MeanNearestNeighbors (MNN) - algorithm for balancing dataset - In progress #1

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One of the challenges in classification problems are unbalanced datasets. I was Data Science Intern when the company that I worked for, assigned me such an interesting challenge where the dataset was unbalanced.  However, I realized this type of problem like unbalanced dataset is а common thing in real life. I tried most of the algorithms (undersampling, oversampling) like SMOTE, NearMiss, CondensedNearestNeighbors, RandomUnderSampler, RandomOverSampler,  KMeansSMOTЕ and rest of them. Anyway, they didn't help me in that case, on the contrary, they worsened my model.  I was like: "but, but, you should have been helpful in creating the predictive model" So, I'm trying to create another algorithm based on undersampling concept when it comes to balancing datasets. I called it Mean Nearest Neighbors (MNN). What's the initial idea: It's simple. Actually, the algorithm is just a modification of the other undersampling algorithms. In the data where target labe...

C/C++: Download and Install the newest compiler && debugger GNU GCC 7.2.0 version

1. Download  Link (GNU GCC 7.2.0)
2. Extract the folder mingw64 (the location is your wish)
3. Rename the folder to MinGW 
4. Open your IDE
    => In every IDE is different 'Settings'.  You should change the location of compiler and debugger.
I use JetBrains CLion.
Screenshots:




Good luck with programming! 🌝
























































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