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NATURAL LANGUAGE PROCESSING PARSER TECHNIQUE FOR DOCUMENT CRACKING AND INFORMATION EXTRACTION MODEL

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Version 2 2025-06-22, 03:13
Version 1 2024-05-16, 13:04
journal contribution
posted on 2025-06-22, 03:13 authored by Olorunfemi Bolaji AsoreOlorunfemi Bolaji Asore

Many user environments are not yet familiar with the advancements in natural language processing that come from structuring both formatted semantic information and unstructured knowledge-base information in a multimodal way. This method aids in creating grammatically correct sentences arranged within the context of the intuition of Chomsky's formal language. In recent years, deep learning (DL) has significantly impacted natural language processing, causing a paradigm shift from "syntax checkers" to programs that check the syntax of natural language. This shift has opened the door to a large pool of knowledge and information systems available for data extraction without service resilience. The API renders make the research attention-worthy, particularly in information extraction (IE) tasks. In this research, all models should be further investigated to reinforce their vulnerability by testing their ability to conduct theoretical, hypothesis, and pragmatic reviews of the logical structural model. This will help improve the model's generalization ability, aiding proficient operational performance.

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