Another machine learning algorithm is the support vector machine (SVM). It provides resourceful predictions for complex real-word problems, reduces redundant information, and is ideal for smaller datasets. Some real-world examples of when SVMs can be used are bioinformatics, face recognition, speech recognition, or cancer detection.
To perform a classification using the support vector machine algorithm, complete the following:
For your selected dataset, build a classification model as follows:
Prepare a comprehensive technical report as a Jupyter notebook, including all code, code comments, all outputs, plots, and analysis. Make sure the project documentation contains
a) Problem statement
b) Algorithm of the solution
c) Analysis of the findings
d) References
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