350 rub
Journal Biomedical Radioelectronics №4 for 2024 г.
Article in number:
Formation of complex discrete samples for electrocardiogram isoline drift extraction devices
Type of article: scientific article
DOI: https://doi.org/10.18127/j15604136-202404-09
UDC: 51-74: 681.2.087
Authors:

Yu.A. Bulgakov1, A.A. Mikheev2

1,2 FSBEI HE Ryazan State Radio Engineering University named after V.F. Utkin (Ryazan, Russia)

1 yura.bulgakov.00@gmail.com, 2 maa0312@yandex.ru

Abstract:

In the automatic analysis of an electrocardiosignal, in order to adequately assess its amplitude parameters, it is necessary to ensure that there is no isoline drift in the signal. The direct removal of the isoline drift using a high-pass filter leads to distortion of the shape and amplitude parameters of the electrocardiosignal elements. When extracting the isoline drift based on interpolation of samples on the PQ segment, the frequency of the extracted isoline drift signal cannot even theoretically exceed half the heart rate, but in reality it is an order of magnitude less.

The purpose is to develop a device for the formation of complex discrete samples of the electrocardiosignal, ensuring the isolation without loss of informative components of the electrocardiosignal of the isoline drift with a frequency range comparable to the heart rate, in conditions of variability of the sampling frequency due to heart rate variability.

The possibility of expanding the frequency range of the isoline drift signal isolated from the electrocardiosignal based on the real-time transformation of isoline drift samples taken at the TP interval into complex discrete samples has been substantiated. When forming complex discrete samples, the variability of the sampling period due to heart rate variability is taken into account. A device for forming complex discrete samples of the isoline drift signal has been proposed, allowing extraction of isoline drift with an extended frequency range without loss the informative components of the electrocardiosignal.

The developed device can be used both directly as part of mobile electrocardiographs designed to monitor a person's ECG in the conditions of his daily activities, and in equipment for processing daily electrocardiograms before analyzing their parameters.

Pages: 63-71
For citation

Bulgakov Yu.A., Mikheev A.A. Formation of complex discrete samples for electrocardiogram isoline drift extraction devices. Biomedicine Radioengineering. 2024. V. 27. № 4. Р. 63-71. DOI: https://doi.org/10.18127/j15604136-202404-09 (In Russian).

References
  1. Drozdov D.V. Tekhnicheskiye i metodicheskiye aspekty registratsii biopotentsialov: vybor elektrodov. Funktsionalnaya diagnostika. 2010. № 3. S. 6–11. (in Russian).
  2. Baranovskiy A.L., Kalinichenko A.N., Manilo L.A. i dr. Kardiomonitory. Apparatura nepreryvnogo kontrolya EKG: Ucheb. posobiye dlya vuzov. Pod red. A.L. Baranovskogo i A.P. Nemirko. M.: Radio i svyaz. 1993. 248 s. (in Russian).
  3. Rangayyan R.M. Analiz biomeditsinskikh signalov. Prakticheskiy podkhod: per. s angl.. Pod red. A.P. Nemirko. M.: FIZMATLIT. 2007. 440 s. (in Russian).
  4. Penin P.I. Sistemy peredachi tsifrovoy informatsii. M.: Sovetskoye radio. 1976. 368 s. (in Russian).
  5. Patent № 2251968 (RF). MPK A61B5/0402. Sposob ustraneniya dreyfa izolinii elektrokardiosignala i ustroystvo dlya ego osushchestvleniya. A.A. Mikheyev, G.I. Nechayev. Opubl. 20.05.2005. Byul. №14. Zayavitel i patentoobladatel RGRTA. 18 s. (in Russian).
  6. Melnik O.V., Mikheyev A.A., Nechayev G.I. Vydeleniye dreyfa izolinii elektrokardiosignala. Biomeditsinskiye tekhnologii i radioelektronika. 2005. № 1-2. S. 26–30. (in Russian).
  7. Karasev V.V., Mikheyev A.A., Nechayev G.I. Izmeritelnyye sistemy dlya vrashchayushchikhsya uzlov i mekhanizmov. M.: Energoatomizdat. 1996. 176 s. (in Russian).
  8. Mikhaylov V.M. Variabelnost ritma serdtsa. Opyt prakticheskogo primeneniya. Ivanovo: IGMA. 2000. 200 s. (in Russian).
  9. Bailon R., Orini M., Laguna P. et al. The Integral Pulse Frequency Modulation Model with Nime-Varying Threshold: Application to Heart Rate Variability Analysis During Exercise Stress Testing. IEEE Tranactions Biomedical Engineering. 2011. V. 58. № 3. P. 642–652.
  10. Bulgakov Yu.A. Vityazeva T.A., Mikheyev A.A. Slozhnyye diskretnyye otschety v zadachakh obrabotki elektrokardiosignala. Biomeditsinskaya radioelektronika. 2021. T. 24. № 4. S. 76–82. (in Russian).
  11. Borisov Yu.P., Penin P.I. Osnovy mnogokanalnoy peredachi informatsii. M.: Svyaz. 1967. 436 s. (in Russian).
  12. Bulgakov Yu., Vitiazeva T., Mikheev A. Formation of Complex Discrete Samples of Measuring Signals with a Sampling Period Variability. 11th Mediterranean Conference on Embedded Computing (MECO – 2022) Proceedings. Budva. Montenegro. IEEE Catalog Number: CFP2239T-USB. P. 275–278.
  13. Bulgakov Yu., Vitiazeva T., Mikheev A. Research of the Spectrum of a Complex Discrete Samples with Sample Rate Variability. 10th Mediterranean Conference on Embedded Computing (MECO – 2021) Proceedings. Budva. Montenegro. IEEE Catalog Number: CFP2039T-ART. P. 323–326.
  14. Patent № 2387367 (RF). MPK A61 V 5/02. A61 V 5/0452. Sposob vyyavleniya kardiokompleksa i ustroystvo dlya ego osushchestvleniya. P.A. Blinov, A.A. Mikheyev. № 2008148439: zayavl. 08.12.2008: opublikovano 27.04.2010. Byul. № 12. Zayavitel RGRTU. 8 s. (in Russian).
  15. Patent № 2810949 (RF). MPK H04L 27/02. A61V 5/024. Sposob formirovaniya diskretnykh otschetov izmeritelnykh signalov i ustroystvo dlya ego osushchestvleniya. Yu.A. Bulgakov, A.A. Mikheyev. № 2023102551: zayavl. 03.02.2023: opubl. 09.01.2024. Byul. № 1; zayavitel RGRTU. 29 s. (in Russian).
Date of receipt: 22.05.2024
Approved after review: 20.06.2024
Accepted for publication: 22.07.2024