From a broader application perspective, besides contributing to a diagnostic tool
specifically designed for rhythm disturbances, the methodology we propose could be
used in a therapeutical context to evaluate the efficacy of a drug therapy aimed at nor-
malizing the rhythm, through the detection of its effects on the spatial activation pat-
terns.
References
1. Yip, K., Zhao, F.: Spatial aggregation: Theory and applications. J Artif Intell Res 5 (1996)
1–26
2. Ironi, L., Tentoni, S.: On the problem of adjacency relations in the spatial aggregation ap-
proach. In Proc. 17th Int. Workshop on Qualitative Reasoning. (2003) 111–118
3. Ironi, L., Tentoni, S.: Towards automated electrocardiac map interpretation: an intelligent
contouring tool based on spatial aggregation. In Berthold, M.R., Lenz, H.J., Bradley, E.,
Kruse, R., Borgelt, C., eds.: Advances in Intelligent Data Analysis V, Berlin, Springer (2003)
397–417
4. Ironi, L., Tentoni, S.: Automated detection of qualitative spatio-temporal features in electro-
cardiac activation maps. Artif Intell Med 39 (2007) 99–111
5. Clifford, G. D., Azuaje, F., McSharry, P. E., eds.: Advanced Methods and Tools for ECG
Analysis. Artech House Publishing, Boston/London (2006)
6. Bratko, I., Mozetic, I., Lavrac, N.: Kardio: A Study in Deep and Qualitative Knowledge for
Expert Systems. MIT Press, Cambridge, MA (1989)
7. Weng, F., Quiniou, R., Carrault, G., Cordier, M. O.: Learning structural knowledge from the
ECG. In: ISMDA-2001. Volume 2199. Berlin, Springer (2001) 288–294
8. Kundu, M., Nasipuri, M., Basu, D. K.: A knowledge based approach to ECG interpretation
using fuzzy logic. IEEE T Syst Man Cyb 28 (1998) 237–243
9. Oster, H. S., Taccardi, B., Lux, R. L., Ershler, P. R., Rudy, Y.: Noninvasive electrocardio-
graphic imaging: reconstruction of epicardial potentials, electrograms, and isochrones and
localization of single and multiple electrocardiac events. Circulation (1997) 1012–1024
10. Ramanathan, C., Ghanem, R. N., Jia, P., Ryu, K., Rudy, Y.: Noninvasive electrocardiographic
imaging for cardiac electrophysiology and arrythmia. Nat Med (2004) 1–7
11. Brandt, J. W., Algazi, V. R.: Continuous skeleton computation by Voronoi diagram. CVGIP:
Image understanding 55 (1992) 329–338
12. Sakai, H., Sugihara, K.: A method for stable construction of medial axes in figures. Electron
Comm Jpn 2 89 (2006) 48–55
13. Cranefield, P. F.: The Conduction of the Cardiac Impulse: the Slow Response and Cardiac
Arrhythmias. Futura Publishing Co, Mount Kisco NY (1975)
14. Burnes, J. E., Taccardi, B., Rudy, Y.: A noninvasive imaging modality for cardiac arrhyth-
mias. Circulation 102 (2000) 2152–2158
15. Burnes, J. E., Taccardi, B., Ershler, P. R., Rudy, Y.: Noninvasive electrocardiogram imaging
of substrate and intramural ventricular tachycardia in infarcted hearts. J Am Coll Cardiol 38
(2001) 2071–2078
16. de Bakker, J. M., van Capelle, F. J., Janse, M. J., Tasseron, S., Vermeulen, J. T., de Jonge,
N., Lahpor, J.R.: Slow conduction in the infarcted human heart. Zigzag course of activation.
Circulation 88 (1993) 915–926
17. Colli Franzone, P., Guerri, L., Pennacchio, M.: Spreading of excitation in 3-D models of
the anisotropic cardiac tissue. II. Effect of geometry and fiber architecture of the ventricular
wall. Math Biosci 147 (1998) 131–171
12