[1]
D.Y. Chao: Computation of Elementary Siphons in Petri Nets for Deadlock Control. Comp. J., (British Computer Society), 49(4) (2006), pp.470-479
DOI: 10.1093/comjnl/bxl019
Google Scholar
[2]
D.Y. Chao: Improved Controllability Test for Dependent Siphons in S3PR Based on Elementary Siphons. Asian Journal of Control, 12(3) (2010a), pp.377-391
DOI: 10.1002/asjc.217
Google Scholar
[3]
D.Y. Chao: Conservative Control Policy for Weakly Dependent Siphons in S3PR Based on Elementary Siphons. IET Control Theory and Applications, 4(7) (2010b), pp.1298-1302
DOI: 10.1049/iet-cta.2009.0118
Google Scholar
[4]
D.Y. Chao: Fewer Monitors and More Efficient Controllability for Deadlock Control in S3PGR2 (systems of simple sequential processes with general resource requirements). Comp. J., (British Computer Society), doi:10.1093/comjnl/bxq007, (2010c)
DOI: 10.1093/comjnl/bxq007
Google Scholar
[5]
J. Ezpeleta, J.M. Colom and J. Martinez: A Petri Net Based Deadlock Prevention Policy for Flexible Manufacturing Systems. IEEE Trans. Robot. Automat., 11 (1995), p, 173-184
DOI: 10.1109/70.370500
Google Scholar
[6]
Z.W. Li and M.C. Zhou: Elementary Siphons of Petri Nets and Their Application to Deadlock Prevention in Flexible Manufacturing Systems. IEEE Trans. Syst. Man Cybern. A., 34(1) (2004), pp.38-51
DOI: 10.1109/tsmca.2003.820576
Google Scholar
[7]
Y.Y. Shih and D.Y. Chao: Sequence of Control in S3PMR. Computer Journal, doi:10.1093/ comjnl/bxp081. (2009)
Google Scholar