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Applying sentiment analysis for tweets linking to scientific papers

Applying sentiment analysis for tweets linking to scientific papers
Author: Natalie Friedrich
Publisher: GRIN Verlag
Total Pages: 66
Release: 2015-12-21
Genre: Business & Economics
ISBN: 3668112703

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Bachelor Thesis from the year 2015 in the subject Information Management, grade: 1,3, University of Dusseldorf "Heinrich Heine" (Institut für Sprache und Information), language: English, abstract: This work analyzes tweets linking to scientific papers to find out if the tweets are positive, or negative or do not express an opinion. This will inform the meaning of tweets as a measure of impact in the context of altmetrics. The following research questions are examined: - In how far can sentiment analysis be used to detect positive or negative statements towards scientific papers expressed on Twitter? - Do tweets linking to scientific papers express positive or negative opinions? How do sentiments differ by academic discipline? - How do results affect the meaning of tweets to scientific papers as an altmetric indicator?


Tweelyzer. An Approach to Sentiment Analysis of Tweets

Tweelyzer. An Approach to Sentiment Analysis of Tweets
Author: Durgesh Samariya
Publisher: Anchor Academic Publishing
Total Pages: 78
Release: 2016-10-06
Genre: Computers
ISBN: 3960675909

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The ongoing trend of people using microblogging to express their thoughts on various topics has increased the need for developing computerised techniques for automatic sentiment analysis on texts that do not exceed 200 characters. Twitter is a "micro-blogging" social networking site that has a large and rapidly growing base of users. Twitter's tweets or messages are limited to 140 characters. Because of this limitation, it is more difficult to express sentiment and the classification of the tweets is difficult as well. Sentiment analysis can be done on two types: emotion and opinion. This research completely focuses on sentiment analysis of opinions. These opinions can be divided in three different classes: positive, negative and neutral ( somewhere between positive and negative). The main goal of this study is to build a model that predicts election movement and provide sentiment score from Twitter messages (which can not exceed 140 characters). In this project, the author applies a novel approach that classifies sentiment and emotions of Twitter tweets automatically in positive, negative or neutral classes. For the sentiment, first of all, tweets from twitter were retrieved and converted into the dataset. After pre-processing the data the proposed algorithm named TWEELYZER was applied to the dataset. At the end, the performance of TWEELYZER was measured in terms of accuracy and recall. In this project, all tweets of people regarding to movies, brands, actors and actresses were collected from twitter and then cleaned and analysed according to the proposed algorithm. These tweets were collected using R Studio software. Several processes took place in pre-processing the tweets. After pre-processing the data, using R Studio led to several insights.


The Experience of Alzheimer's Disease

The Experience of Alzheimer's Disease
Author: Steven R. Sabat
Publisher: Wiley-Blackwell
Total Pages: 376
Release: 2001-06-08
Genre: Psychology
ISBN: 9780631216667

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At a time when the incidence of Alzheimer's Disease is increasing dramatically, this accessible account revolutionises our stereotypes of Alzheimer's patients and their care.


SENTIMENT ANALYSIS OF ENGLISH TWEETS USING DATA MINING

SENTIMENT ANALYSIS OF ENGLISH TWEETS USING DATA MINING
Author: Dr. Gaurav Gupta
Publisher: BookRix
Total Pages: 79
Release: 2018-03-26
Genre: Technology & Engineering
ISBN: 3743852535

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Due to the popularity of internet it becomes very easy for people to share their views over social networking websites. Most popular website among them is twitter. Twitter is a widely used social networking website that is used by the numerous people to give their opinion regarding a particular topic or product. So, today it becomes necessary to analyze the tweet of the people. The process to analyze and interpret the tweets is known as sentiment analysis. The main motive of this project is to identify how the tweets on the social networking website are used to identify the opinion of people regarding the particular product or policy. Twitter is a online website that allows the user to post the status of maximum 140 characters. Twitter has over 200 million registered users and 100 million active users [34]. So it comes to be a great source of valuable information. This project aims to develop a better way for sentiment analysis which is nothing a simple way to classify the tweets into positive, negative or neutral. The result of the sentiment analysis can be used by various organizations. Sentiment analysis can be used for forecasting the stock exchange, used to predict the popularity of any product in market, or used to predict the result of elections based on the public views on the social sites. The main motive of project is to develop a better way to accurately classify the unknown tweets according to their content.


Sentiment Analysis for Social Media

Sentiment Analysis for Social Media
Author: Carlos A. Iglesias
Publisher: MDPI
Total Pages: 152
Release: 2020-04-02
Genre: Technology & Engineering
ISBN: 3039285726

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Sentiment analysis is a branch of natural language processing concerned with the study of the intensity of the emotions expressed in a piece of text. The automated analysis of the multitude of messages delivered through social media is one of the hottest research fields, both in academy and in industry, due to its extremely high potential applicability in many different domains. This Special Issue describes both technological contributions to the field, mostly based on deep learning techniques, and specific applications in areas like health insurance, gender classification, recommender systems, and cyber aggression detection.


Discovery Science

Discovery Science
Author: Bernahrd Pfahringer
Publisher: Springer
Total Pages: 396
Release: 2010-11-02
Genre: Computers
ISBN: 3642161847

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Annotation. This book constitutes the refereed proceedings of the 13th International Conference on Discovery Science, DS 2010, held in Canberra, Australia, in October 2010. The 25 revised full papers presented were carefully selected from 43 submissions and include the first part of the book. In a second part invited talks of ALT 2010 and DS 2010 are presented. The scope of the conference is the exchange of new ideas and information among researchers working in the area of automatic scientific discovery or working on tools for supporting the human process of discovery in science.


Research Anthology on Implementing Sentiment Analysis Across Multiple Disciplines

Research Anthology on Implementing Sentiment Analysis Across Multiple Disciplines
Author: Management Association, Information Resources
Publisher: IGI Global
Total Pages: 1980
Release: 2022-06-10
Genre: Computers
ISBN: 1668463040

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The rise of internet and social media usage in the past couple of decades has presented a very useful tool for many different industries and fields to utilize. With much of the world’s population writing their opinions on various products and services in public online forums, industries can collect this data through various computational tools and methods. These tools and methods, however, are still being perfected in both collection and implementation. Sentiment analysis can be used for many different industries and for many different purposes, which could better business performance and even society. The Research Anthology on Implementing Sentiment Analysis Across Multiple Disciplines discusses the tools, methodologies, applications, and implementation of sentiment analysis across various disciplines and industries such as the pharmaceutical industry, government, and the tourism industry. It further presents emerging technologies and developments within the field of sentiment analysis and opinion mining. Covering topics such as electronic word of mouth (eWOM), public security, and user similarity, this major reference work is a comprehensive resource for computer scientists, IT professionals, AI scientists, business leaders and managers, marketers, advertising agencies, public administrators, government officials, university administrators, libraries, students and faculty of higher education, researchers, and academicians.


Opinion Mining and Sentiment Analysis

Opinion Mining and Sentiment Analysis
Author: Bo Pang
Publisher: Now Publishers Inc
Total Pages: 149
Release: 2008
Genre: Data mining
ISBN: 1601981503

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This survey covers techniques and approaches that promise to directly enable opinion-oriented information-seeking systems.


Sentiment Analysis in Social Networks

Sentiment Analysis in Social Networks
Author: Federico Alberto Pozzi
Publisher: Morgan Kaufmann
Total Pages: 284
Release: 2016-10-06
Genre: Computers
ISBN: 0128044381

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The aim of Sentiment Analysis is to define automatic tools able to extract subjective information from texts in natural language, such as opinions and sentiments, in order to create structured and actionable knowledge to be used by either a decision support system or a decision maker. Sentiment analysis has gained even more value with the advent and growth of social networking. Sentiment Analysis in Social Networks begins with an overview of the latest research trends in the field. It then discusses the sociological and psychological processes underling social network interactions. The book explores both semantic and machine learning models and methods that address context-dependent and dynamic text in online social networks, showing how social network streams pose numerous challenges due to their large-scale, short, noisy, context- dependent and dynamic nature. Further, this volume: Takes an interdisciplinary approach from a number of computing domains, including natural language processing, machine learning, big data, and statistical methodologies Provides insights into opinion spamming, reasoning, and social network analysis Shows how to apply sentiment analysis tools for a particular application and domain, and how to get the best results for understanding the consequences Serves as a one-stop reference for the state-of-the-art in social media analytics Takes an interdisciplinary approach from a number of computing domains, including natural language processing, big data, and statistical methodologies Provides insights into opinion spamming, reasoning, and social network mining Shows how to apply opinion mining tools for a particular application and domain, and how to get the best results for understanding the consequences Serves as a one-stop reference for the state-of-the-art in social media analytics