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1
Between History and Natural Language Processing: Study, Enrichment and Online Publication of French Parliamentary Debates of the Early Third Republic (1881-1899)
In: ParlaCLARIN III at LREC2022 - Workshop on Creating, Enriching and Using Parliamentary Corpora ; https://hal.archives-ouvertes.fr/hal-03623351 ; ParlaCLARIN III at LREC2022 - Workshop on Creating, Enriching and Using Parliamentary Corpora, Jun 2022, Marseille, France ; https://www.clarin.eu/ParlaCLARIN-III (2022)
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2
Chinese-Uyghur Bilingual Lexicon Extraction Based on Weak Supervision
In: Information; Volume 13; Issue 4; Pages: 175 (2022)
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3
Investigating the Efficient Use of Word Embedding with Neural-Topic Models for Interpretable Topics from Short Texts
In: Sensors; Volume 22; Issue 3; Pages: 852 (2022)
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4
Analysis of the Effects of Lockdown on Staff and Students at Universities in Spain and Colombia Using Natural Language Processing Techniques
In: International Journal of Environmental Research and Public Health; Volume 19; Issue 9; Pages: 5705 (2022)
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5
An Enhanced Neural Word Embedding Model for Transfer Learning
In: Applied Sciences; Volume 12; Issue 6; Pages: 2848 (2022)
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6
Deep Sentiment Analysis Using CNN-LSTM Architecture of English and Roman Urdu Text Shared in Social Media
In: Applied Sciences; Volume 12; Issue 5; Pages: 2694 (2022)
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7
Predicting Academic Performance: Analysis of Students’ Mental Health Condition from Social Media Interactions
In: Behavioral Sciences; Volume 12; Issue 4; Pages: 87 (2022)
Abstract: Social media have become an indispensable part of peoples’ daily lives. Research suggests that interactions on social media partly exhibit individuals’ personality, sentiment, and behavior. In this study, we examine the association between students’ mental health and psychological attributes derived from social media interactions and academic performance. We build a classification model where students’ psychological attributes and mental health issues will be predicted from their social media interactions. Then, students’ academic performance will be identified from their predicted psychological attributes and mental health issues in the previous level. Firstly, we select samples by using judgmental sampling technique and collect the textual content from students’ Facebook news feeds. Then, we derive feature vectors using MPNet (Masked and Permuted Pre-training for Language Understanding), which is one of the latest pre-trained sentence transformer models. Secondly, we find two different levels of correlations: (i) users’ social media usage and their psychological attributes and mental health status and (ii) users’ psychological attributes and mental health status and their academic performance. Thirdly, we build a two-level hybrid model to predict academic performance (i.e., Grade Point Average (GPA)) from students’ Facebook posts: (1) from Facebook posts to mental health and psychological attributes using a regression model (SM-MP model) and (2) from psychological and mental attributes to the academic performance using a classifier model (MP-AP model). Later, we conduct an evaluation study by using real-life samples to validate the performance of the model and compare the performance with Baseline Models (i.e., Linguistic Inquiry and Word Count (LIWC) and Empath). Our model shows a strong performance with a microaverage f-score of 0.94 and an AUC-ROC score of 0.95. Finally, we build an ensemble model by combining both the psychological attributes and the mental health models and find that our combined model outperforms the independent models.
Keyword: BiLSTM; classification; ensemble; Facebook; MPNet; psychological attributes and mental health; regression; word embedding
URL: https://doi.org/10.3390/bs12040087
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8
Vec2Dynamics: A Temporal Word Embedding Approach to Exploring the Dynamics of Scientific Keywords—Machine Learning as a Case Study
In: Big Data and Cognitive Computing; Volume 6; Issue 1; Pages: 21 (2022)
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9
Methods, Models and Tools for Improving the Quality of Textual Annotations
In: Modelling; Volume 3; Issue 2; Pages: 224-242 (2022)
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10
Creating multi-scripts sentiment analysis lexicons for Algerian, Moroccan and Tunisian dialects
In: 7th International Conference on Data Mining (DTMN 2021) Computer Science Conference Proceedings in Computer Science & Information Technology (CS & IT) ; https://hal.archives-ouvertes.fr/hal-03308111 ; 7th International Conference on Data Mining (DTMN 2021) Computer Science Conference Proceedings in Computer Science & Information Technology (CS & IT), Sep 2021, Copenhagen, Denmark (2021)
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11
Bilingual English-German word embedding models for scientific text ...
Donner, Paul. - : Zenodo, 2021
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12
Bilingual English-German word embedding models for scientific text ...
Donner, Paul. - : Zenodo, 2021
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13
以《Cofacts 真的假的》資料庫為基礎建立中文科學假訊息之探勘模型 ; Text Mining Model for Detecting Chinese Fake Scientific Messages based on Cofacts Open Data
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14
Automatic Part-of-Speech Tagging for Security Vulnerability Descriptions ...
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15
Automatic Part-of-Speech Tagging for Security Vulnerability Descriptions ...
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16
WELFake dataset for fake news detection in text data ...
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17
WELFake dataset for fake news detection in text data ...
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18
Text ranking based on semantic meaning of sentences ; Textrankning baserad på semantisk betydelse hos meningar
Stigeborn, Olivia. - : KTH, Skolan för elektroteknik och datavetenskap (EECS), 2021
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19
Efficient Estimate of Low-Frequency Words’ Embeddings Based on the Dictionary: A Case Study on Chinese
In: Applied Sciences ; Volume 11 ; Issue 22 (2021)
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20
Acoustic Word Embeddings for End-to-End Speech Synthesis
In: Applied Sciences ; Volume 11 ; Issue 19 (2021)
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