Andreas Abraham

dblp:226/0783 · DBLP profile ↗
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6ranked-venue papers
4as first author
3since 2021 · last 2021
0000-0002-4163-9113ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Security and privacy · 6 · 4 first-author · 3 since 2021
YearPublicationVenuePosition
2021 Trust Me If You Can: Trusted Transformation Between (JSON) Schemas to Support Global Authentication of Education Credentials
Stefan More, Peter Grassberger, Felix Hörandner, Andreas Abraham, Lukas Daniel Klausner
SEC4
2021 SSI Strong Authentication using a Mobile-phone based Identity Wallet Reaching a High Level of Assurance
Andreas Abraham, Christopher Schinnerl, Stefan More
SECRYPT1
2021 Privacy-Preserving eID Derivation to Self-Sovereign Identity Systems with Offline Revocation
abstract
Digital identities play a vital role in an increasingly digital world. These identities often rely on central authorities to issue and manage them. Central authorities have the drawback of being a central trusted party, representing a bottleneck and single point of failure with exclusive control of identity-related data. Self-sovereign identity (SSI) tackles those problems by utilizing distributed ledger technology and making users the sovereign owners of their identity data. Nevertheless, SSI, as recent technology, still lacks qualified identity data. This is especially a problem since sensitive services like eGovernment or banking services require identity data issued by a qualified identity provider; thus, SSI - based identities cannot be used for these services. In this paper, we propose a concept for deriving identity data from an existing identity system into an SSI in a fully privacy-preserving way by additionally supporting offline verification. This way, we enable a chain of trust from the existing identity system to the SSI system by introducing a novel trust model. Our concept utilizes novel cryptographic primitives to support efficient and privacy-preserving identity showing as well as revo-cation. To underline the feasibility of our concept, we implement a proof system and benchmark the related use cases.
Andreas Abraham, Karl W. Koch, Stefan More, Sebastian Ramacher, Miha Stopar
TrustCom1
2020 Privacy-Preserving Service Composition with Enhanced Flexibility and Efficiency
Kevin Theuermann, Felix Hörandner, Andreas Abraham, Dominik Ziegler 0001
TrustBus3
2020 Revocable and Offline-Verifiable Self-Sovereign Identities
abstract
Identity management systems enable users (i.e., provers) to authenticate and provide attributes to verifiers by using certified credentials obtained from an authority. To accept such a credential, verifiers require information on whether the presented credentials are still valid or if they have been revoked. Up-to-date revocation information can be obtained from a revocation database; however, this requires that the verifier or prover is online. The problem becomes more interesting in the offline case when the prover (e.g., citizen) and verifier (e.g., police officer) do not have an Internet connection to query the revocation status of the presented credential (e.g., digital driver's license). In this paper, we extend the Self-Sovereign Identity (SSI) model to support both revocation as well as offline-verification. Our concept introduces attestations of validity for a point in time, which are issued by the SSI network for credentials that have not been revoked, i.e., added by authorized entities to a revocation list. The concept aims to be generic so that it can be used for various use cases, e.g., by giving users the control over the frequency of re-attestation. To show our concept's feasibility and practicality, we developed and evaluated an implementation that includes an efficient and privacy-preserving showing of credentials using noninteractive zero-knowledge proofs, all while being offline.
Andreas Abraham, Stefan More, Christof Rabensteiner, Felix Hörandner
TrustCom1
2019 Privacy-Preserving eID Derivation for Self-Sovereign Identity Systems
Andreas Abraham, Felix Hörandner, Olamide Omolola, Sebastian Ramacher
ICICS1