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Getting Started with NetScaler
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Solutions for Telecom Service Providers
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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 proxy support for outbound calls to IDP or third party endpoints
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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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Configure protected user as an authentication factor 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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Configure DNS resource records
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Configure NetScaler as a non-validating security aware stub-resolver
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Jumbo frames support for DNS to handle responses of large sizes
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Caching of EDNS0 client subnet data when the NetScaler appliance is in proxy mode
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Use case - configure the automatic DNSSEC key management feature
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Use Case - configure the automatic DNSSEC key management on GSLB deployment
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Source IP address whitelisting for GSLB communication channels
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Use case: Deployment of domain name based autoscale service group
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Use case: Deployment of IP address based autoscale service group
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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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Support for hybrid Post Quantum cryptography on the frontend
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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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Ciphers available on the NetScaler appliances
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Diffie-Hellman (DH) key generation and achieving PFS with DHE
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Leverage hardware and software to improve ECDHE and ECDSA cipher performance
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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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Use hardware and software to improve ECDHE and ECDSA cipher performance
Note:
This enhancement is applicable only to the following platforms:
- MPX 24000
- MPX/SDX 14000 FIPS
Previously, ECDHE and ECDSA computation on a NetScaler appliance was performed only on the hardware (Cavium chips), which limited the number of SSL sessions at any given time. With this enhancement, some operations are also performed in the software. That is, processing is done both on the Cavium chips and on the CPU cores to improve ECDHE and ECDSA cipher performance.
The processing is first performed in software, up to the configured software crypto threshold. After this threshold is reached, the operations are offloaded to the hardware. Therefore, this hybrid model uses both hardware and software to improve SSL performance. You can enable the hybrid model by setting the “softwareCryptoThreshold” parameter to suit your requirement. To disable the hybrid model, set this parameter to 0.
Benefits are greatest if the current CPU utilization is not too high, because the CPU threshold is not exclusive to ECDHE and ECDSA computation. For example, if the current workload on the appliance consumes 50% of the CPU cycles, and the threshold is set to 80%, ECDHE and ECDSA computation can only use 30%. After the configured software crypto threshold of 80% is reached, further ECDHE and ECDSA computation is offloaded to the hardware. In that case, actual CPU utilization might exceed 80%, because performing ECDHE and ECDSA computations in hardware consumes some CPU cycles.
Enable the hybrid model by using the CLI
At the command prompt, type:
set ssl parameter -softwareCryptoThreshold <positive_integer>
Synopsis:
softwareCryptoThreshold:
NetScaler CPU utilization threshold (as a percentage) beyond which crypto operations are not done in software. A value of zero implies that CPU is not utilized for doing crypto in software.
Default = 0
Min = 0
Max = 100
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Example:
set ssl parameter - softwareCryptoThreshold 80
Done
show ssl parameter
Advanced SSL Parameters
SSL quantum size : 8 KB
Max CRL memory size : 256 MB
Strict CA checks : NO
Encryption trigger timeout : 100 ms
Send Close-Notify : YES
Encryption trigger packet c : 45
Deny SSL Renegotiation : ALL
Subject/Issuer Name Insertion Format : Unicode
OCSP cache size : 10 MB
Push flag : 0x0 (Auto)
Strict Host Header check for SNI enabled SSL sessions : NO
PUSH encryption trigger timeout : 1 ms
Crypto Device Disable Limit : 0
Global undef action for control policies : CLIENTAUTH
Global undef action for data policies : NOOP
Default profile : DISABLED
Disable TLS 1.1/1.2 for SSL_BRIDGE secure monitors : NO
Disable TLS 1.1/1.2 for dynamic and VPN services : NO
Software Crypto acceleration CPU Threshold : 80
Signature and Hash Algorithms supported by TLS1.2 : ALL
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Enable the hybrid model by using the GUI
- Navigate to Traffic Management > SSL > Change advanced SSL settings.
- Enter a value for Software Crypto Threshold (%).
Set an SNMP alarm for ECDHE exchange rate
ECDHE-based key exchange can cause the transactions per second on the appliance to drop. From release 13.0 build 52.x, you can configure an SNMP alarm for ECDHE-based transactions. In this alarm, you can set the threshold and normal limits for the ECDHE exchange rate. A new counter nsssl_tot_sslInfo_ECDHE_Tx is added. This counter is the sum of all the ECDHE-based transaction counters on the front-end and back-end of the appliance. When the ECDHE-based key exchange crosses the configured limits an SNMP trap is sent. Another trap is sent when the value is back to the configured normal value.
Set an SNMP alarm for ECDHE exchange rate using the CLI
At the command prompt, type:
set snmp alarm ECDHE-EXCHANGE-RATE -logging ( ENABLED | DISABLED ) -severity <severity>
-state ( ENABLED | DISABLED ) -thresholdValue <positive_integer> [-normalValue <positive_integer>] -time <secs>
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Example:
set snmp alarm ECDHE-EXCHANGE-RATE -logging eNABLED -severity critical -state eNABLED -thresholdValue 100 -normalValue 50
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