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Wyszukujesz frazę "Natural Language Processing (NLP)" wg kryterium: Temat


Wyświetlanie 1-6 z 6
Tytuł:
Adaptive Rider Feedback Artificial Tree Optimization-Based Deep Neuro-Fuzzy Network for Classification of Sentiment Grade
Autorzy:
Jasti, Sireesha
Kumar, G.V.S. Raj
Powiązania:
https://bibliotekanauki.pl/articles/2200961.pdf
Data publikacji:
2023
Wydawca:
Instytut Łączności - Państwowy Instytut Badawczy
Tematy:
deep learning network
feedback artificial tree
natural language processing (NLP)
rider optimization algorithm
sentiment grade classification
Opis:
Sentiment analysis is an efficient technique for expressing users’ opinions (neutral, negative or positive) regarding specific services or products. One of the important benefits of analyzing sentiment is in appraising the comments that users provide or service providers or services. In this work, a solution known as adaptive rider feedback artificial tree optimization-based deep neuro-fuzzy network (RFATO-based DNFN) is implemented for efficient sentiment grade classification. Here, the input is pre-processed by employing the process of stemming and stop word removal. Then, important factors, e.g. SentiWordNet-based features, such as the mean value, variance, as well as kurtosis, spam word-based features, term frequency-inverse document frequency (TF-IDF) features and emoticon-based features, are extracted. In addition, angular similarity and the decision tree model are employed for grouping the reviewed data into specific sets. Next, the deep neuro-fuzzy network (DNFN) classifier is used to classify the sentiment grade. The proposed adaptive rider feedback artificial tree optimization (A-RFATO) approach is utilized for the training of DNFN. The A-RFATO technique is a combination of the feedback artificial tree (FAT) approach and the rider optimization algorithm (ROA) with an adaptive concept. The effectiveness of the proposed A-RFATO-based DNFN model is evaluated based on such metrics as sensitivity, accuracy, specificity, and precision. The sentiment grade classification method developed achieves better sensitivity, accuracy, specificity, and precision rates when compared with existing approaches based on Large Movie Review Dataset, Datafiniti Product Database, and Amazon reviews.
Źródło:
Journal of Telecommunications and Information Technology; 2023, 1; 37--50
1509-4553
1899-8852
Pojawia się w:
Journal of Telecommunications and Information Technology
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
ChatGPT: Unlocking the future of NLP in finance
Autorzy:
Zaremba, Adam
Demir, Ender
Powiązania:
https://bibliotekanauki.pl/articles/23943459.pdf
Data publikacji:
2023
Wydawca:
Fundacja Naukowa Instytut Współczesnych Finansów
Tematy:
Natural Language Processing (NLP)
ChatGPT
GPT (Generative Pre-training Transformer)
finance
financial applications
ethical considerations
regulatory considerations
future research directions
Opis:
This paper reviews the current state of ChatGPT technology in finance and its potential to improve existing NLP-based financial applications. We discuss the ethical and regulatory considerations, as well as potential future research directions in the field. The literature suggests that ChatGPT has the potential to improve NLP-based financial applications, but also raises ethical and regulatory concerns that need to be addressed. The paper highlights the need for research in robustness, interpretability, and ethical considerations to ensure responsible use of ChatGPT technology in finance.
Źródło:
Modern Finance; 2023, 1, 1; 93-98
2956-7742
Pojawia się w:
Modern Finance
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Experimental Comparison of Pre-Trained Word Embedding Vectors of Word2Vec, Glove, FastText for Word Level Semantic Text Similarity Measurement in Turkish
Autorzy:
Tulu, Cagatay Neftali
Powiązania:
https://bibliotekanauki.pl/articles/2201815.pdf
Data publikacji:
2022
Wydawca:
Stowarzyszenie Inżynierów i Techników Mechaników Polskich
Tematy:
semantic word similarity
word embeddings
NLP
Turkish NLP
natural language processing
Opis:
This study aims to evaluate experimentally the word vectors produced by three widely used embedding methods for the word-level semantic text similarity in Turkish. Three benchmark datasets SimTurk, AnlamVer, and RG65_Turkce are used in this study to evaluate the word embedding vectors produced by three different methods namely Word2Vec, Glove, and FastText. As a result of the comparative analysis, Turkish word vectors produced with Glove and FastText gained better correlation in the word level semantic similarity. It is also found that The Turkish word coverage of FastText is ahead of the other two methods because the limited number of Out of Vocabulary (OOV) words have been observed in the experiments conducted for FastText. Another observation is that FastText and Glove vectors showed great success in terms of Spearman correlation value in the SimTurk and AnlamVer datasets both of which are purely prepared and evaluated by local Turkish individuals. This is another indicator showing that these aforementioned datasets are better representing the Turkish language in terms of morphology and inflections.
Źródło:
Advances in Science and Technology. Research Journal; 2022, 16, 4; 147--156
2299-8624
Pojawia się w:
Advances in Science and Technology. Research Journal
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Goal - oriented conversational bot for employment domain
Autorzy:
Drozda, Paweł
Żmijewski, Tomasz
Osowski, Maciej
Krasnodębska, Aleksandra
Talun, Arkadiusz
Powiązania:
https://bibliotekanauki.pl/articles/22615524.pdf
Data publikacji:
2023
Wydawca:
Uniwersytet Warmińsko-Mazurski w Olsztynie
Tematy:
chatbot
Deep Q Network
DQN
goal
oriented bot
Natural Language Processing
NLP
Opis:
This paper focuses of the implementation of the goal – oriented chatbot in order to prepare virtual resumes of candidates for job position. In particular the study was devoted to testing the feasibility of using Deep Q Networks (DQN) to prepare an effective chatbot conversation flow with the final system user. The results of the research confirmed that the use of the DQN model in the training of the conversational system allowed to increase the level of success, measured as the acceptance of the resume by the recruiter and the finalization of the conversation with the bot. The success rate increased from 10% to 64% in experimental environment and from 15% to 45% in production environment. Moreover, DQN model allowed the conversation to be shortened by an average of 4 questions from 11 to 7.
Źródło:
Technical Sciences / University of Warmia and Mazury in Olsztyn; 2023, 26(1); 111--123
1505-4675
2083-4527
Pojawia się w:
Technical Sciences / University of Warmia and Mazury in Olsztyn
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Koncepcja bazy danych jako podstawowej części programu generującego oceny opisowe w nauczaniu wczesnoszkolnym
Conception of a database as fundamental part of the program generating the descriptive grades in elementary schools
Autorzy:
Trzeciakowska, Arleta
Powiązania:
https://bibliotekanauki.pl/articles/41204129.pdf
Data publikacji:
2010
Wydawca:
Uniwersytet Kazimierza Wielkiego w Bydgoszczy
Tematy:
komputerowe przetwarzanie tekstów
NLP
generowanie tekstów w języku naturalnym
ocena opisowa
natural language processing
genering texts in natural language
descriptive grades
Opis:
Szeroki dostęp do Internetu, istnienie ogromnej ilości tekstów w wersji elektronicznej powoduje konieczność rozwoju nauki określanej jako inżynieria lingwistyczna. Zajmuje się ona szeroko pojętym przetwarzaniem danych lingwistycznych. Jednym z aspektów przetwarzania tego rodzaju danych jest generowanie tekstów w języku naturalnym. Ponieważ przeważająca ilość powstających tekstów dostępna jest w wersji elektronicznej, istnieje bardzo duże zapotrzebowanie na programy przetwarzające je. Głównym celem powstania tego artykułu jest przedstawienie koncepcji relacyjnej bazy danych będącej podstawą eksperymentalnego programu automatycznie generującego oceny opisowe w nauczaniu wczesnoszkolnym.
Common access to the Internet and huge number of the texts in numeric version causes necessity of progress of the science known as linguistic engineering. It researches the wide implied natural language processing. One of the aspects of processing that kind of data is genering the texts in the natural language. Because the most of the nascent texts are available in numeric version, there is large demand for the programs processing them. The main point of that article is to present the conception of a database that is the fundamental part of the experimental program automatically genering descriptive grades in elementary schools.
Źródło:
Studia i Materiały Informatyki Stosowanej; 2010, 3; 31-37
1689-6300
Pojawia się w:
Studia i Materiały Informatyki Stosowanej
Dostawca treści:
Biblioteka Nauki
Artykuł
Tytuł:
Ontology Extraction from Software Requirements Using Named-Entity Recognition
Autorzy:
Kocerka, Jerzy
Krześlak, Michał
Gałuszka, Adam
Powiązania:
https://bibliotekanauki.pl/articles/2201736.pdf
Data publikacji:
2022
Wydawca:
Stowarzyszenie Inżynierów i Techników Mechaników Polskich
Tematy:
engineering requirements
ontology extraction
named-entity recognition
classification and terminology
terminology
natural language processing
NLP
Opis:
With the software playing a key role in most of the modern, complex systems it is extremely important to create and keep the software requirements precise and non-ambiguous. One of the key elements to achieve such a goal is to define the terms used in a requirement in a precise way. The aim of this study is to verify if the commercially available tools for natural language processing (NLP) can be used to create an automated process to identify whether the term used in a requirement is linked with a proper definition. We found out, that with a relatively small effort it is possible to create a model that detects the domain specific terms in the software requirements with a precision of 87 %. Using such model it is possible to determine if the term is followed by a link to a definition.
Źródło:
Advances in Science and Technology. Research Journal; 2022, 16, 3; 207--212
2299-8624
Pojawia się w:
Advances in Science and Technology. Research Journal
Dostawca treści:
Biblioteka Nauki
Artykuł
    Wyświetlanie 1-6 z 6

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