How to use Machine Learning Algorithms in classification for categorical problem?
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I have a matrix with 100*100 data points. I need to apply ML for classification of (Yes, there is an event to be 1, or No, there is no event 0). In addirion, I should only label 7500 (as 1 or 0) (75%) for training and no adding 1 or 0 for the remainder 2500 (25%) for testing?
Which models I should try? If I need to do comparative study, which algorithms I should try?
5 件のコメント
the cyclist
2023 年 11 月 17 日
I'm confused (and I think you are, too).
You have a 100*100 matrix. What exactly is your response variable (the variable you are trying to predict)? What are your explanatory variables (the variables used to predict the response variable)?
Let's take a smaller example, where you just have a 5x5:
M = [0 0 0 0 1;
0 1 1 1 0;
1 1 1 1 1;
0 0 0 0 0;
1 0 1 0 1];
What are you trying to predict?
Mohamed
2023 年 11 月 17 日
Mohamed
2023 年 11 月 17 日
the cyclist
2023 年 11 月 17 日
This is helpful information, but it is still not clear how to make this into a classification problem. Let's modify my small example:
M = [10 20 30 40 50;
20 35 45 55 60;
25 40 60 75 65;
25 20 30 40 50;
20 5 15 35 45];
There are two points that are "local minimum" points: The value 10 at location (1,1), and the value 5 at location (5,2).
I also have a local maximum: the value 75 at location (3,4).
Is the first step to find the local minima? (That is not a machine learning problem.)
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the cyclist
2023 年 11 月 17 日
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Based on your replies to my comments, this does not seem like a machine learning classification problem to me. It seems like a peak-finding problem.
Take a look at this question/answer from the MathWorks support team, about 2-dimensional peak-finding. Maybe it will help you.
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