result, it has become increasingly important to provide improved techniques for effectively and efficiently finding and representing textual content. Obtaining a representation of a document which can contain the semantic aspect of the document is always a hot topic of discussion. There are many methods to represent a document in vector form. But in many of these methods, the minimal representation of the document is not discussed. Dictionary learning is a method which can be used to obtain a minimal representation of documents. This paper presents a model that can obtain the minimal representation of documents using a sparse model and dictionaries of embedding. Two suitable techniques that we employ are SVD (Singular Value Decomposition) for dictionary learning and OMP (Orthogonal Matching Pursuit) for sparse coding.

Cite this Research Publication : Remya R.K. Menon , Gayathri S and Amina A Representation Of Documents using Minimal Dictionary of Embeddings

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