Compatibilità
- Computer
- Android
- Ebook Reader
- iPhone/iPad”
- Kindle
Dettagli
Bentham Science Publishers.
Trama
The book takes a structured approach towards guiding readers from traditional IR models to advanced, hybrid frameworks. The early chapters focus on classical and modern retrieval techniques with comparative analyses of different methods. Subsequent chapters focus on applied scenarios such as tourism recommender systems, sentiment mining from YouTube comments, book and medicine recommendation engines, and image-audio-based retrieval systems. Advanced topics include semantic role classification using BERT, hybrid filtering methods, personalised web crawlers, and experimental studies on smoothing techniques. Real-world case studies and experimental evaluations illustrate how theoretical models translate into effective, domain-specific IR applications.
Key Features
Comprehensive coverage of traditional, modern, and hybrid IR techniques
Practical frameworks for recommendation systems, sentiment analysis, and web crawling
Integration of AI and machine learning methods, including BERT and TF-IDF models
Experimental evaluations and comparative analyses across multiple domains
Real-world applications spanning tourism, healthcare, fashion, and multimedia retrieval


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