Search Results for author: Eftekhar Hossain

Found 18 papers, 10 papers with code

M-BAD: A Multilabel Dataset for Detecting Aggressive Texts and Their Targets

no code implementations CONSTRAINT (ACL) 2022 Omar Sharif, Eftekhar Hossain, Mohammed Moshiul Hoque

Recently, detection and categorization of undesired (e. g., aggressive, abusive, offensive, hate) content from online platforms has grabbed the attention of researchers because of its detrimental impact on society.

MemoSen: A Multimodal Dataset for Sentiment Analysis of Memes

1 code implementation LREC 2022 Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque

However, due to the proliferation of social media usage in recent years, sentiment analysis of memes is also a crucial research issue in low resource languages.

Multimodal Sentiment Analysis Sentiment Classification

CUET-NLP@DravidianLangTech-ACL2022: Exploiting Textual Features to Classify Sentiment of Multimodal Movie Reviews

no code implementations DravidianLangTech (ACL) 2022 Nasehatul Mustakim, Nusratul Jannat, Md Hasan, Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque

With the proliferation of internet usage, a massive growth of consumer-generated content on social media has been witnessed in recent years that provide people’s opinions on diverse issues.

CUET-NLP@DravidianLangTech-ACL2022: Investigating Deep Learning Techniques to Detect Multimodal Troll Memes

no code implementations DravidianLangTech (ACL) 2022 Md Hasan, Nusratul Jannat, Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque

Moreover, the CNN-Text+VGG16 outperformed the other models concerning the multimodal memes detection by achieving the highest f_1-score of 0. 49, but the LSTM+CNN model allowed the team to achieve 4^{th} place in the shared task.

Meme Classification

CUET-NLP@TamilNLP-ACL2022: Multi-Class Textual Emotion Detection from Social Media using Transformer

no code implementations DravidianLangTech (ACL) 2022 Nasehatul Mustakim, Rabeya Rabu, Golam Md. Mursalin, Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque

Recently, emotion analysis has gained increased attention by NLP researchers due to its various applications in opinion mining, e-commerce, comprehensive search, healthcare, personalized recommendations and online education.

Emotion Recognition Opinion Mining +1

FIHA: Autonomous Hallucination Evaluation in Vision-Language Models with Davidson Scene Graphs

no code implementations20 Sep 2024 Bowen Yan, Zhengsong Zhang, Liqiang Jing, Eftekhar Hossain, Xinya Du

Therefore, we introduce the FIHA (autonomous Fine-graIned Hallucination evAluation evaluation in LVLMs), which could access hallucination LVLMs in the LLM-free and annotation-free way and model the dependency between different types of hallucinations.

Hallucination Hallucination Evaluation

Deciphering Hate: Identifying Hateful Memes and Their Targets

3 code implementations16 Mar 2024 Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque, Sarah M. Preum

The dataset consists of 7, 148 memes with Bengali as well as code-mixed captions, tailored for two tasks: (i) detecting hateful memes, and (ii) detecting the social entities they target (i. e., Individual, Organization, Community, and Society).

LLMs as Meta-Reviewers' Assistants: A Case Study

1 code implementation23 Feb 2024 Eftekhar Hossain, Sanjeev Kumar Sinha, Naman Bansal, Alex Knipper, Souvika Sarkar, John Salvador, Yash Mahajan, Sri Guttikonda, Mousumi Akter, Md. Mahadi Hassan, Matthew Freestone, Matthew C. Williams Jr., Dongji Feng, Santu Karmaker

One of the most important yet onerous tasks in the academic peer-reviewing process is composing meta-reviews, which involves assimilating diverse opinions from multiple expert peers, formulating one's self-judgment as a senior expert, and then summarizing all these perspectives into a concise holistic overview to make an overall recommendation.

Align before Attend: Aligning Visual and Textual Features for Multimodal Hateful Content Detection

1 code implementation15 Feb 2024 Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque, Sarah M. Preum

Evaluation results demonstrate our proposed approach's effectiveness with F1-scores of $69. 7$% and $70. 3$% for the MUTE and MultiOFF datasets.

NLP-CUET@DravidianLangTech-EACL2021: Offensive Language Detection from Multilingual Code-Mixed Text using Transformers

1 code implementation EACL (DravidianLangTech) 2021 Omar Sharif, Eftekhar Hossain, Mohammed Moshiul Hoque

In the task, datasets provided in three languages including Tamil, Malayalam and Kannada code-mixed with English where participants are asked to implement separate models for each language.

Multilingual text classification XLM-R

Combating Hostility: Covid-19 Fake News and Hostile Post Detection in Social Media

1 code implementation9 Jan 2021 Omar Sharif, Eftekhar Hossain, Mohammed Moshiul Hoque

This paper illustrates a detail description of the system and its results that developed as a part of the participation at CONSTRAINT shared task in AAAI-2021.

Binary Classification Classification +3

TechTexC: Classification of Technical Texts using Convolution and Bidirectional Long Short Term Memory Network

no code implementations ICON 2020 Omar Sharif, Eftekhar Hossain, Mohammed Moshiul Hoque

This paper illustrates the details description of technical text classification system and its results that developed as a part of participation in the shared task TechDofication 2020.

General Classification text-classification +1

SentiLSTM: A Deep Learning Approach for Sentiment Analysis of Restaurant Reviews

1 code implementation19 Nov 2020 Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque, Iqbal H. Sarker

In addition, a comparative analysis of the proposed technique with other machine learning algorithms presented.

Sentiment Analysis

Sentiment Polarity Detection on Bengali Book Reviews Using Multinomial Naive Bayes

1 code implementation6 Jul 2020 Eftekhar Hossain, Omar Sharif, Mohammed Moshiul Hoque

Recently, sentiment polarity detection has increased attention to NLP researchers due to the massive availability of customer's opinions or reviews in the online platform.

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