• Title/Summary/Keyword: Mipv6

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A Scheme for Load Distribution and Macro Mobility in Hierarchical Mobile IPv6 (HMIPv6에서 부하분산 및 매크로 이동성 지원 방안)

  • Seo, Jae-Kwon;Lee, Kyung-Geun
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.44 no.4
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    • pp.49-58
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    • 2007
  • Hierarchical Mobile IPv6 (HMIPv6) has been proposed by Internet Engineering Task Force (IETF) to compensate for such problems as handover latency and signaling overhead in employing Mobile IPv6 (MIPv6). HMIPv6 supports micro-mobility within a domain and introduces a new entity, namely mobility anchor point (MAP) as a local home agent. However, HMIPv6 causes load concentration at a particular MAP and longer handover latency when inter-domain handover occurs. In order to solve such problems, this paper establishes a virtual domain (VD) of a higher layer MAP and proposes a MAP changing algorithm in which the routing path changes between mobile node (MN) and correspondent node(CN) according to the mobile position and the direction of the MN before inter-domain handover occurs. The proposed algorithm not only enables complete handover binding-update of the on-link care of address (LCoA) only when inter-domain handover occurs, but concentrated load of a particular MAP is distributed as well. This is because the MNs registered with higher layer MAP and lower layer MAP coexist in the VD. We simulate the performance of the proposed algorithm and compare with HMIPv6.

Efficient Virtual Machine Migration for Mobile Cloud Using PMIPv6 (모바일 클라우드 환경에서 PMIPv6를 이용한 효율적인 가상머신 마이그레이션)

  • Lee, Tae-Hee;Na, Sang-Ho;Lee, Seung-Jin;Kim, Myeong-Eeob;Huh, Eui-Nam
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.37B no.9
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    • pp.806-813
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    • 2012
  • In a cloud computing environment, various solutions were introduced to provide the service to users such as Infrastructure as a Service (IaaS), Platform as a Service (PaaS), Software as a Service (SaaS) and Desktop as a Service (DaaS). Nowadays, Mobile as a Service (MaaS) to provide the mobility in a cloud environment. In other words, users must have access to data and applications even when they are moving. Thus, to support the mobility to a mobile Thin-Client is the key factor. Related works to support the mobility for mobile devices were Mobile IPv6 and Proxy Mobile IPv6 which showed performance drawbacks such as packet loss during hand-over which could be very critical when collaborating with cloud computing environment. The proposed model in this paper deploys middleware and replica servers to support the data transmission among cloud and PMIPv6 domain. It supports efficient mobility during high-speed movement as well as high-density of mobile nodes in local mobility anchor. In this paper, through performance evaluation, the proposed scheme shows the cost comparison between previous PMIPv6 and verifies its significant efficiency.

Intra-MARIO: Mobility Management Protocol to Support Intra-PAN Handover with Route Optimization for 6LoWPAN (Intra-MARIO: 6LoWPAN에서 PAN 내부 핸드오버를 최적화된 경로로 지원하기 위한 이동성 프로토콜)

  • Ha, Min-Keun;Kim, Seong-Hoon;Hong, Sung-Min;Kim, Dae-Young;Yoe, Hyun
    • Journal of KIISE:Computing Practices and Letters
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    • v.16 no.12
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    • pp.1189-1193
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    • 2010
  • Mobility management is one of the most important research issues in 6LoWPAN, Since the IP-WSN application domain is expanded to real-time applications such as healthcare and surveillance systems, a fast and seamless handover becomes an important criterion in 6LoWPAN. However, a draft of IETF 6LoWPAN WG for mobility support does not decrease handover delay. Although LoWMob supports a fast intra-PAN handover. it can be supported when the infrastructure node has the location information of the other nodes in the mobile node's moving direction. In this paper, we propose a fast and seamless mobility protocol to support intra-PAN handover, named intra-MARIO. In intra-MARIO, a parent node of the mobile node preconfigures its handover to the PAN when the parent node detects its movement, thereby reducing the handover delay. Since intra-MARIO also supports route optimization, the mobile node can communicate with its corresponding nodes through the optimal route. In this paper, we analysis the signaling cost and evaluates that the handover can be completed in 20ms by simulation.

Optimized Route Optimization mode of MIPv6 between Domains Based on AAA (관리상의 도메인간 이동시 AAA 기반의 핸드오버 성능향상 방안)

  • Ryu, Seong-Geun;Mun, Young-Song
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.46 no.9
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    • pp.39-45
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    • 2009
  • When Mobile IPv6 is deployed in commercial network, a mobile node needs AAA services for an authentication, authorization and accounting. AAA and Mobile IPv6 are protocols which are operated independently. Then schemes which merge these protocols have been emerged. These schemes can enable a mobile node to establish a security association between the mobile node and a home agent and to perform a binding update for the home agent using AAA authentication request. But these schemes introduce many signal messages and long handover latency during the handover, since Route Optimization mode for Mobile Ipv6 is performed using Return Routability procedure. To solve this problem, we propose a scheme for Route Optimization mode that the home agent performs the binding update for a correspondent node via the AAA infrastructure between the home agent and the correspondent node instead of Return Routability procedure. For performance evaluation, we analyze signal message transmission costs and handover latencies during handover. We show performance improvement of the proposed scheme which reduces handover latency as 61% compared with the existing scheme.

Authenticated Route Optimization Protocol for Network Mobility Support (네트워크 이동성 지원을 위한 인증된 경로 최적화 프로토콜)

  • Koo, Jung-Doo;Lee, Gi-Sung
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.8 no.4
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    • pp.781-787
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    • 2007
  • Network Mobility (NEMO) basic support protocol doesn't execute the process of route optimization and has not presented the particular security mechanism in other blocks except hi-directional tunnel between Mobile Router (MR) and its Home Agent (HA). Therefore in this paper we process secure route optimization courses through authenticated binding update protocol between MR and its Correspondent Node (CN) and the protocol of the competency of mandate between MR and its Mobile Network Node (MNN); its block also uses an bi-directional tunnel as the block between MR and its HA. The address of each node are generated by the way of Cryptographically Generated Address (CGA) for proving the ownership of address. Finally we analyze the robustness of proposed protocol using security requirements of MIPv6 and existing attacks and the efficiency of this protocol using the connectivity recovery and end-to-end packet transmission delay time.

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