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Starting with essential maths, fundamentals of signals and systems,
and classical concepts of DSP, this book presents, from an
application-oriented perspective, modern concepts and methods of
DSP including machine learning for audio acoustics and engineering.
Content highlights include but are not limited to room acoustic
parameter measurements, filter design, codecs, machine learning for
audio pattern recognition and machine audition, spatial audio,
array technologies and hearing aids. Some research outcomes are fed
into book as worked examples. As a research informed text, the book
attempts to present DSP and machine learning from a new and more
relevant angle to acousticians and audio engineers. Some MATLAB (R)
codes or frameworks of algorithms are given as downloads available
on the CRC Press website. Suggested exploration and mini project
ideas are given for "proof of concept" type of exercises and
directions for further study and investigation. The book is
intended for researchers, professionals, and senior year students
in the field of audio acoustics.
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