Fundamentals of Differential Beamforming

Nonfiction, Science & Nature, Technology, Imaging Systems, Electronics
Cover of the book Fundamentals of Differential Beamforming by Jacob Benesty, Jingdong Chen, Chao Pan, Springer Singapore
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart
Author: Jacob Benesty, Jingdong Chen, Chao Pan ISBN: 9789811010460
Publisher: Springer Singapore Publication: April 27, 2016
Imprint: Springer Language: English
Author: Jacob Benesty, Jingdong Chen, Chao Pan
ISBN: 9789811010460
Publisher: Springer Singapore
Publication: April 27, 2016
Imprint: Springer
Language: English

This book provides a systematic study of the fundamental theory and methods of beamforming with differential microphone arrays (DMAs), or differential beamforming in short. It begins with a brief overview of differential beamforming and some popularly used DMA beampatterns such as the dipole, cardioid, hypercardioid, and supercardioid, before providing essential background knowledge on orthogonal functions and orthogonal polynomials, which form the basis of differential beamforming.

 From a physical perspective, a DMA of a given order is defined as an array that measures the differential acoustic pressure field of that order; such an array has a beampattern in the form of a polynomial whose degree is equal to the DMA order. Therefore, the fundamental and core problem of differential beamforming boils down to the design of beampatterns with orthogonal polynomials. But certain constraints also have to be considered so that the resulting beamformer does not seriously amplify the sensors’ self noise and the mismatches among sensors.

 Accordingly, the book subsequently revisits several performance criteria, which can be used to evaluate the performance of the derived differential beamformers. Next, differential beamforming is placed in a framework of optimization and linear system solving, and it is shown how different beampatterns can be designed with the help of this optimization framework. The book then presents several approaches to the design of differential beamformers with the maximum DMA order, with the control of the white noise gain, and with the control of both the frequency invariance of the beampattern and the white noise gain. Lastly, it elucidates a joint optimization method that can be used to derive differential beamformers that not only deliver nearly frequency-invariant beampatterns, but are also robust to sensors’ self noise.

View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

This book provides a systematic study of the fundamental theory and methods of beamforming with differential microphone arrays (DMAs), or differential beamforming in short. It begins with a brief overview of differential beamforming and some popularly used DMA beampatterns such as the dipole, cardioid, hypercardioid, and supercardioid, before providing essential background knowledge on orthogonal functions and orthogonal polynomials, which form the basis of differential beamforming.

 From a physical perspective, a DMA of a given order is defined as an array that measures the differential acoustic pressure field of that order; such an array has a beampattern in the form of a polynomial whose degree is equal to the DMA order. Therefore, the fundamental and core problem of differential beamforming boils down to the design of beampatterns with orthogonal polynomials. But certain constraints also have to be considered so that the resulting beamformer does not seriously amplify the sensors’ self noise and the mismatches among sensors.

 Accordingly, the book subsequently revisits several performance criteria, which can be used to evaluate the performance of the derived differential beamformers. Next, differential beamforming is placed in a framework of optimization and linear system solving, and it is shown how different beampatterns can be designed with the help of this optimization framework. The book then presents several approaches to the design of differential beamformers with the maximum DMA order, with the control of the white noise gain, and with the control of both the frequency invariance of the beampattern and the white noise gain. Lastly, it elucidates a joint optimization method that can be used to derive differential beamformers that not only deliver nearly frequency-invariant beampatterns, but are also robust to sensors’ self noise.

More books from Springer Singapore

Cover of the book Complex Surveys by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Textiles and Clothing Sustainability by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Radar Cross Section of Dipole Phased Arrays with Parallel Feed Network by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Fundamentals of Optical Computing Technology by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Coronary Imaging and Physiology by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book School-based Partnerships in Teacher Education by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Plug In Electric Vehicles in Smart Grids by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Reforming Learning and Teaching in Asia-Pacific Universities by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Creativity, Talent and Excellence by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Modernization of Asian Theatres by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Scaling Educational Innovations by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book The Mind of an Engineer by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Advanced Detectors for Nuclear, High Energy and Astroparticle Physics by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Abuse and Neglect of the Elderly in India by Jacob Benesty, Jingdong Chen, Chao Pan
Cover of the book Refugee Law in India by Jacob Benesty, Jingdong Chen, Chao Pan
We use our own "cookies" and third party cookies to improve services and to see statistical information. By using this website, you agree to our Privacy Policy