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Getting Started with NetScaler
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Solutions for Telecom Service Providers
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Configuring Application Layer Gateways for Large Scale NAT64
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Port Control Protocol for Large Scale NAT64
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Load Balance Control-Plane Traffic that is based on Diameter, SIP, and SMPP Protocols
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Provide Subscriber Load Distribution Using GSLB Across Core-Networks of a Telecom Service Provider
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Authentication, authorization, and auditing application traffic
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Basic components of authentication, authorization, and auditing configuration
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Web Application Firewall protection for VPN virtual servers and authentication virtual servers
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On-premises NetScaler Gateway as an identity provider to Citrix Cloud™
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Authentication, authorization, and auditing configuration for commonly used protocols
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Troubleshoot authentication and authorization related issues
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Troubleshoot authentication, authorization and auditing issues
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Configure EULA as an authentication factor in NetScaler nFactor system
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Configure periodic Endpoint Analysis scan as a factor in nFactor authentication
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Configure post-authentication Endpoint Analysis scan as a factor in NetScaler nFactor authentication
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Configure pre-authentication Endpoint Analysis scan as a factor in nFactor authentication
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Configure pre-auth and post-auth EPA scan as a factor in nFactor authentication
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Configure prefill user name from certificate in NetScaler nFactor authentication
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Localize error messages generated by NetScaler nFactor system
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Configure NetScaler Gateway preauthentication EPA scan for the domain check
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Persistence and persistent connections
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Advanced load balancing settings
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Gradually stepping up the load on a new service with virtual server–level slow start
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Protect applications on protected servers against traffic surges
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Retrieve location details from user IP address using geolocation database
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Use source IP address of the client when connecting to the server
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Use client source IP address for backend communication in a v4-v6 load balancing configuration
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Set a limit on number of requests per connection to the server
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Configure automatic state transition based on percentage health of bound services
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Use case 2: Configure rule based persistence based on a name-value pair in a TCP byte stream
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Use case 3: Configure load balancing in direct server return mode
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Use case 6: Configure load balancing in DSR mode for IPv6 networks by using the TOS field
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Use case 7: Configure load balancing in DSR mode by using IP Over IP
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Use case 10: Load balancing of intrusion detection system servers
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Use case 11: Isolating network traffic using listen policies
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Use case 12: Configure Citrix Virtual Desktops for load balancing
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Use case 13: Configure Citrix Virtual Apps and Desktops for load balancing
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Use case 14: ShareFile wizard for load balancing Citrix ShareFile
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Use case 15: Configure layer 4 load balancing on the NetScaler appliance
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Create a certificate signing request and use SSL certificates on a NetScaler appliance
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Configure SSL acceleration with HTTP on the front end and SSL on the back end
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Export certificates used on a NetScaler appliance as PFX file
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Configure SSL monitoring when client authentication is enabled on the back-end service
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Configure SSL action to forward client traffic if a cipher is not supported on the ADC
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Configure synchronization of files in a high availability setup
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Authentication and authorization for System Users
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Configuring a CloudBridge Connector Tunnel between two Datacenters
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Configuring CloudBridge Connector between Datacenter and AWS Cloud
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Configuring a CloudBridge Connector Tunnel Between a Datacenter and Azure Cloud
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Configuring CloudBridge Connector Tunnel between Datacenter and SoftLayer Enterprise Cloud
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Configuring a CloudBridge Connector Tunnel Between a NetScaler Appliance and Cisco IOS Device
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CloudBridge Connector Tunnel Diagnostics and Troubleshooting
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Port Control Protocol for Large Scale NAT64
NetScaler appliances now support Port Control Protocol (PCP) for large scale NAT (LSN). Many of an ISP’s subscriber applications must be accessible from Internet (for example, Internet of Things (IOT) devices, such as an IP camera that provides surveillance over the Internet). One way to meet this requirement is to create static large scale NAT (LSN) maps. But for a very large number of subscribers, creating static LSN NAT maps is not a feasible solution.
Port Control Protocol (PCP) enables a subscriber to request specific LSN NAT mappings for itself and/or for other 3rd party devices. The large scale NAT device creates an LSN map and sends it to the subscriber. The subscriber sends the remote devices on the Internet the NAT IP address:NAT port at which they can connect to the subscriber.
Applications usually send frequent keep-alive messages to the large scale NAT device so that their LSN mappings do not time out. PCP helps reduce the frequency of such keep-alive messages by enabling the applications to learn the timeout settings of the LSN mappings. This helps reduce bandwidth consumption on the ISP’s access network and battery consumption on mobile devices.
PCP is a client-server model and runs over the UDP transport protocol. A NetScaler appliance implements the PCP server component and is compliant with RFC 6887.
Configuration Steps
Perform the following tasks for configuring PCP:
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(Optional) Create a PCP profile. A PCP profile includes settings for PCP related parameters (for example, to listen for mapping and peer PCP requests). A PCP profile can be bound to a PCP server. A PCP profile bound to a PCP server applies all its settings to the PCP server. A PCP profile can be bound to multiple PCP servers. By default, one PCP profile with default parameters settings is bound to all PCP servers. A PCP profile that you bind to a PCP server overrides the default PCP profile settings for that server. A default PCP profile has the following parameter settings:
- Mapping: Enabled
- Peer: Enabled
- Minimum map life: 120 seconds
- Maximum max life: 86400 seconds
- Announce count: 10
- Third Party: Disabled
- Create a PCP server and bind a PCP profile to it. Create a PCP server on the NetScaler appliance to listen for PCP related requests and messages from the subscribers. A Subnet IP (SNIP) or (SNIP6) address must be assigned to a PCP server to access it. By default, a PCP server listens on port 5351.
- Bind the PCP server to an LSN group of an LSN configuration. Bind the created PCP server to an LSN group of an LSN configuration by setting the PCP Server parameter to specify the created PCP server. The created PCP server can be accessed only by the subscribers of this LSN group.
Note
A PCP server for a large scale NAT configuration does not serve requests from subscribers that are identified from ACL rules.
To create a PCP profile by using the CLI
At the command prompt, type:
add pcp profile <name> [-mapping ( ENABLED | DISABLED )] [-peer ( ENABLED | DISABLED )] [-minMapLife <secs>] [-maxMapLife <secs>] [-announceMultiCount <positive_integer>][-thirdParty ( ENABLED | DISABLED )]
show pcp profile <name>
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To create a PCP server by using the CLI
At the command prompt, type:
add pcp server <name> <IPAddress> [-port <portNum|*>] [-pcpProfile <string>]
show pcp server <name>
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Sample Configuration for NAT64
In the following sample configuration, PCP server PCP-SERVER-1, with PCP settings from PCP-PROFILE-1,is bound to LSN group LSN-NAT64-GROUP-1. PCP-SERVER-1 serves PCP requests from IPv6 subscribers in network 2001:DB8:5001::/96.
Sample configuration:
add pcp profile PCP-PROFILE-1 -minMapLife 400
Done
add pcp server PCP-SERVER-1 2001:DB8:6001::90 -pcpProfile PCP-PROFILE-1
Done
add lsn client LSN-NAT64-CLIENT-1
Done
bind lsn client LSN-NAT64-CLIENT-1 -network6 2001:DB8:5001::/96
Done
add lsn pool LSN-NAT64-POOL-1
Done
bind lsn pool LSN-NAT64-POOL-1 203.0.113.61 - 203.0.113.70
Done
add lsn ip6profile LSN-NAT64-PROFILE-1 -type NAT64 -natprefix 2001:DB8:300::/96
Done
add lsn group LSN-NAT64-PROFILE-1 -clientname LSN-NAT64-CLIENT-1 -ip6profile LSN-NAT64-PROFILE-1
Done
bind lsn group LSN-NAT64-GROUP-1 -poolname LSN-NAT64-POOL-1
Done
bind lsn group LSN-NAT64-GROUP-1 –pcpServer PCP-NAT64-SERVER-1
Done
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