AI-based Arabic Language and Speech Tutor
Sicong Shao, Saleem Alharir, Salim Hariri, Pratik Satam, Sonia Shiri,, Abdessamad Mbarki

TL;DR
This paper introduces an AI-based Arabic language and speech tutor that leverages NLP, machine learning, and speech analysis to provide adaptive, personalized pronunciation training for Moroccan Arabic dialect learners.
Contribution
It presents a novel AI tutor system using MFCC, bidirectional LSTM, and attention mechanisms for pronunciation error detection in Moroccan Arabic dialect.
Findings
Effective pronunciation error detection demonstrated by high F1-score
System accurately evaluates pronunciation with high precision and recall
Initial experiments show promise for adaptive language learning tools
Abstract
In the past decade, we have observed a growing interest in using technologies such as artificial intelligence (AI), machine learning, and chatbots to provide assistance to language learners, especially in second language learning. By using AI and natural language processing (NLP) and chatbots, we can create an intelligent self-learning environment that goes beyond multiple-choice questions and/or fill in the blank exercises. In addition, NLP allows for learning to be adaptive in that it offers more than an indication that an error has occurred. It also provides a description of the error, uses linguistic analysis to isolate the source of the error, and then suggests additional drills to achieve optimal individualized learning outcomes. In this paper, we present our approach for developing an Artificial Intelligence-based Arabic Language and Speech Tutor (AI-ALST) for teaching the…
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Taxonomy
TopicsNatural Language Processing Techniques · Speech and dialogue systems
MethodsTanh Activation · Sigmoid Activation · Long Short-Term Memory · Self-Learning
