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A Knowledge Graph-Based Method for Automating Systematic Literature Reviews

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arxiv 2208.02334 v1 pith:GPFKJAPL submitted 2022-07-06 cs.DL

classification cs.DL
keywords conductionknowledgeliteraturesystematicapproachcontinuouspublicationsresearch
verification ladder T0 review T1 audit T2 compute T3 formal
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Systematic Literature Reviews aim at investigating current approaches to conclude a research gap or determine a futuristic approach. They represent a significant part of a research activity, from which new concepts stem. However, with the massive availability of publications at a rapid growing rate, especially digitally, it becomes challenging to efficiently screen and assess relevant publications. Another challenge is the continuous assessment of related work over a long period of time and the consequent need for a continuous update, which can be a time-consuming task. Knowledge graphs model entities in a connected manner and enable new insights using different reasoning and analysis methods. The objective of this work is to present an approach to partially automate the conduction of a Systematic Literature Review as well as classify and visualize the results as a knowledge graph. The designed software prototype was used for the conduction of a review on context-awareness in automation systems with considerably accurate results compared to a manual conduction.

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Cited by 1 Pith paper

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  1. Querying Climate Knowledge: Semantic Retrieval for Scientific Discovery

    cs.CL 2025-09 reject novelty 2.0 of 10

    A climate knowledge graph built from prior extraction work is presented with example queries, but without evaluation or released artifacts.

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