针对真实着色对手的鲁棒假后检测

IF 1 4区 计算机科学 Q4 COMPUTER SCIENCE, HARDWARE & ARCHITECTURE Performance Evaluation Pub Date : 2023-11-01 DOI:10.1016/j.peva.2023.102372
Khushboo Agarwal , Veeraruna Kavitha
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引用次数: 0

摘要

虚假帖子在网络社交网络(sns)上的病毒式传播已经成为一个令人担忧的问题。本文旨在设计一种能够在不影响真实帖子传播的情况下检测假帖子的控制机制。为此,最近提出了一种基于人群信号的警告机制,所有用户都主动声明帖子是真的还是假的。在本文中,我们考虑了一个更现实的框架,其中用户表现出不同的对抗或非合作行为:(i)他们可以独立决定是否提供他们的响应,(ii)他们可以选择在提供响应时不考虑警告信号,(iii)他们可以是真实的对手,故意将任何帖子声明为真实。为了分析这一复杂系统的后繁殖过程,我们提出并研究了一种新的分支过程,即多死亡类型的总种群依赖分支过程。首先,我们比较并表明,在存在对手的情况下,现有的警告机制明显表现不佳。然后,通过巧妙地消除对手响应的影响,设计出比现有机制性能更好的新机制。最后,我们提出了另一种增强机制,该机制假设对用户特定参数的了解最少。通过蒙特卡罗仿真验证了理论结果。
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Robust fake-post detection against real-coloring adversaries

The viral propagation of fake posts on online social networks (OSNs) has become an alarming concern. The paper aims to design control mechanisms for fake post detection while negligibly affecting the propagation of real posts. Towards this, a warning mechanism based on crowd-signals was recently proposed, where all users actively declare the post as real or fake. In this paper, we consider a more realistic framework where users exhibit different adversarial or non-cooperative behaviour: (i) they can independently decide whether to provide their response, (ii) they can choose not to consider the warning signal while providing the response, and (iii) they can be real-coloring adversaries who deliberately declare any post as real. To analyse the post-propagation process in this complex system, we propose and study a new branching process, namely total-current population-dependent branching process with multiple death types. At first, we compare and show that the existing warning mechanism significantly under-performs in the presence of adversaries. Then, we design new mechanisms which remarkably perform better than the existing mechanism by cleverly eliminating the influence of the responses of the adversaries. Finally, we propose another enhanced mechanism which assumes minimal knowledge about the user-specific parameters. The theoretical results are validated using Monte-Carlo simulations.

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来源期刊
Performance Evaluation
Performance Evaluation 工程技术-计算机:理论方法
CiteScore
3.10
自引率
0.00%
发文量
20
审稿时长
24 days
期刊介绍: Performance Evaluation functions as a leading journal in the area of modeling, measurement, and evaluation of performance aspects of computing and communication systems. As such, it aims to present a balanced and complete view of the entire Performance Evaluation profession. Hence, the journal is interested in papers that focus on one or more of the following dimensions: -Define new performance evaluation tools, including measurement and monitoring tools as well as modeling and analytic techniques -Provide new insights into the performance of computing and communication systems -Introduce new application areas where performance evaluation tools can play an important role and creative new uses for performance evaluation tools. More specifically, common application areas of interest include the performance of: -Resource allocation and control methods and algorithms (e.g. routing and flow control in networks, bandwidth allocation, processor scheduling, memory management) -System architecture, design and implementation -Cognitive radio -VANETs -Social networks and media -Energy efficient ICT -Energy harvesting -Data centers -Data centric networks -System reliability -System tuning and capacity planning -Wireless and sensor networks -Autonomic and self-organizing systems -Embedded systems -Network science
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