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IoT Malware Dynamic Analysis Profiling System and Family Behavior Analysis

机译:物联网恶意软件动态分析系统和家庭行为分析

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Not only the number of deployed IoT devices increases but also that of IoT malware increases. We eager to understand the threat made by IoT malware but we lack tools to observe, analyze and detect them. We design and implement an automatic, virtual machine-based profiling system to collect valuable IoT malware behavior, such as API call invocation, system call execution, etc. In addition to conventional profiling methods (e.g., strace and packet capture), the proposed profiling system adapts virtual machine introspection based API hooking technique to intercept API call invocation by malware, so that our introspection would not be detected by IoT malware. We then propose a method to convert the multiple sequential data (API calls) to a family behavior graph for further analysis.
机译:不仅部署的IOT设备的数量增加而且IOT恶意软件的数量也会增加。我们渴望了解IoT恶意软件所做的威胁,但我们缺乏工具来观察,分析和检测它们。我们设计并实现了一种自动,虚拟机基础的分析系统,以收集有价值的物联网恶意软件行为,例如API呼叫调用,系统呼叫执行等。除了传统的分析方法(例如,strace和数据包捕获),提出的分析系统适应基于虚拟机的内省API挂钩技术以拦截恶意软件的API调用调用,以便IoT恶意软件无法检测到我们的内省。然后,我们提出了一种方法来将多个顺序数据(API呼叫)转换为家庭行为图以进行进一步分析。

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