Multi-Party Protocols, Information Complexity and Privacy

Iordanis Kerenidis, A. Rosén, Florent Urrutia
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引用次数: 5

Abstract

We introduce a new information-theoretic measure, which we call Public Information Complexity (PIC), as a tool for the study of multi-party computation protocols, and of quantities such as their communication complexity, or the amount of randomness they require in the context of information-theoretic private computations. We are able to use this measure directly in the natural asynchronous message-passing peer-to-peer model and show a number of interesting properties and applications of our new notion: The Public Information Complexity is a lower bound on the Communication Complexity and an upper bound on the Information Complexity; the difference between the Public Information Complexity and the Information Complexity provides a lower bound on the amount of randomness used in a protocol; any communication protocol can be compressed to its Public Information Cost; and an explicit calculation of the zero-error Public Information Complexity of the k-party, n-bit Parity function, where a player outputs the bitwise parity of the inputs. The latter result also establishes that the amount of randomness needed by a private protocol that computes this function is Ω (n).
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多方协议,信息复杂性和隐私
我们引入了一种新的信息论度量,我们称之为公共信息复杂性(PIC),作为研究多方计算协议的工具,以及它们的通信复杂性或它们在信息论私有计算环境中所需的随机性量。我们能够在自然异步消息传递的点对点模型中直接使用这一度量,并展示了我们的新概念的一些有趣的特性和应用:公共信息复杂性是通信复杂性的下界和信息复杂性的上界;公共信息复杂度和信息复杂度之间的差异提供了协议中使用的随机性量的下限;任何通信协议都可以压缩到其公共信息成本;以及明确计算k方的零错误公共信息复杂性,n位奇偶校验函数,其中玩家输出输入的按位奇偶校验。后一个结果还确定了计算此函数的私有协议所需的随机性量为Ω (n)。
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