178
L. Carlsen and K. Abit
Bruggemann, R., & Carlsen, L. (2011). An improved estimation of averaged ranks of partially
orders. MATCH – Communications in Mathematical and in Computer Chemistry, 65, 383–414.
Bruggemann, R., & Münzer, B. (1993). A graph-theoretical tool for priority setting of chemicals.
Chemosphere, 27, 1729–1736.
Bruggemann, R., & Patil, G. P. (2011). Ranking and prioritization for multi-indicator systems –
Introduction to partial order applications. New York: Springer.
Bruggemann, R., & Voigt, K. (2011). A new tool to analyze partially ordered sets - application,
ranking of polychlorinated biphenyls and alkanes/alkenes in river main, Germany. MATCH –
Communications in Mathematical and in Computer Chemistry, 66, 231–251.
Bruggemann, R., Halfon, E., Welzl, G., Voigt, K., & Steinberg, C. (2001). Applying the concept
of partially ordered sets on the ranking of near-shore sediments by a battery of tests. Journal of
Chemical Information and Computer Sciences, 41, 918–925.
Bruggemann, R., Sørensen, P. B., Lerche, D., & Carlsen, L. (2004). Estimation of averaged ranks
by a local partial order model. Journal of Chemical Information and Computer Sciences,
2004(44), 618–625.
Bruggemann, R., Carlsen, L., Voigt, K., & Wieland, R. (2014). PyHasse software for partial order
analysis: Scientific background and description of selected modules. In R. Bruggemann, L.
Carlsen, & J. Wittmann (Eds.), Multi-indicator systems and modelling in partial order (pp.
389–423). Springer: New York.
Bubley, R., & Dyer, M. (1999). Faster random generation of linear extensions. Discrete Mathematics, 201, 81–88.
Chowdhury, Z. Z., Zain, S. M., Khan, R. A., Ahmad, A. A., Islam, M. S., & Arami-niya, A. (2011).
Application of central composite design for preparation of Kenaf fiber based activated carbon
for adsorption of manganese (II) ion. The International Journal of Physical Sciences, 6, 7191–
7202.
De Loof, K., De Meyer, H., & De Baets, B. (2006). Exploiting the lattice of ideals representation
of a Poset. Fundamenta Informaticae, 71, 309–321.
Dias, J. M., Alvim-Ferraz, M. C. M., & Almeida, M. F. (2007). Waste materials for activated
carbon preparation and its use in aqueous-phase treatment: A review. Journal of Environmental
Management, 85, 833–846.
Ernesti, J., & Kaiser, P. (2008). Python-Das umfassende Handbuch. Bonn: Galileo Press.
Foo, K. Y., Lee, L. K., & Hameed, B. H. (2013). Preparation of activated carbon from sugarcane
bagasse by microwave assisted activation for the remediation of semi-aerobic landfill leachate.
Bioresource Technology, 134, 166–172.
Gergova, K., Galushko, A., Petrov, N., & Minkova, V. (1992). Investigation of the porous structure
of activated carbons prepared by pyrolysis of agricultural by-products in a stream of watervapor. Carbon, 30, 721–727.
Gergova, K., Petrov, N., & Eser, S. (1994). Adsorption properties and microstructure of activated
carbons produced from agricultural by-products by steam pyrolysis. Carbon, 32, 693–702.
Giraldo, L., & Moreno-Piraján, J. C. (2008). Pb2+ adsorption from aqueous solutions on activated
carbons obtained from lignocellulosic residues. Brazilian Journal of Chemical Engineering,
25, 143–151.
Halfon, E., & Reggiani, M. G. (1986). On ranking chemicals for environmental hazard. Environmental Science & Technology, 20, 1173–1179.
Hayashi, J., Kazehaya, A., Muroyama, K., & Watkinson, A. P. (2000a). Preparation of activated
carbon from lignin by chemical activation. Carbon, 38, 1873–1878. https://doi.org/10.1016/
S0008-6223(00)00027-0.
Hetland, M. L. (2005). Beginning Python - From novice to professional. Berkeley: Apress.
Hayashi, J., Kazehaya, A., Muroyama, K., & Watkinson, A. P. (2000b). Preparation of activated
carbon from lignin by chemical activation. Carbon, 38, 1873–1878. https://doi.org/10.1016/
S0008-6223(00)00027-0.
Hsu, L.-Y., & Teng, H. (2000). Influence of different chemical reagents on the preparation of
activated carbons from bituminous coal, Fuel Processing Technology, 64, 155–166.
Précédent

- 193/324

Suivant