XDebloat: Towards Automated Feature-Oriented App Debloating

计算机科学 Android(操作系统) 修剪 特征(语言学) 软件 源代码 特征模型 人工智能 程序设计语言 操作系统 语言学 哲学 农学 生物
作者
Yutian Tang,Hao Zhou,Xiapu Luo,Ting Chen,Haoyu Wang,Zhou Xu,Yan Cai
出处
期刊:IEEE Transactions on Software Engineering [IEEE Computer Society]
卷期号:48 (11): 4501-4520 被引量:12
标识
DOI:10.1109/tse.2021.3120213
摘要

Existing programming practices for building Android apps mainly follow the "one-size-fits-all" strategy to include lots of functions and adapt to most types of devices. However, this strategy can result in software bloat and many serious issues, such as slow download speed, and large attack surfaces. Existing solutions cannot effectively debloat an app as they either lack flexibility or require human efforts. This work proposes a novel feature-oriented debloating approach and builds a prototype, named XDebloat , to automate this process in a flexible manner. First, We propose three feature location approaches to mine features in an app. XDebloat supports feature location approaches at a fine granularity. It also makes the feature location results editable. Second, XDebloat considers several Android-oriented issues (i.e., callbacks) to perform a more precise analysis. Third, XDebloat supports two major debloating strategies: pruning-based debloating and module-based debloating. We evaluate XDebloat with 200 open-source and 1,000 commercial apps. The results show that XDebloat can successfully remove components from apps or transform apps into on-demand modules within 10 minutes. For the pruning-based debloating strategy, on average, XDebloat can remove 32.1% code from an app. For the module-based debloating strategy, XDebloat can help developers build instant apps or app bundles automatically.
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