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Design and Implementation of an Embedded System for Ambulatory Cardiac Monitoring

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Cardiac monitoring in the environment of the subject is one of the major fields of telemedicine. In this paper we present a prototype of embedded system for acquisition, storage, display on LCD or PC and transfer via GSM alarm warning in case of arrhythmias, which allows a great opportunity for rapid intervention of the physician. In terms of hardware, we have designed and implemented our system with a modular approach to facilitate development and debugging. Thus the system comprises three modules: analog module, digital module microcontroller-based for certain pretreatment, and a GSM communication module. Of course, there is appropriate software behind the material described. The system has the following features: low cost, ease to implement and versatility.
Rocznik
Tom
Strony
23--32
Opis fizyczny
Bibliogr. 29 poz., rys.
Twórcy
autor
Bibliografia
  • [1] Physionet [Online]. Available: http://www.physionet.org/physiobank/database
  • [2] S. L. Toral, J. M. Quero, M. Elena, and L. G. Franquelo, “A microprocessor based system for ECG telemedicine and telecare”, in Proc. IEEE Int. Symp. Circuits Sys. ISCAS 2001, Sydney, Australia, 2001, vol. 4, pp. 526–529.
  • [3] Welch Allyn OEM Technologies, “ECG/Respiration ASIC: ECG 3-lead, 5-lead, 12-lead and SP Signal Processing”, (11/09/2003).
  • [4] D. Lucani, G. Cataldo, J. Cruz, G. Villegas, and S. Wong, “A portable ECG monitoring device with Bluetooth and Holter capabilities for telemedicine applications”, in Proc. 28th IEEE EMBS Ann. Int. Conf., New York City, USA, 2006.
  • [5] I. Romero Legameta, P. S. Addisson, N. Grubb, C. E. Robertson, K. A. A. Fox, and J. N. Watson, “Real-time classification of ECGs on a PDA”, IEEE Trans. Inform Technol. Biomed., vol. 30, pp. 565–568, 2003.
  • [6] R. Istepainan, R. García, A. Alesanco, and S. Olmos, “A novel realtime multilead ECG compression and de-noising method based on the wavelet transform”, IEEE Trans. Inform. Technol. Biomed., vol. 30, pp. 593–596, 2003.
  • [7] S. Borromeo, C. Rodriguez-Sanchez, F. Machado, J. A. Hernandez- Tamames, and R. de la Prieta, “A reconfigurable, wearable, wireless ECG system”, in Proc. 29th Ann. Int. Conf. IEEE EMBS, Lyon, France, 2007.
  • [8] C.-N. Chien, H.-W. Hsu1, J.-K. Jang, C.-L. Rau1, and F.-S. Jaw, “Microcontroller-based wireless recorder for biomedical signals”, in Proc. 27th IEEE Ann. Conf. Engin. Medicine and Biology, Shanghai, China, 2005.
  • [9] ECG Front-End Design is Simplified with MicroConverter’. Analog Devices Application Note [Online]. Available: http://www.analog.com/library/analogdialogue/archives/37-11/ecg.pdf
  • [10] U. Rajendra Acharya, A. E. Spaan, J. Suri, and S. M. Krishnan, Advances in Cardiac Signal Processing. Springer, 2007.
  • [11] T. Degen and H. Jäckel, ”A pseudodifferential amplifier for bioelectric events with DC-offset compensation using two-wired amplifying electrodes”, IEEE Trans. Biomed. Eng., vol. 53, no. 2, pp. 300–310, 2006.
  • [12] J. Webster, Medical Instrumentation Application and Design. Wiley, 2010.
  • [13] Microchip. PIC16F876 Datasheets [Online]. Available: http://ww1.microchip.com/downloads/en/devicedoc/30292c.pdf
  • [14] Microchip. 24LC256 Datasheets [Online]. Available: http://ww1.microchip.com/downloads/en/DeviceDoc/21203P.pdf
  • [15] Philips Semiconductors. The i 2c-bus specification [Online]. Available: http://www.nxp.com/documents/other/39340011.pdf
  • [16] MAXIM. Max232 Datasheets [Online]. Available: http://www.datasheetcatalog.net/datasheets pdf/M/A/X/2/MAX232.shtml
  • [17] Nokia 3310 LCD open source [Online]. Available: http://webspace.webring.com/people/fd/dariuskrail20/nokia3310lcd.html
  • [18] Philips Semiconductors. PCD8544 Datasheets [Online]. Available: http://www.nxp.com/acrobat download2/datasheets/PCD8544 1.pdf
  • [19] AAMI, American National Standard, Safe Current Limits for Electromedical Apparatus (ANSI/AAMI ES1-1993). Association for the Advancement of Medical Instrumentation, 1993.
  • [20] J. Pan and W. J. Tompkins, “A real time QRS detection algorithm”, IEEE Trans. Biomed. Eng., vol. 32, pp, 230–236.
  • [21] Heart-Rate and EKG Monitor Using the MSP430FG439. Texas Instruments Application Report, 2008.
  • [22] Li Tan, Digital Signal Processing: Fundamentals and Applications. Elsevier, 2008.
  • [23] P. S. R. Diniz, E. A. B. da Silva, and S. L. Netto, Digital Signal Processing: System Analysis and Design, Cambridge University Press, 2002.
  • [24] L. Sornmo and P. Laguna, Bioelectrical Signal Processing in Cardiac and Neurological Applications. Elsevier, 2005.
  • [25] A. J. Guyton and J. E. Hall, Textbook of Medical Physiology. Elsevier, 2006.
  • [26] On the use of AT commands for controling the mobile phone with microcontroller [Online]. Available: http://www.pwt.et.put.poznan.pl/srv07/papers/PWT%2020077835.pdf
  • [27] AVR323: Interfacing GSM modems. ATMEL Apllication Note [Online]. Available: http://www.atmel.com/dyn/resources/prod documents/doc8016.pdf
  • [28] SMS PDU open source [Online]. Available: http://www.scampers.org/steve/sms/samples.htm
  • [29] B. Halak, J. Murphy, and A. Yakovlev, Electrocardiogram Monitor Design from Concept to Silicon. Technical Report Series. Newcastle University, 2011.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BATA-0015-0003
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