Holistic Analytics of Digital Artifacts: Unique Metadata Association Model

IF 0.6 Q4 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
A. K. Mohan, Sethumadhavan Madathil, K. V. Lakshmy
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引用次数: 1

Abstract

Investigation of every crime scene with digital evidence is predominantly required in identifying almost all atomic files behind the scenes that have been intentionally scrubbed out. Apart from the data generated across digital devices and the use of diverse technology that slows down the traditional digital forensic investigation strategies. Dynamically scrutinizing the concealed or sparse metadata matches from the less frequent archives of evidence spread across heterogeneous sources and finding their association with other artifacts across the collection is still a horrendous task for the investigators. The effort of this article via unique pockets (UP), unique groups (UG), and unique association (UA) model is to address the exclusive challenges mixed up in identifying incoherent associations that are buried well within the meager metadata field-value pairs. Both the existing similarity models and proposed unique mapping models are verified by the unique metadata association model.
数字文物的整体分析:独特的元数据关联模型
对每个有数字证据的犯罪现场进行调查,主要是为了识别几乎所有被故意清除的幕后原子文件。除了跨数字设备生成的数据和各种技术的使用,这些都减慢了传统的数字取证调查策略。动态地仔细检查隐藏的或稀疏的元数据匹配,这些匹配来自分布在异质来源的不太频繁的证据档案,并发现它们与整个集合中的其他工件的关联,对于调查人员来说仍然是一项可怕的任务。本文通过独特的口袋(UP)、独特的组(UG)和独特的关联(UA)模型来解决在识别隐藏在微薄的元数据字段值对中的不一致关联时所遇到的排他挑战。通过唯一元数据关联模型对已有的相似性模型和提出的唯一映射模型进行验证。
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来源期刊
International Journal of Digital Crime and Forensics
International Journal of Digital Crime and Forensics COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS-
CiteScore
2.70
自引率
0.00%
发文量
15
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