Using interacting forces to perform semi-supervised learning (2012)
- Authors:
- Autor USP: LIANG, ZHAO - ICMC
- Unidade: ICMC
- DOI: 10.1109/SBRN.2012.24
- Subjects: INTELIGÊNCIA ARTIFICIAL; SISTEMAS DINÂMICOS
- Language: Inglês
- Imprenta:
- Publisher: CPS
- Publisher place: Piscataway
- Date published: 2012
- ISBN: 9780769548234
- Source:
- Título: Proceedings
- Conference titles: Brazilian Conference on Neural Networks - SBRN
- Este periódico é de assinatura
- Este artigo NÃO é de acesso aberto
- Cor do Acesso Aberto: closed
-
ABNT
CUPERTINO, Thiago H e LIANG, Zhao. Using interacting forces to perform semi-supervised learning. 2012, Anais.. Piscataway: CPS, 2012. Disponível em: https://doi.org/10.1109/SBRN.2012.24. Acesso em: 17 jan. 2026. -
APA
Cupertino, T. H., & Liang, Z. (2012). Using interacting forces to perform semi-supervised learning. In Proceedings. Piscataway: CPS. doi:10.1109/SBRN.2012.24 -
NLM
Cupertino TH, Liang Z. Using interacting forces to perform semi-supervised learning [Internet]. Proceedings. 2012 ;[citado 2026 jan. 17 ] Available from: https://doi.org/10.1109/SBRN.2012.24 -
Vancouver
Cupertino TH, Liang Z. Using interacting forces to perform semi-supervised learning [Internet]. Proceedings. 2012 ;[citado 2026 jan. 17 ] Available from: https://doi.org/10.1109/SBRN.2012.24 - Traffic congestion on clustered random complex networks
- Pixel clustering by using complex network community detection technique
- Preventing error propagation in semi-supervised learning
- Handwritten digits recognition using a high level network-based approach
- Features of edge-centric collective dynamics in machine learning tasks
- Stochastic competitive learning in complex networks
- QK-means: a clustering technique based on community detection and 'capa'-means for deployment of custer head nodes
- Attack vulnerability of scale-free networks due to cascading breakdown
- Particle competition and cooperation in networks for semi-supervised learning
- Controlled consensus time for community detection in complex networks
Informações sobre o DOI: 10.1109/SBRN.2012.24 (Fonte: oaDOI API)
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