
Handbook on Neural Information Processing by Monica Bianchini
This handbook presents some of the most recent topics in neural information processing, covering both theoretical concepts and practical applications. The contributions include:
- Deep architectures
- Recurrent, recursive, and graph neural networks
- Cellular neural networks
- Bayesian networks
- Approximation capabilities of neural networks
- Semi-supervised learning
- Statistical relational learning
- Kernel methods for structured data
- Multiple classifier systems
- Self organisation and modal learning
- Applications to content-based image retrieval, text mining in large document collections, and bioinformatics
This book is thought particularly for graduate students, researchers and practitioners, willing to deepen their knowledge on more advanced connectionist models and related learning paradigms.
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A Handbook of Internet of Things in Biomedical and Cyber Physical System
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The Temporal Structure of Multimodal Communication
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Support Vector Machines and Evolutionary Algorithms for Classification
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Extended Reality Usage During COVID 19 Pandemic
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Machine Learning in Healthcare Informatics
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Advances in Reasoning-Based Image Processing Intelligent Systems
| SKU | Unavailable |
| ISBN 13 | 9783642366567 |
| ISBN 10 | 3642366562 |
| Title | Handbook on Neural Information Processing |
| Author | Monica Bianchini |
| Series | Intelligent Systems Reference Library |
| Condition | Unavailable |
| Binding Type | Hardback |
| Publisher | Springer |
| Year published | 2013-04-26 |
| Number of pages | 538 |
| Cover note | Book picture is for illustrative purposes only, actual binding, cover or edition may vary. |
| Note | Unavailable |







































