Qi He & Le Yi Wang 
System Identification Using Regular and Quantized Observations [PDF ebook] 
Applications of Large Deviations Principles

Soporte
​This brief presents characterizations of identification errors under a probabilistic framework when output sensors are binary, quantized, or regular. By considering both space complexity in terms of signal quantization and time complexity with respect to data window sizes, this study provides a new perspective to understand the fundamental relationship between probabilistic errors and resources, which may represent data sizes in computer usage, computational complexity in algorithms, sample sizes in statistical analysis and channel bandwidths in communications.
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Tabla de materias

​Introduction and Overview.- System Identification: Formulation.- Large Deviations: An Introduction.- LDP under I.I.D. Noises.- LDP under Mixing Noises.- Applications to Battery Diagnosis.- Applications to Medical Signal Processing.-Applications to Electric Machines.- Remarks and Conclusion.- References.- Index
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Idioma Inglés ● Formato PDF ● Páginas 95 ● ISBN 9781461462927 ● Tamaño de archivo 1.4 MB ● Editorial Springer New York ● Ciudad NY ● País US ● Publicado 2013 ● Descargable 24 meses ● Divisa EUR ● ID 2648662 ● Protección de copia DRM social

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