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Agricultural Sciences Pedagogy Using Large Language Models (en Inglés)
Sapna Jarial (Autor) · Apple Academic Press · Tapa Dura
Quedan 50 unidades
$ 235.76This new volume, Agricultural Sciences Pedagogy Using Large Language Models, offers a comprehensive exploration of the high-tech tools that are transforming agricultural science education, when large language models (LLMs), a form of advanced artificial intelligence, are incorporated into training and education. Despite rapid advances in computer science and engineering that have driven innovation across various sectors, agricultural education has not kept pace with these developments. This volume highlights the potential for smart innovation in agricultural science, particularly in enhancing communication and knowledge dissemination. The volume explores how the application of LLMs spans a broad spectrum of themes in agricultural education, including fruit and vegetable science, agricultural biotechnology, entomology, plant pathology, agronomy, food science and nutrition, floriculture and landscaping, agri-business management, and the training of trainers and instructors.
The volume first provides foundational knowledge on the integration of LLMs into agricultural education, beginning with the evolution of LLMs in the field of agricultural sciences and progressing on to the tools and techniques of prompt engineering for teaching, emphasizing their applications in education, personalized learning, and agricultural research to foster creativity, critical thinking, and effective problem-solving. Chapters explore how ChatGPT and similar LLMs can aid in understanding complex engineering concepts in agricultural sciences, highlighting its capabilities in data analysis, precision agriculture, pest management, efficient resource management, and enhanced decision-making. Discussions on the application of LLMs in teacher evaluation and student assessment are included.
The volume looks at the use of LLMs in training and education for sustainable agricultural practices and their role in optimizing resource management, enhancing precision farming, and fostering eco-friendly practices. Chapters look at enhancing curriculum creation, real-time updates, and personalized learning and discuss the use of virtual assistants, simulation-based training, and ethical considerations, such as data bias, ensuring improved agricultural practices and socio-economic development.
The challenges, ethical considerations, and future directions for LLMs in agricultural sciences are also considered; the volume explores pedagogical and technical obstacles, opportunities, and the future of agricultural jobs in light of LLM integration.
Offering a thorough understanding of the role of LLMs in transforming agricultural pedagogy and offering insights into their applications, challenges, and future prospects in this field, this volume will be of value to faculty members, development practitioners in field, and policymakers in the field of agricultural sciences.
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