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Secure Processors Part II

Autor Victor Costan, Ilia Lebedev, Srinivas Devadas
en Limba Engleză Paperback – 13 iul 2017
This monograph is the second of a two-part survey and analysis of the state of the art in secure processor systems, with a speci¿c focus on remote software attestation and software isolation. The ¿rst part established the taxonomy and prerequisite concepts relevant to an examination of the state of the art in trusted remote computation: attested software isolation containers (enclaves). second part extends Part I's description of Intel's Software Guard Extensions (SGX), an available and documented enclave-capable system, with a rigorous security analysis of SGX as a system for trusted remote computation. This part documents the authors' concerns over the shortcomings of SGX as a secure system and introduces the MIT Sanctum processor developed by the authors: a system designed to öer stronger security guarantees, lend itself better to analysis and formal veri¿cation, and öer a more straightforward and complete threat model than the Intel system, all with an equivalent programming model. This two-part work advocates a principled, transparent, and well scrutinized approach to system design, and argues that practical guarantees of privacy and integrity for remote computation are achievable at a reasonable design cost and performance overhead. See also: Secure Processors Part I: Background, Taxonomy for Secure Enclaves and Intel SGX Architecture (ISBN 978-1-68083-300-3). Part I of this survey establishes the taxonomy and prerequisite concepts relevant to an examination of the state of the art in trusted remote computation: attested software isolation containers (enclaves).
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Specificații

ISBN-13: 9781680833027
ISBN-10: 1680833022
Pagini: 128
Dimensiuni: 156 x 234 x 7 mm
Greutate: 0.21 kg
Editura: Now Publishers Inc

Descriere

Surveys the state of the art in secure processor systems, with a specific focus on remote software attestation and software isolation. This two part work advocates a principled, transparent approach to system design, and argues that practical guarantees of privacy and integrity for remote computation are achievable.