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Journal ArticleDOI

Multimodal sentimental analysis for social media applications: A comprehensive review

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TLDR
This work aims to present a survey of recent developments in analyzing the multimodal sentiments (involving text, audio, and video/image) which involve human–machine interaction and challenges involved in analyzing them.
Abstract
The analysis of sentiments is essential in identifying and classifying opinions regarding a source material that is, a product or service. The analysis of these sentiments finds a variety of applications like product reviews, opinion polls, movie reviews on YouTube, news video analysis, and health care applications including stress and depression analysis. The traditional approach of sentiment analysis which is based on text involves the collection of large textual data and different algorithms to extract the sentiment information from it. But multimodal sentimental analysis provides methods to carry out opinion analysis based on the combination of video, audio, and text which goes a way beyond the conventional text‐based sentimental analysis in understanding human behaviors. The remarkable increase in the use of social media provides a large collection of multimodal data that reflects the user's sentiment on certain aspects. This multimodal sentimental analysis approach helps in classifying the polarity (positive, negative, and neutral) of the individual sentiments. Our work aims to present a survey of recent developments in analyzing the multimodal sentiments (involving text, audio, and video/image) which involve human–machine interaction and challenges involved in analyzing them. A detailed survey on sentimental dataset, feature extraction algorithms, data fusion methods, and efficiency of different classification techniques are presented in this work.

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References
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Journal ArticleDOI

Enhancement Bag-of-Words Model for Solving the Challenges of Sentiment Analysis

TL;DR: A new technique to evaluate online sentiments in one topic domain is proposed and a solution for some significant sentiment analysis challenges that improves the accuracy of sentiment analysis performed is introduced.
Journal ArticleDOI

Cross-Modality Microblog Sentiment Prediction via Bi-Layer Multimodal Hypergraph Learning

TL;DR: A novel Bi-layer Multimodal Hypergraph learning (Bi-MHG) toward robust sentiment prediction of multimodal tweets to tackle the above challenges and superior performance is reported over several state-of-the-art and alternative approaches, which demonstrates the merits of the proposed scheme.
Journal ArticleDOI

Computational approaches for mining user's opinions on the Web 2.0

TL;DR: The research shows that text preprocessing algorithms are mandatory for mining opinions on the Web 2.0 and that part of these algorithms are sensitive to errors and mistakes contained in the user generated content.
Proceedings ArticleDOI

Audio-visual synchrony for detection of monologues in video archives

TL;DR: The underlying approach of synchrony between audio and video signals is also applicable for voice and face-based biometrics, assessing lip-synchronization quality in movie editing, and for speaker localization in video.
Journal ArticleDOI

A decision tree using ID3 algorithm for English semantic analysis

TL;DR: A new model is proposed by using an ID3 algorithm of a decision tree to classify semantics (positive, negative, and neutral) for the English documents, and is used in the English document-level emotional classification.
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Trending Questions (1)
How does sentiment analysis on social media influence consumer purchase patterns?

The provided paper does not specifically discuss how sentiment analysis on social media influences consumer purchase patterns.