conference-paper

When to extract features

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Abstract

In practice, many organizations rely on cloning to implement customer-specific variants of a system. While this approach can have several disadvantages, organizations fear to extract reusable features later on, due to the corresponding efforts and risks. A particularly challenging and poorly supported task is to decide which features to extract. To tackle this problem, we aim to develop a recommender system that proposes suitable features based on automated analyses of the cloned legacy systems. In this paper, we sketch this recommender and its empirically derived metrics, which comprise cohesion, impact, and costs of features as well as the users' previous decisions. Overall, we will facilitate the adoption of systematic reuse based on an integrated platform.

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Publication details

DOI
10.1145/3183440.3190328
OpenAlex
W2809064712
Document type
conference-paper
Language
EN
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