通过机器学习方法探索人工智能在阿育吠陀诊断中的潜力

Dr. Vikas Deepak Srivastava, Dr. Vijay Kumar, Khushbu Kausar
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引用次数: 0

摘要

阿育吠陀是起源于古印度的一种整体医学体系,因其强调身体、心理和精神的平衡与和谐而获得认可。这种古老的治疗方法经过几个世纪的演变,融入了 "多沙"(doshas)的概念,即支配个人身心健康的生物能量。阿育吠陀注重通过各种治疗方法,包括草药、生活方式和疗法,使各种体质达到平衡。近年来,阿育吠陀在印度得到了显著的发展和认可,政府将其作为主流医疗保健系统加以推广。此外,瑜伽和冥想等阿育吠陀实践也获得了国际赞誉。然而,随着现代技术的融入,阿育吠陀疗法有望取得进一步发展。本研究探讨了人工智能(AI)和机器学习技术在阿育吠陀疗法中的整合,尤其是在撒哈拉布尔和台拉登地区。个性化和整体医疗是阿育吠陀的基石,使用人工智能和机器学习算法可以提高诊断和治疗的准确性。利用大型数据集,这些算法可以识别人类医师可能无法立即察觉的模式和相关性。在这项研究中,大多数受访者从事阿育吠陀治疗咨询工作已有 1-3 年(60%),40% 的受访者有 3 年以上的经验。70% 的受访者认为,在阿育吠陀中,人工智能驱动的诊断方法比通用方法更有效。调查显示,所有受访者都将人工智能工具主要用于 Sparshana 诊断,而没有将其用于 Darshana 或 Prashna 诊断的报告。80% 的受访者认为,将人工智能融入阿育吠陀有可能极大地改善实践的各个方面。50%的受访者对目前人工智能驱动的诊断表示满意,40%的受访者表示非常满意,10%的受访者表示中立。这些调查结果表明,人们普遍接受并看好人工智能在阿育吠陀诊断中的应用,并认识到其潜在的益处和有效性。不过,还需要进一步研究,以探索导致满意度和中立性的具体因素,以及任何值得关注或需要改进的地方。
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Exploration the Potential of Artificial Intelligence in Ayurveda Diagnostics through the Machine Learning Approach
Ayurveda, as a holistic system of medicine originating in ancient India, has gained recognition for its emphasis on balance and harmony within the body, mind, and spirit. This ancient healing practice has evolved over centuries and incorporates the concept of doshas – the biological energies that govern an individual's physical and mental well-being. Ayurveda focuses on bringing balance to the doshas through various treatments, including herbal medicines, lifestyle practices, and therapies. In recent years, Ayurveda has experienced significant growth and recognition in India, with the government promoting it as a mainstream healthcare system. Additionally, Ayurveda practices such as yoga and meditation have gained international acclaim. However, with the integration of modern technology, Ayurveda is poised to undergo further advancements. This research study explores the integration of artificial intelligence (AI) and machine learning techniques in Ayurvedic treatment, particularly in the Saharanpur and Dehradun regions. With personalized and holistic healthcare being the cornerstone of Ayurveda, the use of AI and machine learning algorithms can improve accuracy in diagnosis and treatment. Leveraging large datasets, these algorithms can identify patterns and correlations that may not be immediately evident to human practitioners. The majority of respondents in the study have been practicing Ayurveda treatment consultancy for 1-3 years (60%), while 40% had more than 3 years of experience. 70% of respondents believed that AI-driven diagnosis approaches are more effective than generalized approaches in Ayurveda. It was revealed that all respondents used AI tools primarily for Sparshana diagnosis, with no utilization reported for Darshana or Prashna. 80% of respondents believed that the integration of AI into Ayurveda has the potential to greatly improve various aspects of the practice. 50% of respondents were satisfied, and 40% were very satisfied with the current AI-driven diagnosis, while 10% expressed neutrality. These findings indicate a general acceptance and optimism towards AI in Ayurveda diagnosis, with recognition of its potential benefits and effectiveness. However, further research is needed to explore specific factors contributing to satisfaction and neutrality, as well as any concerns or areas for improvement.
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