A Panoramic Survey of Natural Language Processing in the Arab World
Kareem Darwish, Nizar Habash, Mourad Abbas, Hend Al-Khalifa, and Huseein T. Al-Natsheh, Samhaa R. El-Beltagy, Houda Bouamor and, Karim Bouzoubaa, Violetta Cavalli-Sforza, Wassim El-Hajj, Mustafa, Jarrar, Hamdy Mubarak

TL;DR
This paper provides a comprehensive overview of natural language processing (NLP) research in the Arab world, highlighting its history, challenges, recent advances, and future prospects in Arabic language processing.
Contribution
It offers the first extensive survey of Arabic NLP, covering research areas, historical development, challenges, and future directions specific to the Arab language context.
Findings
Arabic NLP has made significant progress despite unique challenges.
Research focus has increased in recent years, improving language-specific tools.
Future work needs to address resource scarcity and dialectal diversity.
Abstract
The term natural language refers to any system of symbolic communication (spoken, signed or written) without intentional human planning and design. This distinguishes natural languages such as Arabic and Japanese from artificially constructed languages such as Esperanto or Python. Natural language processing (NLP) is the sub-field of artificial intelligence (AI) focused on modeling natural languages to build applications such as speech recognition and synthesis, machine translation, optical character recognition (OCR), sentiment analysis (SA), question answering, dialogue systems, etc. NLP is a highly interdisciplinary field with connections to computer science, linguistics, cognitive science, psychology, mathematics and others. Some of the earliest AI applications were in NLP (e.g., machine translation); and the last decade (2010-2020) in particular has witnessed an incredible increase…
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