"Generative AI for Customer Experience: From Basics to Advanced Applications" delves into the transformative potential of Generative AI in enhancing customer interactions and satisfaction. The book begins with a comprehensive introduction to Generative AI, explaining its fundamentals, key technologies, and algorithms. It highlights how technologies like Generative Adversarial Networks (GANs), Variational Autoencoders (VAEs), and transformer-based models such as GPT-3 and GPT-4 have revolutionized content creation, offering new avenues for personalized customer engagement.
The evolution of customer experience is traced from traditional methods, emphasizing face-to-face interactions and manual feedback collection, to the digital transformation era, where data analytics and automation tools began to play a crucial role. The book illustrates how AI has further advanced customer experience by enabling unprecedented levels of personalization and efficiency. It showcases how AI-powered chatbots, virtual assistants, and machine learning algorithms analyze vast amounts of data to predict customer needs and preferences, making interactions more seamless and engaging.
Key use cases of Generative AI in customer experience are explored in detail, including personalized recommendations, chatbots and virtual assistants, customer sentiment analysis, and predictive customer insights. Real-world case studies from various industries, such as retail, finance, healthcare, and hospitality, demonstrate the practical applications and benefits of Generative AI.
The book provides a step-by-step guide to implementing Generative AI in customer experience, covering the identification of customer pain points, data collection and management, selecting the right AI models, and integrating them with existing systems. It also addresses ethical considerations and challenges, such as data privacy, bias, fairness, transparency, and trust.
Measuring the impact of Generative AI on customer experience is another critical aspect covered, with discussions on key performance indicators (KPIs), customer satisfaction metrics, and return on investment (ROI) analysis. The book concludes with insights into future trends and innovations, offering predictions for the next decade and highlighting emerging technologies that will shape the future of customer experience.
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Paperback. Zustand: new. Paperback. "Generative AI for Customer Experience: From Basics to Advanced Applications" delves into the transformative potential of Generative AI in enhancing customer interactions and satisfaction. The book begins with a comprehensive introduction to Generative AI, explaining its fundamentals, key technologies, and algorithms. It highlights how technologies like Generative Adversarial Networks (GANs), Variational Autoencoders (VAEs), and transformer-based models such as GPT-3 and GPT-4 have revolutionized content creation, offering new avenues for personalized customer engagement.The evolution of customer experience is traced from traditional methods, emphasizing face-to-face interactions and manual feedback collection, to the digital transformation era, where data analytics and automation tools began to play a crucial role. The book illustrates how AI has further advanced customer experience by enabling unprecedented levels of personalization and efficiency. It showcases how AI-powered chatbots, virtual assistants, and machine learning algorithms analyze vast amounts of data to predict customer needs and preferences, making interactions more seamless and engaging.Key use cases of Generative AI in customer experience are explored in detail, including personalized recommendations, chatbots and virtual assistants, customer sentiment analysis, and predictive customer insights. Real-world case studies from various industries, such as retail, finance, healthcare, and hospitality, demonstrate the practical applications and benefits of Generative AI.The book provides a step-by-step guide to implementing Generative AI in customer experience, covering the identification of customer pain points, data collection and management, selecting the right AI models, and integrating them with existing systems. It also addresses ethical considerations and challenges, such as data privacy, bias, fairness, transparency, and trust.Measuring the impact of Generative AI on customer experience is another critical aspect covered, with discussions on key performance indicators (KPIs), customer satisfaction metrics, and return on investment (ROI) analysis. The book concludes with insights into future trends and innovations, offering predictions for the next decade and highlighting emerging technologies that will shape the future of customer experience. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability. Bestandsnummer des Verkäufers 9798333906380
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