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Thomas Van Strydonck

Publications and source records attributed to Thomas Van Strydonck.

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Cerisier: A Program Logic for Attestation in a Capability Machine

A key feature in trusted computing is attestation, which allows encapsulated components (enclaves) to prove their identity to (local or remote) distrusting components. Reasoning about software that uses the technique requires tracking how trust evolves after successful attestation. This process is security-critical and non-trivial, but no existing formal verification technique supports modular reasoning about attestation of enclaves and their clients, or proving end-to-end properties for systems combining trusted, untrusted and attested code. We contribute Cerisier, the first program logic for modular reasoning about trusted, untrusted and attested code, fully mechanized in the Iris separation logic and the Rocq Prover. We formalize a recent proposal, CHERI-TrEE, to extend capability machines with enclave primitives, as an extension to the Cerise capability machine and program logic. Our program logic comes with a universal contract for untrusted code, which captures both capability safety and local enclave attestation. Like Cerise, this universal contract is phrased in terms of a logical relation defining capabilities' authority. We demonstrate Cerisier by proving end-to-end properties for three representative applications of trusted computing: secure outsourced computation, mutual attestation and a modeled trusted sensor component.

cs.PL

Uninitialized Capabilities

This technical report describes a new extension to capability machines. Capability machines are a special type of processors that include better security primitives at the hardware level. In capability machines, every word has an associated tag bit that indicates whether the value it contains is a capability or a regular data value. Capabilities enable fine-grained control of the authority over memory that program components have. Conceptually, capabilities can be viewed as being an unforgeable token carrying authority over a resource. CHERI is a recently developed capability machine that aims to provide fine-grained memory protection, software compartmentalization and backwards compatibility. While our ideas are implemented on CHERI, they are not limited to it and should be applicable to other capability machines as well. In this technical report we propose a new type of capabilities, which represent the authority to access (read and write to) a block of memory but not view its initial contents. Our main goal is to use this new type of capability as part of a secure calling convention, but other applications may be possible too.

cs.PL