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检索条件"主题词=Long Short-Term Memory algorithm"
13 条 记 录,以下是1-10 订阅
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Application of Physical Model Test-Based long short-term memory algorithm as a Virtual Sensor for Nitrogen Oxide Prediction in Diesel Engines
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INTERNATIONAL JOURNAL OF AUTOMOTIVE TECHNOLOGY 2023年 第2期24卷 585-593页
作者: Shin, Dalho Jo, Seongin Kim, Hyung Jun Park, Suhan Konkuk Univ Dept Mech Engn Seoul 05029 South Korea Chonnam Natl Univ Dept Mech Engn Gwangju 61186 South Korea Natl Inst Environm Res Transportat Pollut Res Ctr 42 Hwangyeong Ro Incheon 22689 South Korea Konkuk Univ Sch Mech & Aerosp Engn Seoul 05029 South Korea
In this study, exhaust gas emissions are predicted using long short-term memory (LSTM) algorithm and minimum engine data, such as intake air temperature, emission gas temperature, and injection timing. Unlike existing... 详细信息
来源: 评论
Improving solar radiation source efficiency using adaptive dynamic squirrel search optimization algorithm and long short-term memory
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FRONTIERS IN ENERGY RESEARCH 2023年 11卷
作者: Khafaga, Doaa Sami Alhussan, Amel Ali Eid, Marwa M. El-kenawy, El-Sayed M. Princess Nourah Bint Abdulrahman Univ Coll Comp & Informat Sci Dept Comp Sci Riyadh Saudi Arabia Delta Univ Sci & Technol Fac Artificial Intelligence Mansoura Egypt Delta Higher Inst Engn & Technol Dept Commun & Elect Mansoura Egypt
Artificial intelligence and machine learning are used to optimize the design parameters of renewable energy sources, which are now regarded as vital components in current clean energy sources. As a result, system requ... 详细信息
来源: 评论
Energy Price Prediction on the Romanian Market using long short-term memory Networks  54
Energy Price Prediction on the Romanian Market using Long Sh...
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54th International Universities Power Engineering Conference (UPEC)
作者: Ioanes, Andrei Tirnovan, Radu Tech Univ Cluj Napoca Fac Elect Engn Cluj Napoca Romania
Transition to a market-based economy has reached, eventually, the production of electrical energy in Romania. Historically considered a never-ending resource, the producers did not have to interact with the consumer a... 详细信息
来源: 评论
LSTM-Autoencoder Deep Learning Model for Anomaly Detection in Electric Motor
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ENERGIES 2024年 第10期17卷 2340页
作者: Lachekhab, Fadhila Benzaoui, Messouada Tadjer, Sid Ahmed Bensmaine, Abdelkrim Hamma, Hichem Univ MHamed Bougara Fac Hydrocarbon & Chem Appl Automat Lab Boumerdes 35000 Algeria Univ MHamed Bougara Inst Elect & Elect Engn Appl Automat Lab Boumerdes 35000 Algeria Univ MHamed Bougara Fac Hydrocarbon & Chem Electrificat Ind Enterprises Lab Boumerdes 35000 Algeria
Anomaly detection is the process of detecting unusual or unforeseen patterns or events in data. Many factors, such as malfunctioning hardware, malevolent activities, or modifications to the data's underlying distr... 详细信息
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An analysis of market power in Iran's electricity market with machine learning
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INTERNATIONAL JOURNAL OF GLOBAL ENERGY ISSUES 2023年 第4-5期45卷 489-502页
作者: Rostamnia, Naser M. Kharazmi Univ Dept Econ Tehran Iran Kharazmi Univ Dept Econ Karaj Iran
The Iranian electricity market was reformed over the last three decades primarily to promote competition and improve its production efficiency. This paper provides an analysis of competition in the Iranian electricity... 详细信息
来源: 评论
Energy Demand Curve Modeling with Machine Learning algorithms  8
Energy Demand Curve Modeling with Machine Learning Algorithm...
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8th International Conference on Modern Power Systems (MPS)
作者: Ioanes, Andrei Tirnovan, Radu Tech Univ Cluj Napoca Fac Elect Engn Cluj Napoca Romania
In this paper, a neural algorithm based on long short-term memory (LSTM) architecture able to model the energy demand as a time sequence application and predict trends based on key identified factors that influence en... 详细信息
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Development and comparison of machine-learning algorithms for anomaly detection in 3D printing using vibration data
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PROGRESS IN ADDITIVE MANUFACTURING 2024年 第2期9卷 529-541页
作者: Kumar, Rishi Sangwan, Kuldip Singh Herrmann, Christoph Ghosh, Rishi Sangwan, Mukund Birla Inst Technol & Sci Pilani Pilani Campus Pilani 333031 India Tech Univ Carolo Wilhelmina Braunschweig Inst Machine Tools & Prod Technol IWF Chair Sustainable Mfg & Life Cycle Engn Langer Kamp 19B D-38106 Braunschweig Germany Shiv Nadar Univ Greater Noida 201314 Uttar Pradesh India
3D printing is an emerging technology that converts digital models directly into physical objects. However, abnormal vibrations during the 3D printing process significantly affect the product quality, and also lead to... 详细信息
来源: 评论
Power Grid Health Assessment Using Machine Learning algorithms  11
Power Grid Health Assessment Using Machine Learning Algorith...
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11th International Symposium on Advanced Topics in Electrical Engineering (ATEE)
作者: Ioanes, Andrei Tirnovan, Radu Tech Univ Cluj Napoca Cluj Napoca Romania
Development and successful implementation of Artificial Intelligence concepts with a focus on Neural Networks in different technical environments raise the question of their applicability in the transition from classi... 详细信息
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Development of Machine Learning algorithm for Characterization and Estimation of Energy Consumption of Various Stages during 3D Printing  55
Development of Machine Learning Algorithm for Characterizati...
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55th CIRP Conference on Manufacturing Systems, CIRP CMS 2022
作者: Kumar, Rishi Ghosh, Rishi Malik, Rohan Sangwan, Kuldip Singh Herrmann, Christoph Birla Institute of Technology and Science Pilani Pilani Campus 333031 India Sustainable Manufacturing and Life Cycle Engineering Langer Kamp 19b Braunschweig38106 Germany
Energy usage in industries is one of the major contributors for climate change, biodiversity loss and resource scarcity. Technological advancements in digitalization led by Industry 4.0 facilitates affordable energy m... 详细信息
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The Bayesian CNN-LSTM Mixed Hybrid algorithm Model of the Photovoltaic short-term Output Forecasting  3
The Bayesian CNN-LSTM Mixed Hybrid Algorithm Model of the Ph...
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3rd International Conference on New Energy and Power Engineering, ICNEPE 2023
作者: Dong, Enchong Guo, Yuxi North China Electric Power University School of Control and Computer Engineering Beijing China Shenzhen College of International Education Shenzhen China
Due to the volatility, randomness, and intermittency of photovoltaic power generation, it is difficult to accurately forecast its output. This paper proposes a Bayesian-optimized CNN-LSTM mixed neural model for a shor... 详细信息
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