10.46243/jst.2023.v8.i05.pp33-44 registered
Vibration Analysis in Industry 4.0: Machine Learning, Energy Harvesting, and Bibliometric Analysis
Resolves to https://www.jst.org.in/index.php/pub/article/view/773
Held by Longman Publishers (India) · prefix 10.46243 live · DOI address https://doi.org/10.46243/jst.2023.v8.i05.pp33-44
Registered 29 Sep 2026 via crossref · record version 2 · last change 29 Sep 2026, 11:59 PM · record sha256 3c2dd2c9fc52b905…
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What the DOI identifies
JournalArticle — an article in a journal · Digital · Visual · en
Vibration Analysis in Industry 4.0: Machine Learning, Energy Harvesting, and Bibliometric Analysis (PrincipalTitle)
Published 2023-10-05
Part of Journal of Science & Technology · ISSN 2456-5660 · volume 8 · issue 5 · pages 33–44
Agents
- Arshad Mehmood Arshad Mehmood (author)
- Longman Publishers (publisher)
Identifiers DOI 10.46243/jst.2023.v8.i05.pp33-44
Abstract
This research investigates the significance of bibliometric analysis, energy harvesting, and machine learning and diagnostic techniques to machine vibration analysis within the context of Industry 4.0. The study highlights the importance of early detection of machine defects and issues in reducing the likelihood of downtime and costly repairs and ensuring the optimal performance of industrial operations. Energy harvesting systems, machine learning, and diagnostic procedures are only some of the technologies used in the research of machine vibration analysis. Using these methods, it has been demonstrated that vibration patterns in machines can be analyses and predicted, that mechanical vibration energy can be converted into electrical energy, and that energy costs can be lowered. The study also includes a bibliometric analysis of the literature based on VOSviewer. Linear vibration, non-linear vibration, and vibration analysis are some of the topics it explores as it surveys the literature on vibration analysis of machines. Future research directions are proposed, and new perspectives on the current status of the field’s study are provided. Practical implications for academics, professionals, and decision-makers in engineering and technology domains are derived from the study’s findings, which call attention to the necessity for further study and improvement of machine vibration monitoring in Industry 4.0. This research contributes to the existing literature by providing valuable insight into the potential impacts of energy harvesting, machine learning, and bibliometric analysis on business processes
System metadata — ISO 26324:2025, Annex B · DOI Handbook 10.1
Each element by the standard's name (Annex B: reference elements, then administrative) and the Handbook's (in grey), read off the record above.
| Element | Value | In the record |
|---|---|---|
| DOI Name DOI name | 10.46243/jst.2023.v8.i05.pp33-44 | doi |
| Referent Type referentType | Creation | referent |
| Referent Sub-Type referentSubType | JournalArticle — an article in a journal | type |
| Referent Name(s) referentName(s) | Vibration Analysis in Industry 4.0: Machine Learning, Energy Harvesting, and Bibliometric Analysis (PrincipalTitle, en) | titles |
| Basic Metadata basicMetadata | author: Arshad Mehmood Arshad Mehmood publisher: Longman Publishers published: 2023-10-05 part of: Journal of Science & Technology · ISSN 2456-5660 · vol. 8 · no. 5 · pp. 33–44 language: en form: Digital · Visual · Language | agents, dates, container, language, structural_type, modes, characters |
| Referent Identifier(s) alternateIdentifier(s) | none besides the DOI | identifiers, relations (IsSameAs) |
| Registration Authority registrationAuthorityCode | Crossref — issued by Crossref (member 25296); held here as a copy | record.source_agency (our code, ra_doi_name, for names issued here once appointed) |
| Created Date issueDate | 2024-02-16 | record.registered (when the DOI name was first registered) |
| relatedIdentifiers | none needed — the descriptive metadata is in this record | container, relations (only where the descriptive metadata lives at another identifier) |
complete Every System Metadata element is here, with the basic metadata a journal article needs.
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Every change to this DOI, in order, as it was recorded. Entries are only ever added, never changed or removed.
| # | When | What | By | Changes |
|---|---|---|---|---|
| 1 | 29 Sep 2026, 10:00 PM | register registered at Crossref; record read from api.crossref.org | Administrator (admin) | 159 fields set · sha256 30448652a60f… |
| 2 | 29 Sep 2026, 11:59 PM | update record re-read from api.crossref.org | Administrator (admin) | container.titles.0.value: |
Machine-readable: the history as JSON, with the full record after each change.
