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Publications

A searchable record of ICResG research output — journal articles, conference papers, technical reports and more. Search by author, title, year, venue, DOI, research area or keyword.

292 publications found.

Journal 2018 Cited by 5
Imane Abouelkheir, Fadwa El Kihal, Mostafa Rachik, Ilias Elmouki — Mathematical and Computational Applications — DOI: 10.3390/mca23040064
Cite this publication
APA

Abouelkheir, I., Kihal, F. E., Rachik, M., & Elmouki, I. (2018). Time Needed to Control an Epidemic with Restricted Resources in SIR Model with Short-Term Controlled Population: A Fixed Point Method for a Free Isoperimetric Optimal Control Problem. Mathematical and Computational Applications. https://doi.org/10.3390/mca23040064

Harvard

Abouelkheir, I., Kihal, F.E., Rachik, M. and Elmouki, I. (2018) 'Time Needed to Control an Epidemic with Restricted Resources in SIR Model with Short-Term Controlled Population: A Fixed Point Method for a Free Isoperimetric Optimal Control Problem', Mathematical and Computational Applications. doi: 10.3390/mca23040064.

IEEE

I. Abouelkheir, F. E. Kihal, M. Rachik, and I. Elmouki, "Time Needed to Control an Epidemic with Restricted Resources in SIR Model with Short-Term Controlled Population: A Fixed Point Method for a Free Isoperimetric Optimal Control Problem," Mathematical and Computational Applications, 2018. doi: 10.3390/mca23040064.

Vancouver

Abouelkheir I, Kihal FE, Rachik M, Elmouki I. Time Needed to Control an Epidemic with Restricted Resources in SIR Model with Short-Term Controlled Population: A Fixed Point Method for a Free Isoperimetric Optimal Control Problem. Mathematical and Computational Applications. 2018. doi: 10.3390/mca23040064.

MLA

Abouelkheir, Imane, et al.. "Time Needed to Control an Epidemic with Restricted Resources in SIR Model with Short-Term Controlled Population: A Fixed Point Method for a Free Isoperimetric Optimal Control Problem." Mathematical and Computational Applications, 2018. https://doi.org/10.3390/mca23040064.

Chicago

Abouelkheir, I., Kihal, F. E., Rachik, M., Elmouki, I.. "Time Needed to Control an Epidemic with Restricted Resources in SIR Model with Short-Term Controlled Population: A Fixed Point Method for a Free Isoperimetric Optimal Control Problem." Mathematical and Computational Applications (2018). https://doi.org/10.3390/mca23040064.

BibTeX

@article{abouelkheir2018, title={Time Needed to Control an Epidemic with Restricted Resources in SIR Model with Short-Term Controlled Population: A Fixed Point Method for a Free Isoperimetric Optimal Control Problem}, author={Abouelkheir, Imane and Kihal, Fadwa El and Rachik, Mostafa and Elmouki, Ilias}, journal={Mathematical and Computational Applications}, year={2018}, doi={10.3390/mca23040064}, }

Conference 2018 Cited by 0
H Tejaswini, Radhakrishna Dodmane, Tejaswini H — Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017 — DOI: 10.1109/SmartTechCon.2017.8358605
Cite this publication
APA

Tejaswini, H., Dodmane, R., & H, T. (2018). Cascade ciphering technique for confidential, authenticated and integrity preserved transmission of images over a network. Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017. https://doi.org/10.1109/SmartTechCon.2017.8358605

Harvard

Tejaswini, H., Dodmane, R. and H, T. (2018) 'Cascade ciphering technique for confidential, authenticated and integrity preserved transmission of images over a network', Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017. doi: 10.1109/SmartTechCon.2017.8358605.

IEEE

H. Tejaswini, R. Dodmane, and T. H, "Cascade ciphering technique for confidential, authenticated and integrity preserved transmission of images over a network," Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017, 2018. doi: 10.1109/SmartTechCon.2017.8358605.

Vancouver

Tejaswini H, Dodmane R, H T. Cascade ciphering technique for confidential, authenticated and integrity preserved transmission of images over a network. Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017. 2018. doi: 10.1109/SmartTechCon.2017.8358605.

MLA

Tejaswini, H, et al.. "Cascade ciphering technique for confidential, authenticated and integrity preserved transmission of images over a network." Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017, 2018. https://doi.org/10.1109/SmartTechCon.2017.8358605.

Chicago

Tejaswini, H., Dodmane, R., H, T.. "Cascade ciphering technique for confidential, authenticated and integrity preserved transmission of images over a network." Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017 (2018). https://doi.org/10.1109/SmartTechCon.2017.8358605.

BibTeX

@inproceedings{tejaswini2018, title={Cascade ciphering technique for confidential, authenticated and integrity preserved transmission of images over a network}, author={Tejaswini, H and Dodmane, Radhakrishna and H, Tejaswini}, booktitle={Proceedings of the 2017 International Conference On Smart Technology for Smart Nation, SmartTechCon 2017}, year={2018}, doi={10.1109/SmartTechCon.2017.8358605}, }

Conference 2017 Cited by 22
Md. Abdul Alim Sheikh, Alok Kole, Tanmoy Maity — 2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016 — DOI: 10.1109/ICICPI.2016.7859723
Cite this publication
APA

Sheikh, M. A. A., Kole, A., & Maity, T. (2017). Traffic sign detection and classification using colour feature and neural network. 2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016. https://doi.org/10.1109/ICICPI.2016.7859723

Harvard

Sheikh, M.A.A., Kole, A. and Maity, T. (2017) 'Traffic sign detection and classification using colour feature and neural network', 2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016. doi: 10.1109/ICICPI.2016.7859723.

IEEE

M. A. A. Sheikh, A. Kole, and T. Maity, "Traffic sign detection and classification using colour feature and neural network," 2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016, 2017. doi: 10.1109/ICICPI.2016.7859723.

Vancouver

Sheikh MAA, Kole A, Maity T. Traffic sign detection and classification using colour feature and neural network. 2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016. 2017. doi: 10.1109/ICICPI.2016.7859723.

MLA

Sheikh, Md. Abdul Alim, et al.. "Traffic sign detection and classification using colour feature and neural network." 2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016, 2017. https://doi.org/10.1109/ICICPI.2016.7859723.

Chicago

Sheikh, M. A. A., Kole, A., Maity, T.. "Traffic sign detection and classification using colour feature and neural network." 2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016 (2017). https://doi.org/10.1109/ICICPI.2016.7859723.

BibTeX

@inproceedings{sheikh2017, title={Traffic sign detection and classification using colour feature and neural network}, author={Sheikh, Md. Abdul Alim and Kole, Alok and Maity, Tanmoy}, booktitle={2016 International Conference on Intelligent Control, Power and Instrumentation, ICICPI 2016}, year={2017}, doi={10.1109/ICICPI.2016.7859723}, }

Journal 2017 Cited by 0
Ilias Elmouki — International Journal of Advances in Applied Mathematics and Mechanics
Cite this publication
APA

Elmouki, I. (2017). How much time is sufficient for benefiting of awareness programs in epidemics prevention? A free final time optimal control approach. International Journal of Advances in Applied Mathematics and Mechanics.

Harvard

Elmouki, I. (2017) 'How much time is sufficient for benefiting of awareness programs in epidemics prevention? A free final time optimal control approach', International Journal of Advances in Applied Mathematics and Mechanics.

IEEE

I. Elmouki, "How much time is sufficient for benefiting of awareness programs in epidemics prevention? A free final time optimal control approach," International Journal of Advances in Applied Mathematics and Mechanics, 2017.

Vancouver

Elmouki I. How much time is sufficient for benefiting of awareness programs in epidemics prevention? A free final time optimal control approach. International Journal of Advances in Applied Mathematics and Mechanics. 2017.

MLA

Elmouki, Ilias. "How much time is sufficient for benefiting of awareness programs in epidemics prevention? A free final time optimal control approach." International Journal of Advances in Applied Mathematics and Mechanics, 2017.

Chicago

Elmouki, I.. "How much time is sufficient for benefiting of awareness programs in epidemics prevention? A free final time optimal control approach." International Journal of Advances in Applied Mathematics and Mechanics (2017).

BibTeX

@article{elmouki2017, title={How much time is sufficient for benefiting of awareness programs in epidemics prevention? A free final time optimal control approach}, author={Elmouki, Ilias}, journal={International Journal of Advances in Applied Mathematics and Mechanics}, year={2017}, }

Journal 2017 Cited by 12
R. Aboulaich, A. Darouichi, I. Elmouki, A. Jraifi — Mathematical Modelling of Natural Phenomena — DOI: 10.1051/mmnp/201712507
Cite this publication
APA

Aboulaich, R., Darouichi, A., Elmouki, I., & Jraifi, A. (2017). A stochastic optimal control model for BCG immunotherapy in superficial bladder cancer. Mathematical Modelling of Natural Phenomena. https://doi.org/10.1051/mmnp/201712507

Harvard

Aboulaich, R., Darouichi, A., Elmouki, I. and Jraifi, A. (2017) 'A stochastic optimal control model for BCG immunotherapy in superficial bladder cancer', Mathematical Modelling of Natural Phenomena. doi: 10.1051/mmnp/201712507.

IEEE

R. Aboulaich, A. Darouichi, I. Elmouki, and A. Jraifi, "A stochastic optimal control model for BCG immunotherapy in superficial bladder cancer," Mathematical Modelling of Natural Phenomena, 2017. doi: 10.1051/mmnp/201712507.

Vancouver

Aboulaich R, Darouichi A, Elmouki I, Jraifi A. A stochastic optimal control model for BCG immunotherapy in superficial bladder cancer. Mathematical Modelling of Natural Phenomena. 2017. doi: 10.1051/mmnp/201712507.

MLA

Aboulaich, R., et al.. "A stochastic optimal control model for BCG immunotherapy in superficial bladder cancer." Mathematical Modelling of Natural Phenomena, 2017. https://doi.org/10.1051/mmnp/201712507.

Chicago

Aboulaich, R., Darouichi, A., Elmouki, I., Jraifi, A.. "A stochastic optimal control model for BCG immunotherapy in superficial bladder cancer." Mathematical Modelling of Natural Phenomena (2017). https://doi.org/10.1051/mmnp/201712507.

BibTeX

@article{aboulaich2017, title={A stochastic optimal control model for BCG immunotherapy in superficial bladder cancer}, author={Aboulaich, R. and Darouichi, A. and Elmouki, I. and Jraifi, A.}, journal={Mathematical Modelling of Natural Phenomena}, year={2017}, doi={10.1051/mmnp/201712507}, }

Journal 2017 Cited by 0
Ilias Elmouki — Journal of Mathematical and Computational Science
Cite this publication
APA

Elmouki, I. (2017). A multi-regions SEIS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells. Journal of Mathematical and Computational Science.

Harvard

Elmouki, I. (2017) 'A multi-regions SEIS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells', Journal of Mathematical and Computational Science.

IEEE

I. Elmouki, "A multi-regions SEIS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells," Journal of Mathematical and Computational Science, 2017.

Vancouver

Elmouki I. A multi-regions SEIS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells. Journal of Mathematical and Computational Science. 2017.

MLA

Elmouki, Ilias. "A multi-regions SEIS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells." Journal of Mathematical and Computational Science, 2017.

Chicago

Elmouki, I.. "A multi-regions SEIS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells." Journal of Mathematical and Computational Science (2017).

BibTeX

@article{elmouki2017, title={A multi-regions SEIS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells}, author={Elmouki, Ilias}, journal={Journal of Mathematical and Computational Science}, year={2017}, }

Journal 2017 Cited by 0
Ilias Elmouki — International Journal of Advances in Applied Mathematics and Mechanics
Cite this publication
APA

Elmouki, I. (2017). A multi-regions SEIRS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells. International Journal of Advances in Applied Mathematics and Mechanics.

Harvard

Elmouki, I. (2017) 'A multi-regions SEIRS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells', International Journal of Advances in Applied Mathematics and Mechanics.

IEEE

I. Elmouki, "A multi-regions SEIRS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells," International Journal of Advances in Applied Mathematics and Mechanics, 2017.

Vancouver

Elmouki I. A multi-regions SEIRS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells. International Journal of Advances in Applied Mathematics and Mechanics. 2017.

MLA

Elmouki, Ilias. "A multi-regions SEIRS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells." International Journal of Advances in Applied Mathematics and Mechanics, 2017.

Chicago

Elmouki, I.. "A multi-regions SEIRS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells." International Journal of Advances in Applied Mathematics and Mechanics (2017).

BibTeX

@article{elmouki2017, title={A multi-regions SEIRS discrete epidemic model with a travel-blocking vicinity optimal control approach on cells}, author={Elmouki, Ilias}, journal={International Journal of Advances in Applied Mathematics and Mechanics}, year={2017}, }

Journal 2017 Cited by 20
Omar Zakary, Mostafa Rachik, Ilias Elmouki — Mathematical Methods in the Applied Sciences — DOI: 10.1002/mma.4048
Cite this publication
APA

Zakary, O., Rachik, M., & Elmouki, I. (2017). A multi-regional epidemic model for controlling the spread of Ebola: awareness, treatment, and travel-blocking optimal control approaches. Mathematical Methods in the Applied Sciences. https://doi.org/10.1002/mma.4048

Harvard

Zakary, O., Rachik, M. and Elmouki, I. (2017) 'A multi-regional epidemic model for controlling the spread of Ebola: awareness, treatment, and travel-blocking optimal control approaches', Mathematical Methods in the Applied Sciences. doi: 10.1002/mma.4048.

IEEE

O. Zakary, M. Rachik, and I. Elmouki, "A multi-regional epidemic model for controlling the spread of Ebola: awareness, treatment, and travel-blocking optimal control approaches," Mathematical Methods in the Applied Sciences, 2017. doi: 10.1002/mma.4048.

Vancouver

Zakary O, Rachik M, Elmouki I. A multi-regional epidemic model for controlling the spread of Ebola: awareness, treatment, and travel-blocking optimal control approaches. Mathematical Methods in the Applied Sciences. 2017. doi: 10.1002/mma.4048.

MLA

Zakary, Omar, et al.. "A multi-regional epidemic model for controlling the spread of Ebola: awareness, treatment, and travel-blocking optimal control approaches." Mathematical Methods in the Applied Sciences, 2017. https://doi.org/10.1002/mma.4048.

Chicago

Zakary, O., Rachik, M., Elmouki, I.. "A multi-regional epidemic model for controlling the spread of Ebola: awareness, treatment, and travel-blocking optimal control approaches." Mathematical Methods in the Applied Sciences (2017). https://doi.org/10.1002/mma.4048.

BibTeX

@article{zakary2017, title={A multi-regional epidemic model for controlling the spread of Ebola: awareness, treatment, and travel-blocking optimal control approaches}, author={Zakary, Omar and Rachik, Mostafa and Elmouki, Ilias}, journal={Mathematical Methods in the Applied Sciences}, year={2017}, doi={10.1002/mma.4048}, }

Journal 2017 Cited by 0
Ilias Elmouki — American Journal of Computational and Applied Mathematics
Cite this publication
APA

Elmouki, I. (2017). A Multi-regions SIS Discrete Influenza Pandemic Model with a Travel-blocking Vicinity Optimal Control Approach on Cells. American Journal of Computational and Applied Mathematics.

Harvard

Elmouki, I. (2017) 'A Multi-regions SIS Discrete Influenza Pandemic Model with a Travel-blocking Vicinity Optimal Control Approach on Cells', American Journal of Computational and Applied Mathematics.

IEEE

I. Elmouki, "A Multi-regions SIS Discrete Influenza Pandemic Model with a Travel-blocking Vicinity Optimal Control Approach on Cells," American Journal of Computational and Applied Mathematics, 2017.

Vancouver

Elmouki I. A Multi-regions SIS Discrete Influenza Pandemic Model with a Travel-blocking Vicinity Optimal Control Approach on Cells. American Journal of Computational and Applied Mathematics. 2017.

MLA

Elmouki, Ilias. "A Multi-regions SIS Discrete Influenza Pandemic Model with a Travel-blocking Vicinity Optimal Control Approach on Cells." American Journal of Computational and Applied Mathematics, 2017.

Chicago

Elmouki, I.. "A Multi-regions SIS Discrete Influenza Pandemic Model with a Travel-blocking Vicinity Optimal Control Approach on Cells." American Journal of Computational and Applied Mathematics (2017).

BibTeX

@article{elmouki2017, title={A Multi-regions SIS Discrete Influenza Pandemic Model with a Travel-blocking Vicinity Optimal Control Approach on Cells}, author={Elmouki, Ilias}, journal={American Journal of Computational and Applied Mathematics}, year={2017}, }

Journal 2017 Cited by 6
Imane Abouelkheir, Fadwa Kihal, Mostafa Rachik, Omar Zakary, Ilias Elmouki — British Journal of Mathematics & Computer Science — DOI: 10.9734/bjmcs/2017/31355
Cite this publication
APA

Abouelkheir, I., Kihal, F., Rachik, M., Zakary, O., & Elmouki, I. (2017). A Multi-Regions SIRS Discrete Epidemic Model With a Travel-Blocking Vicinity Optimal Control Approach on Cells. British Journal of Mathematics & Computer Science. https://doi.org/10.9734/bjmcs/2017/31355

Harvard

Abouelkheir, I., Kihal, F., Rachik, M., Zakary, O. and Elmouki, I. (2017) 'A Multi-Regions SIRS Discrete Epidemic Model With a Travel-Blocking Vicinity Optimal Control Approach on Cells', British Journal of Mathematics & Computer Science. doi: 10.9734/bjmcs/2017/31355.

IEEE

I. Abouelkheir, F. Kihal, M. Rachik, O. Zakary, and I. Elmouki, "A Multi-Regions SIRS Discrete Epidemic Model With a Travel-Blocking Vicinity Optimal Control Approach on Cells," British Journal of Mathematics & Computer Science, 2017. doi: 10.9734/bjmcs/2017/31355.

Vancouver

Abouelkheir I, Kihal F, Rachik M, Zakary O, Elmouki I. A Multi-Regions SIRS Discrete Epidemic Model With a Travel-Blocking Vicinity Optimal Control Approach on Cells. British Journal of Mathematics & Computer Science. 2017. doi: 10.9734/bjmcs/2017/31355.

MLA

Abouelkheir, Imane, et al.. "A Multi-Regions SIRS Discrete Epidemic Model With a Travel-Blocking Vicinity Optimal Control Approach on Cells." British Journal of Mathematics & Computer Science, 2017. https://doi.org/10.9734/bjmcs/2017/31355.

Chicago

Abouelkheir, I., Kihal, F., Rachik, M., Zakary, O., Elmouki, I.. "A Multi-Regions SIRS Discrete Epidemic Model With a Travel-Blocking Vicinity Optimal Control Approach on Cells." British Journal of Mathematics & Computer Science (2017). https://doi.org/10.9734/bjmcs/2017/31355.

BibTeX

@article{abouelkheir2017, title={A Multi-Regions SIRS Discrete Epidemic Model With a Travel-Blocking Vicinity Optimal Control Approach on Cells}, author={Abouelkheir, Imane and Kihal, Fadwa and Rachik, Mostafa and Zakary, Omar and Elmouki, Ilias}, journal={British Journal of Mathematics & Computer Science}, year={2017}, doi={10.9734/bjmcs/2017/31355}, }