From Handwiki Resource Public Key Infrastructure (RPKI), also known as Resource Certification, is a specialized public key infrastructure (PKI) framework to support improved security for the Internet's BGP routing infrastructure.
RPKI provides a way to connect Internet number resource information (such as Autonomous System numbers and IP addresses) to a trust anchor. The certificate structure mirrors the way in which Internet number resources are distributed. That is, resources are initially distributed by the IANA to the regional Internet registries (RIRs), who in turn distribute them to local Internet registries (LIRs), who then distribute the resources to their customers. RPKI can be used by the legitimate holders of the resources to control the operation of Internet routing protocols to prevent route hijacking and other attacks. In particular, RPKI is used to secure the Border Gateway Protocol (BGP) through BGP Route Origin Validation (ROV) and Autonomous System Provider Authorization (ASPA), as well as Neighbor Discovery Protocol (ND) for IPv6 through the Secure Neighbor Discovery protocol (SEND).
The RPKI architecture is documented in RFC 6480. The RPKI specification is documented in a spread out series of RFCs: RFC 6481, RFC 6484, RFC 6485, RFC 6486, RFC 6487, RFC 6488, RFC 6489, RFC 6490, RFC 6491, RFC 6492, and RFC 6493. ROV is documented in RFC 6482 and RFC 6483, and SEND in RFC 6494 and RFC 6495. These RFCs are a product of the IETF's SIDR ("Secure Inter-Domain Routing") working group,[1] and are based on a threat analysis which was documented in RFC 4593. Several implementations for prefix origin validation already exist.[2]
RPKI uses X.509 PKI certificates (RFC 5280) with extensions for IP addresses and AS identifiers (RFC 3779). It allows the members of regional Internet registries, known as local Internet registries (LIRs), to obtain a resource certificate listing the Internet number resources they hold. This offers them validatable proof of holdership, though the certificate does not contain identity information. Using the resource certificate, LIRs can create cryptographic attestations about the route announcements they authorise to be made with the prefixes and ASNs they hold. These attestations are described below.
A Route Origin Authorization (ROA)[3] states which autonomous system (AS) is authorised to originate certain IP prefixes, used for Route Origin Validation (ROV). In addition, it can enforce the maximum length of the prefix that the AS is authorised to advertise. An ROA that was cryptographically verified is referred to as a Validated ROA Payload (VRP), which is then typically transferred to a router to perform route filtering.
The maximum prefix length is an optional field. When not defined, the AS is only authorised to advertise exactly the prefix specified. Any more specific announcement of the prefix will be considered invalid. This is a way to enforce aggregation and prevent hijacking through the announcement of a more specific prefix.
When present, this specifies the length of the most specific IP prefix that the AS is authorised to advertise. For example, if the IP address prefix is 10.0.0.0/16 and the maximum length is 22, the AS is authorised to advertise any prefix under 10.0.0.0/16, as long as it is no more specific than /22. So, in this example, the AS would be authorised to advertise 10.0.0.0/16, 10.0.128.0/20 or 10.0.252.0/22, but not 10.0.255.0/24.
When a ROA is created for a certain combination of origin AS and prefix, this will have an effect on the RPKI validity[4] of one or more route announcements. They can be:
Note that invalid BGP updates may also be due to incorrectly configured ROAs.[5]
An Autonomous System Provider Authorization (ASPA)[6] states which networks are permitted to appear as direct upstream adjacencies of an autonomous system in BGP AS_PATHs. This provides a simpler way of BGP path validation compared to BGPsec described below.
AS operators publish attestations specifying which other ASNs may appear as an upstream in any AS_PATH received through BGP. There are two variants of ASPA validation, depending on where the BGP announcement was received from:[7]
BGP AS path prepending has no effect on the validation process, as consecutive duplicate ASNs in the AS_PATH are collapsed to one before the validation process.
Tier 1 ISPs publish an ASPA record containing the single entry AS0, indicating that these networks have no upstreams and any announcements suggesting otherwise are invalid.[8]
Border Gateway Protocol Security (BGPsec) is a security extension of the Border Gateway Protocol defined in RFC 8205, along with additional RFCs 8206 to 8209, published in September 2017. BGPsec provides security by allowing receivers of BGPsec UPDATE messages to cryptographically verify the received AS path.[9] BGPsec replaces the BGP AS_PATH attribute with a new BGPsec_Path attribute.[10]
BGPsec uses router certificates, defined in RFC 8209 and published through RPKI, which are fetched by validators to verify a BGPsec signature received in an UPDATE message. Signatures are created by routers using their private key, and verifiable using the public key contained in the corresponding router certificate.
The use of cryptographic signing significantly increases the resource overhead in routers when sending and receiving BGP announcements. Further, to serve a significant security benefit, BGPsec must be deployed on a large portion of routers, in contrast to ROV and ASPA, which provides immediate security benefits to early deployments. These are the major reasons why BGPsec is practically not in use in the Internet, and working implementations for it are sparse.[11] As of June 2026, zero valid router certificates are published in the Internet's RPKI, compared to over 375 thousand ROAs and several thousand ASPAs, even though ASPA has not even been fully standardized at this time.
There are open source tools[12] available to run the certificate authority and manage the resource certificate and child objects such as ROAs. In addition, the RIRs have a hosted RPKI platform available in their member portals. This allows LIRs to choose to rely on a hosted system, or run their own software.
The system does not use a single repository publication point to publish RPKI objects. Instead, the RPKI repository system consists of multiple distributed and delegated repository publication points. Each repository publication point is associated with one or more RPKI certificates' publication points. In practice this means that when running a certificate authority, an LIR can either publish all cryptographic material themselves, or they can rely on a third party for publication. When an LIR chooses to use the hosted system provided by the RIR, in principle publication is done in the RIR repository.
Relying party software will fetch, cache, and validate repository data using rsync or the RPKI Repository Delta Protocol (RFC 8182).[13] It is important for a relying party to regularly synchronize with all the publication points to maintain a complete and timely view of repository data. Incomplete or stale data can lead to erroneous routing decisions.[14][15]
After validation of attestations such as ROAs, they can be compared to BGP routing state and aid network operators in their decision-making process. This can be done manually, but the validated prefix origin data can also be sent to a supported router using the RPKI to Router Protocol (RFC 6810).[16] Cisco Systems offers native support on many platforms[17] for fetching the RPKI data set and using it in the router configuration.[18] Juniper offers support on all platforms[19] that run version 12.2 or newer. BIRD natively supports the RPKI-to-Router Protocol through the "RPKI" protocol in the configuration, and is able to do ROV and ASPA based on this. Quagga obtains this functionality through BGP Secure Routing Extensions (BGP-SRx)[20] or a RPKI implementation[21] fully RFC-compliant based on RTRlib. The RTRlib[22] provides an open source C implementation of the RTR protocol and prefix origin verification. The library is useful for developers of routing software but also for network operators.[23] Developers can integrate the RTRlib into the BGP daemon to extend their implementation towards RPKI. Network operators may use the RTRlib to develop monitoring tools (e.g., to check the proper operation of caches or to evaluate their performance).
RFC 6494 updates the certificate validation method of the Secure Neighbor Discovery protocol (SEND) security mechanisms for Neighbor Discovery Protocol (ND) to use RPKI for use in IPv6. It defines a SEND certificate profile utilizing a modified RFC 6487 RPKI certificate profile which must include a single RFC 3779 IP address delegation extension.
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Categories: [Public-key cryptography] [Routing protocols] [Internet architecture]