GHSA-mwj6-rfh8-7qf4: Pip/hydra-core vulnerability
Summary
Hydra's legacy instantiate() target blocklists and related execution-policy collections are stored in mutable module-level state. Because locate() can resolve attributes on imported objects, a configuration can resolve a mutation method such as .discard(), modify the active policy, and then instantiate a target that would otherwise be blocked.
Impact
A configuration controlling multiple sibling target entries can first remove an entry from a target blocklist and then invoke the removed target. Sibling nodes are processed in insertion order and consult the same mutable module-level policy.
This affects the legacy/default path without an execution whitelist. The 1.3 blocklist is a defense-in-depth measure rather than a complete security boundary, and applications must not treat arbitrary untrusted configuration as safe to instantiate or use for Python logging configuration.
Released hydra-core versions 1.3.4 through 1.3.6 and 1.4.0.dev4 through 1.4.0.dev9 are affected. Fixed releases are 1.3.7 and 1.4.0.dev10. The reported direct mutation path does not bypass an execution whitelist restricted to intended application targets and supplied by trusted Python code. During remediation, Hydra additionally hardened generic discovery, dispatch, introspection, alias, callable-result, and deferred-callable paths that could otherwise undermine name-only authorization.
Technical details
In hydra-core 1.3.4 and 1.3.5, the mutable blocklist is reachable as:
hydra.internal.instantiate.instantiate2.DEFAULTBLOCKLISTEDMODULES
In hydra-core 1.3.6, the expanded policy includes mutable collections in:
hydra.internal.targetpolicy
For example:
hydra.internal.targetpolicy.UNCONTROLLEDEXECUTIONTARGETS.discard
resolves to the bound set.discard method. The mutation target itself is not blocked on the legacy path. Once an entry is removed, subsequent authorization checks observe the modified set.
Other runtime policy collections can be attacked similarly by removing denied entries or adding entries to exception sets. Because the collections are module-level state, a successful mutation persists for the lifetime of the Python process unless explicitly reversed.
Safe reproduction
The behavior in hydra-core 1.3.6 can be demonstrated without invoking a shell command. The finally block restores the modified process-global state:
python from omegaconf import OmegaConf
from hydra.internal.targetpolicy import UNCONTROLLEDEXECUTIONTARGETS from hydra.utils import instantiate
target = "builtins.eval" assert target in UNCONTROLLEDEXECUTIONTARGETS
try: result = instantiate( OmegaConf.create( { "disarm": { "target": ( "hydra.internal.targetpolicy." "UNCONTROLLEDEXECUTIONTARGETS.discard" ), "args": [target], }, "proof": { "target": target, "args": ["40 + 2"], }, } ) )
assert result["proof"] == 42 assert target not in UNCONTROLLEDEXECUTIONTARGETS finally: UNCONTROLLEDEXECUTIONTARGETS.add(target)
Remediation
The fix makes runtime policy state immutable and integrity checked, and prevents declarative configuration from accessing or mutating Hydra internals and protected Python implementation state. Target authorization now covers canonical resolved identities, aliases, discovery results, callable results, deferred callables, and runtime arguments.
The patch also rejects configuration-driven code, policy, and process- environment mutation, along with unsafe introspection and formatting traversal that can expose protected runtime capabilities.
Hydra 1.3.7 receives these protections as defense in depth; it does not make untrusted configuration sandboxed. Hydra 1.4 additionally uses a trusted, narrowly scoped execution whitelist as the supported security boundary for declarative instantiation and Hydra-controlled Python logging configuration.
Users should upgrade to hydra-core 1.3.7 on the stable line or 1.4.0.dev10 on the development line.
Workarounds
Do not pass configuration from untrusted sources to instantiate() or to Hydra-controlled Python logging configuration. The 1.3 release line has no execution-whitelist facility, so users who cannot upgrade immediately must restrict configuration input to trusted sources.
On affected 1.4 development releases, applications can also supply a trusted, narrowly scoped execution whitelist from Python code. The whitelist itself must not be derived from untrusted configuration.
Restart any long-running process that may already have instantiated untrusted configuration, because a policy mutation persists in process-global state.
Affected Software
Remediation
Recommended actions to resolve this vulnerability, in priority order.
- Upgrade
Upgrade
pip/hydra-coreto a version that resolves this vulnerability.Fixed in 1.4.0.dev10 - Upgrade
Upgrade
pip/hydra-coreto a version that resolves this vulnerability.Fixed in 1.3.7 - Upgrade
Upgrade
hydra-coreto a version that resolves this vulnerability.Fixed in 1.3.7 - Configuration
Use Hydra's narrowly scoped execution-whitelist facility as the supported security boundary, restricting it to intended application targets supplied by trusted Python code.
Hydra execution whitelist = restricted to intended application targets - Configuration
Do not pass configuration from untrusted sources to instantiate() or to Hydra-controlled Python logging configuration.
Hydra instantiate() and Hydra-controlled Python logging configuration configuration source = trusted sources only - Operational
Restart any long-running process that may already have instantiated untrusted configuration, because a successful policy mutation persists for the lifetime of the Python process unless explicitly reversed.
Event History
Frequently Asked Questions
Which deployments are affected?
Released hydra-core versions 1.3.4 through 1.3.6 and 1.4.0.dev4 through 1.4.0.dev9 are affected. The issue applies to the legacy/default instantiation path when no execution whitelist is configured.
What does an attacker need to exploit this?
An attacker needs control over configuration containing multiple sibling _target_ entries. The entries must be processed in insertion order so an earlier target can mutate the shared blocklist before a later target invokes a previously blocked target.
Does an execution whitelist prevent the reported bypass?
The reported direct mutation path does not bypass an execution whitelist that is restricted to intended application targets and supplied by trusted Python code. The blocklist alone is defense in depth and is not a security boundary for arbitrary untrusted configuration.
What should be done if updating is not immediately possible?
Do not allow arbitrary untrusted configuration to be instantiated, and do not treat the default blocklist as sufficient protection. Use an execution whitelist restricted to intended application targets and provide that whitelist from trusted Python code.
Which versions contain the fix?
The issue is fixed in hydra-core 1.3.7 and 1.4.0.dev10.