Artificial-Intelligence.Blog - Artificial Intelligence News 2024年12月06日
Machine Learning • ML
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本文介绍了机器学习的概念,它是人工智能的一个分支,使计算机能够从经验中学习并随着时间的推移而改进。文章阐述了机器学习的应用场景,例如垃圾邮件过滤、光学字符识别和医疗诊断等。此外,文章还详细介绍了机器学习的四种主要类型:监督学习、无监督学习、半监督学习和强化学习,并简要提及了其他类型,如主动学习、迁移学习等。最后,文章推荐了一本关于机器学习的书籍,帮助读者深入了解这一领域。

🤔**机器学习是人工智能的一个子集,赋予计算机从经验中学习和改进的能力。**它用于开发预测模型,帮助做出决策或预测未来事件。机器学习应用广泛,例如邮件垃圾过滤、光学字符识别和医疗诊断等。

📚**机器学习主要分为四种类型:** 1. 监督学习:模型使用带标签的数据进行训练,学习从数据中提取知识并应用于新数据; 2. 无监督学习:模型不提供正确答案,需要自行发现数据中的结构,常用于聚类、降维和异常检测; 3. 半监督学习:模型使用带标签和无标签的数据进行训练,适用于标签数据成本过高的情况; 4. 强化学习:智能体通过执行动作并接收奖励或惩罚来学习如何在环境中行动,目标是最大化累积奖励。

🚀**除了以上四种,还有其他类型的机器学习,**例如主动学习(模型根据自身查询获取有限实例的标签)、迁移学习(模型在一个任务上训练后应用于另一个相关任务)、多示例学习(模型接收实例包及其标签,预测未见包的标签)以及多任务学习(模型同时训练多个相关任务,以提高泛化能力)。

📖**《Machine Learning For Dummies》是一本学习机器学习的推荐书籍。**它能帮助读者了解机器学习的基本原理,并掌握其在各个领域的应用。

Specializations Deep Learning
Generalizations Artificial Intelligence

What is machine learning?

Machine learning is a subset of artificial intelligence (AI) that enables computers to learn from experience and improve over time. It is used to develop predictive models that can be used to make decisions or predictions about future events.

Machine learning is a field of computer science that gives computers the ability to learn without being explicitly programmed. Machine learning is employed in a variety of applications, including email spam filtering, optical character recognition, and medical diagnosis.

Machine learning is a process where computers use data to learn how to do things on their own. This can include recognizing objects in images, understanding natural language, or predicting outcomes.

It is very clear that interest levels in machine learning have been growing very strongly since 2014. It is to be expected that this growth trend will continue in the foreseeable future.

 

What types of machine learning are there?

Machine learning can be broadly classified into four types:

There are also other types of machine learning based on the nature of the learning "signal" or "feedback" available to a learning system:

Each of these types of machine learning has its own strengths and weaknesses, and the choice of which to use depends on the nature of the problem to be solved.

 

Book recommendations for machine learning

Machine Learning For Dummies By Mueller, John Paul Buy on Amazon

Amazon book information: While machine learning expertise doesn’t quite mean you can create your own Turing Test-proof android—as in the movie Ex Machina—it is a form of artificial intelligence and one of the most exciting technological means of identifying opportunities and solving problems fast and on a large scale. Anyone who masters the principles of machine learning is mastering a big part of our tech future and opening up incredible new directions in careers that include fraud detection, optimizing search results, serving real-time ads, credit-scoring, building accurate and sophisticated pricing models—and way, way more. Show more …

One of Mark Cuban’s top reads for a better understanding A.I.
— inc.com, 2021

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相关标签

机器学习 人工智能 监督学习 无监督学习 强化学习
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