The learning of connectionism,which consists mainly of supervised learning,intensive learning and unsupervised learning,is modelled after the learning of human beings.
其学习是对人类学习的模拟,主要有监督学习、强化学习和无监督学习三种。
单词 | Supervised learning |
释义 |
Supervised learning
英语例句库
The learning of connectionism,which consists mainly of supervised learning,intensive learning and unsupervised learning,is modelled after the learning of human beings. 其学习是对人类学习的模拟,主要有监督学习、强化学习和无监督学习三种。
原声例句
两分钟论文 There is no teacher to supervise the learning. 没有老师会来监督它学习。 两分钟论文 In our earlier episodes, when it came to learning techniques, we almost always talked about supervised learning. 在之前几期节目中,当我们提及学习技术时,我们几乎都在讲监督式学习。 TED-Ed(视频版) This hands-on approach is called supervised learning. 这种动手实践的方法称为监督学习。 两分钟论文 This is supervised learning, and as you have seen from more than 180 episodes of Two Minute Papers, there is no doubt that it is an enormously successful field of research. 这就是监督式学习,就如你们在超过180期的两分钟论文中所了解到的,这无疑是取得了巨大成功的研究领域。 TED-Ed(视频版) For example, when our unsupervised learning program finds groups of patients that are similar, it could send that data to a connected supervised learning program. 例如,当我们的无监督学习程序发现相似的患者组时,它可以将该数据发送到连接的监督学习程序。 TED-Ed(视频版) There are many different ways to build self-teaching programs. But they all rely on the three basic types of machine learning: unsupervised learning, supervised learning, and reinforcement learning. 有许多不同的方法可以构建自学程序。但它们都依赖于机器学习的三种基本类型:无监督学习、监督学习和强化学习。
中文百科
监督式学习![]() ![]() 监督式学习(英语:Supervised learning),是一个机器学习中的方法,可以由训练数据中学到或创建一个模式(函数 / learning model),并依此模式推测新的实例。训练数据是由输入对象(通常是矢量)和预期输出所组成。函数的输出可以是一个连续的值(称为回归分析),或是预测一个分类标签(称作分类)。 一个监督式学习者的任务在观察完一些训练范例(输入和预期输出)后,去预测这个函数对任何可能出现的输入的值的输出。要达到此目的,学习者必须以"合理"(见归纳偏向)的方式从现有的数据中一般化到非观察到的情况。在人类和动物感知中,则通常被称为概念学习(concept learning)。
英语百科
Supervised learning 监督式学习![]() ![]() Supervised learning is the machine learning task of inferring a function from labeled training data. The training data consist of a set of training examples. In supervised learning, each example is a pair consisting of an input object (typically a vector) and a desired output value (also called the supervisory signal). A supervised learning algorithm analyzes the training data and produces an inferred function, which can be used for mapping new examples. An optimal scenario will allow for the algorithm to correctly determine the class labels for unseen instances. This requires the learning algorithm to generalize from the training data to unseen situations in a "reasonable" way (see inductive bias). |
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