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Razločevanje komponent bližnjega in daljnega polja v signalih znotrajsrčnega elektrograma
ID Iršič, Jernej (Author), ID Jarm, Tomaž (Mentor) More about this mentor... This link opens in a new window

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Abstract
Atrijska fibrilacija (AF) je motnja srčnega ritma, ki postaja vedno večji problem javnega zdravja. Najbolj razširjena minimalno invazivna metoda za zdravljenje AF je radiofrekvenčna ablacija (ang. radiofrequency ablation, RFA), pri kateri skozi konico ablacijskega katetra v tkivo dovajamo visokofrekvenčni izmenični tok. Ob tem se na stiku s srčnomišičnim tkivom sprosti energija v obliki toplote, ki pri temperaturi višji od 50 °C povzroči trajno točkasto poškodbo (lezijo) tkiva, s čimer trajno prekine prevajanje akcijskih potencialov v abliranem področju. Osnovna ideja radiofrekvenčne ablacije za zdravljenje AF je neprekinjeno nizanje točkastih poškodb tkiva okoli izraščanja pljučnih ven v levi atrij. Tako ustvarimo ablacijsko linijo, ki električno izolira pljučne vene od atrija, s tem pa se tudi izniči vpliv sprožilcev AF, ki se v približno 90 % primerov nahajajo v pljučnih venah. Omenjenemu postopku krajše rečemo izolacija pljučnih ven. Med posegom z RFA znotraj srčnih komor z elektrodnimi katetri zajemamo unipolarne in bipolarne znotrajsrčne signale (ang. intracardiac electrograms, signali iEGM), ki so posledica električne aktivnosti srčne mišice. Električna aktivnost srčne mišice, ki se dogaja pod elektrodo na katetru, se v signalu iEGM kaže kot kratkotrajni izbruh visokofrekvenčne aktivnosti. To je komponenta tako imenovanega bližnjega električnega polja v signalu iEGM, ki ga v strokovnem žargonu imenujemo krajše signal bližnjega polja (ang. near-field signal, signal NF). Prisotnost signalov NF v signalu iEGM na ablacijski liniji ali za njo po zaključeni radiofrekvenčni ablaciji je pokazatelj preostalih vrzeli v ablacijski liniji, ki so največkrat vzrok ponovitve epizod AF. V signalu iEGM so poleg signalov NF prisotni tudi signali daljnega električnega polja (ang. far-field signal, signal FF), ki so posledica električne aktivnosti oddaljenih delov srčne mišice. Signali FF so po obliki in amplitudi pogosto podobni signalom NF, zato so pri preverjanju neprekinjenosti ablacijske linije moteče komponente. V magistrskem delu obravnavamo problematiko prepoznave signalov NF v signalih iEGM pri katetrski ablaciji za izolacijo pljučnih ven. Namen raziskave je razvoj algoritma za prepoznavo signalov NF, ki bi lahko služil v podporo ekspertom pri odločanju o neprekinjenosti ablacijske linije. Predlagamo algoritem, ki temelji na frekvenčni razgradnji signalov iEGM z diskretno valčno transformacijo. Z diskretno valčno transformacijo vhodni signal iEGM razgradimo na več komponent, ki se nahajajo v različnih frekvenčnih področjih. Nato iz izbranih pridobljenih komponent rekonstruiramo signal iEGM, s čimer izoliramo določeno frekvenčno področje vhodnega signala iEGM. Iz amplitudnih lastnosti rekonstruiranega signala iEGM z algoritmom določimo, ali so v signalu iEGM prisotni signali NF ali ne. V nalogi se bomo najprej seznanili z osnovami anatomije in fiziologije električnega prevodnega sistema v človeškem srcu. Predstavili bomo tudi problem AF, mehanizme za njen nastanek in katetrsko ablacijo kot metodo za njeno zdravljenje, pri čemer opišemo tudi ozadje zajema signalov iEGM. V nadaljevanju bralca seznanimo s postopkom zajema signalov iEGM pri 6 rutinskih posegih katetrske ablacije za izolacijo pljučnih ven v elektrofiziološkem laboratoriju Oddelka za kirurgijo srca in ožilja UKC Ljubljana. Poleg postopka zajema signalov predstavimo postopek določitve zlatega standarda za prepoznavo signalov NF v signalih iEGM, ki smo ga določili na podlagi ocene treh neodvisnih ekspertov o prisotnosti signalov NF v zajetih signalih iEGM. V tem delu naloge tudi podrobno opišemo delovanje našega algoritma in različne načine preizkušanja njegovega delovanja. Pri tem ocenimo, kako se rezultati prepoznave z našim algoritmom razlikujejo glede na število ekspertov, ki jih upoštevamo pri določitvi zlatega standarda, in kako se spreminjajo pri manjših množicah signalov iEGM, na katerih preizkusimo njegovo delovanje. Rezultati raziskave kažejo, da je naš algoritem bolj učinkovit pri prepoznavi signalov NF v bipolarnih kot unipolarnih signalih iEGM. Z njim dosežemo 93,6 % občutljivost in 90,0 % specifičnost pri prepoznavi signalov NF v bipolarnih signalih iEGM ter 93,8 % občutljivost in 70,8 % specifičnost pri prepoznavi signalov NF v unipolarnih signalih iEGM, v katerih o prisotni signali NF. Doseženi rezultati so primerljivi z rezultati treh drugih raziskav, ki jih navedemo v razpravi. Ugotovimo tudi, da se rezultati prepoznave z našim algoritmom bolje približajo rezultatom zlatega standarda, ki ga tvori konsenz vsaj dveh ekspertov, kot standardu, ki ga predstavlja katerikoli individualni ekspert, so pa razlike pri tem zelo majhne in klinično verjetno niso pomembne. Rezultati našega algoritma pri prepoznavi signalov iEGM, v katerih so prisotni signali NF, ki so zajeti pri posameznem posegu, so v 5/6 primerov primerljivi rezultatom, ki jih algoritem doseže na celotni skupini signalov iEGM.

Language:Slovenian
Keywords:elektrofiziologija srca, atrijska fibrilacija, katetrska ablacija, znotrajsrčni elektrogram (iEGM), signal bližnjega polja, obdelava signalov, algoritem za detekcijo
Work type:Master's thesis/paper
Typology:2.09 - Master's Thesis
Organization:FE - Faculty of Electrical Engineering
Year:2025
PID:20.500.12556/RUL-167165 This link opens in a new window
COBISS.SI-ID:233497603 This link opens in a new window
Publication date in RUL:11.02.2025
Views:756
Downloads:339
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Secondary language

Language:English
Title:Discrimination of near-field and far-field components in intracardiac electrogram signals
Abstract:
Atrial fibrillation (AF) is a cardiac arrhythmia that is becoming a growing public health problem. The most widely used minimally invasive method for treating AF is radiofrequency ablation (RFA), in which a high-frequency alternating current is delivered into the tissue via the tip of an ablation catheter. The release of energy in the form of heat at the contact with cardiac tissue leads to permanent localized damage to the tissue (lesion) at temperatures above 50 °C, thus permanently disrupting the conduction of the action potentials in the ablated area. The basic idea of radiofrequency ablation for the treatment of atrial fibrillation is to induce a continuous line of localized lesions into the tissue around the entrance of the pulmonary veins to the left atrium. This creates an ablation line that electrically isolates the pulmonary veins from the left atrium and thus also eliminates the triggers of atrial fibrillation, which are located in the pulmonary veins in approximately 90% of cases. This procedure is also called pulmonary vein isolation. During radiofrequency ablation, intracardiac electrograms (iEGM signals), which are the result of the electrical activity of the heart muscle cells, are captured inside the heart chambers using electrodes built into catheters. The electrical activity of the heart muscle that occurs below the catheter electrodes is reflected in the iEGM signal as a short burst of high frequency activity. This is the near-field component of the iEGM signal, also known as the near-field signal (NF signal). The presence of NF signals in the iEGM signal at or inside the ablation line after RFA is an indicator of residual gaps in the ablation line, which are most often the cause of recurrent episodes of AF. In addition to NF signals, the iEGM signal can also contain far-field signals (FF signals), which are the result of electrical activity in distant parts of the heart muscle. FF signals are often similar in shape and amplitude to NF signals, and are therefore distracting components in verification of the continuity of the ablation line. In this work, we address the problem of detection of NF signals within iEGM signals after catheter ablation for pulmonary vein isolation. The aim of the research is to develop an algorithm for detection of NF signals within iEGM signals that could assist experts in making decisions about the continuity of the ablation line. We propose an algorithm based on frequency decomposition of iEGM signals using a discrete wavelet transform. The discrete wavelet transform decomposes the iEGM input signal into several components in different frequency ranges. The iEGM signal is then reconstructed from selected individual components to isolate a specific frequency range of the iEGM input signal. Based on the amplitude characteristics of the reconstructed iEGM signal, an algorithm is used to determine whether the iEGM signal contains NF signals or not. In this work, we first learn about the basic anatomy and physiology of the electrical conduction system in the human heart. We also present the problem of AF, the mechanisms underlying its occurrence, and catheter ablation as a method for its treatment, and describe the background of iEGM signal acquisition. Then we present the procedure of iEGM signal acquisition procedure in 6 patients during routine catheter ablation procedures for pulmonary vein isolation in the electrophysiology laboratory of the Department of Cardiovascular Surgery, UKC Ljubljana. In addition to the signal acquisition procedure, we present the procedure for determining the gold standard for detection of NF signals within iEGM signals, which was determined based on the assessment of three independent experts on the presence of NF signals in the acquired iEGM signals. In this part of the thesis, we also describe in detail the performance of the algorithm we developed and the different variations of its performance testing. In doing so, we assess how the recognition results of our algorithm vary with the number of experts considered in the gold standard setting, and how they vary for the smaller sets of iEGM signals on which we test its performance. The results show that our algorithm is more effective in detection of NF signals in the bipolar iEGM signals than in the unipolar iEGM signals. It achieves sensitivity of 93.6% and specificity of 90.0% in the detection of NF signals in bipolar iEGM signals. Achieved values of sensitivity and specificity of the detection of NF signals in unipolar iEGM signals were 93.8% and 70.8% respectively. The results are comparable to three other studies reported in the discussion. We also note that the recognition results with our algorithm are closer to the results of the gold standard based on consensus of at least two experts than to the gold standard represented by a single expert, but the differences are very small and probably not clinically relevant. The results of our algorithm in detection of NF signals in iEGM signals are present, which are captured in a single procedure, are comparable to the results obtained by the algorithm with the whole set of iEGM signals in 5/6 of the cases.

Keywords:cardiac electrophysiology, atrial fibrillation, catheter ablation, intracardiac electrogram (iEGM), near-field signal, detection algorithm

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