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You're reading from  The Deep Learning Architect's Handbook

Product typeBook
Published inDec 2023
PublisherPackt
ISBN-139781803243795
Edition1st Edition
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Author (1)
Ee Kin Chin
Ee Kin Chin
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Ee Kin Chin

Ee Kin Chin is a Senior Deep Learning Engineer at DataRobot. He holds a Bachelor of Engineering (Honours) in Electronics with a major in Telecommunications. Ee Kin is an expert in the field of Deep Learning, Data Science, Machine Learning, Artificial Intelligence, Supervised Learning, Unsupervised Learning, Python, Keras, Pytorch, and related technologies. He has a proven track record of delivering successful projects in these areas and is dedicated to staying up to date with the latest advancements in the field.
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Engineering the base model evaluation metric

Engineering a metric for your use case is a skill that is often overlooked. This is most likely because most projects work on a publicly available dataset, which almost always already has a metric proposed. This includes projects on Kaggle and many public datasets people use to benchmark against. However, this does not happen in real life and a metric doesn’t just get served to you. Let’s explore this topic further here and gain this skillset.

The model evaluation metric is the first evaluation method that is essential in supervised projects, excluding unsupervised-based projects. There are a few baseline metrics that exist to be the de facto metrics depending on the problem and target type. Additionally, there are also more customized versions of these baseline metrics that are catered to special objectives. For example, generative-based tasks can be evaluated through a special human-based opinion score called the mean...

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The Deep Learning Architect's Handbook
Published in: Dec 2023Publisher: PacktISBN-13: 9781803243795

Author (1)

author image
Ee Kin Chin

Ee Kin Chin is a Senior Deep Learning Engineer at DataRobot. He holds a Bachelor of Engineering (Honours) in Electronics with a major in Telecommunications. Ee Kin is an expert in the field of Deep Learning, Data Science, Machine Learning, Artificial Intelligence, Supervised Learning, Unsupervised Learning, Python, Keras, Pytorch, and related technologies. He has a proven track record of delivering successful projects in these areas and is dedicated to staying up to date with the latest advancements in the field.
Read more about Ee Kin Chin