10.46243/jst.2023.v8.i07.pp47-57 registered
SIGN LANGUAGE RECOGNITION USING CONVOLUTIONAL NEURAL NETWORKS
Resolves to https://www.jst.org.in/index.php/pub/article/view/713
Held by Longman Publishers (India) · prefix 10.46243 live · DOI address https://doi.org/10.46243/jst.2023.v8.i07.pp47-57
Registered 29 Sep 2026 via crossref · record version 2 · last change 30 Sep 2026, 12:00 AM · record sha256 59e257264adb9e18…
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What the DOI identifies
JournalArticle — an article in a journal · Digital · Visual · en
SIGN LANGUAGE RECOGNITION USING CONVOLUTIONAL NEURAL NETWORKS (PrincipalTitle)
Published 2023-07-24
Part of Journal of Science & Technology · ISSN 2456-5660 · volume 08 · issue 07 · pages 47–57
Agents
- DR.N. SREEKANTH (author)
- PRACHI (author)
- K.SAI KIRTHANA (author)
- Longman Publishers (publisher)
Identifiers DOI 10.46243/jst.2023.v8.i07.pp47-57
Abstract
Sign Language Recognition (SLR) targets on interpreting the sign language into text or speech, so as to facilitate the communication between deaf-mute people and ordinary people. This task has broad social impact, but is still very challenging due to the complexity and large variations in hand actions. Existing methods for SLR use hand-crafted features to describe sign language motion and build classification models based on those features. However, it is difficult to design reliable features to adapt to the large variations of hand gestures. To approach this problem, we propose a novel convolutional neural network (CNN) which extracts discriminative spatial-temporal features from raw video stream automatically without any prior knowledge, avoiding designing features. To boost the performance, multi-channels of video streams, including color information, depth clue, and body joint positions, are used as input to the CNN in order to integrate color, depth and trajectory information. We validate the proposed model on a real dataset collected with Microsoft Kinect and demonstrate its effectiveness over the traditional approaches based on hand-crafted features
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.i07.pp47-57 | doi |
| Referent Type referentType | Creation | referent |
| Referent Sub-Type referentSubType | JournalArticle — an article in a journal | type |
| Referent Name(s) referentName(s) | SIGN LANGUAGE RECOGNITION USING CONVOLUTIONAL NEURAL NETWORKS (PrincipalTitle, en) | titles |
| Basic Metadata basicMetadata | author: DR.N. SREEKANTH author: PRACHI author: K.SAI KIRTHANA publisher: Longman Publishers published: 2023-07-24 part of: Journal of Science & Technology · ISSN 2456-5660 · vol. 08 · no. 07 · pp. 47–57 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 | 2026-09-18 | 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) |
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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) | 92 fields set · sha256 e0d1cb99ed72… |
| 2 | 30 Sep 2026, 12:00 AM | update record re-read from api.crossref.org | Administrator (admin) | container.titles.0.value: |
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