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Mobile IPv6 RFCs (91)
RFC 8818: Distributed Mobility Anchoring
Informational- H. Chan
- X. Wei
- J. Lee
- S. Jeon
- CJ. Bernardos
- October 2020
- IETF publication
- Internet Area
Abstract
This document defines distributed mobility anchoring in terms of the different configurations and functions to provide IP mobility support. A network may be configured with distributed mobility anchoring functions for both network-based or host-based mobility support, depending on the network's needs. In a distributed mobility anchoring environment, multiple anchors are available for mid-session switching of an IP prefix anchor. To start a new flow or to handle a flow not requiring IP session continuity as a mobile node moves to a new network, the flow can be started or restarted using an IP address configured from the new IP prefix anchored to the new network. If the flow needs to survive the change of network, there are solutions that can be used to enable IP address mobility. This document describes different anchoring approaches, depending on the IP mobility needs, and how this IP address mobility is handled by the network.
Abstract
This document defines distributed mobility anchoring in terms of the different configurations and functions to provide IP mobility support. A network may be configured with distributed mobility anchoring functions for both network-based or host-based mobility support, depending on the network's needs. In a distributed mobility anchoring environment, multiple anchors are available for mid-session switching of an IP prefix anchor. To start a new flow or to handle a flow not requiring IP session continuity as a mobile node moves to a new network, the flow can be started or restarted using an IP address configured from the new IP prefix anchored to the new network. If the flow needs to survive the change of network, there are solutions that can be used to enable IP address mobility. This document describes different anchoring approaches, depending on the IP mobility needs, and how this IP address mobility is handled by the network.
RFC 8885: Proxy Mobile IPv6 Extensions for Distributed Mobility Management
Experimental- CJ. Bernardos
- A. de la Oliva
- F. Giust
- JC. Zúñiga
- A. Mourad
- October 2020
- IETF publication
- Internet Area
Abstract
Distributed Mobility Management solutions allow networks to be set up in such a way that traffic is distributed optimally and centrally deployed anchors are not relied upon to provide IP mobility support.
There are many different approaches to address Distributed Mobility Management -- for example, extending network-based mobility protocols (like Proxy Mobile IPv6) or client-based mobility protocols (like Mobile IPv6), among others. This document follows the former approach and proposes a solution based on Proxy Mobile IPv6, in which mobility sessions are anchored at the last IP hop router (called the mobility anchor and access router). The mobility anchor and access router is an enhanced access router that is also able to operate as a local mobility anchor or mobility access gateway on a per-prefix basis. The document focuses on the required extensions to effectively support the simultaneous anchoring several flows at different distributed gateways.
Abstract
Distributed Mobility Management solutions allow networks to be set up in such a way that traffic is distributed optimally and centrally deployed anchors are not relied upon to provide IP mobility support.
There are many different approaches to address Distributed Mobility Management -- for example, extending network-based mobility protocols (like Proxy Mobile IPv6) or client-based mobility protocols (like Mobile IPv6), among others. This document follows the former approach and proposes a solution based on Proxy Mobile IPv6, in which mobility sessions are anchored at the last IP hop router (called the mobility anchor and access router). The mobility anchor and access router is an enhanced access router that is also able to operate as a local mobility anchor or mobility access gateway on a per-prefix basis. The document focuses on the required extensions to effectively support the simultaneous anchoring several flows at different distributed gateways.
RFC 8371: Mobile Node Identifier Types for MIPv6
Proposed Standard- C. Perkins
- V. Devarapalli
- July 2018
- IETF publication
- Internet Area
Abstract
This document defines additional identifier type numbers for use with the mobile node identifier option for Mobile IPv6 (MIPv6) as defined by RFC 4283.
Abstract
This document defines additional identifier type numbers for use with the mobile node identifier option for Mobile IPv6 (MIPv6) as defined by RFC 4283.
RFC 8278: Mobile Access Gateway (MAG) Multipath Options
Proposed Standard- P. Seite
- A. Yegin
- S. Gundavelli
- January 2018
- IETF publication
- Internet Area
Abstract
This specification defines extensions to the Proxy Mobile IPv6 (PMIPv6) protocol that allow a mobile access gateway (MAG) to register more than one proxy care-of address (pCoA) with the local mobility anchor (LMA) and to simultaneously establish multiple IP tunnels with the LMA. This capability allows the MAG to utilize all the available access networks to route the mobile node's IP traffic. This document defines the following two new mobility header options: the MAG Multipath Binding option and the MAG Identifier option.
Abstract
This specification defines extensions to the Proxy Mobile IPv6 (PMIPv6) protocol that allow a mobile access gateway (MAG) to register more than one proxy care-of address (pCoA) with the local mobility anchor (LMA) and to simultaneously establish multiple IP tunnels with the LMA. This capability allows the MAG to utilize all the available access networks to route the mobile node's IP traffic. This document defines the following two new mobility header options: the MAG Multipath Binding option and the MAG Identifier option.
RFC 8191: Home Network Prefix Renumbering in Proxy Mobile IPv6 (PMIPv6)
Proposed Standard- Z. Yan
- J. Lee
- X. Lee
- August 2017
- IETF publication
- Internet Area
Abstract
In the basic Proxy Mobile IPv6 (PMIPv6) specification, a Mobile Node (MN) is assigned with a Home Network Prefix (HNP) during its initial attachment, and the MN configures its Home Address (HoA) with the HNP. During the movement of the MN, the HNP remains unchanged to keep ongoing communications associated with the HoA. However, the current PMIPv6 specification does not specify related operations when HNP renumbering has occurred (e.g., due to change of service provider or site topology, etc.). In this document, a solution to support HNP renumbering is proposed, as an optional extension of the PMIPv6 specification.
Abstract
In the basic Proxy Mobile IPv6 (PMIPv6) specification, a Mobile Node (MN) is assigned with a Home Network Prefix (HNP) during its initial attachment, and the MN configures its Home Address (HoA) with the HNP. During the movement of the MN, the HNP remains unchanged to keep ongoing communications associated with the HoA. However, the current PMIPv6 specification does not specify related operations when HNP renumbering has occurred (e.g., due to change of service provider or site topology, etc.). In this document, a solution to support HNP renumbering is proposed, as an optional extension of the PMIPv6 specification.
RFC 7839: Access-Network-Identifier Option in DHCP
Proposed Standard- S. Bhandari
- S. Gundavelli
- M. Grayson
- B. Volz
- J. Korhonen
- June 2016
- IETF publication
- Internet Area
Abstract
This document specifies the format and mechanism that is to be used for encoding Access-Network Identifiers in DHCPv4 and DHCPv6 messages by defining new Access-Network-Identifier options and sub-options.
Abstract
This document specifies the format and mechanism that is to be used for encoding Access-Network Identifiers in DHCPv4 and DHCPv6 messages by defining new Access-Network-Identifier options and sub-options.
RFC 7864: Proxy Mobile IPv6 Extensions to Support Flow Mobility
Proposed Standard- CJ. Bernardos
- May 2016
- IETF publication
- Internet Area
Abstract
Proxy Mobile IPv6 (PMIPv6) allows a mobile node to connect to the same PMIPv6 domain through different interfaces. This document describes extensions to the PMIPv6 protocol that are required to support network-based flow mobility over multiple physical interfaces.
This document updates RFC 5213. The extensions described in this document consist of the operations performed by the local mobility anchor and the mobile access gateway to manage the prefixes assigned to the different interfaces of the mobile node, as well as how the forwarding policies are handled by the network to ensure consistent flow mobility management.
Abstract
Proxy Mobile IPv6 (PMIPv6) allows a mobile node to connect to the same PMIPv6 domain through different interfaces. This document describes extensions to the PMIPv6 protocol that are required to support network-based flow mobility over multiple physical interfaces.
This document updates RFC 5213. The extensions described in this document consist of the operations performed by the local mobility anchor and the mobile access gateway to manage the prefixes assigned to the different interfaces of the mobile node, as well as how the forwarding policies are handled by the network to ensure consistent flow mobility management.
RFC 7563: Extensions to the Proxy Mobile IPv6 (PMIPv6) Access Network Identifier Option
Proposed Standard- R. Pazhyannur
- S. Speicher
- S. Gundavelli
- J. Korhonen
- J. Kaippallimalil
- June 2015
- IETF publication
- Internet Area
Abstract
The Access Network Identifier (ANI) mobility option was introduced in RFC 6757, "Access Network Identifier (ANI) Option for Proxy Mobile IPv6". This enables a Mobile Access Gateway (MAG) to convey identifiers like the network identifier, geolocation, and operator identifier. This specification extends the Access Network Identifier mobility option with sub-options to carry the civic location and the MAG group identifier. This specification also defines an ANI Update-Timer sub-option that determines when and how often the ANI option will be updated.
Abstract
The Access Network Identifier (ANI) mobility option was introduced in RFC 6757, "Access Network Identifier (ANI) Option for Proxy Mobile IPv6". This enables a Mobile Access Gateway (MAG) to convey identifiers like the network identifier, geolocation, and operator identifier. This specification extends the Access Network Identifier mobility option with sub-options to carry the civic location and the MAG group identifier. This specification also defines an ANI Update-Timer sub-option that determines when and how often the ANI option will be updated.
RFC 7561: Mapping Quality of Service (QoS) Procedures of Proxy Mobile IPv6 (PMIPv6) and WLAN
Informational- J. Kaippallimalil
- R. Pazhyannur
- P. Yegani
- June 2015
- IETF publication
- Internet Area
Abstract
This document provides guidelines for achieving end-to-end Quality of Service (QoS) in a Proxy Mobile IPv6 (PMIPv6) domain where the access network is based on IEEE 802.11. RFC 7222 describes QoS negotiation between a Mobile Access Gateway (MAG) and Local Mobility Anchor (LMA) in a PMIPv6 mobility domain. The negotiated QoS parameters can be used for QoS policing and marking of packets to enforce QoS differentiation on the path between the MAG and LMA. IEEE 802.11 and Wi-Fi Multimedia - Admission Control (WMM-AC) describe methods for QoS negotiation between a Wi-Fi Station (MN in PMIPv6 terminology) and an Access Point. This document provides a mapping between the above two sets of QoS procedures and the associated QoS parameters. This document is intended to be used as a companion document to RFC 7222 to enable implementation of end-to-end QoS.
Abstract
This document provides guidelines for achieving end-to-end Quality of Service (QoS) in a Proxy Mobile IPv6 (PMIPv6) domain where the access network is based on IEEE 802.11. RFC 7222 describes QoS negotiation between a Mobile Access Gateway (MAG) and Local Mobility Anchor (LMA) in a PMIPv6 mobility domain. The negotiated QoS parameters can be used for QoS policing and marking of packets to enforce QoS differentiation on the path between the MAG and LMA. IEEE 802.11 and Wi-Fi Multimedia - Admission Control (WMM-AC) describe methods for QoS negotiation between a Wi-Fi Station (MN in PMIPv6 terminology) and an Access Point. This document provides a mapping between the above two sets of QoS procedures and the associated QoS parameters. This document is intended to be used as a companion document to RFC 7222 to enable implementation of end-to-end QoS.
RFC 7411: Multicast Listener Extensions for Mobile IPv6 (MIPv6) and Proxy Mobile IPv6 (PMIPv6) Fast Handovers
Experimental- T. Schmidt
- M. Waehlisch
- R. Koodli
- G. Fairhurst
- D. Liu
- November 2014
- IETF publication
- Internet Area
Abstract
Fast handover protocols for Mobile IPv6 (MIPv6) and Proxy Mobile IPv6 (PMIPv6) define mobility management procedures that support unicast communication at reduced handover latency. Fast handover base operations do not affect multicast communication and, hence, do not accelerate handover management for native multicast listeners. Many multicast applications like IPTV or conferencing, though, comprise delay-sensitive, real-time traffic and will benefit from fast handover completion. This document specifies extension of the Mobile IPv6 Fast Handovers (FMIPv6) and the Fast Handovers for Proxy Mobile IPv6 (PFMIPv6) protocols to include multicast traffic management in fast handover operations. This multicast support is provided first at the control plane by management of rapid context transfer between access routers and second at the data plane by optional fast traffic forwarding that may include buffering. An FMIPv6 access router indicates support for multicast using an updated Proxy Router Advertisements message format.
This document updates RFC 5568, "Mobile IPv6 Fast Handovers".
Abstract
Fast handover protocols for Mobile IPv6 (MIPv6) and Proxy Mobile IPv6 (PMIPv6) define mobility management procedures that support unicast communication at reduced handover latency. Fast handover base operations do not affect multicast communication and, hence, do not accelerate handover management for native multicast listeners. Many multicast applications like IPTV or conferencing, though, comprise delay-sensitive, real-time traffic and will benefit from fast handover completion. This document specifies extension of the Mobile IPv6 Fast Handovers (FMIPv6) and the Fast Handovers for Proxy Mobile IPv6 (PFMIPv6) protocols to include multicast traffic management in fast handover operations. This multicast support is provided first at the control plane by management of rapid context transfer between access routers and second at the data plane by optional fast traffic forwarding that may include buffering. An FMIPv6 access router indicates support for multicast using an updated Proxy Router Advertisements message format.
This document updates RFC 5568, "Mobile IPv6 Fast Handovers".
RFC 7389: Separation of Control and User Plane for Proxy Mobile IPv6
Proposed Standard- R. Wakikawa
- R. Pazhyannur
- S. Gundavelli
- C. Perkins
- October 2014
- IETF publication
- Internet Area
Abstract
This document specifies a method to split the control plane (CP) and user plane (UP) for a network infrastructure based on Proxy Mobile IPv6 (PMIPv6). Existing specifications allow a mobile access gateway (MAG) to separate its control and user plane using the Alternate Care-of Address mobility option for IPv6 or Alternate IPv4 Care-of Address option for IPv4. However, the current specification does not provide any mechanism allowing the local mobility anchor (LMA) to perform an analogous functional split. To remedy that shortcoming, this document specifies a mobility option enabling an LMA to provide an alternate LMA address to be used for the bidirectional user-plane traffic between the MAG and LMA. With this new option, an LMA will be able to use an IP address for its user plane that is different than the IP address used for the control plane.
Abstract
This document specifies a method to split the control plane (CP) and user plane (UP) for a network infrastructure based on Proxy Mobile IPv6 (PMIPv6). Existing specifications allow a mobile access gateway (MAG) to separate its control and user plane using the Alternate Care-of Address mobility option for IPv6 or Alternate IPv4 Care-of Address option for IPv4. However, the current specification does not provide any mechanism allowing the local mobility anchor (LMA) to perform an analogous functional split. To remedy that shortcoming, this document specifies a mobility option enabling an LMA to provide an alternate LMA address to be used for the bidirectional user-plane traffic between the MAG and LMA. With this new option, an LMA will be able to use an IP address for its user plane that is different than the IP address used for the control plane.
RFC 7287: Mobile Multicast Sender Support in Proxy Mobile IPv6 (PMIPv6) Domains
Experimental- T. Schmidt
- S. Gao
- H. Zhang
- M. Waehlisch
- June 2014
- IETF publication
- Internet Area
Abstract
Multicast communication can be enabled in Proxy Mobile IPv6 (PMIPv6) domains via the Local Mobility Anchors by deploying Multicast Listener Discovery (MLD) proxy functions at Mobile Access Gateways, by using direct traffic distribution within an ISP's access network, or by selective route optimization schemes. This document describes a base solution and an experimental protocol to support mobile multicast senders in PMIPv6 domains for all three scenarios. Protocol optimizations for synchronizing PMIPv6 with PIM, as well as a peering function for MLD proxies are defined. Mobile sources always remain agnostic of multicast mobility operations.
Abstract
Multicast communication can be enabled in Proxy Mobile IPv6 (PMIPv6) domains via the Local Mobility Anchors by deploying Multicast Listener Discovery (MLD) proxy functions at Mobile Access Gateways, by using direct traffic distribution within an ISP's access network, or by selective route optimization schemes. This document describes a base solution and an experimental protocol to support mobile multicast senders in PMIPv6 domains for all three scenarios. Protocol optimizations for synchronizing PMIPv6 with PIM, as well as a peering function for MLD proxies are defined. Mobile sources always remain agnostic of multicast mobility operations.
RFC 7222: Quality-of-Service Option for Proxy Mobile IPv6
Proposed Standard- M. Liebsch
- P. Seite
- H. Yokota
- J. Korhonen
- S. Gundavelli
- May 2014
- IETF publication
- Internet Area
Abstract
This specification defines a new mobility option, the Quality-of- Service (QoS) option, for Proxy Mobile IPv6. This option can be used by the local mobility anchor and the mobile access gateway for negotiating Quality-of-Service parameters for a mobile node's IP flows. The negotiated QoS parameters can be used for QoS policing and marking of packets to enforce QoS differentiation on the path between the local mobility anchor and the mobile access gateway. Furthermore, making QoS parameters available on the mobile access gateway enables mapping of these parameters to QoS rules that are specific to the access technology and allows those rules to be enforced on the access network using access-technology-specific approaches.
Abstract
This specification defines a new mobility option, the Quality-of- Service (QoS) option, for Proxy Mobile IPv6. This option can be used by the local mobility anchor and the mobile access gateway for negotiating Quality-of-Service parameters for a mobile node's IP flows. The negotiated QoS parameters can be used for QoS policing and marking of packets to enforce QoS differentiation on the path between the local mobility anchor and the mobile access gateway. Furthermore, making QoS parameters available on the mobile access gateway enables mapping of these parameters to QoS rules that are specific to the access technology and allows those rules to be enforced on the access network using access-technology-specific approaches.
RFC 7156: Diameter Support for Proxy Mobile IPv6 Localized Routing
Proposed Standard- G. Zorn
- Q. Wu
- J. Korhonen
- April 2014
- IETF publication
- Operations and Management Area
Abstract
In Proxy Mobile IPv6, packets received from a Mobile Node (MN) by the Mobile Access Gateway (MAG) to which it is attached are typically tunneled to a Local Mobility Anchor (LMA) for routing. The term "localized routing" refers to a method by which packets are routed directly between an MN's MAG and the MAG of its Correspondent Node (CN) without involving any LMA. In a Proxy Mobile IPv6 deployment, it may be desirable to control the establishment of localized routing sessions between two MAGs in a Proxy Mobile IPv6 domain by requiring that the session be authorized. This document specifies how to accomplish this using the Diameter protocol.
Abstract
In Proxy Mobile IPv6, packets received from a Mobile Node (MN) by the Mobile Access Gateway (MAG) to which it is attached are typically tunneled to a Local Mobility Anchor (LMA) for routing. The term "localized routing" refers to a method by which packets are routed directly between an MN's MAG and the MAG of its Correspondent Node (CN) without involving any LMA. In a Proxy Mobile IPv6 deployment, it may be desirable to control the establishment of localized routing sessions between two MAGs in a Proxy Mobile IPv6 domain by requiring that the session be authorized. This document specifies how to accomplish this using the Diameter protocol.
RFC 7161: Proxy Mobile IPv6 (PMIPv6) Multicast Handover Optimization by the Subscription Information Acquisition through the LMA (SIAL)
Experimental- LM. Contreras
- CJ. Bernardos
- I. Soto
- March 2014
- IETF publication
- Internet Area
Abstract
This document specifies an experimental multicast handover optimization mechanism for Proxy Mobile IPv6 (PMIPv6) to accelerate the delivery of multicast traffic to mobile nodes after handovers. The mechanism, called Subscription Information Acquisition through the LMA (SIAL), is based on speeding up the acquisition of mobile nodes' multicast context by the mobile access gateways. To do that, extensions to the current PMIPv6 protocol are proposed. These extensions are not only applicable to the base solution for multicast support in Proxy Mobile IPv6, but they can also be applied to other solutions developed to avoid the tunnel convergence problem. Furthermore, these extensions are also independent of the role played by the mobile access gateway within the multicast network (acting as either multicast listener discovery proxy or multicast router).
Abstract
This document specifies an experimental multicast handover optimization mechanism for Proxy Mobile IPv6 (PMIPv6) to accelerate the delivery of multicast traffic to mobile nodes after handovers. The mechanism, called Subscription Information Acquisition through the LMA (SIAL), is based on speeding up the acquisition of mobile nodes' multicast context by the mobile access gateways. To do that, extensions to the current PMIPv6 protocol are proposed. These extensions are not only applicable to the base solution for multicast support in Proxy Mobile IPv6, but they can also be applied to other solutions developed to avoid the tunnel convergence problem. Furthermore, these extensions are also independent of the role played by the mobile access gateway within the multicast network (acting as either multicast listener discovery proxy or multicast router).
RFC 7148: Prefix Delegation Support for Proxy Mobile IPv6
Proposed Standard- X. Zhou
- J. Korhonen
- C. Williams
- S. Gundavelli
- CJ. Bernardos
- March 2014
- IETF publication
- Internet Area
Abstract
This specification defines extensions to the Proxy Mobile IPv6 protocol for allowing a mobile router in a Proxy Mobile IPv6 domain to obtain IP prefixes for its attached mobile networks using DHCPv6 prefix delegation. Network-based mobility management support is provided for those delegated IP prefixes just as it is provided for the mobile node's home address. Even if the mobile router performs a handoff and changes its network point of attachment, mobility support is ensured for all the delegated IP prefixes and for all the IP nodes in the mobile network that use IP address configuration from those delegated IP prefixes.
Abstract
This specification defines extensions to the Proxy Mobile IPv6 protocol for allowing a mobile router in a Proxy Mobile IPv6 domain to obtain IP prefixes for its attached mobile networks using DHCPv6 prefix delegation. Network-based mobility management support is provided for those delegated IP prefixes just as it is provided for the mobile node's home address. Even if the mobile router performs a handoff and changes its network point of attachment, mobility support is ensured for all the delegated IP prefixes and for all the IP nodes in the mobile network that use IP address configuration from those delegated IP prefixes.
RFC 7109: Flow Bindings Initiated by Home Agents for Mobile IPv6
Experimental- H. Yokota
- D. Kim
- B. Sarikaya
- F. Xia
- February 2014
- Independent Stream publication
Abstract
There are scenarios in which the home agent needs to trigger flow binding operations towards the mobile node, such as moving a flow from one access network to another based on network resource availability. In order for the home agent to be able to initiate interactions for flow bindings with the mobile node, this document defines new signaling messages and sub-options for Mobile IPv6. Flow bindings initiated by a home agent are supported for mobile nodes enabled by both IPv4 and IPv6.
Abstract
There are scenarios in which the home agent needs to trigger flow binding operations towards the mobile node, such as moving a flow from one access network to another based on network resource availability. In order for the home agent to be able to initiate interactions for flow bindings with the mobile node, this document defines new signaling messages and sub-options for Mobile IPv6. Flow bindings initiated by a home agent are supported for mobile nodes enabled by both IPv4 and IPv6.
RFC 7077: Update Notifications for Proxy Mobile IPv6
Proposed Standard- S. Krishnan
- S. Gundavelli
- M. Liebsch
- H. Yokota
- J. Korhonen
- November 2013
- IETF publication
- Internet Area
Abstract
This document specifies protocol enhancements for allowing the local mobility anchor in a Proxy Mobile IPv6 domain to asynchronously notify the mobile access gateway about changes related to a mobility session. These Update Notification messages are exchanged using a new Mobility Header message type specifically designed for this purpose.
Abstract
This document specifies protocol enhancements for allowing the local mobility anchor in a Proxy Mobile IPv6 domain to asynchronously notify the mobile access gateway about changes related to a mobility session. These Update Notification messages are exchanged using a new Mobility Header message type specifically designed for this purpose.
RFC 7028: Multicast Mobility Routing Optimizations for Proxy Mobile IPv6
Experimental- JC. Zuniga
- LM. Contreras
- CJ. Bernardos
- S. Jeon
- Y. Kim
- September 2013
- IETF publication
- Internet Area
Abstract
This document proposes some experimental enhancements to the base solution to support IP multicasting in a Proxy Mobile IPv6 (PMIPv6) domain. These enhancements include the use of a multicast tree mobility anchor as the topological anchor point for multicast traffic, as well as a direct routing option where the Mobile Access Gateway can provide access to multicast content in the local network. The goal of these enhancements is to provide benefits such as reducing multicast traffic replication and supporting different PMIPv6 deployment scenarios.
Abstract
This document proposes some experimental enhancements to the base solution to support IP multicasting in a Proxy Mobile IPv6 (PMIPv6) domain. These enhancements include the use of a multicast tree mobility anchor as the topological anchor point for multicast traffic, as well as a direct routing option where the Mobile Access Gateway can provide access to multicast content in the local network. The goal of these enhancements is to provide benefits such as reducing multicast traffic replication and supporting different PMIPv6 deployment scenarios.
RFC 6909: IPv4 Traffic Offload Selector Option for Proxy Mobile IPv6
Proposed Standard- S. Gundavelli
- X. Zhou
- J. Korhonen
- G. Feige
- R. Koodli
- April 2013
- IETF publication
- Internet Area
Abstract
This specification defines a new mobility option, the IPv4 Traffic Offload Selector option, for Proxy Mobile IPv6. This option can be used by the local mobility anchor and the mobile access gateway for negotiating IPv4 traffic offload policy for a mobility session. Based on the negotiated IPv4 traffic offload policy, a mobile access gateway can selectively offload some of the IPv4 traffic flows in the access network instead of tunneling back to the local mobility anchor in the home network.
Abstract
This specification defines a new mobility option, the IPv4 Traffic Offload Selector option, for Proxy Mobile IPv6. This option can be used by the local mobility anchor and the mobile access gateway for negotiating IPv4 traffic offload policy for a mobility session. Based on the negotiated IPv4 traffic offload policy, a mobile access gateway can selectively offload some of the IPv4 traffic flows in the access network instead of tunneling back to the local mobility anchor in the home network.
RFC 6757: Access Network Identifier (ANI) Option for Proxy Mobile IPv6
Proposed Standard- S. Gundavelli
- J. Korhonen
- M. Grayson
- K. Leung
- R. Pazhyannur
- October 2012
- IETF publication
- Internet Area
Abstract
The local mobility anchor in a Proxy Mobile IPv6 (PMIPv6) domain is able to provide access-network- and access-operator-specific handling or policing of the mobile node traffic using information about the access network to which the mobile node is attached. This specification defines a mechanism and a related mobility option for carrying the access network identifier and the access operator identification information from the mobile access gateway to the local mobility anchor over Proxy Mobile IPv6. [STANDARDS-TRACK]
Abstract
The local mobility anchor in a Proxy Mobile IPv6 (PMIPv6) domain is able to provide access-network- and access-operator-specific handling or policing of the mobile node traffic using information about the access network to which the mobile node is attached. This specification defines a mechanism and a related mobility option for carrying the access network identifier and the access operator identification information from the mobile access gateway to the local mobility anchor over Proxy Mobile IPv6. [STANDARDS-TRACK]
RFC 6705: Localized Routing for Proxy Mobile IPv6
Proposed Standard- S. Krishnan
- R. Koodli
- P. Loureiro
- Q. Wu
- A. Dutta
- September 2012
- IETF publication
- Internet Area
Abstract
Proxy Mobile IPv6 (PMIPv6) is a network based mobility management protocol that enables IP mobility for a host without requiring its participation in any mobility-related signaling. PMIPv6 requires all communications to go through the local mobility anchor. As this can be suboptimal, Localized Routing (LR) allows Mobile Nodes (MNs) attached to the same or different Mobile Access Gateways (MAGs) to route traffic by using localized forwarding or a direct tunnel between the gateways. This document proposes initiation, utilization, and termination mechanisms for localized routing between mobile access gateways within a proxy mobile IPv6 domain. It defines two new signaling messages, Localized Routing Initiation (LRI) and Local Routing Acknowledgment (LRA), that are used to realize this mechanism. [STANDARDS-TRACK]
Abstract
Proxy Mobile IPv6 (PMIPv6) is a network based mobility management protocol that enables IP mobility for a host without requiring its participation in any mobility-related signaling. PMIPv6 requires all communications to go through the local mobility anchor. As this can be suboptimal, Localized Routing (LR) allows Mobile Nodes (MNs) attached to the same or different Mobile Access Gateways (MAGs) to route traffic by using localized forwarding or a direct tunnel between the gateways. This document proposes initiation, utilization, and termination mechanisms for localized routing between mobile access gateways within a proxy mobile IPv6 domain. It defines two new signaling messages, Localized Routing Initiation (LRI) and Local Routing Acknowledgment (LRA), that are used to realize this mechanism. [STANDARDS-TRACK]
RFC 6572: RADIUS Support for Proxy Mobile IPv6
Proposed Standard- F. Xia
- B. Sarikaya
- J. Korhonen
- S. Gundavelli
- D. Damic
- June 2012
- IETF publication
- Internet Area
Abstract
This document defines new attributes to facilitate Proxy Mobile IPv6 operations using the RADIUS infrastructure. The protocol defined in this document uses RADIUS-based interfaces of the mobile access gateway and the local mobility anchor with the AAA server for authentication, authorization, and policy functions. The RADIUS interactions between the mobile access gateway and the RADIUS-based AAA server take place when the mobile node (MN) attaches, authenticates, and authorizes to a Proxy Mobile IPv6 domain. Furthermore, this document defines the RADIUS-based interface between the local mobility anchor and the AAA RADIUS server for authorizing received Proxy Binding Update messages for the mobile node's mobility session. In addition to the interactions related to mobility session setup, this document defines the baseline for the mobile access gateway and the local mobility anchor generated accounting. [STANDARDS-TRACK]
Abstract
This document defines new attributes to facilitate Proxy Mobile IPv6 operations using the RADIUS infrastructure. The protocol defined in this document uses RADIUS-based interfaces of the mobile access gateway and the local mobility anchor with the AAA server for authentication, authorization, and policy functions. The RADIUS interactions between the mobile access gateway and the RADIUS-based AAA server take place when the mobile node (MN) attaches, authenticates, and authorizes to a Proxy Mobile IPv6 domain. Furthermore, this document defines the RADIUS-based interface between the local mobility anchor and the AAA RADIUS server for authorizing received Proxy Binding Update messages for the mobile node's mobility session. In addition to the interactions related to mobility session setup, this document defines the baseline for the mobile access gateway and the local mobility anchor generated accounting. [STANDARDS-TRACK]
RFC 6618: Mobile IPv6 Security Framework Using Transport Layer Security for Communication between the Mobile Node and Home Agent
Experimental- J. Korhonen
- B. Patil
- H. Tschofenig
- D. Kroeselberg
- May 2012
- IETF publication
- Internet Area
Abstract
Mobile IPv6 signaling between a Mobile Node (MN) and its Home Agent (HA) is secured using IPsec. The security association (SA) between an MN and the HA is established using Internet Key Exchange Protocol (IKE) version 1 or 2. The security model specified for Mobile IPv6, which relies on IKE/IPsec, requires interaction between the Mobile IPv6 protocol component and the IKE/IPsec module of the IP stack. This document proposes an alternate security framework for Mobile IPv6 and Dual-Stack Mobile IPv6, which relies on Transport Layer Security for establishing keying material and other bootstrapping parameters required to protect Mobile IPv6 signaling and data traffic between the MN and HA. This document defines an Experimental Protocol for the Internet community.
Abstract
Mobile IPv6 signaling between a Mobile Node (MN) and its Home Agent (HA) is secured using IPsec. The security association (SA) between an MN and the HA is established using Internet Key Exchange Protocol (IKE) version 1 or 2. The security model specified for Mobile IPv6, which relies on IKE/IPsec, requires interaction between the Mobile IPv6 protocol component and the IKE/IPsec module of the IP stack. This document proposes an alternate security framework for Mobile IPv6 and Dual-Stack Mobile IPv6, which relies on Transport Layer Security for establishing keying material and other bootstrapping parameters required to protect Mobile IPv6 signaling and data traffic between the MN and HA. This document defines an Experimental Protocol for the Internet community.
RFC 6543: Reserved IPv6 Interface Identifier for Proxy Mobile IPv6
Proposed Standard- S. Gundavelli
- May 2012
- IETF publication
Abstract
Proxy Mobile IPv6 (RFC 5213) requires that all mobile access gateways use a fixed link-local address and a fixed link-layer address on any of their access links that they share with mobile nodes. This requirement was intended to ensure that a mobile node does not detect any change with respect to its Layer 3 attachment, even after it roams from one mobile access gateway to another. In the absence of any reserved addresses for this use, coordination across vendors and manual configuration of these addresses on all of the mobility elements in a Proxy Mobile IPv6 domain are required. This document attempts to simplify this operational requirement by making a reservation for special addresses that can be used for this purpose. This document also updates RFC 5213. [STANDARDS-TRACK]
Abstract
Proxy Mobile IPv6 (RFC 5213) requires that all mobile access gateways use a fixed link-local address and a fixed link-layer address on any of their access links that they share with mobile nodes. This requirement was intended to ensure that a mobile node does not detect any change with respect to its Layer 3 attachment, even after it roams from one mobile access gateway to another. In the absence of any reserved addresses for this use, coordination across vendors and manual configuration of these addresses on all of the mobility elements in a Proxy Mobile IPv6 domain are required. This document attempts to simplify this operational requirement by making a reservation for special addresses that can be used for this purpose. This document also updates RFC 5213. [STANDARDS-TRACK]
RFC 6602: Bulk Binding Update Support for Proxy Mobile IPv6
Proposed Standard- F. Abinader
- S. Gundavelli
- K. Leung
- S. Krishnan
- D. Premec
- May 2012
- IETF publication
- Internet Area
Abstract
For extending the lifetime of a mobility session, the Proxy Mobile IPv6 specification requires the mobile access gateway to send a Proxy Binding Update message to the local mobility anchor on a per-session basis. In the absence of signaling semantics for performing operations with group-specific scope, this results in a significant amount of signaling traffic on a periodic basis between a given mobile access gateway and a local mobility anchor. This document defines optimizations to the binding update and revocation operations in Proxy Mobile IPv6 for performing operations with group-specific scope with the use of a group identifier. [STANDARDS-TRACK]
Abstract
For extending the lifetime of a mobility session, the Proxy Mobile IPv6 specification requires the mobile access gateway to send a Proxy Binding Update message to the local mobility anchor on a per-session basis. In the absence of signaling semantics for performing operations with group-specific scope, this results in a significant amount of signaling traffic on a periodic basis between a given mobile access gateway and a local mobility anchor. This document defines optimizations to the binding update and revocation operations in Proxy Mobile IPv6 for performing operations with group-specific scope with the use of a group identifier. [STANDARDS-TRACK]
RFC 6610: DHCP Options for Home Information Discovery in Mobile IPv6 (MIPv6)
Proposed Standard- H. Jang
- A. Yegin
- K. Chowdhury
- J. Choi
- T. Lemon
- May 2012
- IETF publication
- Internet Area
Abstract
This document defines a DHCP-based scheme to enable dynamic discovery of Mobile IPv6 home network information. New DHCP options are defined that allow a mobile node to request the home agent IP address, Fully Qualified Domain Name (FQDN), or home network prefix and obtain it via the DHCP response. [STANDARDS-TRACK]
Abstract
This document defines a DHCP-based scheme to enable dynamic discovery of Mobile IPv6 home network information. New DHCP options are defined that allow a mobile node to request the home agent IP address, Fully Qualified Domain Name (FQDN), or home network prefix and obtain it via the DHCP response. [STANDARDS-TRACK]
RFC 6611: Mobile IPv6 (MIPv6) Bootstrapping for the Integrated Scenario
Proposed Standard- K. Chowdhury
- A. Yegin
- May 2012
- IETF publication
- Internet Area
Abstract
Mobile IPv6 bootstrapping can be categorized into two primary scenarios: the split scenario and the integrated scenario. In the split scenario, the mobile node's mobility service is authorized by a different service authorizer than the network access authorizer. In the integrated scenario, the mobile node's mobility service is authorized by the same service authorizer as the network access service authorizer. This document defines a method for home agent information discovery for the integrated scenario. [STANDARDS-TRACK]
Abstract
Mobile IPv6 bootstrapping can be categorized into two primary scenarios: the split scenario and the integrated scenario. In the split scenario, the mobile node's mobility service is authorized by a different service authorizer than the network access authorizer. In the integrated scenario, the mobile node's mobility service is authorized by the same service authorizer as the network access service authorizer. This document defines a method for home agent information discovery for the integrated scenario. [STANDARDS-TRACK]
RFC 6612: Interactions between Proxy Mobile IPv6 (PMIPv6) and Mobile IPv6 (MIPv6): Scenarios and Related Issues
Informational- G. Giaretta
- May 2012
- IETF publication
- Internet Area
Abstract
The use of Proxy Mobile IPv6 (PMIPv6) and Mobile IPv6 (MIPv6) in the same network requires some care. This document discusses scenarios where such mixed usage is appropriate and points out the need for interaction between the two mechanisms. Solutions and recommendations to enable these scenarios are also described. This document is not an Internet Standards Track specification; it is published for informational purposes.
Abstract
The use of Proxy Mobile IPv6 (PMIPv6) and Mobile IPv6 (MIPv6) in the same network requires some care. This document discusses scenarios where such mixed usage is appropriate and points out the need for interaction between the two mechanisms. Solutions and recommendations to enable these scenarios are also described. This document is not an Internet Standards Track specification; it is published for informational purposes.
RFC 6475: Proxy Mobile IPv6 Management Information Base
Proposed Standard- G. Keeni
- K. Koide
- S. Gundavelli
- R. Wakikawa
- May 2012
- IETF publication
- Internet Area
Abstract
This memo defines a portion of the Proxy Mobile IPv6 Management Information Base (MIB) for use with network management protocols in the Internet community. In particular, the Proxy Mobile IPv6 MIB can be used to monitor and control the mobile access gateway (MAG) and the local mobility anchor (LMA) functions of a Proxy Mobile IPv6 (PMIPv6) entity. [STANDARDS-TRACK]
Abstract
This memo defines a portion of the Proxy Mobile IPv6 Management Information Base (MIB) for use with network management protocols in the Internet community. In particular, the Proxy Mobile IPv6 MIB can be used to monitor and control the mobile access gateway (MAG) and the local mobility anchor (LMA) functions of a Proxy Mobile IPv6 (PMIPv6) entity. [STANDARDS-TRACK]
RFC 6463: Runtime Local Mobility Anchor (LMA) Assignment Support for Proxy Mobile IPv6
Proposed Standard- J. Korhonen
- S. Gundavelli
- H. Yokota
- X. Cui
- February 2012
- IETF publication
- Internet Area
Abstract
This document describes a runtime local mobility anchor assignment functionality and corresponding mobility options for Proxy Mobile IPv6. The runtime local mobility anchor assignment takes place during a Proxy Binding Update and a Proxy Binding Acknowledgement message exchange between a mobile access gateway and a local mobility anchor. The runtime local mobility anchor assignment functionality defined in this specification can be used, for example, for load- balancing purposes. [STANDARDS-TRACK]
Abstract
This document describes a runtime local mobility anchor assignment functionality and corresponding mobility options for Proxy Mobile IPv6. The runtime local mobility anchor assignment takes place during a Proxy Binding Update and a Proxy Binding Acknowledgement message exchange between a mobile access gateway and a local mobility anchor. The runtime local mobility anchor assignment functionality defined in this specification can be used, for example, for load- balancing purposes. [STANDARDS-TRACK]
RFC 6496: Secure Proxy ND Support for SEcure Neighbor Discovery (SEND)
Experimental- S. Krishnan
- J. Laganier
- M. Bonola
- A. Garcia-Martinez
- February 2012
- IETF publication
- Internet Area
Abstract
SEcure Neighbor Discovery (SEND) specifies a method for securing Neighbor Discovery (ND) signaling against specific threats. As defined today, SEND assumes that the node sending an ND message is the owner of the address from which the message is sent and/or possesses a key that authorizes the node to act as a router, so that it is in possession of the private key or keys used to generate the digital signature on each message. This means that the Proxy ND signaling performed by nodes that do not possess knowledge of the address owner's private key and/or knowledge of a router's key cannot be secured using SEND. This document extends the current SEND specification in order to secure Proxy ND operation. This document defines an Experimental Protocol for the Internet community.
Abstract
SEcure Neighbor Discovery (SEND) specifies a method for securing Neighbor Discovery (ND) signaling against specific threats. As defined today, SEND assumes that the node sending an ND message is the owner of the address from which the message is sent and/or possesses a key that authorizes the node to act as a router, so that it is in possession of the private key or keys used to generate the digital signature on each message. This means that the Proxy ND signaling performed by nodes that do not possess knowledge of the address owner's private key and/or knowledge of a router's key cannot be secured using SEND. This document extends the current SEND specification in order to secure Proxy ND operation. This document defines an Experimental Protocol for the Internet community.
RFC 6276: DHCPv6 Prefix Delegation for Network Mobility (NEMO)
Proposed Standard- R. Droms
- P. Thubert
- F. Dupont
- W. Haddad
- C. Bernardos
- July 2011
- IETF publication
- Internet Area
Abstract
One aspect of network mobility support is the assignment of a prefix or prefixes to a mobile router for use on the links in the mobile network. This document specifies how DHCPv6 prefix delegation can be used for this configuration task. The mobile router plays the role of requesting router, while the home agent assumes the role of delegating router. When the mobile router is outside its home network, the mobile router also assumes the role of DHCPv6 relay agent, co-located with the requesting router function. [STANDARDS-TRACK]
Abstract
One aspect of network mobility support is the assignment of a prefix or prefixes to a mobile router for use on the links in the mobile network. This document specifies how DHCPv6 prefix delegation can be used for this configuration task. The mobile router plays the role of requesting router, while the home agent assumes the role of delegating router. When the mobile router is outside its home network, the mobile router also assumes the role of DHCPv6 relay agent, co-located with the requesting router function. [STANDARDS-TRACK]
RFC 6275: Mobility Support in IPv6
Proposed Standard- C. Perkins
- D. Johnson
- J. Arkko
- July 2011
- IETF publication
- Internet Area
Abstract
This document specifies Mobile IPv6, a protocol that allows nodes to remain reachable while moving around in the IPv6 Internet. Each mobile node is always identified by its home address, regardless of its current point of attachment to the Internet. While situated away from its home, a mobile node is also associated with a care-of address, which provides information about the mobile node's current location. IPv6 packets addressed to a mobile node's home address are transparently routed to its care-of address. The protocol enables IPv6 nodes to cache the binding of a mobile node's home address with its care-of address, and to then send any packets destined for the mobile node directly to it at this care-of address. To support this operation, Mobile IPv6 defines a new IPv6 protocol and a new destination option. All IPv6 nodes, whether mobile or stationary, can communicate with mobile nodes. This document obsoletes RFC 3775. [STANDARDS-TRACK]
Abstract
This document specifies Mobile IPv6, a protocol that allows nodes to remain reachable while moving around in the IPv6 Internet. Each mobile node is always identified by its home address, regardless of its current point of attachment to the Internet. While situated away from its home, a mobile node is also associated with a care-of address, which provides information about the mobile node's current location. IPv6 packets addressed to a mobile node's home address are transparently routed to its care-of address. The protocol enables IPv6 nodes to cache the binding of a mobile node's home address with its care-of address, and to then send any packets destined for the mobile node directly to it at this care-of address. To support this operation, Mobile IPv6 defines a new IPv6 protocol and a new destination option. All IPv6 nodes, whether mobile or stationary, can communicate with mobile nodes. This document obsoletes RFC 3775. [STANDARDS-TRACK]
RFC 6279: Proxy Mobile IPv6 (PMIPv6) Localized Routing Problem Statement
Informational- M. Liebsch
- S. Jeong
- Q. Wu
- June 2011
- IETF publication
- Internet Area
Abstract
Proxy Mobile IPv6 is the IETF Standard for network-based mobility management. In Proxy Mobile IPv6, mobile nodes are topologically anchored at a Local Mobility Anchor, which forwards all data for registered mobile nodes. The setup and maintenance of localized routing, which allows forwarding of data packets between two mobile nodes' Mobility Access Gateways without involvement of their Local Mobility Anchor in forwarding, is not considered. This document describes the problem space of localized routing in Proxy Mobile IPv6. This document is not an Internet Standards Track specification; it is published for informational purposes.
Abstract
Proxy Mobile IPv6 is the IETF Standard for network-based mobility management. In Proxy Mobile IPv6, mobile nodes are topologically anchored at a Local Mobility Anchor, which forwards all data for registered mobile nodes. The setup and maintenance of localized routing, which allows forwarding of data packets between two mobile nodes' Mobility Access Gateways without involvement of their Local Mobility Anchor in forwarding, is not considered. This document describes the problem space of localized routing in Proxy Mobile IPv6. This document is not an Internet Standards Track specification; it is published for informational purposes.
RFC 6224: Base Deployment for Multicast Listener Support in Proxy Mobile IPv6 (PMIPv6) Domains
Informational- T. Schmidt
- M. Waehlisch
- S. Krishnan
- April 2011
- IETF publication
- Internet Area
Abstract
This document describes deployment options for activating multicast listener functions in Proxy Mobile IPv6 domains without modifying mobility and multicast protocol standards. Similar to home agents in Mobile IPv6, Local Mobility Anchors of Proxy Mobile IPv6 serve as multicast subscription anchor points, while Mobile Access Gateways provide Multicast Listener Discovery (MLD) proxy functions. In this scenario, mobile nodes remain agnostic of multicast mobility operations. Support for mobile multicast senders is outside the scope of this document. This document is not an Internet Standards Track specification; it is published for informational purposes.
Abstract
This document describes deployment options for activating multicast listener functions in Proxy Mobile IPv6 domains without modifying mobility and multicast protocol standards. Similar to home agents in Mobile IPv6, Local Mobility Anchors of Proxy Mobile IPv6 serve as multicast subscription anchor points, while Mobile Access Gateways provide Multicast Listener Discovery (MLD) proxy functions. In this scenario, mobile nodes remain agnostic of multicast mobility operations. Support for mobile multicast senders is outside the scope of this document. This document is not an Internet Standards Track specification; it is published for informational purposes.
RFC 6058: Transient Binding for Proxy Mobile IPv6
Experimental- M. Liebsch
- A. Muhanna
- O. Blume
- March 2011
- IETF publication
- Internet Area
Abstract
This document specifies a mechanism that enhances Proxy Mobile IPv6 protocol signaling to support the creation of a transient binding cache entry that is used to optimize the performance of dual radio handover, as well as single radio handover. This mechanism is applicable to the mobile node's inter-MAG (Mobility Access Gateway) handover while using a single interface or different interfaces. The handover problem space using the Proxy Mobile IPv6 base protocol is analyzed and the use of transient binding cache entries at the local mobility anchor is described. The specified extension to the Proxy Mobile IPv6 protocol ensures optimized forwarding of downlink as well as uplink packets between mobile nodes and the network infrastructure and avoids superfluous packet forwarding delay or even packet loss. This document defines an Experimental Protocol for the Internet community.
Abstract
This document specifies a mechanism that enhances Proxy Mobile IPv6 protocol signaling to support the creation of a transient binding cache entry that is used to optimize the performance of dual radio handover, as well as single radio handover. This mechanism is applicable to the mobile node's inter-MAG (Mobility Access Gateway) handover while using a single interface or different interfaces. The handover problem space using the Proxy Mobile IPv6 base protocol is analyzed and the use of transient binding cache entries at the local mobility anchor is described. The specified extension to the Proxy Mobile IPv6 protocol ensures optimized forwarding of downlink as well as uplink packets between mobile nodes and the network infrastructure and avoids superfluous packet forwarding delay or even packet loss. This document defines an Experimental Protocol for the Internet community.
RFC 6097: Local Mobility Anchor (LMA) Discovery for Proxy Mobile IPv6
Informational- J. Korhonen
- V. Devarapalli
- February 2011
- IETF publication
- Internet Area
Abstract
Large Proxy Mobile IPv6 deployments would benefit from a functionality where a Mobile Access Gateway could dynamically discover a Local Mobility Anchor for a Mobile Node attaching to a Proxy Mobile IPv6 domain. The purpose of the dynamic discovery functionality is to reduce the amount of static configuration in the Mobile Access Gateway. This document describes several possible dynamic Local Mobility Anchor discovery solutions. This document is not an Internet Standards Track specification; it is published for informational purposes.
Abstract
Large Proxy Mobile IPv6 deployments would benefit from a functionality where a Mobile Access Gateway could dynamically discover a Local Mobility Anchor for a Mobile Node attaching to a Proxy Mobile IPv6 domain. The purpose of the dynamic discovery functionality is to reduce the amount of static configuration in the Mobile Access Gateway. This document describes several possible dynamic Local Mobility Anchor discovery solutions. This document is not an Internet Standards Track specification; it is published for informational purposes.
RFC 6088: Traffic Selectors for Flow Bindings
Proposed Standard- G. Tsirtsis
- G. Giarreta
- H. Soliman
- N. Montavont
- January 2011
- IETF publication
- Internet Area
Abstract
This document defines binary formats for IPv4 and IPv6 traffic selectors to be used in conjunction with flow bindings for Mobile IPv6. [STANDARDS-TRACK]
Abstract
This document defines binary formats for IPv4 and IPv6 traffic selectors to be used in conjunction with flow bindings for Mobile IPv6. [STANDARDS-TRACK]
RFC 6089: Flow Bindings in Mobile IPv6 and Network Mobility (NEMO) Basic Support
Proposed Standard- G. Tsirtsis
- H. Soliman
- N. Montavont
- G. Giaretta
- K. Kuladinithi
- January 2011
- IETF publication
- Internet Area
Abstract
This document introduces extensions to Mobile IPv6 that allow nodes to bind one or more flows to a care-of address. These extensions allow multihomed nodes to instruct home agents and other Mobile IPv6 entities to direct inbound flows to specific addresses. [STANDARDS- TRACK]
Abstract
This document introduces extensions to Mobile IPv6 that allow nodes to bind one or more flows to a care-of address. These extensions allow multihomed nodes to instruct home agents and other Mobile IPv6 entities to direct inbound flows to specific addresses. [STANDARDS- TRACK]
RFC 5949: Fast Handovers for Proxy Mobile IPv6
Proposed Standard- H. Yokota
- K. Chowdhury
- R. Koodli
- B. Patil
- F. Xia
- September 2010
- IETF publication
- Internet Area
Abstract
Mobile IPv6 (MIPv6; RFC 3775) provides a mobile node with IP mobility when it performs a handover from one access router to another, and fast handovers for Mobile IPv6 (FMIPv6) are specified to enhance the handover performance in terms of latency and packet loss. While MIPv6 (and FMIPv6 as well) requires the participation of the mobile node in the mobility-related signaling, Proxy Mobile IPv6 (PMIPv6; RFC 5213) provides IP mobility to nodes that either have or do not have MIPv6 functionality without such involvement. Nevertheless, the basic performance of PMIPv6 in terms of handover latency and packet loss is considered no different from that of MIPv6.
When the fast handover is considered in such an environment, several modifications are needed to FMIPv6 to adapt to the network-based mobility management. This document specifies the usage of fast handovers for Mobile IPv6 (FMIPv6; RFC 5568) when Proxy Mobile IPv6 is used as the mobility management protocol. Necessary extensions are specified for FMIPv6 to support the scenario when the mobile node does not have IP mobility functionality and hence is not involved with either MIPv6 or FMIPv6 operations. [STANDARDS-TRACK]
Abstract
Mobile IPv6 (MIPv6; RFC 3775) provides a mobile node with IP mobility when it performs a handover from one access router to another, and fast handovers for Mobile IPv6 (FMIPv6) are specified to enhance the handover performance in terms of latency and packet loss. While MIPv6 (and FMIPv6 as well) requires the participation of the mobile node in the mobility-related signaling, Proxy Mobile IPv6 (PMIPv6; RFC 5213) provides IP mobility to nodes that either have or do not have MIPv6 functionality without such involvement. Nevertheless, the basic performance of PMIPv6 in terms of handover latency and packet loss is considered no different from that of MIPv6.
When the fast handover is considered in such an environment, several modifications are needed to FMIPv6 to adapt to the network-based mobility management. This document specifies the usage of fast handovers for Mobile IPv6 (FMIPv6; RFC 5568) when Proxy Mobile IPv6 is used as the mobility management protocol. Necessary extensions are specified for FMIPv6 to support the scenario when the mobile node does not have IP mobility functionality and hence is not involved with either MIPv6 or FMIPv6 operations. [STANDARDS-TRACK]
RFC 5846: Binding Revocation for IPv6 Mobility
Proposed Standard- A. Muhanna
- M. Khalil
- S. Gundavelli
- K. Chowdhury
- P. Yegani
- June 2010
- IETF publication
- Internet Area
Abstract
This document defines a binding revocation mechanism to terminate a mobile node's mobility session and the associated resources. This mechanism can be used both with base Mobile IPv6 and its extensions, such as Proxy Mobile IPv6. The mechanism allows the mobility entity which initiates the revocation procedure to request its peer to terminate either one, multiple or all specified Binding Cache entries. [STANDARDS-TRACK]
Abstract
This document defines a binding revocation mechanism to terminate a mobile node's mobility session and the associated resources. This mechanism can be used both with base Mobile IPv6 and its extensions, such as Proxy Mobile IPv6. The mechanism allows the mobility entity which initiates the revocation procedure to request its peer to terminate either one, multiple or all specified Binding Cache entries. [STANDARDS-TRACK]
RFC 5847: Heartbeat Mechanism for Proxy Mobile IPv6
Proposed Standard- V. Devarapalli
- R. Koodli
- H. Lim
- N. Kant
- S. Krishnan
- J. Laganier
- June 2010
- IETF publication
- Internet Area
Abstract
Proxy Mobile IPv6 (PMIPv6) is a network-based mobility management protocol. The mobility entities involved in the Proxy Mobile IPv6 protocol, the mobile access gateway (MAG) and the local mobility anchor (LMA), set up tunnels dynamically to manage mobility for a mobile node within the Proxy Mobile IPv6 domain. This document describes a heartbeat mechanism between the MAG and the LMA to detect failures, quickly inform peers in the event of a recovery from node failures, and allow a peer to take appropriate action. [STANDARDS TRACK]
Abstract
Proxy Mobile IPv6 (PMIPv6) is a network-based mobility management protocol. The mobility entities involved in the Proxy Mobile IPv6 protocol, the mobile access gateway (MAG) and the local mobility anchor (LMA), set up tunnels dynamically to manage mobility for a mobile node within the Proxy Mobile IPv6 domain. This document describes a heartbeat mechanism between the MAG and the LMA to detect failures, quickly inform peers in the event of a recovery from node failures, and allow a peer to take appropriate action. [STANDARDS TRACK]
RFC 5845: Generic Routing Encapsulation (GRE) Key Option for Proxy Mobile IPv6
Proposed Standard- A. Muhanna
- M. Khalil
- S. Gundavelli
- K. Leung
- June 2010
- IETF publication
- Internet Area
Abstract
This specification defines a new mobility option for allowing the mobile access gateway and the local mobility anchor to negotiate Generic Routing Encapsulation (GRE) encapsulation mode and exchange the downlink and uplink GRE keys that are used for marking the downlink and uplink traffic that belong to a specific mobility session. In addition, the same mobility option can be used to negotiate the GRE encapsulation mode without exchanging the GRE keys. [STANDARDS-TRACK]
Abstract
This specification defines a new mobility option for allowing the mobile access gateway and the local mobility anchor to negotiate Generic Routing Encapsulation (GRE) encapsulation mode and exchange the downlink and uplink GRE keys that are used for marking the downlink and uplink traffic that belong to a specific mobility session. In addition, the same mobility option can be used to negotiate the GRE encapsulation mode without exchanging the GRE keys. [STANDARDS-TRACK]
RFC 5844: IPv4 Support for Proxy Mobile IPv6
Proposed Standard- R. Wakikawa
- S. Gundavelli
- May 2010
- IETF publication
- Internet Area
Abstract
This document specifies extensions to the Proxy Mobile IPv6 protocol for adding IPv4 protocol support. The scope of IPv4 protocol support is two-fold: 1) enable IPv4 home address mobility support to the mobile node, and 2) allow the mobility entities in the Proxy Mobile IPv6 domain to exchange signaling messages over an IPv4 transport network. [STANDARDS-TRACK]
Abstract
This document specifies extensions to the Proxy Mobile IPv6 protocol for adding IPv4 protocol support. The scope of IPv4 protocol support is two-fold: 1) enable IPv4 home address mobility support to the mobile node, and 2) allow the mobility entities in the Proxy Mobile IPv6 domain to exchange signaling messages over an IPv4 transport network. [STANDARDS-TRACK]
RFC 5779: Diameter Proxy Mobile IPv6: Mobile Access Gateway and Local Mobility Anchor Interaction with Diameter Server
Proposed Standard- J. Korhonen
- J. Bournelle
- K. Chowdhury
- A. Muhanna
- U. Meyer
- February 2010
- IETF publication
- Operations and Management Area
Abstract
This specification defines Authentication, Authorization, and Accounting (AAA) interactions between Proxy Mobile IPv6 entities (both Mobile Access Gateway and Local Mobility Anchor) and a AAA server within a Proxy Mobile IPv6 Domain. These AAA interactions are primarily used to download and update mobile node specific policy profile information between Proxy Mobile IPv6 entities and a remote policy store. [STANDARDS-TRACK]
Abstract
This specification defines Authentication, Authorization, and Accounting (AAA) interactions between Proxy Mobile IPv6 entities (both Mobile Access Gateway and Local Mobility Anchor) and a AAA server within a Proxy Mobile IPv6 Domain. These AAA interactions are primarily used to download and update mobile node specific policy profile information between Proxy Mobile IPv6 entities and a remote policy store. [STANDARDS-TRACK]
RFC 5757: Multicast Mobility in Mobile IP Version 6 (MIPv6): Problem Statement and Brief Survey
Informational- T. Schmidt
- M. Waehlisch
- G. Fairhurst
- February 2010
- IRTF publication
Abstract
This document discusses current mobility extensions to IP-layer multicast. It describes problems arising from mobile group communication in general, the case of multicast listener mobility, and problems for mobile senders using Any Source Multicast and Source-Specific Multicast. Characteristic aspects of multicast routing and deployment issues for fixed IPv6 networks are summarized. Specific properties and interplays with the underlying network access are surveyed with respect to the relevant technologies in the wireless domain. It outlines the principal approaches to multicast mobility, together with a comprehensive exploration of the mobile multicast problem and solution space. This document concludes with a conceptual road map for initial steps in standardization for use by future mobile multicast protocol designers. This document is a product of the IP Mobility Optimizations (MobOpts) Research Group. This document is not an Internet Standards Track specification; it is published for informational purposes.
Abstract
This document discusses current mobility extensions to IP-layer multicast. It describes problems arising from mobile group communication in general, the case of multicast listener mobility, and problems for mobile senders using Any Source Multicast and Source-Specific Multicast. Characteristic aspects of multicast routing and deployment issues for fixed IPv6 networks are summarized. Specific properties and interplays with the underlying network access are surveyed with respect to the relevant technologies in the wireless domain. It outlines the principal approaches to multicast mobility, together with a comprehensive exploration of the mobile multicast problem and solution space. This document concludes with a conceptual road map for initial steps in standardization for use by future mobile multicast protocol designers. This document is a product of the IP Mobility Optimizations (MobOpts) Research Group. This document is not an Internet Standards Track specification; it is published for informational purposes.
RFC 5726: Mobile IPv6 Location Privacy Solutions
Experimental- Y. Qiu
- F. Zhao
- R. Koodli
- February 2010
- IRTF publication
Abstract
Mobile IPv6 (RFC 3775) enables a mobile node to remain reachable while it roams on the Internet. However, the location and movement of the mobile node can be revealed by the IP addresses used in signaling or data packets. In this document, we consider the Mobile IPv6 location privacy problem described in RFC 4882, and propose efficient and secure techniques to protect location privacy of the mobile node. This document is a product of the IP Mobility Optimizations (MobOpts) Research Group. This document defines an Experimental Protocol for the Internet community.
Abstract
Mobile IPv6 (RFC 3775) enables a mobile node to remain reachable while it roams on the Internet. However, the location and movement of the mobile node can be revealed by the IP addresses used in signaling or data packets. In this document, we consider the Mobile IPv6 location privacy problem described in RFC 4882, and propose efficient and secure techniques to protect location privacy of the mobile node. This document is a product of the IP Mobility Optimizations (MobOpts) Research Group. This document defines an Experimental Protocol for the Internet community.
RFC 5778: Diameter Mobile IPv6: Support for Home Agent to Diameter Server Interaction
Proposed Standard- J. Korhonen
- H. Tschofenig
- J. Bournelle
- G. Giaretta
- M. Nakhjiri
- February 2010
- IETF publication
- Operations and Management Area
Abstract
Mobile IPv6 deployments may want to bootstrap their operations dynamically based on an interaction between the home agent and the Diameter server of the Mobile Service Provider. This document specifies the interaction between a Mobile IP home agent and a Diameter server.
This document defines the home agent to the Diameter server communication when the mobile node authenticates using the Internet Key Exchange v2 protocol with the Extensible Authentication Protocol or using the Mobile IPv6 Authentication Protocol. In addition to authentication and authorization, the configuration of Mobile IPv6- specific parameters and accounting is specified in this document. [STANDARDS-TRACK]
Abstract
Mobile IPv6 deployments may want to bootstrap their operations dynamically based on an interaction between the home agent and the Diameter server of the Mobile Service Provider. This document specifies the interaction between a Mobile IP home agent and a Diameter server.
This document defines the home agent to the Diameter server communication when the mobile node authenticates using the Internet Key Exchange v2 protocol with the Extensible Authentication Protocol or using the Mobile IPv6 Authentication Protocol. In addition to authentication and authorization, the configuration of Mobile IPv6- specific parameters and accounting is specified in this document. [STANDARDS-TRACK]
RFC 5677: IEEE 802.21 Mobility Services Framework Design (MSFD)
Proposed Standard- T. Melia
- G. Bajko
- S. Das
- N. Golmie
- JC. Zuniga
- December 2009
- IETF publication
- Internet Area
Abstract
This document describes a mobility services framework design (MSFD) for the IEEE 802.21 Media Independent Handover (MIH) protocol that addresses identified issues associated with the transport of MIH messages. The document also describes mechanisms for Mobility Services (MoS) discovery and transport-layer mechanisms for the reliable delivery of MIH messages. This document does not provide mechanisms for securing the communication between a mobile node (MN) and the Mobility Server. Instead, it is assumed that either lower-layer (e.g., link-layer) security mechanisms or overall system-specific proprietary security solutions are used. [STANDARDS-TRACK]
Abstract
This document describes a mobility services framework design (MSFD) for the IEEE 802.21 Media Independent Handover (MIH) protocol that addresses identified issues associated with the transport of MIH messages. The document also describes mechanisms for Mobility Services (MoS) discovery and transport-layer mechanisms for the reliable delivery of MIH messages. This document does not provide mechanisms for securing the communication between a mobile node (MN) and the Mobility Server. Instead, it is assumed that either lower-layer (e.g., link-layer) security mechanisms or overall system-specific proprietary security solutions are used. [STANDARDS-TRACK]
RFC 5678: Dynamic Host Configuration Protocol (DHCPv4 and DHCPv6) Options for IEEE 802.21 Mobility Services (MoS) Discovery
Proposed Standard- G. Bajko
- S. Das
- December 2009
- IETF publication
- Internet Area
Abstract
This document defines new Dynamic Host Configuration Protocol (DHCPv4 and DHCPv6) options that contain a list of IP addresses and a list of domain names that can be mapped to servers providing IEEE 802.21 type of Mobility Service (MoS) (see RFC 5677). These Mobility Services are used to assist a mobile node (MN) in handover preparation (network discovery) and handover decision (network selection). The services addressed in this document are the Media Independent Handover Services defined in IEEE 802.21. [STANDARDS-TRACK]
Abstract
This document defines new Dynamic Host Configuration Protocol (DHCPv4 and DHCPv6) options that contain a list of IP addresses and a list of domain names that can be mapped to servers providing IEEE 802.21 type of Mobility Service (MoS) (see RFC 5677). These Mobility Services are used to assist a mobile node (MN) in handover preparation (network discovery) and handover decision (network selection). The services addressed in this document are the Media Independent Handover Services defined in IEEE 802.21. [STANDARDS-TRACK]
RFC 5679: Locating IEEE 802.21 Mobility Services Using DNS
Proposed Standard- G. Bajko
- December 2009
- IETF publication
- Internet Area
Abstract
This document defines application service tags that allow service location without relying on rigid domain naming conventions, and DNS procedures for discovering servers that provide IEEE 802.21-defined Mobility Services. Such Mobility Services are used to assist a Mobile Node (MN) supporting IEEE 802.21, in handover preparation (network discovery) and handover decision (network selection). The services addressed by this document are the Media Independent Handover Services defined in IEEE 802.21. [STANDARDS-TRACK]
Abstract
This document defines application service tags that allow service location without relying on rigid domain naming conventions, and DNS procedures for discovering servers that provide IEEE 802.21-defined Mobility Services. Such Mobility Services are used to assist a Mobile Node (MN) supporting IEEE 802.21, in handover preparation (network discovery) and handover decision (network selection). The services addressed by this document are the Media Independent Handover Services defined in IEEE 802.21. [STANDARDS-TRACK]
RFC 5522: Network Mobility Route Optimization Requirements for Operational Use in Aeronautics and Space Exploration Mobile Networks
Informational- W. Eddy
- W. Ivancic
- T. Davis
- October 2009
- IETF publication
- Internet Area
Abstract
This document describes the requirements and desired properties of Network Mobility (NEMO) Route Optimization techniques for use in global-networked communications systems for aeronautics and space exploration.
Substantial input to these requirements was given by aeronautical communications experts outside the IETF, including members of the International Civil Aviation Organization (ICAO) and other aeronautical communications standards bodies. This memo provides information for the Internet community.
Abstract
This document describes the requirements and desired properties of Network Mobility (NEMO) Route Optimization techniques for use in global-networked communications systems for aeronautics and space exploration.
Substantial input to these requirements was given by aeronautical communications experts outside the IETF, including members of the International Civil Aviation Organization (ICAO) and other aeronautical communications standards bodies. This memo provides information for the Internet community.
RFC 5648: Multiple Care-of Addresses Registration
Proposed Standard- R. Wakikawa
- V. Devarapalli
- G. Tsirtsis
- T. Ernst
- K. Nagami
- October 2009
- IETF publication
- Internet Area
Abstract
According to the current Mobile IPv6 specification, a mobile node may have several care-of addresses but only one, called the primary care-of address, can be registered with its home agent and the correspondent nodes. However, for matters of cost, bandwidth, delay, etc, it is useful for the mobile node to get Internet access through multiple accesses simultaneously, in which case the mobile node would be configured with multiple active IPv6 care-of addresses. This document proposes extensions to the Mobile IPv6 protocol to register and use multiple care-of addresses. The extensions proposed in this document can be used by mobile routers using the NEMO (Network Mobility) Basic Support protocol as well. [STANDARDS-TRACK]
Abstract
According to the current Mobile IPv6 specification, a mobile node may have several care-of addresses but only one, called the primary care-of address, can be registered with its home agent and the correspondent nodes. However, for matters of cost, bandwidth, delay, etc, it is useful for the mobile node to get Internet access through multiple accesses simultaneously, in which case the mobile node would be configured with multiple active IPv6 care-of addresses. This document proposes extensions to the Mobile IPv6 protocol to register and use multiple care-of addresses. The extensions proposed in this document can be used by mobile routers using the NEMO (Network Mobility) Basic Support protocol as well. [STANDARDS-TRACK]
RFC 5637: Authentication, Authorization, and Accounting (AAA) Goals for Mobile IPv6
Informational- G. Giaretta
- I. Guardini
- E. Demaria
- J. Bournelle
- R. Lopez
- September 2009
- IETF publication
- Internet Area
Abstract
In commercial and enterprise deployments, Mobile IPv6 can be a service offered by a Mobility Services Provider (MSP). In this case, all protocol operations may need to be explicitly authorized and traced, requiring the interaction between Mobile IPv6 and the AAA infrastructure. Integrating the Authentication, Authorization, and Accounting (AAA) infrastructure (e.g., Network Access Server and AAA server) also offers a solution component for Mobile IPv6 bootstrapping. This document describes various scenarios where a AAA interface for Mobile IPv6 is required. Additionally, it lists design goals and requirements for such an interface. This memo provides information for the Internet community.
Abstract
In commercial and enterprise deployments, Mobile IPv6 can be a service offered by a Mobility Services Provider (MSP). In this case, all protocol operations may need to be explicitly authorized and traced, requiring the interaction between Mobile IPv6 and the AAA infrastructure. Integrating the Authentication, Authorization, and Accounting (AAA) infrastructure (e.g., Network Access Server and AAA server) also offers a solution component for Mobile IPv6 bootstrapping. This document describes various scenarios where a AAA interface for Mobile IPv6 is required. Additionally, it lists design goals and requirements for such an interface. This memo provides information for the Internet community.
RFC 5568: Mobile IPv6 Fast Handovers
Proposed Standard- R. Koodli
- July 2009
- IETF publication
- Internet Area
Abstract
Mobile IPv6 enables a mobile node (MN) to maintain its connectivity to the Internet when moving from one Access Router to another, a process referred to as handover. During handover, there is a period during which the mobile node is unable to send or receive packets because of link-switching delay and IP protocol operations. This "handover latency" resulting from standard Mobile IPv6 procedures (namely, movement detection, new Care-of Address configuration, and Binding Update) is often unacceptable to real-time traffic such as Voice over IP (VoIP). Reducing the handover latency could be beneficial to non-real-time, throughput-sensitive applications as well. This document specifies a protocol to improve handover latency due to Mobile IPv6 procedures. This document does not address improving the link-switching latency.
This document updates the packet formats for the Handover Initiate (HI) and Handover Acknowledge (HAck) messages to the Mobility Header Type. [STANDARDS-TRACK]
Abstract
Mobile IPv6 enables a mobile node (MN) to maintain its connectivity to the Internet when moving from one Access Router to another, a process referred to as handover. During handover, there is a period during which the mobile node is unable to send or receive packets because of link-switching delay and IP protocol operations. This "handover latency" resulting from standard Mobile IPv6 procedures (namely, movement detection, new Care-of Address configuration, and Binding Update) is often unacceptable to real-time traffic such as Voice over IP (VoIP). Reducing the handover latency could be beneficial to non-real-time, throughput-sensitive applications as well. This document specifies a protocol to improve handover latency due to Mobile IPv6 procedures. This document does not address improving the link-switching latency.
This document updates the packet formats for the Handover Initiate (HI) and Handover Acknowledge (HAck) messages to the Mobility Header Type. [STANDARDS-TRACK]
RFC 5555: Mobile IPv6 Support for Dual Stack Hosts and Routers
Proposed Standard- H. Soliman
- June 2009
- IETF publication
- Internet Area
Abstract
The current Mobile IPv6 and Network Mobility (NEMO) specifications support IPv6 only. This specification extends those standards to allow the registration of IPv4 addresses and prefixes, respectively, and the transport of both IPv4 and IPv6 packets over the tunnel to the home agent. This specification also allows the mobile node to roam over both IPv6 and IPv4, including the case where Network Address Translation is present on the path between the mobile node and its home agent. [STANDARDS-TRACK]
Abstract
The current Mobile IPv6 and Network Mobility (NEMO) specifications support IPv6 only. This specification extends those standards to allow the registration of IPv4 addresses and prefixes, respectively, and the transport of both IPv4 and IPv6 packets over the tunnel to the home agent. This specification also allows the mobile node to roam over both IPv6 and IPv4, including the case where Network Address Translation is present on the path between the mobile node and its home agent. [STANDARDS-TRACK]
RFC 5488: Network Mobility (NEMO) Management Information Base
Proposed Standard- S. Gundavelli
- G. Keeni
- K. Koide
- K. Nagami
- April 2009
- IETF publication
- Internet Area
Abstract
This memo defines a portion of the Management Information Base (MIB), the Network Mobility (NEMO) support MIB, for use with network management protocols in the Internet community. In particular, the NEMO MIB will be used to monitor and control a Mobile IPv6 node with NEMO functionality. [STANDARDS-TRACK]
Abstract
This memo defines a portion of the Management Information Base (MIB), the Network Mobility (NEMO) support MIB, for use with network management protocols in the Internet community. In particular, the NEMO MIB will be used to monitor and control a Mobile IPv6 node with NEMO functionality. [STANDARDS-TRACK]
RFC 5447: Diameter Mobile IPv6: Support for Network Access Server to Diameter Server Interaction
Proposed Standard- J. Korhonen
- J. Bournelle
- H. Tschofenig
- C. Perkins
- K. Chowdhury
- February 2009
- IETF publication
- Operations and Management Area
Abstract
A Mobile IPv6 node requires a home agent address, a home address, and a security association with its home agent before it can start utilizing Mobile IPv6. RFC 3775 requires that some or all of these parameters be statically configured. Mobile IPv6 bootstrapping work aims to make this information dynamically available to the mobile node. An important aspect of the Mobile IPv6 bootstrapping solution is to support interworking with existing Authentication, Authorization, and Accounting (AAA) infrastructures. This document describes MIPv6 bootstrapping using the Diameter Network Access Server to home AAA server interface. [STANDARDS-TRACK]
Abstract
A Mobile IPv6 node requires a home agent address, a home address, and a security association with its home agent before it can start utilizing Mobile IPv6. RFC 3775 requires that some or all of these parameters be statically configured. Mobile IPv6 bootstrapping work aims to make this information dynamically available to the mobile node. An important aspect of the Mobile IPv6 bootstrapping solution is to support interworking with existing Authentication, Authorization, and Accounting (AAA) infrastructures. This document describes MIPv6 bootstrapping using the Diameter Network Access Server to home AAA server interface. [STANDARDS-TRACK]
RFC 5419: Why the Authentication Data Suboption is Needed for Mobile IPv6 (MIPv6)
Informational- B. Patil
- G. Dommety
- January 2009
- IETF publication
- Internet Area
Abstract
Mobile IPv6 defines a set of signaling messages that enable the mobile node (MN) to authenticate and perform registration with its home agent (HA). These authentication signaling messages between the mobile node and home agent are secured by an IPsec security association (SA) that is established between the MN and HA. The MIP6 working group has specified a mechanism to secure the Binding Update (BU) and Binding Acknowledgement (BAck) messages using an authentication option, similar to the authentication option in Mobile IPv4, carried within the signaling messages that are exchanged between the MN and HA to establish a binding. This document provides the justifications as to why the authentication option mechanism is needed for Mobile IPv6 deployment in certain environments. This memo provides information for the Internet community.
Abstract
Mobile IPv6 defines a set of signaling messages that enable the mobile node (MN) to authenticate and perform registration with its home agent (HA). These authentication signaling messages between the mobile node and home agent are secured by an IPsec security association (SA) that is established between the MN and HA. The MIP6 working group has specified a mechanism to secure the Binding Update (BU) and Binding Acknowledgement (BAck) messages using an authentication option, similar to the authentication option in Mobile IPv4, carried within the signaling messages that are exchanged between the MN and HA to establish a binding. This document provides the justifications as to why the authentication option mechanism is needed for Mobile IPv6 deployment in certain environments. This memo provides information for the Internet community.
RFC 5380: Hierarchical Mobile IPv6 (HMIPv6) Mobility Management
Proposed Standard- H. Soliman
- C. Castelluccia
- K. ElMalki
- L. Bellier
- October 2008
- IETF publication
- Internet Area
Abstract
This document introduces extensions to Mobile IPv6 and IPv6 Neighbour Discovery to allow for local mobility handling. Hierarchical mobility management for Mobile IPv6 is designed to reduce the amount of signalling between the mobile node, its correspondent nodes, and its home agent. The Mobility Anchor Point (MAP) described in this document can also be used to improve the performance of Mobile IPv6 in terms of handover speed. [STANDARDS-TRACK]
Abstract
This document introduces extensions to Mobile IPv6 and IPv6 Neighbour Discovery to allow for local mobility handling. Hierarchical mobility management for Mobile IPv6 is designed to reduce the amount of signalling between the mobile node, its correspondent nodes, and its home agent. The Mobility Anchor Point (MAP) described in this document can also be used to improve the performance of Mobile IPv6 in terms of handover speed. [STANDARDS-TRACK]
RFC 5213: Proxy Mobile IPv6
Proposed Standard- S. Gundavelli
- K. Leung
- V. Devarapalli
- K. Chowdhury
- B. Patil
- August 2008
- IETF publication
- Internet Area
Abstract
Network-based mobility management enables IP mobility for a host without requiring its participation in any mobility-related signaling. The network is responsible for managing IP mobility on behalf of the host. The mobility entities in the network are responsible for tracking the movements of the host and initiating the required mobility signaling on its behalf. This specification describes a network-based mobility management protocol and is referred to as Proxy Mobile IPv6. [STANDARDS-TRACK]
Abstract
Network-based mobility management enables IP mobility for a host without requiring its participation in any mobility-related signaling. The network is responsible for managing IP mobility on behalf of the host. The mobility entities in the network are responsible for tracking the movements of the host and initiating the required mobility signaling on its behalf. This specification describes a network-based mobility management protocol and is referred to as Proxy Mobile IPv6. [STANDARDS-TRACK]
RFC 5268: Mobile IPv6 Fast Handovers
Proposed Standard- R. Koodli
- June 2008
- IETF publication
- Internet Area
Abstract
Mobile IPv6 enables a Mobile Node (MN) to maintain its connectivity to the Internet when moving from one Access Router to another, a process referred to as handover. During handover, there is a period during which the Mobile Node is unable to send or receive packets because of link switching delay and IP protocol operations. This "handover latency" resulting from standard Mobile IPv6 procedures, namely movement detection, new Care-of Address configuration, and Binding Update, is often unacceptable to real-time traffic such as Voice over IP (VoIP). Reducing the handover latency could be beneficial to non-real-time, throughput-sensitive applications as well. This document specifies a protocol to improve handover latency due to Mobile IPv6 procedures. This document does not address improving the link switching latency. [STANDARDS-TRACK]
Obsoleted by RFC 5568
Abstract
Mobile IPv6 enables a Mobile Node (MN) to maintain its connectivity to the Internet when moving from one Access Router to another, a process referred to as handover. During handover, there is a period during which the Mobile Node is unable to send or receive packets because of link switching delay and IP protocol operations. This "handover latency" resulting from standard Mobile IPv6 procedures, namely movement detection, new Care-of Address configuration, and Binding Update, is often unacceptable to real-time traffic such as Voice over IP (VoIP). Reducing the handover latency could be beneficial to non-real-time, throughput-sensitive applications as well. This document specifies a protocol to improve handover latency due to Mobile IPv6 procedures. This document does not address improving the link switching latency. [STANDARDS-TRACK]
RFC 5269: Distributing a Symmetric Fast Mobile IPv6 (FMIPv6) Handover Key Using SEcure Neighbor Discovery (SEND)
Proposed Standard- J. Kempf
- R. Koodli
- June 2008
- IETF publication
- Internet Area
Abstract
Fast Mobile IPv6 requires that a Fast Binding Update is secured using a security association shared between an Access Router and a Mobile Node in order to avoid certain attacks. In this document, a method for provisioning a shared key from the Access Router to the Mobile Node is defined to protect this signaling. The Mobile Node generates a public/private key pair using the same public key algorithm as for SEND (RFC 3971). The Mobile Node sends the public key to the Access Router. The Access Router encrypts a shared handover key using the public key and sends it back to the Mobile Node. The Mobile Node decrypts the shared handover key using the matching private key, and the handover key is then available for generating an authenticator on a Fast Binding Update. The Mobile Node and Access Router use the Router Solicitation for Proxy Advertisement and Proxy Router Advertisement from Fast Mobile IPv6 for the key exchange. The key exchange messages are required to have SEND security; that is, the source address is a Cryptographically Generated Address (CGA) and the messages are signed using the CGA private key of the sending node. This allows the Access Router, prior to providing the shared handover key, to verify the authorization of the Mobile Node to claim the address so that the previous care-of CGA in the Fast Binding Update can act as the name of the key. [STANDARDS-TRACK]
Abstract
Fast Mobile IPv6 requires that a Fast Binding Update is secured using a security association shared between an Access Router and a Mobile Node in order to avoid certain attacks. In this document, a method for provisioning a shared key from the Access Router to the Mobile Node is defined to protect this signaling. The Mobile Node generates a public/private key pair using the same public key algorithm as for SEND (RFC 3971). The Mobile Node sends the public key to the Access Router. The Access Router encrypts a shared handover key using the public key and sends it back to the Mobile Node. The Mobile Node decrypts the shared handover key using the matching private key, and the handover key is then available for generating an authenticator on a Fast Binding Update. The Mobile Node and Access Router use the Router Solicitation for Proxy Advertisement and Proxy Router Advertisement from Fast Mobile IPv6 for the key exchange. The key exchange messages are required to have SEND security; that is, the source address is a Cryptographically Generated Address (CGA) and the messages are signed using the CGA private key of the sending node. This allows the Access Router, prior to providing the shared handover key, to verify the authorization of the Mobile Node to claim the address so that the previous care-of CGA in the Fast Binding Update can act as the name of the key. [STANDARDS-TRACK]
RFC 5270: Mobile IPv6 Fast Handovers over IEEE 802.16e Networks
Informational- H. Jang
- J. Jee
- Y. Han
- S. Park
- J. Cha
- June 2008
- IETF publication
- Internet Area
Abstract
This document describes how a Mobile IPv6 Fast Handover can be implemented on link layers conforming to the IEEE 802.16e suite of specifications. The proposed scheme tries to achieve seamless handover by exploiting the link-layer handover indicators and thereby synchronizing the IEEE 802.16e handover procedures with the Mobile IPv6 fast handover procedures efficiently. This memo provides information for the Internet community.
Abstract
This document describes how a Mobile IPv6 Fast Handover can be implemented on link layers conforming to the IEEE 802.16e suite of specifications. The proposed scheme tries to achieve seamless handover by exploiting the link-layer handover indicators and thereby synchronizing the IEEE 802.16e handover procedures with the Mobile IPv6 fast handover procedures efficiently. This memo provides information for the Internet community.
RFC 5271: Mobile IPv6 Fast Handovers for 3G CDMA Networks
Informational- H. Yokota
- G. Dommety
- June 2008
- IETF publication
- Internet Area
Abstract
Mobile IPv6 is designed to maintain its connectivity while moving from one network to another. It is adopted in 3G CDMA networks as a way to maintain connectivity when the mobile node (MN) moves between access routers. However, this handover procedure requires not only movement detection by the MN, but also the acquisition of a new Care-of Address and Mobile IPv6 registration with the new care-of address before the traffic can be sent or received in the target network. During this period, packets destined for the mobile node may be lost, which may not be acceptable for a real-time application such as Voice over IP (VoIP) or video telephony. This document specifies fast handover methods in the 3G CDMA networks in order to reduce latency and packet loss during handover. This memo provides information for the Internet community.
Abstract
Mobile IPv6 is designed to maintain its connectivity while moving from one network to another. It is adopted in 3G CDMA networks as a way to maintain connectivity when the mobile node (MN) moves between access routers. However, this handover procedure requires not only movement detection by the MN, but also the acquisition of a new Care-of Address and Mobile IPv6 registration with the new care-of address before the traffic can be sent or received in the target network. During this period, packets destined for the mobile node may be lost, which may not be acceptable for a real-time application such as Voice over IP (VoIP) or video telephony. This document specifies fast handover methods in the 3G CDMA networks in order to reduce latency and packet loss during handover. This memo provides information for the Internet community.
RFC 5164: Mobility Services Transport: Problem Statement
Informational- T. Melia
- March 2008
- IETF publication
- Internet Area
Abstract
There are ongoing activities in the networking community to develop solutions that aid in IP handover mechanisms between heterogeneous wired and wireless access systems including, but not limited to, IEEE 802.21. Intelligent access selection, taking into account link-layer attributes, requires the delivery of a variety of different information types to the terminal from different sources within the network and vice-versa. The protocol requirements for this signalling have both transport and security issues that must be considered. The signalling must not be constrained to specific link types, so there is at least a common component to the signalling problem, which is within the scope of the IETF. This document presents a problem statement for this core problem. This memo provides information for the Internet community.
Abstract
There are ongoing activities in the networking community to develop solutions that aid in IP handover mechanisms between heterogeneous wired and wireless access systems including, but not limited to, IEEE 802.21. Intelligent access selection, taking into account link-layer attributes, requires the delivery of a variety of different information types to the terminal from different sources within the network and vice-versa. The protocol requirements for this signalling have both transport and security issues that must be considered. The signalling must not be constrained to specific link types, so there is at least a common component to the signalling problem, which is within the scope of the IETF. This document presents a problem statement for this core problem. This memo provides information for the Internet community.
RFC 5149: Service Selection for Mobile IPv6
Informational- J. Korhonen
- U. Nilsson
- V. Devarapalli
- February 2008
- IETF publication
Abstract
In some Mobile IPv6 deployments, identifying the mobile node or the mobility service subscriber is not enough to distinguish between multiple services possibly provisioned to the said mobile node and its mobility service subscription. A capability to specify different services in addition to the mobile node identity can be leveraged to provide flexibility for mobility service providers on provisioning multiple services to one mobility service subscription. This document describes a Service Selection Mobility Option for both conventional Mobile IPv6 and Proxy Mobile IPv6 that is intended to assist home agents to make a specific service selection for the mobility service subscription during the binding registration procedure. This memo provides information for the Internet community.
Abstract
In some Mobile IPv6 deployments, identifying the mobile node or the mobility service subscriber is not enough to distinguish between multiple services possibly provisioned to the said mobile node and its mobility service subscription. A capability to specify different services in addition to the mobile node identity can be leveraged to provide flexibility for mobility service providers on provisioning multiple services to one mobility service subscription. This document describes a Service Selection Mobility Option for both conventional Mobile IPv6 and Proxy Mobile IPv6 that is intended to assist home agents to make a specific service selection for the mobility service subscription during the binding registration procedure. This memo provides information for the Internet community.
RFC 5142: Mobility Header Home Agent Switch Message
Proposed Standard- B. Haley
- V. Devarapalli
- H. Deng
- J. Kempf
- January 2008
- IETF publication
- Internet Area
Abstract
This document specifies a new Mobility Header message type that can be used between a home agent and mobile node to signal to a mobile node that it should acquire a new home agent. [STANDARDS-TRACK]
Abstract
This document specifies a new Mobility Header message type that can be used between a home agent and mobile node to signal to a mobile node that it should acquire a new home agent. [STANDARDS-TRACK]
RFC 5094: Mobile IPv6 Vendor Specific Option
Proposed Standard- V. Devarapalli
- A. Patel
- K. Leung
- December 2007
- IETF publication
- Internet Area
Abstract
There is a need for vendor-specific extensions to Mobility Header messages so that Mobile IPv6 vendors are able to extend the protocol for research or deployment purposes. This document defines a new vendor-specific mobility option. [STANDARDS-TRACK]
Abstract
There is a need for vendor-specific extensions to Mobility Header messages so that Mobile IPv6 vendors are able to extend the protocol for research or deployment purposes. This document defines a new vendor-specific mobility option. [STANDARDS-TRACK]
RFC 5096: Mobile IPv6 Experimental Messages
Proposed Standard- V. Devarapalli
- December 2007
- IETF publication
- Internet Area
Abstract
This document defines a new experimental Mobility Header message and a Mobility option that can be used for experimental extensions to the Mobile IPv6 protocol. [STANDARDS-TRACK]
Abstract
This document defines a new experimental Mobility Header message and a Mobility option that can be used for experimental extensions to the Mobile IPv6 protocol. [STANDARDS-TRACK]
RFC 5026: Mobile IPv6 Bootstrapping in Split Scenario
Proposed Standard- G. Giaretta
- J. Kempf
- V. Devarapalli
- October 2007
- IETF publication
- Internet Area
Abstract
A Mobile IPv6 node requires a Home Agent address, a home address, and IPsec security associations with its Home Agent before it can start utilizing Mobile IPv6 service. RFC 3775 requires that some or all of these are statically configured. This document defines how a Mobile IPv6 node can bootstrap this information from non-topological information and security credentials pre-configured on the Mobile Node. The solution defined in this document solves the split scenario described in the Mobile IPv6 bootstrapping problem statement in RFC 4640. The split scenario refers to the case where the Mobile Node's mobility service is authorized by a different service provider than basic network access. The solution described in this document is also generically applicable to any bootstrapping case, since other scenarios are more specific realizations of the split scenario. [STANDARDS-TRACK]
Abstract
A Mobile IPv6 node requires a Home Agent address, a home address, and IPsec security associations with its Home Agent before it can start utilizing Mobile IPv6 service. RFC 3775 requires that some or all of these are statically configured. This document defines how a Mobile IPv6 node can bootstrap this information from non-topological information and security credentials pre-configured on the Mobile Node. The solution defined in this document solves the split scenario described in the Mobile IPv6 bootstrapping problem statement in RFC 4640. The split scenario refers to the case where the Mobile Node's mobility service is authorized by a different service provider than basic network access. The solution described in this document is also generically applicable to any bootstrapping case, since other scenarios are more specific realizations of the split scenario. [STANDARDS-TRACK]
RFC 4977: Problem Statement: Dual Stack Mobility
Informational- G. Tsirtsis
- H. Soliman
- August 2007
- IETF publication
- Internet Area
Abstract
This document discusses the issues associated with mobility management for dual stack mobile nodes. Currently, two mobility management protocols are defined for IPv4 and IPv6. Deploying both in a dual stack mobile node introduces a number of problems. Deployment and operational issues motivate the use of a single mobility management protocol. This document discusses such motivations. The document also discusses requirements for the Mobile IPv4 (MIPv4) and Mobile IPv6 (MIPv6) protocol so that they can support mobility management for a dual stack node. This memo provides information for the Internet community.
Abstract
This document discusses the issues associated with mobility management for dual stack mobile nodes. Currently, two mobility management protocols are defined for IPv4 and IPv6. Deploying both in a dual stack mobile node introduces a number of problems. Deployment and operational issues motivate the use of a single mobility management protocol. This document discusses such motivations. The document also discusses requirements for the Mobile IPv4 (MIPv4) and Mobile IPv6 (MIPv6) protocol so that they can support mobility management for a dual stack node. This memo provides information for the Internet community.
RFC 4882: IP Address Location Privacy and Mobile IPv6: Problem Statement
Informational- R. Koodli
- May 2007
- IETF publication
- Internet Area
Abstract
In this document, we discuss location privacy as applicable to Mobile IPv6. We document the concerns arising from revealing a Home Address to an onlooker and from disclosing a Care-of Address to a correspondent. This memo provides information for the Internet community.
Abstract
In this document, we discuss location privacy as applicable to Mobile IPv6. We document the concerns arising from revealing a Home Address to an onlooker and from disclosing a Care-of Address to a correspondent. This memo provides information for the Internet community.
RFC 4866: Enhanced Route Optimization for Mobile IPv6
Proposed Standard- J. Arkko
- C. Vogt
- W. Haddad
- May 2007
- IETF publication
- Internet Area
Abstract
This document specifies an enhanced version of Mobile IPv6 route optimization, providing lower handoff delays, increased security, and reduced signaling overhead. [STANDARDS-TRACK]
Abstract
This document specifies an enhanced version of Mobile IPv6 route optimization, providing lower handoff delays, increased security, and reduced signaling overhead. [STANDARDS-TRACK]
RFC 4877: Mobile IPv6 Operation with IKEv2 and the Revised IPsec Architecture
Proposed Standard- V. Devarapalli
- F. Dupont
- April 2007
- IETF publication
- Internet Area
Abstract
This document describes Mobile IPv6 operation with the revised IPsec architecture and IKEv2. [STANDARDS-TRACK]
Abstract
This document describes Mobile IPv6 operation with the revised IPsec architecture and IKEv2. [STANDARDS-TRACK]
RFC 4651: A Taxonomy and Analysis of Enhancements to Mobile IPv6 Route Optimization
Informational- C. Vogt
- J. Arkko
- February 2007
- IRTF publication
Abstract
This document describes and evaluates strategies to enhance Mobile IPv6 Route Optimization, on the basis of existing proposals, in order to motivate and guide further research in this context. This document is a product of the IP Mobility Optimizations (MobOpts) Research Group. This memo provides information for the Internet community.
Abstract
This document describes and evaluates strategies to enhance Mobile IPv6 Route Optimization, on the basis of existing proposals, in order to motivate and guide further research in this context. This document is a product of the IP Mobility Optimizations (MobOpts) Research Group. This memo provides information for the Internet community.
RFC 4640: Problem Statement for bootstrapping Mobile IPv6 (MIPv6)
Informational- A. Patel
- G. Giaretta
- September 2006
- IETF publication
- Internet Area
Abstract
A mobile node needs at least the following information: a home address, a home agent address, and a security association with home agent to register with the home agent. The process of obtaining this information is called bootstrapping. This document discusses issues involved with how the mobile node can be bootstrapped for Mobile IPv6 (MIPv6) and various potential deployment scenarios for mobile node bootstrapping. This memo provides information for the Internet community.
Abstract
A mobile node needs at least the following information: a home address, a home agent address, and a security association with home agent to register with the home agent. The process of obtaining this information is called bootstrapping. This document discusses issues involved with how the mobile node can be bootstrapped for Mobile IPv6 (MIPv6) and various potential deployment scenarios for mobile node bootstrapping. This memo provides information for the Internet community.
RFC 4584: Extension to Sockets API for Mobile IPv6
Informational- S. Chakrabarti
- E. Nordmark
- July 2006
- IETF publication
- Internet Area
Abstract
This document describes data structures and API support for Mobile IPv6 as an extension to the Advanced Socket API for IPv6.
Just as the Advanced Sockets API for IPv6 gives access to various extension headers and the ICMPv6 protocol, this document specifies the same level of access for Mobile IPv6 components. It specifies a mechanism for applications to retrieve and set information for Mobility Header messages, Home Address destination options, and Routing Header Type 2 extension headers. It also specifies the common data structures and definitions that might be used by certain advanced Mobile IPv6 socket applications. This memo provides information for the Internet community.
Abstract
This document describes data structures and API support for Mobile IPv6 as an extension to the Advanced Socket API for IPv6.
Just as the Advanced Sockets API for IPv6 gives access to various extension headers and the ICMPv6 protocol, this document specifies the same level of access for Mobile IPv6 components. It specifies a mechanism for applications to retrieve and set information for Mobility Header messages, Home Address destination options, and Routing Header Type 2 extension headers. It also specifies the common data structures and definitions that might be used by certain advanced Mobile IPv6 socket applications. This memo provides information for the Internet community.
RFC 4449: Securing Mobile IPv6 Route Optimization Using a Static Shared Key
Proposed Standard- C. Perkins
- June 2006
- IETF publication
- Internet Area
Abstract
A mobile node and a correspondent node may preconfigure data useful for precomputing a Binding Management Key that can subsequently be used for authorizing Binding Updates. [STANDARDS-TRACK]
Abstract
A mobile node and a correspondent node may preconfigure data useful for precomputing a Binding Management Key that can subsequently be used for authorizing Binding Updates. [STANDARDS-TRACK]
RFC 4487: Mobile IPv6 and Firewalls: Problem Statement
Informational- F. Le
- S. Faccin
- B. Patil
- H. Tschofenig
- May 2006
- IETF publication
- Internet Area
Abstract
This document captures the issues that may arise in the deployment of IPv6 networks when they support Mobile IPv6 and firewalls. The issues are not only applicable to firewalls protecting enterprise networks, but are also applicable in 3G mobile networks such as General Packet Radio Service / Universal Mobile Telecommunications System (GPRS/UMTS) and CDMA2000 networks.
The goal of this document is to highlight the issues with firewalls and Mobile IPv6 and act as an enabler for further discussion. Issues identified here can be solved by developing appropriate solutions. This memo provides information for the Internet community.
Abstract
This document captures the issues that may arise in the deployment of IPv6 networks when they support Mobile IPv6 and firewalls. The issues are not only applicable to firewalls protecting enterprise networks, but are also applicable in 3G mobile networks such as General Packet Radio Service / Universal Mobile Telecommunications System (GPRS/UMTS) and CDMA2000 networks.
The goal of this document is to highlight the issues with firewalls and Mobile IPv6 and act as an enabler for further discussion. Issues identified here can be solved by developing appropriate solutions. This memo provides information for the Internet community.
RFC 4295: Mobile IPv6 Management Information Base
Proposed Standard- G. Keeni
- K. Koide
- K. Nagami
- S. Gundavelli
- April 2006
- IETF publication
- Internet Area
Abstract
This memo defines a portion of the Management Information Base (MIB), the Mobile-IPv6 MIB, for use with network management protocols in the Internet community. In particular, the Mobile-IPv6 MIB will be used to monitor and control the mobile node, home agent, and correspondent node functions of a Mobile IPv6 (MIPv6) entity. [STANDARDS-TRACK]
Abstract
This memo defines a portion of the Management Information Base (MIB), the Mobile-IPv6 MIB, for use with network management protocols in the Internet community. In particular, the Mobile-IPv6 MIB will be used to monitor and control the mobile node, home agent, and correspondent node functions of a Mobile IPv6 (MIPv6) entity. [STANDARDS-TRACK]
RFC 4285: Authentication Protocol for Mobile IPv6
Informational- A. Patel
- K. Leung
- M. Khalil
- H. Akhtar
- K. Chowdhury
- January 2006
- IETF publication
- Internet Area
Abstract
IPsec is specified as the means of securing signaling messages between the Mobile Node and Home Agent for Mobile IPv6 (MIPv6). MIPv6 signaling messages that are secured include the Binding Updates and Acknowledgement messages used for managing the bindings between a Mobile Node and its Home Agent. This document proposes an alternate method for securing MIPv6 signaling messages between Mobile Nodes and Home Agents. The alternate method defined here consists of a MIPv6-specific mobility message authentication option that can be added to MIPv6 signaling messages. This memo provides information for the Internet community.
Abstract
IPsec is specified as the means of securing signaling messages between the Mobile Node and Home Agent for Mobile IPv6 (MIPv6). MIPv6 signaling messages that are secured include the Binding Updates and Acknowledgement messages used for managing the bindings between a Mobile Node and its Home Agent. This document proposes an alternate method for securing MIPv6 signaling messages between Mobile Nodes and Home Agents. The alternate method defined here consists of a MIPv6-specific mobility message authentication option that can be added to MIPv6 signaling messages. This memo provides information for the Internet community.
RFC 4225: Mobile IP Version 6 Route Optimization Security Design Background
Informational- P. Nikander
- J. Arkko
- T. Aura
- G. Montenegro
- E. Nordmark
- December 2005
- IETF publication
- Internet Area
Abstract
This document is an account of the rationale behind the Mobile IPv6 (MIPv6) Route Optimization security design. The purpose of this document is to present the thinking and to preserve the reasoning behind the Mobile IPv6 security design in 2001 - 2002.
The document has two target audiences: (1) helping MIPv6 implementors to better understand the design choices in MIPv6 security procedures, and (2) allowing people dealing with mobility or multi-homing to avoid a number of potential security pitfalls in their designs. This memo provides information for the Internet community.
Abstract
This document is an account of the rationale behind the Mobile IPv6 (MIPv6) Route Optimization security design. The purpose of this document is to present the thinking and to preserve the reasoning behind the Mobile IPv6 security design in 2001 - 2002.
The document has two target audiences: (1) helping MIPv6 implementors to better understand the design choices in MIPv6 security procedures, and (2) allowing people dealing with mobility or multi-homing to avoid a number of potential security pitfalls in their designs. This memo provides information for the Internet community.
RFC 4283: Mobile Node Identifier Option for Mobile IPv6 (MIPv6)
Proposed Standard- A. Patel
- K. Leung
- M. Khalil
- H. Akhtar
- K. Chowdhury
- December 2005
- IETF publication
- Internet Area
Abstract
Mobile IPv6 (MIPv6) defines a new Mobility header that is used by mobile nodes, correspondent nodes, and home agents in all messaging related to the creation and management of bindings. Mobile IPv6 nodes need the capability to identify themselves using an identity other than the default home IP address. Some examples of identifiers include Network Access Identifier (NAI), Fully Qualified Domain Name (FQDN), International Mobile Station Identifier (IMSI), and Mobile Subscriber Number (MSISDN). This document defines a new mobility option that can be used by Mobile IPv6 entities to identify themselves in messages containing a mobility header. [STANDARDS-TRACK]
Abstract
Mobile IPv6 (MIPv6) defines a new Mobility header that is used by mobile nodes, correspondent nodes, and home agents in all messaging related to the creation and management of bindings. Mobile IPv6 nodes need the capability to identify themselves using an identity other than the default home IP address. Some examples of identifiers include Network Access Identifier (NAI), Fully Qualified Domain Name (FQDN), International Mobile Station Identifier (IMSI), and Mobile Subscriber Number (MSISDN). This document defines a new mobility option that can be used by Mobile IPv6 entities to identify themselves in messages containing a mobility header. [STANDARDS-TRACK]
RFC 4260: Mobile IPv6 Fast Handovers for 802.11 Networks
Informational- P. McCann
- November 2005
- IETF publication
- Internet Area
Abstract
This document describes how a Mobile IPv6 Fast Handover could be implemented on link layers conforming to the 802.11 suite of specifications. This memo provides information for the Internet community.
Abstract
This document describes how a Mobile IPv6 Fast Handover could be implemented on link layers conforming to the 802.11 suite of specifications. This memo provides information for the Internet community.
RFC 4140: Hierarchical Mobile IPv6 Mobility Management (HMIPv6)
Experimental- H. Soliman
- C. Castelluccia
- K. El Malki
- L. Bellier
- August 2005
- IETF publication
- Internet Area
Abstract
This document introduces extensions to Mobile IPv6 and IPv6 Neighbour Discovery to allow for local mobility handling. Hierarchical mobility management for Mobile IPv6 is designed to reduce the amount of signalling between the Mobile Node, its Correspondent Nodes, and its Home Agent. The Mobility Anchor Point (MAP) described in this document can also be used to improve the performance of Mobile IPv6 in terms of handover speed. This memo defines an Experimental Protocol for the Internet community.
Obsoleted by RFC 5380
Abstract
This document introduces extensions to Mobile IPv6 and IPv6 Neighbour Discovery to allow for local mobility handling. Hierarchical mobility management for Mobile IPv6 is designed to reduce the amount of signalling between the Mobile Node, its Correspondent Nodes, and its Home Agent. The Mobility Anchor Point (MAP) described in this document can also be used to improve the performance of Mobile IPv6 in terms of handover speed. This memo defines an Experimental Protocol for the Internet community.
RFC 4068: Fast Handovers for Mobile IPv6
Experimental- R. Koodli
- July 2005
- IETF publication
- Internet Area
Abstract
Mobile IPv6 enables a Mobile Node to maintain its connectivity to the Internet when moving from one Access Router to another, a process referred to as handover. During handover, there is a period during which the Mobile Node is unable to send or receive packets because of link switching delay and IP protocol operations. This "handover latency" resulting from standard Mobile IPv6 procedures, namely movement detection, new Care of Address configuration, and Binding Update, is often unacceptable to real-time traffic such as Voice over IP. Reducing the handover latency could be beneficial to non-real-time, throughput-sensitive applications as well. This document specifies a protocol to improve handover latency due to Mobile IPv6 procedures. This document does not address improving the link switching latency. This memo defines an Experimental Protocol for the Internet community.
Obsoleted by RFC 5268
Abstract
Mobile IPv6 enables a Mobile Node to maintain its connectivity to the Internet when moving from one Access Router to another, a process referred to as handover. During handover, there is a period during which the Mobile Node is unable to send or receive packets because of link switching delay and IP protocol operations. This "handover latency" resulting from standard Mobile IPv6 procedures, namely movement detection, new Care of Address configuration, and Binding Update, is often unacceptable to real-time traffic such as Voice over IP. Reducing the handover latency could be beneficial to non-real-time, throughput-sensitive applications as well. This document specifies a protocol to improve handover latency due to Mobile IPv6 procedures. This document does not address improving the link switching latency. This memo defines an Experimental Protocol for the Internet community.
RFC 3963: Network Mobility (NEMO) Basic Support Protocol
Proposed Standard- V. Devarapalli
- R. Wakikawa
- A. Petrescu
- P. Thubert
- January 2005
- IETF publication
- Internet Area
Abstract
This document describes the Network Mobility (NEMO) Basic Support protocol that enables Mobile Networks to attach to different points in the Internet. The protocol is an extension of Mobile IPv6 and allows session continuity for every node in the Mobile Network as the network moves. It also allows every node in the Mobile Network to be reachable while moving around. The Mobile Router, which connects the network to the Internet, runs the NEMO Basic Support protocol with its Home Agent. The protocol is designed so that network mobility is transparent to the nodes inside the Mobile Network. [STANDARDS-TRACK]
Abstract
This document describes the Network Mobility (NEMO) Basic Support protocol that enables Mobile Networks to attach to different points in the Internet. The protocol is an extension of Mobile IPv6 and allows session continuity for every node in the Mobile Network as the network moves. It also allows every node in the Mobile Network to be reachable while moving around. The Mobile Router, which connects the network to the Internet, runs the NEMO Basic Support protocol with its Home Agent. The protocol is designed so that network mobility is transparent to the nodes inside the Mobile Network. [STANDARDS-TRACK]
RFC 3775: Mobility Support in IPv6
Proposed Standard- D. Johnson
- C. Perkins
- J. Arkko
- June 2004
- IETF publication
- Internet Area
Abstract
This document specifies a protocol which allows nodes to remain reachable while moving around in the IPv6 Internet. Each mobile node is always identified by its home address, regardless of its current point of attachment to the Internet. While situated away from its home, a mobile node is also associated with a care-of address, which provides information about the mobile node's current location. IPv6 packets addressed to a mobile node's home address are transparently routed to its care-of address. The protocol enables IPv6 nodes to cache the binding of a mobile node's home address with its care-of address, and to then send any packets destined for the mobile node directly to it at this care-of address. To support this operation, Mobile IPv6 defines a new IPv6 protocol and a new destination option. All IPv6 nodes, whether mobile or stationary, can communicate with mobile nodes. [STANDARDS-TRACK]
Obsoleted by RFC 6275
Abstract
This document specifies a protocol which allows nodes to remain reachable while moving around in the IPv6 Internet. Each mobile node is always identified by its home address, regardless of its current point of attachment to the Internet. While situated away from its home, a mobile node is also associated with a care-of address, which provides information about the mobile node's current location. IPv6 packets addressed to a mobile node's home address are transparently routed to its care-of address. The protocol enables IPv6 nodes to cache the binding of a mobile node's home address with its care-of address, and to then send any packets destined for the mobile node directly to it at this care-of address. To support this operation, Mobile IPv6 defines a new IPv6 protocol and a new destination option. All IPv6 nodes, whether mobile or stationary, can communicate with mobile nodes. [STANDARDS-TRACK]
RFC 3776: Using IPsec to Protect Mobile IPv6 Signaling Between Mobile Nodes and Home Agents
Proposed Standard- J. Arkko
- V. Devarapalli
- F. Dupont
- June 2004
- IETF publication
- Internet Area
Abstract
Mobile IPv6 uses IPsec to protect signaling between the home agent and the mobile node. Mobile IPv6 base document defines the main requirements these nodes must follow. This document discusses these requirements in more depth, illustrates the used packet formats, describes suitable configuration procedures, and shows how implementations can process the packets in the right order. [STANDARDS-TRACK]
Abstract
Mobile IPv6 uses IPsec to protect signaling between the home agent and the mobile node. Mobile IPv6 base document defines the main requirements these nodes must follow. This document discusses these requirements in more depth, illustrates the used packet formats, describes suitable configuration procedures, and shows how implementations can process the packets in the right order. [STANDARDS-TRACK]
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