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10.46243/jst.2025.v10.i10.pp01-09 registered

Attention-Enhanced Sequential GAN for Reliable Groundwater Recharge Time-Series Augmentation

Resolves to https://www.jst.org.in/index.php/pub/article/view/1486

Held by Longman Publishers (India) · prefix 10.46243 live · DOI address https://doi.org/10.46243/jst.2025.v10.i10.pp01-09

Registered 29 Sep 2026 via crossref · record version 2 · last change 29 Sep 2026, 11:59 PM · record sha256 9126abce939bb999…

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What the DOI identifies

JournalArticle — an article in a journal · Digital · Visual · en

Attention-Enhanced Sequential GAN for Reliable Groundwater Recharge Time-Series Augmentation (PrincipalTitle)

Published 2025-10-27

Part of Journal of Science & Technology · ISSN 2456-5660 · volume 10 · issue 10 · pages 01–09

Agents

  • Uma Kannan (author)
  • Rajendran Swamidurai (author)
  • Longman Publishers (publisher)

Identifiers DOI 10.46243/jst.2025.v10.i10.pp01-09

Abstract

Groundwater recharge modeling is critically hindered by the scarcity of long-term, high-resolution time-series data, limiting the robustness and generalization capability of predictive models. We propose the Attention-enhanced Sequential Generative Adversarial Network () to synthesize high-fidelity, multivariatehydrological records, explicitly addressing the complex temporal dependencies required for groundwater dynamics. The architecture incorporates three key innovations: stabilization via the WGAN-GP objective for continuous learning; utilization of a pre-trained LSTM autoencoder to establish a meaningful latent space; and integration of a Self-Attention mechanism within the generative networks to effectively capture critical long-range dependencies, such as multi-year climatic cycles. A three-pronged evaluation demonstrated exceptional data quality: Statistical Fidelity confirmed the preservation of feature relationships, and Temporal Coherence validated the realism of sequential patterns. Crucially, the Predictive Utility was confirmed, with an auxiliaryforecasting model trained on synthetic data achieving a Mean Absolute Error (MAE only 4.4% higher) than a model trained on real data. This provides a stable and effective generative approach for time-series augmentation, offering a viable path to developing reliable forecasting tools in data-scarce hydrological contexts.

Licence https://creativecommons.org/licenses/by/4.0/

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.

ElementValueIn the record
DOI Name
DOI name
10.46243/jst.2025.v10.i10.pp01-09doi
Referent Type
referentType
Creationreferent
Referent Sub-Type
referentSubType
JournalArticle — an article in a journaltype
Referent Name(s)
referentName(s)
Attention-Enhanced Sequential GAN for Reliable Groundwater Recharge Time-Series Augmentation (PrincipalTitle, en)titles
Basic Metadata
basicMetadata
author: Uma Kannan
author: Rajendran Swamidurai
publisher: Longman Publishers
published: 2025-10-27
part of: Journal of Science & Technology · ISSN 2456-5660 · vol. 10 · no. 10 · pp. 01–09
language: en
form: Digital · Visual · Language
agents, dates, container, language, structural_type, modes, characters
Referent Identifier(s)
alternateIdentifier(s)
none besides the DOIidentifiers, relations (IsSameAs)
Registration Authority
registrationAuthorityCode
Crossref — issued by Crossref (member 25296); held here as a copyrecord.source_agency (our code, ra_doi_name, for names issued here once appointed)
Created Date
issueDate
2026-08-27record.registered (when the DOI name was first registered)
relatedIdentifiersnone needed — the descriptive metadata is in this recordcontainer, 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.

The System Metadata Declaration (JSON) · the Kernel Metadata Declaration (XML) · what each sub-type needs

History — the ledger

Every change to this DOI, in order, as it was recorded. Entries are only ever added, never changed or removed.

#WhenWhatByChanges
129 Sep 2026, 10:00 PMregister
registered at Crossref; record read from api.crossref.org
Administrator (admin) 127 fields set · sha256 2e10ba0a9ac9…
229 Sep 2026, 11:59 PMupdate
record re-read from api.crossref.org
Administrator (admin)
container.titles.0.value: Journal of Science & Technology → Journal of Science & Technology

Machine-readable: the history as JSON, with the full record after each change.

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