Neural Network and Fuzzy Time Series
Forecasting using neural network and fuzzy time series
(Sprache: Englisch)
This work deals with neural networks (NN), specifically with multi-layered NN from the algorithm learning point of view. We will describe feed forward neural network (FFNN), recurrent neural network (RCNN) and introduce basic facts about NN, which will be...
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This work deals with neural networks (NN), specifically with multi-layered NN from the algorithm learning point of view. We will describe feed forward neural network (FFNN), recurrent neural network (RCNN) and introduce basic facts about NN, which will be used later in dissertation. A neural network is a mathematical model that is inspired by biological neural networks and tries to simulate them. It consists of interconnected units - neurons, which are the computation units of a neural network. NNs are part of Artificial Intelligence. The knowledge is stored in connections between neurons which are called synaptic weights (weights), simplification of biological dendrites and axons. NN is a universal aproximator of relations stored inside of data - a nonlinear statistical data modeling aproximator, is able to learn and adapt its structure based on internal/external information that is propagated through NN during learning phase. It is relatively easy to use in wide area of technical and nontechnical areas without further theoretical knowledge for most of NNs. There is a number of NNs that require knowledge to implement them and use correct set of initialization parameter.
Autoren-Porträt von Swati Sharma, Vinod Kumar
Sharma, SwatiSwati Sharma, B.Tech(Honrs.), M.Tech(Honrs.), Ph.D pursuing from Computer Science and Engineering. I am working as a Assistant Professor in MIET,Meerut. Vinod Kumar, B.Tech, M.Tech, Ph.D pursuing from Computer Science and Engineering. I am working as a Assistant Professor in MIET, Meerut.
Bibliographische Angaben
- Autoren: Swati Sharma , Vinod Kumar
- 2019, 88 Seiten, Maße: 22 cm, Kartoniert (TB), Englisch
- Verlag: LAP Lambert Academic Publishing
- ISBN-10: 6200284997
- ISBN-13: 9786200284990
Sprache:
Englisch
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