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Generalized Channels from Limited Blockchain Scripts and Adaptor Signatures

计算机科学 可扩展性 块链 数字加密货币 脚本语言 密码学 理论计算机科学 数据库事务 可验证秘密共享 密码原语 计算机安全 分布式计算 密码协议 程序设计语言 数据库 集合(抽象数据类型)
作者
Lukas Aumayr,Oğuzhan Ersoy,Andreas Erwig,Sebastian Faust,Kristina Hostáková,Matteo Maffei,Pedro Moreno-Sanchez,Siavash Riahi
出处
期刊:Lecture Notes in Computer Science 卷期号:: 635-664 被引量:20
标识
DOI:10.1007/978-3-030-92075-3_22
摘要

Decentralized and permissionless ledgers offer an inherently low transaction rate, as a result of their consensus protocol demanding the storage of each transaction on-chain. A prominent proposal to tackle this scalability issue is to utilize off-chain protocols, where parties only need to post a limited number of transactions on-chain. Existing solutions can roughly be categorized into: (i) application-specific channels (e.g., payment channels), offering strictly weaker functionality than the underlying blockchain; and (ii) state channels, supporting arbitrary smart contracts at the cost of being compatible only with the few blockchains having Turing-complete scripting languages (e.g., Ethereum).In this work, we introduce and formalize the notion of generalized channels allowing users to perform any operation supported by the underlying blockchain in an off-chain manner. Generalized channels thus extend the functionality of payment channels and relax the definition of state channels. We present a concrete construction compatible with any blockchain supporting transaction authorization, time-locks and constant number of Boolean \(\wedge \) and \(\vee \) operations – requirements fulfilled by many (non-Turing-complete) blockchains including the popular Bitcoin. To this end, we leverage adaptor signatures – a cryptographic primitive already used in the cryptocurrency literature but formalized as a standalone primitive in this work for the first time. We formally prove the security of our generalized channel construction in the Universal Composability framework.As an important practical contribution, our generalized channel construction outperforms the state-of-the-art payment channel construction, the Lightning Network, in efficiency. Concretely, it halves the off-chain communication complexity and reduces the on-chain footprint in case of disputes from linear to constant in the number of off-chain applications funded by the channel. Finally, we evaluate the practicality of our construction via a prototype implementation and discuss various applications including financially secured fair two-party computation.

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