Future of Natural Language Processing - Potential Lists of Topics for PhD students - Phdassistance

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FUTURE OF NATURAL LANGUAGE PROCESSING- POTENTIAL LISTS OF TOPICS FOR PHD STUDENTS An Academic presentation by Dr. Nancy Agnes, Head, Technical Operations, Phdassistance Group www.phdassistance.com Email: [email protected]

description

The talent to develop a Good Research Topic is a skill. An instructor may allocate you a specific topic, but instructors often require you to select your topic of interest. If you have chosen Natural Language Processing (NLP) as your research topic, your research work would be incredible. We discover the opportunities (2021) and upcoming trends below. Ph.D. Assistance serves as an external mentor to brainstorm your idea and translate that into a research model. Hiring a mentor or tutor is common and therefore let your research committee known about the same. We do not offer any writing services without the involvement of the researcher. Learn More: https://bit.ly/2QzM2sO Contact Us: Website: https://www.phdassistance.com/ UK NO: +44–1143520021 India No: +91–4448137070 WhatsApp No: +91 91769 66446 Email: [email protected]

Transcript of Future of Natural Language Processing - Potential Lists of Topics for PhD students - Phdassistance

Page 1: Future of Natural Language Processing - Potential Lists of Topics for PhD students - Phdassistance

FUTURE OF NATURAL LANGUAGE PROCESSING- POTENTIAL LISTS OF TOPICS FOR PHD STUDENTS

An Academic presentation byDr. Nancy Agnes, Head, Technical Operations, Phdassistance Group www.phdassistance.comEmail: [email protected]

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IntroductionWhat is Natural Language Processing Future of NLPRecent trends in the NLP from Scholarly Papers published in Scopus Indexed JournalsData Sets for NLP Conclusion

Outline

TODAY'S DISCUSSION

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The talent to develop a good research topic is a skill. An instructor may allocate you a specific topic, but instructors often require you to select your topic of interest.

If you have chosen Natural Language Processing (NLP) as your research topic, your research work would be incredible.

We discover the opportunities (2021) and upcoming trends below.

Introduction

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motivated“NaturalLanguageProcessing is a

theoretically range ofcomputational

techniques foranalyzing and representing naturally occurring texts atone or more levels of linguistic analysis for the purpose of achieving human-like language processing for a range of tasks or applications”.

NLP technology facilitates the machines to read, understand, analyze, and gather appropriate sense from human languages.

Contd...

What is Natural Language Processing

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NLP is also recognized as Computational Linguistics, a blend of twotechnologies, including Machine Learning (ML) and Artificial Intelligence (AI).

While human communicates with machines, everything would work faster and better because of NLP technology.

20 years ago, NLP technology was under development; hence it was only in limited use.

In the past decade, NLP holds a fantastic addition to daily life but still it has only reached the lexical and syntactic processing levels for full-fledge English, with limited semantic capabilities.

Contd...

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NLP is the driving force behind several applications, which we are using in our daily life.

Microsoft Word that employs NLP to identify and correct for errors in spelling and sentence organization

Google Translate, which is a Language translation application

Siri, OK Google, Alexa, and Cortana

Interactive Voice Response (IVR) apps which act as personal assistant applications.

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MASSIVE SHIFT FROM DATA-DRIVEN TO INTELLIGENCE- DRIVEN DECISION MAKING

Smart officialdoms now make decisions based not on data only but on the intelligence derived from that data by NLP- powered machines.

Contd...

As AI tries to take advantage of the technology’sprospects, NLP would get even more advanced.

Future of NLP

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Data scientists dealing with NLP and other AI aspects rely on NLP library platforms to construct and trial their applications.

The platform pool such as OpenNMT, Stanford’s CoreNLP, SpaCy, and Tensor Flow has been widely used.

ERADICATION OF HUMAN DATA SCIENTISTS

Data scientists would be wiped out in the future as NLP advances along with machine l earning, and its features such as pattern recognition, advanced analysis, and interpretation improve beyond today’s level.

Contd...

CREATION OF MORE EXTENSIVE, BETTER NLP PLATFORMS LIKE SPARK NLP

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A SWAP TO NATURAL LANGUAGE

The future test in NPL would be able to understand the human language.

In the future, natural language processing would have to evolve in itsfunction to become natural language understanding.

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Recently, analysing the user reviews, Aldabbas et al., (2021) scrapped google play content and knowledge engineering.

Food recipes were altered and generated with NLP techniques by Pan et al., (2020)

Construct identity problem were tackled using NLP techniques by Ludwig et al., (2020).

Multi-class Categorization of design build contract technique requirement were built using text mining and NLP by Hassan et al., (2020)

Contd...

Recent trends in the NLP from Scholarly Papers published in Scopus Indexed Journals

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Building personalized educational material for chronic disease patients by Wang et al., (2020)

Medical based NLP techniques: Clinical decision making with EHRs and intelligent patient summaries using ML and NLP techniques by Trappey et al., (2020).

In medical, the current deep learning-based NLP techniques focus into three major purposes: representation learning, information extraction and clinical prediction.

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Analysing news articles using NLP by Titiliuc, Ruseti, & Dascalu (2020[1])–Semantic similarities between articles and rank various publications based on their influences– Visualization to ease understanding.

Techniques such as opinion mining, geographical name extraction nd content quality assessment are the future scope.

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Feedback from users in app stores

Social media and developer comments in discussion forums

Patient story – qualitative interview, voice recording

Newspaper articles

Customer review

Social media comments

Stories

Content from the Manuscripts / Journal articles and many more

Data Sets for NLP

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NLP can analyze and bond with language-based information by making machines equipped to understand the content and substitute human tasks like abstracting, translation, classification, and mining.

Moreover, NLP giving organizations a way to analyze shapeless information, customer support communications, product analyses, and social media messages.

So there are many r esearch gap is yet to be determined in this field.

Hence it would be a good opening for the researchers to start research in this area.

Conclusion

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