The fields of computer science, data science, and artificial intelligence (AI) are driving innovation across virtually every industry at unprecedented speed.
Computer Science, Data, and AI tracks and preserves critical reports, white and technical papers, podcasts, blogs, videos, and other content types—providing researchers with the information they need to understand the latest advancements and applications in these fields.
At a glance
1,000
organizations covered
500,000
items from 1995 to today and continually growing
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Detail of wiring in a High Performance Computing (HPC) data center
Reshaping the future
With coverage of over 1,000 organizations—from leading corporations and research centers to major industry influencers—the collection offers a comprehensive resource unlike any other. It spans core technologies such as artificial intelligence (AI), machine learning, data science, natural language processing (NLP), and computer vision, while also delving into cutting-edge advancements like generative AI, digital twins, and federated learning. By bringing together both foundational knowledge and emerging innovations, Computer Science, Data, and IA provides unparalleled insights into the technologies that are pushing boundaries and reshaping the future.
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Real-world impact
The collection emphasizes the practical applications of AI in areas such as healthcare, disaster response, and education, showcasing how emerging technologies can drive social impact and address real-world challenges. It also explores ethical considerations like AI governance and the importance of sustainable computing through energy-efficient solutions and green data centers.
Key Topics
Artificial intelligence and machine learning: Deep learning, reinforcement learning, explainable AI, and AI ethics
Data science and analytics: Data visualization, big data processing, and real-time analytics
Natural Language Processing (NLP): Language models, speech recognition, and text summarization
Computer vision: Image processing, object detection, and autonomous systems
Cybersecurity: Threat detection, cryptography, and privacy-preserving technologies
Quantum computing: Algorithms, applications in AI, and quantum cryptography
Cloud computing and edge computing: Distributed computing, serverless architecture, and IoT integration
Human-computer interaction (HCI): Usability design, augmented reality (AR), and virtual reality (VR)
Ethics and governance in AI: Fairness, accountability, bias reduction, and regulatory frameworks
Autonomous systems and robotics: Self-driving vehicles, drones, and collaborative robots
Internet of Things (IoT): Smart devices, sensor networks, and IoT security
Blockchain and decentralized systems: Smart contracts, distributed ledgers, and Web3 technologies
Digital twins and simulation: Real-time monitoring and predictive modeling
AI in healthcare: Predictive analytics, drug discovery, and personalized medicine
Sustainability and green computing: Energy-efficient algorithms and sustainable data centers
Generative AI: AI-generated content, creative AI, and applications in media
AI for social good: Applications in disaster response, education, and global health
Federated learning and Edge AI: Privacy-preserving collaborative learning
Advanced programming paradigms: Functional programming, concurrent programming, and algorithmic efficiency
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