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Sandro Augusto Pavlik Haddad

Kirjat ja teokset yhdessä paikassa: 2 kirjaa, julkaisuja vuosilta 2009-2010, suosituimpien joukossa Ultra Low-Power Biomedical Signal Processing. Vertaile teosten hintoja ja tarkista saatavuus suomalaisista kirjakaupoista.

2 kirjaa

Kirjojen julkaisuhaarukka 2009-2010.

Ultra Low-Power Biomedical Signal Processing

Ultra Low-Power Biomedical Signal Processing

Sandro Augusto Pavlik Haddad; Wouter A. Serdijn

Springer
2010
nidottu
Often WT systems employ the discrete wavelet transform, implemented on a digital signal processor. However, in ultra low-power applications such as biomedical implantable devices, it is not suitable to implement the WT by means of digital circuitry due to the relatively high power consumption associated with the required A/D converter. Low-power analog realization of the wavelet transform enables its application in vivo, e.g. in pacemakers, where the wavelet transform provides a means to extremely reliable cardiac signal detection. In Ultra Low-Power Biomedical Signal Processing we present a novel method for implementing signal processing based on WT in an analog way. The methodology presented focuses on the development of ultra low-power analog integrated circuits that implement the required signal processing, taking into account the limitations imposed by an implantable device.
Ultra Low-Power Biomedical Signal Processing

Ultra Low-Power Biomedical Signal Processing

Sandro Augusto Pavlik Haddad; Wouter A. Serdijn

Springer-Verlag New York Inc.
2009
sidottu
Often WT systems employ the discrete wavelet transform, implemented on a digital signal processor. However, in ultra low-power applications such as biomedical implantable devices, it is not suitable to implement the WT by means of digital circuitry due to the relatively high power consumption associated with the required A/D converter. Low-power analog realization of the wavelet transform enables its application in vivo, e.g. in pacemakers, where the wavelet transform provides a means to extremely reliable cardiac signal detection. In Ultra Low-Power Biomedical Signal Processing we present a novel method for implementing signal processing based on WT in an analog way. The methodology presented focuses on the development of ultra low-power analog integrated circuits that implement the required signal processing, taking into account the limitations imposed by an implantable device.