Cost Efficient Training Method for Artificial Neural Networks based on Engine Measurements

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The artificial intelligence is an accurate predictive tool for different kinds of internal
combustion engine (ICE) applications. However, the training process can be expensive due
to the high computational and measurement costs. This work aims to describe a general
methodology that can be applied to cost-efficiently train multilayer perceptron type
artificial neural networks with measurement data from ICEs. The created methodology is
based on analyses of a high-resolution dataset measured on a commercial diesel engine.
Different methods and recommendations are presented for the model creation, evaluation,
training method selection, input feature selection and architecture selection. In addition, a
method is described in order to select the appropriate measurement resolution that
provides proper information for training with minimal fuel consumption. The investigation
showed that the presented workflow can reduce calculation time and fuel consumption,
while maintaining good model accuracy. The method can be applied for any ICE related
artificial neural network problems, but it can also be an aide for other research fields.
- Cím és alcím
- Cost Efficient Training Method for Artificial Neural Networks based on Engine Measurements
- Szerző
- Virt, Márton
- Zöldy, Máté
- Megjelenés ideje
- 2024
- Hozzáférés szintje
- Open access
- ISSN, e-ISSN
- 1785-8860
- Nyelv
- en
- Terjedelem
- 23 p.
- Tárgyszó
- artificial neural networks, internal combustion engines, methodology, cost reducing
- Változat
- Kiadói változat
- Egyéb azonosítók
- DOI: 10.12700/APH.21.7.2024.7.8
- A cikket/könyvrészletet tartalmazó dokumentum címe
- Acta Polytechnica Hungarica
- A forrás folyóirat éve
- 2024
- A forrás folyóirat évfolyama
- 21. évf.
- A forrás folyóirat száma
- 7. sz.
- Műfaj
- Tudományos cikk
- Tudományterület
- Műszaki tudományok - multidiszciplináris műszaki tudományok
- Egyetem
- Óbudai Egyetem