This project contains known security vulnerabilities. Find detailed information at the bottom.

Crate ffsend-api

Dependencies

(24 total, 11 outdated, 3 insecure)

CrateRequiredLatestStatus
 arrayref^0.30.3.9up to date
 base64^0.100.23.1out of date
 byteorder^1.31.5.0up to date
 bytes^0.41.12.1out of date
 chrono^0.40.4.45up to date
 derive_builder^0.70.20.2out of date
 failure^0.10.1.8up to date
 failure_derive^0.10.1.8up to date
 hkdf^0.70.13.0out of date
 hyper ⚠️^0.12.221.11.1insecure
 mime^0.3.70.3.17up to date
 mime_guess^2.0.0-alpha.42.0.5up to date
 openssl^0.100.10.81up to date
 regex^1.11.13.1up to date
 reqwest^0.9.120.13.5out of date
 serde^1.01.0.229up to date
 serde_derive^1.01.0.229up to date
 serde_json^1.01.0.151up to date
 sha2^0.80.11.0out of date
 time ⚠️^0.10.3.55insecure
 url^1.72.5.8out of date
 url_serde^0.20.2.0up to date
 version-compare^0.0.60.2.1out of date
 websocket ⚠️^0.22.30.27.1insecure

Security Vulnerabilities

time: Potential segfault in the time crate

RUSTSEC-2020-0071

Impact

The affected functions set environment variables without synchronization. On Unix-like operating systems, this can crash in multithreaded programs. Programs may segfault due to dereferencing a dangling pointer if an environment variable is read in a different thread than the affected functions. This may occur without the user's knowledge, notably in the Rust standard library or third-party libraries.

The affected functions from time 0.2.7 through 0.2.22 are:

  • time::UtcOffset::local_offset_at
  • time::UtcOffset::try_local_offset_at
  • time::UtcOffset::current_local_offset
  • time::UtcOffset::try_current_local_offset
  • time::OffsetDateTime::now_local
  • time::OffsetDateTime::try_now_local

The affected functions in time 0.1 (all versions) are:

  • time::at_utc
  • time::at
  • time::now
  • time::tzset

Non-Unix targets (including Windows and wasm) are unaffected.

Patches

Pending a proper fix, the internal method that determines the local offset has been modified to always return None on the affected operating systems. This has the effect of returning an Err on the try_* methods and UTC on the non-try_* methods.

Users and library authors with time in their dependency tree should perform cargo update, which will pull in the updated, unaffected code.

Users of time 0.1 do not have a patch and should upgrade to an unaffected version: time 0.2.23 or greater or the 0.3 series.

Workarounds

A possible workaround for crates affected through the transitive dependency in chrono, is to avoid using the default oldtime feature dependency of the chrono crate by disabling its default-features and manually specifying the required features instead.

Examples:

Cargo.toml:

chrono = { version = "0.4", default-features = false, features = ["serde"] }
chrono = { version = "0.4.22", default-features = false, features = ["clock"] }

Commandline:

cargo add chrono --no-default-features -F clock

Sources:

hyper: Lenient `hyper` header parsing of `Content-Length` could allow request smuggling

RUSTSEC-2021-0078

hyper's HTTP header parser accepted, according to RFC 7230, illegal contents inside Content-Length headers. Due to this, upstream HTTP proxies that ignore the header may still forward them along if it chooses to ignore the error.

To be vulnerable, hyper must be used as an HTTP/1 server and using an HTTP proxy upstream that ignores the header's contents but still forwards it. Due to all the factors that must line up, an attack exploiting this vulnerability is unlikely.

hyper: Integer overflow in `hyper`'s parsing of the `Transfer-Encoding` header leads to data loss

RUSTSEC-2021-0079

When decoding chunk sizes that are too large, hyper's code would encounter an integer overflow. Depending on the situation, this could lead to data loss from an incorrect total size, or in rarer cases, a request smuggling attack.

To be vulnerable, you must be using hyper for any HTTP/1 purpose, including as a client or server, and consumers must send requests or responses that specify a chunk size greater than 18 exabytes. For a possible request smuggling attack to be possible, any upstream proxies must accept a chunk size greater than 64 bits.

websocket: Unbounded memory allocation based on untrusted length

RUSTSEC-2022-0035

Impact

Untrusted websocket connections can cause an out-of-memory (OOM) process abort in a client or a server. The root cause of the issue is during dataframe parsing. Affected versions would allocate a buffer based on the declared dataframe size, which may come from an untrusted source. When Vec::with_capacity fails to allocate, the default Rust allocator will abort the current process, killing all threads. This affects only sync (non-Tokio) implementation. Async version also does not limit memory, but does not use with_capacity, so DoS can happen only when bytes for oversized dataframe or message actually got delivered by the attacker.

This is a security concern for you, if

  • your server application handles untrusted websocket connections
  • OR your client application connects to untrusted websocket servers

Patches

The crashes are fixed in version 0.26.5 by imposing default dataframe size limits. Affected users are advised to update to this version.

Note that default memory limits are rather large (100MB dataframes and 200 MB messages), so they can still cause DoS in some environments (i.e. 32-bit). New API has been added to fine tune those limits for specific applications.

Workarounds

  • Migrate your project to another, maintained Websocket library like Tungstenite.
  • Accept only trusted WebSocket traffic.
  • Filter the WebSocket traffic though some kind of proxy that ensures sanity limits on messages.
  • Handle process aborts gracefully and limit process memory using OS tools.

Credits

This issue was reported by Evan Richter at ForAllSecure and found with Mayhem and Cargo Fuzz.