Towards a taint mode for cloud computing web applications

Luciano Bello, Alejandro Russo
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引用次数: 19

Abstract

Cloud computing is generally understood as the distribution of data and computations over the Internet. Over the past years, there has been a steep increase in web sites using this technology. Unfortunately, those web sites are not exempted from injection flaws and cross-site scripting, two of the most common security risks in web applications. Taint analysis is an automatic approach to detect vulnerabilities. Cloud computing platforms possess several features that, while facilitating the development of web applications, make it difficult to apply off-the-shelf taint analysis techniques. More specifically, several of the existing taint analysis techniques do not deal with persistent storage (e.g. object datastores), opaque objects (objects whose implementation cannot be accessed and thus tracking tainted data becomes a challenge), or a rich set of security policies (e.g. forcing a specific order of sanitizers to be applied). We propose a taint analysis for could computing web applications that consider these aspects. Rather than modifying interpreters or compilers, we provide taint analysis via a Python library for the cloud computing platform Google App Engine (GAE). To evaluate the use of our library, we harden an existing GAE web application against cross-site scripting attacks.
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面向云计算web应用程序的污点模式
云计算通常被理解为数据和计算在互联网上的分布。在过去的几年里,使用这种技术的网站急剧增加。不幸的是,这些网站并不能避免注入缺陷和跨站点脚本,这是web应用程序中最常见的两种安全风险。污点分析是一种自动检测漏洞的方法。云计算平台拥有几个特性,这些特性在促进web应用程序开发的同时,也使得应用现成的污染分析技术变得困难。更具体地说,一些现有的污染分析技术不处理持久存储(例如对象数据存储)、不透明对象(其实现无法访问的对象,因此跟踪污染数据成为一项挑战)或一组丰富的安全策略(例如强制应用特定的杀毒程序顺序)。我们建议对考虑这些方面的可计算web应用程序进行污染分析。我们没有修改解释器或编译器,而是通过一个Python库为云计算平台Google App Engine (GAE)提供污染分析。为了评估库的使用情况,我们加固了现有GAE web应用程序,以防止跨站点脚本攻击。
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