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Missing Data in Time-Series? Machine Learning Techniques (Part 2) | by Sara Nóbrega | Jan, 2025

January 8, 2025
in Artificial Intelligence
Reading Time: 3 mins read
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Make use of cluster algorithms to deal with lacking time-series information

Sara Nóbrega
Towards Data Science
Picture by Creator.

(In case you haven’t learn Half 1 but, test it out right here.)

Lacking information in time-series evaluation is a recurring drawback.

As we explored in Half 1, easy imputation methods and even regression-based models-linear regression, choice timber can get us a great distance.

However what if we have to deal with extra refined patterns and seize the fine-grained fluctuation within the complicated time-series information?

On this article we are going to discover Okay-Nearest Neighbors. The strengths of this mannequin embrace few assumptions almost about nonlinear relationships in your information; therefore, it turns into a flexible and sturdy answer for lacking information imputation.

We can be utilizing the identical mock power manufacturing dataset that you just’ve already seen in Half 1, with 10% values lacking, launched randomly.

We are going to impute lacking information in utilizing a dataset that you may simply generate your self, permitting you to comply with alongside and apply the methods in real-time as you discover the method step-by-step!

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Tags: DataJanLearningmachineMissingNóbregaPartSaraTechniquestimeseries
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