Abu Bakr Soliman
Also published as: Abu Bakr Soliman
2025
BurhanAI at IslamicEval 2025 Shared Task: Combating Hallucinations in LLMs for Islamic Content; Evaluation, Correction, and Retrieval-Based Solution
Arij Al Adel
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Abu Bakr Soliman
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Mohamed Sakher Sawan
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Rahaf Al-Najjar
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Sameh Amin
Proceedings of The Third Arabic Natural Language Processing Conference: Shared Tasks
2017
NileTMRG at SemEval-2017 Task 4: Arabic Sentiment Analysis
Samhaa R. El-Beltagy
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Mona El Kalamawy
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Abu Bakr Soliman
Proceedings of the 11th International Workshop on Semantic Evaluation (SemEval-2017)
This paper describes two systems that were used by the NileTMRG for addressing Arabic Sentiment Analysis as part of SemEval-2017, task 4. NileTMRG participated in three Arabic related subtasks which are: Subtask A (Message Polarity Classification), Subtask B (Topic-Based Message Polarity classification) and Subtask D (Tweet quantification). For subtask A, we made use of NU’s sentiment analyzer which we augmented with a scored lexicon. For subtasks B and D, we used an ensemble of three different classifiers. The first classifier was a convolutional neural network that used trained (word2vec) word embeddings. The second classifier consisted of a MultiLayer Perceptron while the third classifier was a Logistic regression model that takes the same input as the second classifier. Voting between the three classifiers was used to determine the final outcome. In all three Arabic related tasks in which NileTMRG participated, the team ranked at number one.
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- Arij Al Adel 1
- Rahaf Al-Najjar 1
- Sameh Amin 1
- Mona El Kalamawy 1
- Samhaa R. El-Beltagy 1
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