NOTE: This is an early implementation of the DTG Core Credentials specification (v1.0, Working Draft 01), which supersedes the earlier v0.3 proposal draft.
See the First Person Project Whitepaper for more information.
This library supports both W3C VC 1.1 and 2.0 specifications.
See CHANGELOG.md for release history.
Warning
digest encoding
This library does not encode the Witness Credential digest the way
Working Draft 01 specifies. VWCs produced by this library will not
interoperate with spec-conformant implementations, in either direction.
| Encoding | Example | |
|---|---|---|
| WD-01 requires | sha256: + lowercase hex |
sha256:e3b0c44298fc... |
| This library emits | multibase multihash (base58btc) | zQmbGXRT3v1Rm... |
The underlying hash is identical — SHA-256 over the JCS (RFC 8785) canonical
form — so only the encoding differs. The choice was made to match the W3C
digestMultibase convention used elsewhere in the VC ecosystem.
Practical consequences:
verify_digest()will reject a conformant VWC from another implementation- A conformant verifier will reject a VWC produced by this library
This is unresolved and should be raised with the DTGWG for alignment. If your
deployment must interoperate with conformant implementations today, do not rely
on digest_multibase() / verify_digest().
All credentials inherit from the abstract DTGCredential.
VerifiableCredential
└── DTGCredential
├── MembershipCredential (VMC)
├── RelationshipCredential (VRC)
├── InvitationCredential (VIC)
├── PersonaCredential (VPC)
├── EndorsementCredential (VEC)
└── WitnessCredential (VWC)
NOTE: The relationship card (R-Card) is not a DTGCredential subtype.
Working Draft 01 reclassifies it as a verifiable data structure (VDS), to be
defined by the planned DTG Verifiable Data Structures specification. The
RCard type, CredentialSubjectRCard and new_rcard() are deprecated in this
library and will be removed in a future release.
Credentials issued inside a multi-step trust task exchange may carry a
taskContext property holding the threadId of that exchange. It is REQUIRED
on a WitnessCredential — deserializing a VWC without one fails with
DTGCredentialError::MissingTaskContext — and OPTIONAL on every other type.
A credential without a taskContext must be interpretable standing alone. A
credential with one must not be read as proof that the trust task completed
unless the matching outcome evidence is also present and verified.
let vwc = DTGCredential::new_vwc(
issuer, subject, valid_from, valid_until,
"thread-abc-123".to_string(), // taskContext
digest, witness_context,
);
assert_eq!(vwc.task_context(), Some("thread-abc-123"));Warning
The encoding used here diverges from Working Draft 01 and is not interoperable with conformant implementations. See the warning at the top of this README before relying on these functions.
A VWC may bind itself to the VRC it witnesses via credentialSubject.digest.
Compute it from the witnessed credential:
let digest = vrc.digest_multibase()?;This is the SHA-256 hash of the credential canonicalized with JCS (RFC 8785),
wrapped as a multihash and encoded base58btc multibase (z...), matching the
W3C digestMultibase convention. A verifier can check the binding with:
if vwc.verify_digest(&vrc)? {
println!("VWC attests this VRC");
}An end-to-end example of creating, signing and verifying a DTG Credential exists
in examples
cargo run --example sign_and_verifyEach credential type has it's own new_*() function to create a new credential
of that type.
Example:
let vpc = DTGCredential::new_vpc(issuer, subject, valid_from, valid_to);The created DTGCredential can be serialized to JSON using serde_json allowing
it to be passed into various signing libraries
By default the affinidi-signing feature is enabled which allows you to sign a
credential
let mut vpc = DTGCredential::new_vpc(issuer, subject, valid_from, valid_to);
vpc.sign(&signing_key).await?;There are two ways to validate a credential:
Method 1: If you have the public key bytes that correspond to the signing key, then you can directly verify the credential:
let signing_key = Secret::generate_ed25519(None, None);
let mut vpc = DTGCredential::new_vpc(issuer, subject, valid_from, valid_to);
vpc.sign(&signing_key).await?;
vpc.verify(&signing_key.get_public_bytes())?;Method 2: If you do not have the public key material, you are likely going to need to resolve the DID VerificationMethod and derive the public key bytes used when creating the credential.
let mut credential = serde_json::from_str(<raw_credential_string>);
// Get the proof
let proof = if let Some(proof) = &credential.credential().proof {
proof.clone()
} else {
bail!("credential is not signed!");
};
// Strip proof from the credential
let unsigned = DTGCommon {
proof: None,
..credential.credential().clone()
};
tdk.verify_data(&unsigned, None, &proof).await?;You can deal with the raw credential as required.
let vrc = DTGCredential::new_vrc(issuer, subject, valid_from, valid_to);
let credential = vrc.credential();You can determine the credential type easily using:
let vmc = DTGCredential::new_vmc(issuer, subject, valid_from, valid_to);
if let DTGCredentialType::VMC = vmc.type_() {
// Good
}Has this Credential been signed?
let vmc = DTGCredential::new_vmc(issuer, subject, valid_from, valid_to);
if vmc.signed() {
println!("Credential has been signed");
} else {
println!("Credential has not been signed");
}