Microsoft Begins Rolling Out Windows CLAT (WinCLAT) for IPv6-Mostly and IPv6-Only Networks

Following successful private and public previews, Microsoft has begun deploying Windows Customer-side Translator (WinCLAT) through Controlled Feature Rollout (CFR) to Windows 11 clients. WinCLAT allows IPv4-dependent applications to operate on IPv6-only and IPv6-mostly networks, removing an important compatibility barrier for organizations transitioning away from native IPv4. As of September 23, 2026, I estimate that approximately half of eligible Windows endpoints have received the feature, with availability expected to expand over the next several weeks.

What Is CLAT?

CLAT (customer-side translator) is part of the 464XLAT IPv6 transition and translation technology. CLAT uses the Stateless IP/ICMP Translation Algorithm (SIIT) to translate IPv4 packets generated by the client into IPv6. A corresponding provider-side translator (PLAT), typically a NAT64 gateway, translates the packets back to IPv4 before forwarding them to their destination.

Background

CLAT has been part of Windows for quite some time. It first shipped with Windows Phone and was later ported to Windows 10 with the Creators Update (v1703) in April 2017. Until now, the implementation was limited to wireless wide area network (WWAN) cellular interfaces.

Why Do We Need CLAT?

Although modern applications increasingly support IPv6, many applications and services still depend on IPv4. Some applications use IPv4-only sockets or application programming interfaces (APIs), while others connect directly to literal IPv4 addresses. Because these applications cannot use DNS64-generated AAAA records, they require another mechanism to communicate across an IPv6-only network. WinCLAT provides this compatibility while allowing the network to operate without native IPv4 connectivity.

How WinCLAT Works

When enabled, WinCLAT determines whether the client is operating without native IPv4 connectivity. This can occur on an IPv6-only network or an IPv6-mostly network where Dynamic Host Configuration Protocol for IPv4 (DHCPv4) Option 108 instructs capable clients to forgo an IPv4 address. WinCLAT then learns the network’s NAT64 prefix from a router advertisement (RA) or via DNS and the ipv4only.arpa domain. Next, WinCLAT creates a synthetic IPv4 address on the network interface. When an application generates IPv4 traffic, WinCLAT statelessly translates the IPv4 packets to IPv6 using the discovered NAT64 prefix and forwards them to the network. Return traffic is translated back to IPv4. This process is transparent to most applications, which can continue using IPv4 sockets without native IPv4 connectivity on the network.

SLAAC Requirement

WinCLAT currently requires the client to obtain its IPv6 address using Stateless Address Autoconfiguration (SLAAC). It does not work on networks that assign client IPv6 addresses exclusively through stateful DHCPv6. Organizations using DHCPv6 for IPv6 address assignment must also enable SLAAC before deploying WinCLAT.

The Role of DNS64 and NAT64

DNS64 and NAT64 work alongside WinCLAT to provide access to IPv4-only resources from an IPv6-only network. Their role depends on whether an application communicates using IPv6 or still requires IPv4.

IPv4 Connectivity for IPv6 Applications

DNS64 synthesizes AAAA records from IPv4 A records, allowing IPv6-capable applications to communicate with IPv4-only destinations through the NAT64 gateway. Applications that use IPv4 sockets or connect to literal IPv4 addresses cannot use these synthesized records and instead rely on WinCLAT for compatibility.

NAT64 Prefix Discovery

DNS also provides one method for WinCLAT to discover the network’s NAT64 prefix. WinCLAT can obtain the prefix by querying ipv4only.arpa, although the preferred method is the PREF64 option in an IPv6 router advertisement.

Note: DNS64 and NAT64 are likely familiar to Microsoft DirectAccess administrators, as these technologies were introduced with DirectAccess in Windows Server 2012.

Configure WinCLAT

After the WinCLAT feature becomes available on your device, you can enable and configure it using netsh.exe.

Enable WinCLAT

To permit WinCLAT operation on non-cellular interfaces, open an elevated command window and run the following command.

netsh.exe interface clat set global permit=enabled

View WinCLAT Settings

You can view the current global configuration by running the following command.

netsh.exe interface clat show global

You can also view interface-specific settings using the following command.

netsh.exe interface clat show instance interface=<interface name>

Prefix Discovery

Optionally, you can enable or disable NAT64 prefix discovery options (from DNS and/or from RA) using the following commands.

# enable pref64 discovery methods
netsh.exe interface clat set global pref64fromdns=enabled
netsh.exe interface clat set global pref64fromra=enabled

# disable pref64 discovery methods
netsh.exe interface clat set global pref64fromdns=disabled
netsh.exe interface clat set global pref64fromra=disabled

Note: At least one prefix-discovery method must remain enabled. When both are enabled, WinCLAT prefers the PREF64 option in an IPv6 router advertisement and uses DNS-based discovery as a fallback.

WinCLAT IPv4 Address

WinCLAT assigns 192.0.0.1/32 to the interface for use by the local IPv4 stack. This address comes from the IANA-reserved 192.0.0.0/29 IPv4 Service Continuity Prefix defined in RFC 7335. Addresses from this prefix support local IPv4 compatibility and are not transmitted as IPv4 packets on the physical network.

Test IPv4 Connectivity

To test connectivity with WinCLAT, browse to a website or connect to another resource that uses IPv4 only from an IPv6-only network. In this example, I’m connecting to Google’s IPv4-only website https://ipv4.google.com/.

Group Policy

Administrators can also manage WinCLAT configuration settings using Active Directory (AD) and Group Policy. To begin, copy the tcpip.admx and tcpip.adml files from C:\Windows\PolicyDefinitions and C:\Windows\PolicyDefinitions\en-us (or another preferred language) from a device on which WinCLAT is available to the Group Policy Central Store in AD. Once complete, you will find WinCLAT settings in the following location in the Group Policy Management console (gpmc.msc).

Computer Configuration > Policies > Administrative Templates > Network > TCPIP Settings > IPv6 Transition Technologies

Summary

WinCLAT extends Windows support for 464XLAT to noncellular network interfaces, allowing IPv4-dependent applications to operate on IPv6-only and IPv6-mostly networks. It translates locally generated IPv4 traffic to IPv6 and forwards it to a NAT64 gateway, while DNS64 provides direct NAT64 connectivity for IPv6-capable applications. Administrators can configure WinCLAT locally using netsh.exe or centrally through Group Policy and can use either router advertisements or DNS to discover the NAT64 prefix. WinCLAT currently requires SLAAC-based IPv6 addressing and does not support networks that assign client IPv6 addresses exclusively through stateful DHCPv6.

Additional Information

Microsoft Plans to Extend CLAT Support in Windows 11

Microsoft Windows CLAT Public Preview

RFC 6877 – 464XLAT: Combination of Stateful and Stateless Translation

RFC 8925 – IPv6-Only Preferred Option for DHCPv4

Windows Server DHCP and Option 108

DirectAccess Manage Out with ISATAP and NLB Clustering

DirectAccess Manage Out with ISATAP and NLB ClusteringDirectAccess connections are bidirectional, allowing administrators to remotely connect to clients and manage them when they are out of the office. DirectAccess clients use IPv6 exclusively, so any communication initiated from the internal network to remote DirectAccess clients must also use IPv6. If IPv6 is not deployed natively on the internal network, the Intrasite Automatic Tunnel Addressing Protocol (ISATAP) IPv6 transition technology can be used to enable manage out.

ISATAP Supportability

According to Microsoft’s support guidelines for DirectAccess, using ISATAP for manage out is only supported for single server deployments. ISATAP is not supported when deployed in a multisite or load-balanced environment.

“Not supported” is not the same as “doesn’t work” though. For example, ISATAP can easily be deployed in single site DirectAccess deployments where load balancing is provided using Network Load Balancing (NLB).

ISATAP Configuration

To do this, you must first create DNS A resource records for the internal IPv4 address for each DirectAccess server as well as the internal virtual IP address (VIP) assigned to the cluster.

DirectAccess Manage Out with ISATAP and NLB Clustering

Note: Do NOT use the name ISATAP. This name is included in the DNS query block list on most DNS servers and will not resolve unless it is removed. Removing it is not recommended either, as it will result in ALL IPv6-enabled hosts on the network configuring an ISATAP tunnel adapter.

Once the DNS records have been added, you can configure a single computer for manage out by opening an elevated PowerShell command window and running the following command:

Set-NetIsatapConfiguration -State Enabled -Router [ISATAP FQDN] -PassThru

DirectAccess Manage Out with ISATAP and NLB Clustering

Once complete, an ISATAP tunnel adapter network interface with a unicast IPv6 address will appear in the output of ipconfig.exe, as shown here.

DirectAccess Manage Out with ISATAP and NLB Clustering

Running the Get-NetRoute -AddressFamily IPv6 PowerShell command will show routes to the client IPv6 prefixes assigned to each DirectAccess server.

DirectAccess Manage Out with ISATAP and NLB Clustering

Finally, verify network connectivity from the manage out host to the remote DirectAccess client.

Note: There is a known issue with some versions of Windows 10 and Windows Server 2016 that may prevent manage out using ISATAP from working correctly. There’s a simple workaround, however. More details can be found here.

Group Policy Deployment

If you have more than a few systems on which to enable ISATAP manage out, using Active Directory Group Policy Objects (GPOs) to distribute these settings is a much better idea. You can find guidance for creating GPOs for ISATAP manage out here.

DirectAccess Client Firewall Configuration

Simply enabling ISATAP on a server or workstation isn’t all that’s required to perform remote management on DirectAccess clients. The Windows firewall running on the DirectAccess client computer must also be configured to securely allow remote administration traffic from the internal network. Guidance for configuring the Windows firewall on DirectAccess clients for ISATAP manage out can be found here.

ISATAP Manage Out for Multisite and ELB

The configuration guidance in this post will not work if DirectAccess multisite is enabled or external load balancers (ELB) are used. However, ISATAP can still be used. For more information about enabling ISATAP manage out with external load balancers and/or multisite deployments, fill out the form below and I’ll provide you with more details.

Summary

Once ISATAP is enabled for manage out, administrators on the internal network can remotely manage DirectAccess clients wherever they happen to be. Native Windows remote administration tools such as Remote Desktop, Windows Remote Assistance, and the Computer Management MMC can be used to manage remote DirectAccess clients. In addition, enterprise administration tools such as PowerShell remoting and System Center Configuration Manger (SCCM) Remote Control can also be used. Further, third-party remote administration tools such as VNC, TeamViewer, LogMeIn, GoToMyPC, Bomgar, and many others will also work with DirectAccess ISATAP manage out.

Additional Information

ISATAP Recommendations for DirectAccess Deployments

DirectAccess Manage Out with ISATAP Fails on Windows 10 and Windows Server 2016 

DirectAccess Client Firewall Rule Configuration for ISATAP Manage Out

DirectAccess Manage Out and System Center Configuration Manager (SCCM)

Contact Me

Interested in learning more about ISATAP manage out for multisite and external load balancer deployments? Fill out the form below and I’ll get in touch with you.

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