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MODELZ: Monitoring, Detection, and Analysis of Energy-Greedy Anomalies in Mobile Handsets

机译:模型:监控,检测和分析手机中的贪婪异常

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It is of great importance to protect rapidly-spreading and widely-used small mobile devices like smartphones and PocketPCs from energy-depletion attacks by monitoring software (processes) and hardware (especially, battery) resources. The ability to use these devices for on- and/or off-job functions, and even for medical emergencies or disaster recovery is often dictated by their limited battery capacity. However, traditional malware detection systems and antivirus solutions based on matching signatures are limited to detection of only known malware, and hence, cannot deal with battery-depletion attacks. To meet this challenge, we propose to develop, implement, and evaluate a comprehensive framework, called MODELZ, that MOnitors, DEtects, and anaLyZes energy-greedy anomalies on small mobile devices. MODELZ comprises 1) a charge flow meter that allows infrequent sampling of energy consumption without losing accuracy, 2) a power monitor, in coordination with the charge flow meter, that samples and builds a power-consumption history, and 3) a data analyzer that generates a power signature from the power-consumption history. To generate a power signature, we devise and apply light-weighted, effective noise filtering and data compression, reducing the detection overhead significantly. The similarities between power signatures are measured by the chi^2-distance and used to lower both false-positive and false-negative detection rates. Our experimental results on an HP iPAQ running the Windows Mobile OS have shown that MODELZ achieves significant (up to 95 percent) storage-savings without losing detection accuracy, and a 99 percent true-positive rate in differentiating legitimate programs from suspicious ones while the monitoring consumes 50 percent less energy than the case of keeping the Bluetooth radio turned on.
机译:通过监视软件(过程)和硬件(尤其是电池)资源,保护快速传播和广泛使用的小型移动设备(如智能手机和PocketPC)免受能量消耗攻击非常重要。将这些设备用于上班和/或下班功能,甚至用于医疗紧急情况或灾难恢复的能力,通常取决于其有限的电池容量。但是,传统的基于匹配签名的恶意软件检测系统和防病毒解决方案仅限于仅检测已知恶意软件,因此无法应对电池耗尽攻击。为了应对这一挑战,我们建议开发,实施和评估一个称为MODELZ的综合框架,该框架可在小型移动设备上监测,检测和分析能量贪婪异常。 MODELZ包括:1)电荷流量计,可对能量消耗进行不频繁采样而不会损失精度; 2)与电荷流量计配合使用的功率监控器,可对功率消耗历史进行采样和构建,以及3)数据分析器,根据功耗历史记录生成电源签名。为了生成电源签名,我们设计并应用了轻量,有效的噪声过滤和数据压缩功能,从而大大减少了检测开销。功率特征之间的相似性通过χ2距离测量,并用于降低假阳性和假阴性检测率。我们在运行Windows Mobile OS的HP iPAQ上的实验结果表明,MODELZ可以节省大量存储(高达95%),而不会丢失检测精度,在区分合法程序与可疑程序的同时,真假率高达99%。与保持蓝牙无线电打开的情况相比,能耗降低了50%。

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