11   Artículos

 
en línea
Yin Tang, Lizhuo Zhang, Dan Huang, Sha Yang and Yingchun Kuang    
In view of the current problems of complex models and insufficient data processing in ultra-short-term prediction of photovoltaic power generation, this paper proposes a photovoltaic power ultra-short-term prediction model named HPO-KNN-SRU, based on a S... ver más
Revista: Applied Sciences    Formato: Electrónico

 
en línea
Chunhyun Paik, Yongjoo Chung and Young Jin Kim    
The estimation of power curve is the central task for efficient operation and prediction of wind power generation. It is often the case, however, that the actual data exhibit a great deal of variations in power output with respect to wind speed, and thus... ver más
Revista: Applied System Innovation    Formato: Electrónico

 
en línea
Abdul Majeed, Abdullah M. Alnajim, Athar Waseem, Aleem Khaliq, Aqdas Naveed, Shabana Habib, Muhammad Islam and Sheroz Khan    
In fifth Generation (5G) networks, protection from internal attacks, external breaches, violation of confidentiality, and misuse of network vulnerabilities is a challenging task. Various approaches, especially deep-learning (DL) prototypes, have been ado... ver más
Revista: Future Internet    Formato: Electrónico

 
en línea
Jiyong Kim and Minseo Park    
Lifelogs are generated in our daily lives and contain useful information for health monitoring. Nowadays, one can easily obtain various lifelogs from a wearable device such as a smartwatch. These lifelogs could include noise and outliers. In general, the... ver más
Revista: Applied Sciences    Formato: Electrónico

 
en línea
Diogo Ribeiro, Luís Miguel Matos, Guilherme Moreira, André Pilastri and Paulo Cortez    
Within the context of Industry 4.0, quality assessment procedures using data-driven techniques are becoming more critical due to the generation of massive amounts of production data. In this paper, we address the detection of abnormal screw tightening pr... ver más
Revista: Computers    Formato: Electrónico

 
en línea
Everton Jose Santana, Ricardo Petri Silva, Bruno Bogaz Zarpelão and Sylvio Barbon Junior    
With data collected by Internet of Things sensors, deep learning (DL) models can forecast the generation capacity of photovoltaic (PV) power plants. This functionality is especially relevant for PV power operators and users as PV plants exhibit irregular... ver más
Revista: Information    Formato: Electrónico

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