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  • Search: subject_exact:"Mustererkennung"
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Year of publication
Subject
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Mustererkennung 745 Pattern recognition 679 Theorie 346 Theory 342 Forecasting model 284 Prognoseverfahren 284 Künstliche Intelligenz 182 Artificial intelligence 177 Neuronale Netze 131 Neural networks 130 Regression analysis 110 Regressionsanalyse 110 Klassifikation 101 Classification 99 Algorithmus 94 Kreditwürdigkeit 94 Algorithm 93 Credit rating 90 Data Mining 73 Data mining 73 support vector machine 70 Support vector machine 69 Prognose 60 Forecast 58 Cluster analysis 55 Clusteranalyse 55 Insolvenz 43 Insolvency 42 Machine learning 40 Mathematical programming 39 Mathematische Optimierung 39 Support vector machines 38 Credit risk 35 Kreditrisiko 35 machine learning 35 Zeitreihenanalyse 34 support vector machines 34 Time series analysis 32 SVM 30 Börsenkurs 28
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Online availability
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Undetermined 287 Free 167 CC license 31
Type of publication
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Article 518 Book / Working Paper 226 Journal 1
Type of publication (narrower categories)
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Article in journal 449 Aufsatz in Zeitschrift 449 Working Paper 70 Graue Literatur 66 Non-commercial literature 66 Arbeitspapier 65 Aufsatz im Buch 62 Book section 62 Hochschulschrift 30 Thesis 18 Conference paper 7 Konferenzbeitrag 7 Konferenzschrift 7 Dissertation u.a. Prüfungsschriften 5 Article 3 Case study 3 Collection of articles of several authors 3 Collection of articles written by one author 3 Fallstudie 3 Sammelwerk 3 Sammlung 3 Bibliografie enthalten 2 Bibliography included 2 Guidebook 2 Ratgeber 2 Aufsatzsammlung 1 Forschungsbericht 1 Interview 1 Konferenzschrift/Kongressbericht 1 Research Report 1
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Language
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English 673 German 54 Undetermined 15 Spanish 4 Italian 1
Author
All
Härdle, Wolfgang 26 Hong, Wei-Chiang 14 Schäfer, Dorothea 13 Luo, Jian 10 Papadimitriou, Theophilos 10 Gkonkas, Periklēs 9 Gründler, Klaus 8 Moro, Rouslan 8 Krieger, Tommy 7 Plakandaras, Vasilios 7 Rüping, Stefan 7 Carrizosa, Emilio 6 Chen, Shiyi 6 Sermpinis, Georgios 6 Stasinakis, Charalampos 6 Aparicio, Juan 5 Chi, Guotai 5 Fang, Shu-Cherng 5 Jeong, Kiho 5 León, Carlos 5 Maldonado, Sebastián 5 Moro, Rouslan A. 5 Tanino, Tetsuzo 5 Tatsumi, Keiji 5 Bioch, Jan C. 4 Gao, Zheming 4 Groenen, Patrick J. F. 4 Hashemi, Leila 4 Jasemi, Milad 4 Jentzsch, Nicola 4 Karathanasopoulos, Andreas 4 Lee, Yuh-Jye 4 Lessmann, Stefan 4 Mahmoodi, Armin 4 Theofilatos, Konstantinos 4 Tian, Ye 4 Valero-Carreras, Daniel 4 Yeh, Yi-Ren 4 Yu, Lean 4 Zhu, Bangzhu 4
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Institution
All
Deutsche Arbeitsgemeinschaft für Mustererkennung 3 IGI Global 3 Christian-Albrechts-Universität zu Kiel 1 Deutsche Bundesbank 1 Deutsches Institut für Wirtschaftsforschung 1 Dr. Rainer Hampp <Firma> 1 Fraunhofer IRB-Verlag 1 Fraunhofer-Institut für Experimentelles Software Engineering 1 Gesellschaft für Informatik 1 INSEAD 1 International Symposium on Synergetics <1979, Elmau> 1 Joint Workshop on Pattern Recognition and Artificial Intelligence <1976, Hyannis, Mass.> 1 Springer International Publishing 1 Università degli Studi di Milano / Dipartimento di Economia Politica e Aziendale 1 Universität Bremen 1 Verband der Wissenschaftlichen Gesellschaften Österreichs 1 Verlag C.H. Beck 1 Würzburg University Press 1 kassel university press 1 Österreichische Computer-Gesellschaft / Arbeitskreis für Mustererkennung 1
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Published in...
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European journal of operational research : EJOR 33 Computational economics 17 International journal of production research 17 Journal of forecasting 15 Computers & operations research : and their applications to problems of world concern ; an international journal 14 SFB 649 discussion paper 9 Technical report / Sonderforschungsbereich 475 Komplexitätsreduktion in Multivariaten Datenstrukturen, Universität Dortmund 9 International journal of business information systems : IJBIS 8 Journal of the Operational Research Society : OR 7 Journal of information & knowledge management : JIKM 6 Journal of the Operational Research Society 6 Knowledge and information systems : an international journal 6 Computational Management Science : CMS 5 Energy economics 5 Fuzzy optimization and decision making : a journal of modeling and computation under uncertainty 5 Journal of risk and financial management : JRFM 5 Research in international business and finance 5 Risks : open access journal 5 SpringerLink / Bücher 5 Top : transactions in operations research 5 Applied optimization and data mining : dedicated to Dr. Panos Pardalos on the occasion of his 60th birthday 4 Decision analytics journal 4 Decision support systems : DSS ; the international journal 4 Econometric Institute research papers 4 Finance research letters 4 Financial innovation : FIN 4 IEEE transactions on engineering management : EM 4 INFORMS journal on computing : JOC 4 Informatik-Fachberichte 4 International journal of enterprise network management 4 International journal of forecasting 4 International journal of information technology and management : IJITM 4 Omega : the international journal of management science 4 Technological forecasting & social change : an international journal 4 Annals of operations research 3 CESifo working papers 3 Computers & operations research : an international journal 3 DIW Wochenbericht 3 DIW-Wochenbericht : Wirtschaft, Politik, Wissenschaft 3 Data mining and analytics 3
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Source
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ECONIS (ZBW) 697 USB Cologne (EcoSocSci) 39 EconStor 9
Showing 1 - 50 of 745
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Intelligent policy framework : natural resource conservation, knowledge and big data analytics
Xiao, Nina; Qu, Xianhe - In: Journal of innovation & knowledge : JIK 10 (2025) 2, pp. 1-10
In today's context of escalating environmental pressure, traditional methods of natural resource conservation face numerous challenges. The use of big data analytics to support the formulation of environmental policies has become a crucial approach for enhancing the efficiency and scientific...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015331637
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Machine learning methods for financial forecasting and trading profitability : evidence during the Russia-Ukraine war
Peng, Yaohao; Souza, João Gabriel de Moraes - In: REGE revista de gestão 31 (2024) 2, pp. 152-165
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015189762
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Mixed-integer quadratic optimization and iterative clustering techniques for semi-supervised support vector machines
Burgard, Jan Pablo; Pinheiro, Maria Eduarda; Schmidt, Martin - In: Top : an official journal of the Spanish Society of … 32 (2024) 3, pp. 391-428
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015188200
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Adapting support vector optimisation algorithms to textual gender classification
Gomez, Javier; Alfaro, Cesar; Ortega, Felipe; Moguerza, … - In: Top : an official journal of the Spanish Society of … 32 (2024) 3, pp. 463-488
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Convex support vector regression
Liao, Zhiqiang; Dai, Sheng; Kuosmanen, Timo - In: European journal of operational research : EJOR 313 (2024) 3, pp. 858-870
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014456645
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A hybrid model for forecasting realized volatility based on heterogeneous autoregressive model and support vector regression
Zhuo, Yue; Morimoto, Takayuki - In: Risks : open access journal 12 (2024) 1, pp. 1-16
In this study, we proposed two types of hybrid models based on the heterogeneous autoregressive (HAR) model and support vector regression (SVR) model to forecast realized volatility (RV). The first model is a residual-type model, where the RV is first predicted using the HAR model, and the...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014480965
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Digital identification and pattern recognition capabilities using machine learning methods, navigation systems, and video surveillance
Marchenko, Olena; Viunenko, Oleksandr; Nechai, Ihor - In: Technology audit and production reserves 1 (2024) 2/75, pp. 6-13
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014497309
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Forecasting relative returns for S&P 500 stocks using machine learning
Htet Htet Htun; Biehl, Michael; Petkov, Nicolai - In: Financial innovation : FIN 10 (2024), pp. 1-16
Forecasting changes in stock prices is extremely challenging given that numerous factors cause these prices to fuctuate. The random walk hypothesis and efcient market hypothesis essentially state that it is not possible to systematically, reliably predict future stock prices or forecast changes...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014547210
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Comparison of improved relevance vector machines for streamflow predictions
Adnan, Rana Muhammad; Mostafa, Reham R.; Dai, Hong-Liang; … - In: Journal of forecasting 43 (2024) 1, pp. 159-181
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014443193
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The volatility mechanism and intelligent fusion forecast of new energy stock prices
Fan, Guo-Feng; Zhang, Ruo-Tong; Cao, Cen-Cen; Peng, Li-Ling - In: Financial innovation : FIN 10 (2024), pp. 1-37
The new energy industry is strongly supported by the state, and accurate forecasting of stock price can lead to better understanding of its development. However, factors such as cost and ease of use of new energy, as well as economic situation and policy environment, have led to continuous...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014535574
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A hybrid model for stock price prediction based on multi-view heterogeneous data
Long, Wen; Gao, Jing; Bai, Kehan; Lu, Zhichen - In: Financial innovation : FIN 10 (2024), pp. 1-50
Literature shows that both market data and fnancial media impact stock prices; however, using only one kind of data may lead to information bias. Therefore, this study uses market data and news to investigate their joint impact on stock price trends. However, combining these two types of...
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Margin optimal classification trees
D'Onofrio, Federico; Grani, Giorgio; Monaci, Marta; … - In: Computers & operations research : an international journal 161 (2024), pp. 1-19
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014559221
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Identifying marriage markets
Bolletta, Ugo; Cherchye, Laurens; Demuynck, Thomas; … - 2024
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015050255
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A performance analysis of stochastic processes and machine learning algorithms in stock market prediction
Bouasabah, Mohammed - In: Economies : open access journal 12 (2024) 8, pp. 1-12
In this study, we compare the performance of stochastic processes, namely, the Vasicek, Cox-Ingersoll-Ross (CIR), and geometric Brownian motion (GBM) models, with that of machine learning algorithms, such as Random Forest, Support Vector Machine (SVM), and k-Nearest Neighbors (KNN), for...
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Nowcasting GDP: what are the gains from machine learning algorithms?
Arro-Cannarsa, Milen; Scheufele, Rolf - 2024
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015044842
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A novel fusion Support Vector Machine integrating weak and sphere models for classification challenges with massive data
Pimentel, Jonatha Sousa; Ospina, Raydonal; Ara, Anderson - In: Decision analytics journal 11 (2024), pp. 1-14
The unprecedented growth in data generation has necessitated the adoption of advanced analytical techniques. Support Vector Machine (SVM) is a powerful machine learning tool that has proven invaluable in classifying observations through optimal hyperplane in higher dimensions. Despite their...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015101975
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Novel comparative methodology of hybrid support vector machine with meta-heuristic algorithms to develop an integrated candlestick technical analysis model
Mahmoodi, Armin; Hashemi, Leila; Mahmoodi, Amin; … - In: Journal of capital markets studies 8 (2024) 1, pp. 67-94
Purpose The proposed model has been aimed to predict stock market signals by designing an accurate model. In this sense, the stock market is analysed by the technical analysis of Japanese Candlestick, which is combined by the following meta heuristic algorithms: support vector machine (SVM),...
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Modeling the effect of population size on banking transaction channels in Nigeria : Grey box vs Support Vector Regression
Bartholomew, Desmond C.; Olewuezi, Ngozi P.; Nwaigwe, … - In: CBN journal of applied statistics 15 (2024) 1, pp. 1-31
This study investigates the effect of Nigeria's population on four selected banking transaction channels. The Nigerian projected population (2022-2027) was used as an input variable for forecasting future volumes of transactions for each channel. The results show that the Support Vector...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015393855
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Measuring technical efficiency for multi-input multi-output production processes through OneClass Support Vector Machines : a finite-sample study
Moragues, Raul; Aparicio, Juan; Esteve, Miriam - In: Operational research : an international journal 23 (2023) 3, pp. 1-33
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014364592
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A comparative assessment of machine learning algorithms with the Least Absolute Shrinkage and Selection Operator for breast cancer detection and prediction
Hassan, Md. Mehedi; Hassan, Md. Mahedi; Yasmin, Farhana; … - In: Decision analytics journal 7 (2023), pp. 1-17
Breast cancer is the most common life-threatening cancer in women and one of the leading causes of death. Early diagnosis is one of the best defenses against the spread of breast cancer. Machine learning (ML) tools are now available for cancer detection and prediction. This study presents a...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014497358
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An unsupervised learning-based generalization of Data Envelopment Analysis
Moragues, Raul; Aparicio, Juan; Esteve, Miriam - In: Operations research perspectives 11 (2023), pp. 1-14
In this paper, we introduce an unsupervised machine learning method for production frontier estimation. This new approach satisfies fundamental properties of microeconomics, such as convexity and free disposability (shape constraints). The new method generalizes Data Envelopment Analysis (DEA)...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014448520
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Is artificial intelligence really more accurate in predicting bankruptcy?
Letkovský, Stanislav; Jeňcová, Sylvia; … - In: International Journal of Financial Studies : open … 12 (2024) 1, pp. 1-19
Predicting bankruptcy within selected industries is crucial because of the potential ripple effects and unique characteristics of those industries. It serves as a risk management tool, guiding various stakeholders in making decisions. While artificial intelligence (AI) has shown high success...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014502270
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A comparative study of statistical machine learning methods for condition monitoring of electric drive trains in supply chains
Lahmiri, Salim - In: Supply chain analytics 2 (2023), pp. 1-7
Fault detection and identification are critical for the accurate maintenance and management of industrial machinery. In this regard, data-driven condition monitoring models play an important role in machinery fault diagnosis and management. This study investigates the applicability of various...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014516481
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Application of support vector machine algorithm for early differential diagnosis of prostate cancer
Akinnuwesi, Boluwaji A.; Olayanju, Kehinde A.; … - In: Data science and management : DSM 6 (2023) 1, pp. 1-12
Prostate cancer (PCa) symptoms are commonly confused with benign prostate hyperplasia (BPH), particularly in the early stages due to similarities between symptoms, and in some instances, underdiagnoses. Clinical methods have been utilized to diagnose PCa; however, at the full-blown stage, clinical...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014517987
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Forecasting stock closing prices with an application to airline company data
Xu, Xu; Zhang, Yixiang; McGrory, Clare Anne; Wu, Jinran; … - In: Data science and management : DSM 6 (2023) 4, pp. 239-246
Forecasting stock market movements is a challenging task from the practitioners' point of view. We explore how model selection via the least absolute shrinkage and selection operator (LASSO) approach can be better used to forecast stock closing prices using real-world datasets of daily stock...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014518025
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Predict stock prices using supervised learning algorithms and particle swarm optimization algorithm
Bazrkar, Mohammad Javad; Hosseini, Soodeh - In: Computational economics 62 (2023) 1, pp. 165-186
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A novel approach for candlestick technical analysis using a combination of the support vector machine and particle swarm optimization
Mahmoodi, Armin; Hashemi, Leila; Jasemi, Milad; … - In: Asian journal of economics and banking : AJEB 7 (2023) 1, pp. 2-24
Purpose - In this research, the main purpose is to use a suitable structure to predict the trading signals of the stock market with high accuracy. For this purpose, two models for the analysis of technical adaptation were used in this study. Design/methodology/approach - It can be seen that...
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Quarterly multidimensional poverty estimates in Mexico using machine learning algorithms
Rincón, Ratzanyel - In: Estudios económicos 38 (2023) 1, pp. 3-68
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014280115
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Prediction and analysis of customer complaints using machine learning techniques
Alarifi, Ghadah; Rahman, Mst Farjana; Hossain, Md Shamim - In: International journal of e-business research : IJEBR ; … 19 (2023) 1, pp. 1-25
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015051113
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A Hybrid Forecasting Method for Anticipating Stock Market Trends via a Soft- Thresholding De-noise Model and Support Vector Machine (SVM)
Zhang, Lixuan; Li, Chang; Chen, Lee; Chen, Don; Xiang, Zheng - 2023
Stock market time series are inherently noisy. Although support vector machine has the noise-tolerant property, the noised data still affect the accuracy of classification. Compared with other studies only classify the movements of stock market into up-trend and down-trend which does not concern...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014351174
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Early warning model based on support vector machine ensemble algorithm
He, Sang-sang; Hou, Wen-hui; Chen, Zi-yu; Liu, Hui; … - In: Journal of the Operational Research Society 76 (2025) 3, pp. 411-425
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015325321
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Identification of best discrimination surface by mixed-integer semi-definite programming for support vector machine
Tanaka, Katsuhiro; Yamamoto, Rei - In: International journal of financial engineering 9 (2022) 4, pp. 1-16
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Vermenschlichung der Technik? : die Interaktion von Menschen und künstlicher Intelligenz in alltäglichen Kontexten
Weyer, Johannes - 2022
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Bankruptcy prediction using machine learning techniques
Shetty, Shekar; Musa, Mohamed; Brédart, Xavier - In: Journal of risk and financial management : JRFM 15 (2022) 1, pp. 1-10
In this study, we apply several advanced machine learning techniques including extreme gradient boosting (XGBoost), support vector machine (SVM), and a deep neural network to predict bankruptcy using easily obtainable financial data of 3728 Belgian Small and Medium Enterprises (SME’s) during...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10012814176
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Soil Moisture Prediction of Maize by Combining Support Vector Machine and Chaotic Whale Optimization Algorithm
He, Bohao; Jia, Biying; Zhao, Yanghe; Wang, Xu; Mao, Wei; … - 2022
AbstractSoil moisture (SM) of maize has an extremely important impact on the growth and development of maize. Therefore, predicting the SM of maize will become extremely important, guiding the management of agricultural irrigation and water resources. This paper, therefore, proposes a new hybrid...
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Robust classification via support vector machines
Asimit, Alexandru V.; Kyriakou, Ioannis; Santoni, Simone; … - In: Risks : open access journal 10 (2022) 8, pp. 1-25
Classification models are very sensitive to data uncertainty, and finding robust classifiers that are less sensitive to data uncertainty has raised great interest in the machine learning literature. This paper aims to construct robust support vector machine classifiers under feature data...
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Bilevel hyperparameter optimization for support vector classification : theoretical analysis and a solution method
Li, Qingna; Li, Zhen; Zemkoho, Alain B. - In: Mathematical methods of operations research : ZOR 96 (2022) 3, pp. 315-350
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Analysis of machine learning methods in the task of searching duplicates in the software code
Kaliuzhna, Tetiana; Kubiuk, Yevhenii - In: Technology audit and production reserves 4 (2022) 2/66, pp. 6-13
Persistent link: https://ebvufind01.dmz1.zbw.eu/10013459320
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The applications of artificial neural networks, support vector machines, and long-short term memory for stock market prediction
Chhajer, Parshv; Shah, Manan; Kshirsagar, Ameya - In: Decision analytics journal 2 (2022)
The future is unknown and uncertain, but there are ways to predict future events and reap the rewards safely. One such opportunity is the application of machine learning and artificial intelligence for stock market prediction. The stock market is turbulent, yet using artificial intelligence to...
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A comparative analysis of K-Nearest Neighbor, Genetic, Support Vector Machine, Decision Tree, and Long Short Term Memory algorithms in machine learning
Bansal, Malti; Goyal, Apoorva; Choudhary, Apoorva - In: Decision analytics journal 3 (2022), pp. 1-21
Machine learning (ML) is a new-age thriving technology, which facilitates computers to read and interpret from the previously present data automatically. It makes use of multiple algorithms to build models, mathematical in nature, and then makes predictions for the new data using the past data...
Persistent link: https://ebvufind01.dmz1.zbw.eu/10013339256
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Forecasting crude oil price : a deep forest ensemble approach
Liu, Wei-han; Xu, Xingfu - In: Finance research letters 69 (2024) 2, pp. 1-7
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015191093
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Black-Litterman portfolio management using the investor's views generated by recurrent neural networks and support vector regression
Punyaleadtip, Kunnachai; Kantavat, Pittipol; … - In: The journal of financial data science 6 (2024) 1, pp. 86-105
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015195541
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Forecasting natural rubber prices using commodity market indicators : a machine learning approach
Nyondo, Precious; Varghese, Roshna - In: International journal of revenue management : IJRM 14 (2024) 3, pp. 221-252
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Redesigning a NSGA-II metaheuristic for the bi-objective Support Vector Machine with feature selection
Alcaraz, Javier - In: Computers & operations research : an international journal 172 (2024), pp. 1-14
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Peer-to-peer lending default prediction model : a credit scoring application with social media data
Faturohman, Taufik; Wiryono, Sudarso Kaderi; Khilfah, … - In: International journal of monetary economics and finance … 17 (2024) 2/3, pp. 189-200
Persistent link: https://ebvufind01.dmz1.zbw.eu/10015066133
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Distributionally robust chance-constrained kernel-based support vector machine
Lin, Fengming; Fang, Shu-Cherng; Fang, Xiaolei; Gao, Zheming - In: Computers & operations research : an international journal 170 (2024), pp. 1-12
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Portfolio optimization based on the pre-selection of stocks by the Support Vector Machine model
Silva, Natan Felipe; Andrade, Lélis Pedro de; Silva, … - In: Finance research letters 61 (2024), pp. 1-6
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Stock price ranking by learning pairwise preferences
Tas, Engin; Atli, Ayca Hatice - In: Computational economics 63 (2024) 2, pp. 513-528
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014472383
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Cost-sensitive probabilistic predictions for support vector machines
Benítez-Peña, Sandra; Blanquero, Rafael; Carrizosa, Emilio - In: European journal of operational research : EJOR 314 (2024) 1, pp. 268-279
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014456876
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Data-driven risk-averse newsvendor problems : developing the CVaR criteria and support vector machines
Chen, Zhen-Yu - In: International journal of production research 62 (2024) 4, pp. 1221-1238
Persistent link: https://ebvufind01.dmz1.zbw.eu/10014458529
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