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–
key
: specifies the text string used in authentication. All neighboring OSPFv3 routers must share key to exchange
information. For MD5 authentication, the key must be 32 hex digits (non-encrypted) or 64 hex digits (encrypted). For SHA-1
authentication, the key must be 40 hex digits (non-encrypted) or 80 hex digits (encrypted).
•
Remove an IPsec authentication policy from an interface.
no ipv6 ospf authentication ipsec spi
number
•
Remove null authentication on an interface to allow the interface to inherit the authentication policy configured for the OSPFv3
area.
no ipv6 ospf authentication null
•
Display the configuration of IPsec authentication policies on the router.
show crypto ipsec policy
•
Display the security associations set up for OSPFv3 interfaces in authentication policies.
show crypto ipsec sa ipv6
Configuring IPsec Encryption on an Interface
To configure, remove, or display IPsec encryption on an interface, use the following commands.
Prerequisite
: Before you enable IPsec encryption on an OSPFv3 interface, first enable IPv6 unicast routing globally, configure an
IPv6 address and enable OSPFv3 on the interface, and assign it to an area (refer to
Configuration Task List for OSPFv3 (OSPF for
NOTE: When you configure encryption using the
ipv6 ospf encryption ipsec
command, you enable both IPsec
encryption and authentication. However, when you enable authentication on an interface using the
ipv6 ospf
authentication ipsec
command, you do not enable encryption at the same time.
The SPI value must be unique to one IPsec security policy (authentication or encryption) on the router. Configure the same
authentication policy (the same SPI and key) on each OSPFv3 interface in a link.
•
Enable IPsec encryption for OSPFv3 packets on an IPv6-based interface.
INTERFACE mode
ipv6 ospf encryption {null | ipsec spi
number
esp
encryption-algorithm
[
key-encryption-
type
]
key authentication-algorithm
[
key-authentication-type
]
key
}
–
null
: causes an encryption policy configured for the area to not be inherited on the interface.
–
ipsec spi
number
: is the security policy index (SPI) value. The range is from 256 to 4294967295.
–
esp
encryption-algorithm
: specifies the encryption algorithm used with ESP. The valid values are
3DES
,
DES
,
AES-
CBC,
and
NULL
. For
AES-CBC
, only the AES-128 and AES-192 ciphers are supported.
–
key
: specifies the text string used in the encryption. All neighboring OSPFv3 routers must share the same key to decrypt
information. Required lengths of a non-encrypted or encrypted key are: 3DES - 48 or 96 hex digits; DES - 16 or 32 hex digits;
AES-CBC - 32 or 64 hex digits for AES-128 and 48 or 96 hex digits for AES-192.
–
key-encryption-type
: (optional) specifies if the key is encrypted. The valid values are
0
(key is not encrypted) or
7
(key is encrypted).
–
authentication-algorithm
: specifies the encryption authentication algorithm to use. The valid values are
MD5
or
SHA1
.
–
key
: specifies the text string used in authentication. All neighboring OSPFv3 routers must share key to exchange
information. For MD5 authentication, the key must be 32 hex digits (non-encrypted) or 64 hex digits (encrypted). For SHA-1
authentication, the key must be 40 hex digits (non-encrypted) or 80 hex digits (encrypted).
–
key-authentication-type
: (optional) specifies if the authentication key is encrypted. The valid values are
0
or
7
.
•
Remove an IPsec encryption policy from an interface.
no ipv6 ospf encryption ipsec spi
number
•
Remove null encryption on an interface to allow the interface to inherit the encryption policy configured for the OSPFv3 area.
no ipv6 ospf encryption null
•
Display the configuration of IPsec encryption policies on the router.
show crypto ipsec policy
•
Display the security associations set up for OSPFv3 interfaces in encryption policies.
show crypto ipsec sa ipv6
620
Open Shortest Path First (OSPFv2 and OSPFv3)
Содержание S4048-ON
Страница 1: ...Dell Configuration Guide for the S4048 ON System 9 9 0 0 ...
Страница 146: ...Figure 14 BFD Three Way Handshake State Changes 146 Bidirectional Forwarding Detection BFD ...
Страница 477: ...Figure 68 Inspecting Configuration of LAG 10 on ALPHA Link Aggregation Control Protocol LACP 477 ...
Страница 480: ...Figure 70 Inspecting a LAG Port on BRAVO Using the show interface Command 480 Link Aggregation Control Protocol LACP ...
Страница 481: ...Figure 71 Inspecting LAG 10 Using the show interfaces port channel Command Link Aggregation Control Protocol LACP 481 ...
Страница 522: ...Figure 87 Configuring Interfaces for MSDP 522 Multicast Source Discovery Protocol MSDP ...
Страница 523: ...Figure 88 Configuring OSPF and BGP for MSDP Multicast Source Discovery Protocol MSDP 523 ...
Страница 524: ...Figure 89 Configuring PIM in Multiple Routing Domains 524 Multicast Source Discovery Protocol MSDP ...
Страница 528: ...Figure 91 MSDP Default Peer Scenario 1 528 Multicast Source Discovery Protocol MSDP ...
Страница 529: ...Figure 92 MSDP Default Peer Scenario 2 Multicast Source Discovery Protocol MSDP 529 ...
Страница 530: ...Figure 93 MSDP Default Peer Scenario 3 530 Multicast Source Discovery Protocol MSDP ...
Страница 633: ...Policy based Routing PBR 633 ...
Страница 777: ...Figure 119 Single and Double Tag TPID Match Service Provider Bridging 777 ...
Страница 778: ...Figure 120 Single and Double Tag First byte TPID Match 778 Service Provider Bridging ...