Información de la conferencia

TRUST 2027: ACM Conference on Trustworthy and Responsible AI and Computing Systems

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TRUST
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Día de Entrega:
2026-10-24 Faltan 60 días
Fecha de Notificación:
2026-12-31
Fecha de conferencia:
2027-03-07
Ubicación:
Washington DC, USA
Vistas: 721   Seguidores: 0   Asistentes: 0

Solicitud de Artículos

TRUST 2027 (ACM Conference on Trustworthy and Responsible AI and Computing Systems) is an academic conference held in Washington DC, USA on 2027-03-07. The paper submission deadline is 2026-10-24. Acceptance notifications are sent on 2026-12-31.

ACM TRUST 2027 welcomes original, unpublished research contributions that advance the design, verification, deployment, evaluation, and governance of trustworthy and responsible AI and computing systems. Scope Contributions may include new theories, algorithms, architectures, systems, benchmarks, evaluation frameworks, certification approaches, or deployment-oriented studies related to trustworthy and responsible AI and computing systems. Topics of Interest TRUST 2027 welcomes contributions across the following research areas. P1 Foundations of Trustworthy AI Formal verification of AI and ML systems Robustness, generalization, and adversarial resilience Interpretability and explainability foundations Uncertainty quantification and reliability metrics Causal reasoning and trustworthy inference Neuro-symbolic and hybrid AI approaches P2 Secure and Resilient AI Systems Adversarial machine learning Data poisoning and model backdoor defenses Secure model deployment pipelines Privacy-preserving AI and federated learning AI supply chain security Runtime monitoring and anomaly detection P3 Trustworthy AI in Systems and Infrastructure AI in cyber-physical systems Edge AI and trustworthy IoT Cloud and edge orchestration for safe AI AI reliability in distributed systems Trustworthy autonomous systems AI lifecycle management and MLOps assurance P4 Responsible AI, Governance and Compliance Fairness, bias mitigation, and accountability Transparency and auditability AI risk management frameworks Standards and certification of AI systems Ethical system design methodologies Benchmarking responsible AI practices P5 Evaluation, Benchmarking and Assurance Trustworthiness benchmarks Stress-testing frameworks Reproducibility and replicability in AI research Dataset integrity and data governance Risk assessment methodologies System-level validation and verification pipelines P6 Domain-Specific Trustworthy Applications Healthcare AI safety Smart grid and critical infrastructure Industrial AI and cyber-physical systems Financial AI risk control Public-sector AI systems Climate and sustainability systems
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Revistas Relacionadas

CCFNombre CompletoFactor de ImpactoEditorISSN
Journal of Trust ManagementSpringer2196-064X
ACM Journal on Responsible ComputingACM2832-0565
AArtificial Intelligence4.6Elsevier0004-3702
International Journal of Security, Privacy and Trust ManagementAIRCC2319-4103
AIMDPI2673-2688
AI & SOCIETY4.7Springer0951-5666
AI+ELSP3007-7443
AIEEE Transactions on Multimedia9.7IEEE1520-9210
CKnowledge-Based Systems7.2Elsevier0950-7051
BSoftware & Systems Modeling3.2Springer1619-1366

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