The Experts below are selected from a list of 327 Experts worldwide ranked by ideXlab platform

P P Yupapin - One of the best experts on this subject based on the ideXlab platform.

  • a novel temporal dark bright solitons conversion system via an add drop filter for signal Security use
    Optik, 2010
    Co-Authors: W Siririth, S Mitatha, O Pingern, P P Yupapin
    Abstract:

    Abstract We propose a new design of a Security scheme by using the nonlinear behaviors of temporal dark and bright solitons within a micro-ring resonator system for signal Security Application. When a dark soliton pulse is input into the proposed system, the chaotic signal is generated, where the required bright soliton pulse can be retrieved and detected by the add/drop filtering device. The chaotic wave form can be cancelled by using an add/drop device, which can be connected and used in the communication link. By using the appropriate ring parameters, simulation results obtained have shown that the soliton conversion can be performed. The ring radii used are within the ranges from 5 to 10 μms and A eff =0.10–0.50 μm 2 . In Application, the chaotic signal is generated and formed by the dark soliton within a nonlinear micro-ring device. This can be seen by using the add/drop device, where the bright soliton is formed and detected, which is available to use in communication link. The different temporal soliton response time is seen, the response times of 169 and 84 ns are noted for temporal dark and bright solitons, respectively, which can also be used to form the Security key.

  • random binary code generation using dark bright soliton conversion control within a panda ring resonator
    Journal of Lightwave Technology, 2010
    Co-Authors: T Phatharaworamet, C Teeka, R Jomtarak, S Mitatha, P P Yupapin
    Abstract:

    In this paper, we have derived and presented the dynamic behavior of dark-bright soliton collision within the modified add/drop filter, which it is known as PANDA ring resonator. By using the dark-bright soliton conversion control, the obtained outputs of the dynamic states can be used to form the random binary codes, which can be available for communication Security Application. Results obtained have shown that the random binary codes can be formed by using the polarized light components, whereas the retrieved (decoded) codes can be obtained by using the dark-bright soliton conversion signals. The obtained switching time of 12.8 ns is noted.

T Phatharaworamet - One of the best experts on this subject based on the ideXlab platform.

  • random binary code generation using dark bright soliton conversion control within a panda ring resonator
    Journal of Lightwave Technology, 2010
    Co-Authors: T Phatharaworamet, C Teeka, R Jomtarak, S Mitatha, P P Yupapin
    Abstract:

    In this paper, we have derived and presented the dynamic behavior of dark-bright soliton collision within the modified add/drop filter, which it is known as PANDA ring resonator. By using the dark-bright soliton conversion control, the obtained outputs of the dynamic states can be used to form the random binary codes, which can be available for communication Security Application. Results obtained have shown that the random binary codes can be formed by using the polarized light components, whereas the retrieved (decoded) codes can be obtained by using the dark-bright soliton conversion signals. The obtained switching time of 12.8 ns is noted.

S Mitatha - One of the best experts on this subject based on the ideXlab platform.

  • a novel temporal dark bright solitons conversion system via an add drop filter for signal Security use
    Optik, 2010
    Co-Authors: W Siririth, S Mitatha, O Pingern, P P Yupapin
    Abstract:

    Abstract We propose a new design of a Security scheme by using the nonlinear behaviors of temporal dark and bright solitons within a micro-ring resonator system for signal Security Application. When a dark soliton pulse is input into the proposed system, the chaotic signal is generated, where the required bright soliton pulse can be retrieved and detected by the add/drop filtering device. The chaotic wave form can be cancelled by using an add/drop device, which can be connected and used in the communication link. By using the appropriate ring parameters, simulation results obtained have shown that the soliton conversion can be performed. The ring radii used are within the ranges from 5 to 10 μms and A eff =0.10–0.50 μm 2 . In Application, the chaotic signal is generated and formed by the dark soliton within a nonlinear micro-ring device. This can be seen by using the add/drop device, where the bright soliton is formed and detected, which is available to use in communication link. The different temporal soliton response time is seen, the response times of 169 and 84 ns are noted for temporal dark and bright solitons, respectively, which can also be used to form the Security key.

  • random binary code generation using dark bright soliton conversion control within a panda ring resonator
    Journal of Lightwave Technology, 2010
    Co-Authors: T Phatharaworamet, C Teeka, R Jomtarak, S Mitatha, P P Yupapin
    Abstract:

    In this paper, we have derived and presented the dynamic behavior of dark-bright soliton collision within the modified add/drop filter, which it is known as PANDA ring resonator. By using the dark-bright soliton conversion control, the obtained outputs of the dynamic states can be used to form the random binary codes, which can be available for communication Security Application. Results obtained have shown that the random binary codes can be formed by using the polarized light components, whereas the retrieved (decoded) codes can be obtained by using the dark-bright soliton conversion signals. The obtained switching time of 12.8 ns is noted.

Biplab Sikdar - One of the best experts on this subject based on the ideXlab platform.

  • a survey on iot Security Application areas Security threats and solution architectures
    IEEE Access, 2019
    Co-Authors: Vikas Hassija, Vinay Chamola, Vikas Saxena, Divyansh Jain, Pranav Goyal, Biplab Sikdar
    Abstract:

    The Internet of Things (IoT) is the next era of communication. Using the IoT, physical objects can be empowered to create, receive, and exchange data in a seamless manner. Various IoT Applications focus on automating different tasks and are trying to empower the inanimate physical objects to act without any human intervention. The existing and upcoming IoT Applications are highly promising to increase the level of comfort, efficiency, and automation for the users. To be able to implement such a world in an ever-growing fashion requires high Security, privacy, authentication, and recovery from attacks. In this regard, it is imperative to make the required changes in the architecture of the IoT Applications for achieving end-to-end secure IoT environments. In this paper, a detailed review of the Security-related challenges and sources of threat in the IoT Applications is presented. After discussing the Security issues, various emerging and existing technologies focused on achieving a high degree of trust in the IoT Applications are discussed. Four different technologies, blockchain, fog computing, edge computing, and machine learning, to increase the level of Security in IoT are discussed.

R Jomtarak - One of the best experts on this subject based on the ideXlab platform.

  • random binary code generation using dark bright soliton conversion control within a panda ring resonator
    Journal of Lightwave Technology, 2010
    Co-Authors: T Phatharaworamet, C Teeka, R Jomtarak, S Mitatha, P P Yupapin
    Abstract:

    In this paper, we have derived and presented the dynamic behavior of dark-bright soliton collision within the modified add/drop filter, which it is known as PANDA ring resonator. By using the dark-bright soliton conversion control, the obtained outputs of the dynamic states can be used to form the random binary codes, which can be available for communication Security Application. Results obtained have shown that the random binary codes can be formed by using the polarized light components, whereas the retrieved (decoded) codes can be obtained by using the dark-bright soliton conversion signals. The obtained switching time of 12.8 ns is noted.