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Results for “"Petr Hájek"”

10 results

A Systematic Review of Blockchain Applications

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Farhana Akter Sunny, Petr Hájek, Michal Munk, Mohammad Zoynul Abedin et al.

Journal: IEEE AccessYear: 2022Citations: 141

For this study, the researchers conducted a systematic literature review to answer complex questions about the field of blockchain technology. We used an unbiased systematic review process to find works on blockchain-based applications and developed a Python code that searched various online databas...

Physical SciencesComputer ScienceInformation SystemsOpen Access
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Deep learning-based exchange rate prediction during the COVID-19 pandemic

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Mohammad Zoynul Abedin, Mahmudul Hasan Moon, M. Kabir Hassan, Petr Hájek

Journal: Annals of Operations ResearchYear: 2021Citations: 132

This study proposes an ensemble deep learning approach that integrates Bagging Ridge (BR) regression with Bi-directional Long Short-Term Memory (Bi-LSTM) neural networks used as base regressors to become a Bi-LSTM BR approach. Bi-LSTM BR was used to predict the exchange rates of 21 currencies agains...

Social SciencesDecision SciencesManagement Science and Operations ResearchOpen Access
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Combining weighted SMOTE with ensemble learning for the class-imbalanced prediction of small business credit risk

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Mohammad Zoynul Abedin, Chi Guotai, Petr Hájek, Tong Zhang

Journal: Complex & Intelligent SystemsYear: 2022Citations: 90

Abstract In small business credit risk assessment, the default and nondefault classes are highly imbalanced. To overcome this problem, this study proposes an extended ensemble approach rooted in the weighted synthetic minority oversampling technique (WSMOTE), which is called WSMOTE-ensemble. The pro...

Social SciencesBusiness, Management and AccountingAccountingOpen Access
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Product backorder prediction using deep neural network on imbalanced data

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Md Shajalal, Petr Hájek, Mohammad Zoynul Abedin

Journal: International Journal of Production ResearchYear: 2021Citations: 88

Taking backorders on products is a common scenario in inventory and supply chain management systems. The ability to predict the likelihood of backorders can surely minimise a company's losses. Because the number of backorders is much lower than the number of orders that ship on time, applying a pred...

Physical SciencesComputer ScienceArtificial IntelligenceOpen Access
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A Profit Function-Maximizing Inventory Backorder Prediction System Using Big Data Analytics

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Petr Hájek, Mohammad Zoynul Abedin

Journal: IEEE AccessYear: 2020Citations: 67

Inventory backorder prediction is widely recognized as an important component of inventory models. However, backorder prediction is traditionally based on stochastic approximation, thus neglecting the substantial amount of useful information hidden in historical inventory data. To provide those inve...

Social SciencesDecision SciencesManagement Science and Operations ResearchOpen Access
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Deep-learning model using hybrid adaptive trend estimated series for modelling and forecasting sales

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Md. Iftekharul Alam Efat, Petr Hájek, Mohammad Zoynul Abedin, Rahat Uddin Azad et al.

Journal: Annals of Operations ResearchYear: 2022Citations: 65
Social SciencesDecision SciencesManagement Science and Operations ResearchOpen Access
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Tax Default Prediction Using Feature Transformation-Based Machine Learning

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Mohammad Zoynul Abedin, Guotai Chi, Mohammed Mohi Uddin, Md. Shahriare Satu et al.

Journal: IEEE AccessYear: 2020Citations: 58

This study proposes to address the economic significance of unpaid taxes by using an automatic system for predicting a tax default. Too little attention has been paid to tax default prediction in the past. Moreover, existing approaches tend to apply conventional statistical methods rather than advan...

Social SciencesBusiness, Management and AccountingAccountingOpen Access
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Modelling bank customer behaviour using feature engineering and classification techniques

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Mohammad Zoynul Abedin, Petr Hájek, Taimur Sharif, Md. Shahriare Satu et al.

Journal: Research in International Business and FinanceYear: 2023Citations: 47

This study investigates customer behaviour and activity in the banking sector and uses various feature transformation techniques to convert the behavioural data into different data structures. Feature selection is then performed to generate feature subsets from the transformed datasets. Several clas...

Social SciencesBusiness, Management and AccountingMarketingOpen Access
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A blending ensemble learning model for crude oil price forecasting

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Mahmudul Hasan, Mohammad Zoynul Abedin, Petr Hájek, Kristof Coussement et al.

Journal: Annals of Operations ResearchYear: 2024Citations: 42

Abstract To efficiently capture diverse fluctuation profiles in forecasting crude oil prices, we here propose to combine heterogenous predictors for forecasting the prices of crude oil. Specifically, a forecasting model is developed using blended ensemble learning that combines various machine learn...

Social SciencesEconomics, Econometrics and FinanceEconomics and EconometricsOpen Access
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Default Risk Prediction Based on Support Vector Machine and Logit Support Vector Machine

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Fahmida-E-Moula, Nusrat Afrin Shilpa, Preity Shaha, Petr Hájek et al.

Journal: International series in management science/operations research/International series in operations research & management scienceYear: 2023Citations: 6
Social SciencesBusiness, Management and AccountingAccounting
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