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Ekiden: A Platform for Confidentiality-Preserving, Trustworthy, and Performant Smart Contract Execution

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arxiv 1804.05141 v7 pith:M7QW2IJQ submitted 2018-04-14 cs.CR

classification cs.CR
keywords blockchainsekidencontractsexecutionsmartteestheyconfidentiality-preserving
verification ladder T0 review T1 audit T2 compute T3 formal

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Smart contracts are applications that execute on blockchains. Today they manage billions of dollars in value and motivate visionary plans for pervasive blockchain deployment. While smart contracts inherit the availability and other security assurances of blockchains, however, they are impeded by blockchains' lack of confidentiality and poor performance. We present Ekiden, a system that addresses these critical gaps by combining blockchains with Trusted Execution Environments (TEEs). Ekiden leverages a novel architecture that separates consensus from execution, enabling efficient TEE-backed confidentiality-preserving smart-contracts and high scalability. Our prototype (with Tendermint as the consensus layer) achieves example performance of 600x more throughput and 400x less latency at 1000x less cost than the Ethereum mainnet. Another contribution of this paper is that we systematically identify and treat the pitfalls arising from harmonizing TEEs and blockchains. Treated separately, both TEEs and blockchains provide powerful guarantees, but hybridized, though, they engender new attacks. For example, in naive designs, privacy in TEE-backed contracts can be jeopardized by forgery of blocks, a seemingly unrelated attack vector. We believe the insights learned from Ekiden will prove to be of broad importance in hybridized TEE-blockchain systems.

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Forward citations

Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Data Structures for Private Token Transfers in TEE-Based Networks

    cs.CR 2026-07 conditional novelty 6.5 of 10

    DWB buffers and randomly settles recipient balance updates while BTBE buckets addresses, giving probabilistic unlinkability for TEE token transfers without full ORAM cost.

  2. Auditable Credential Anonymity Revocation Based on Privacy-Preserving Smart Contracts

    cs.CR 2019-08 conditional novelty 6.0 of 10

    A credential anonymity revocation system where a privacy-preserving smart contract performs tracing, with public ledger records making revocation auditable.

  3. A Tale of Two Trees: One Writes, and Other Reads. Optimized Oblivious Accesses to Large-Scale Blockchains

    cs.CR 2019-09 reject novelty 5.0 of 10

    T3 combines SGX and a two-tree ORAM to give Bitcoin SPV clients privacy-preserving UTXO lookups with sub-millisecond to 2.4 ms reads in simulation, but its privacy argument has a multi-client linkability gap.

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