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KangCai/Machine-Learning-Algorithm: :star2:【Numpy 手写实现】SVM 支持向量机 | KN ...

原作者: [db:作者] 来自: 网络 收藏 邀请

开源软件名称(OpenSource Name):

KangCai/Machine-Learning-Algorithm

开源软件地址(OpenSource Url):

https://github.com/KangCai/Machine-Learning-Algorithm

开源编程语言(OpenSource Language):

Python 100.0%

开源软件介绍(OpenSource Introduction):

Machine-Learning-Algorithm

注意: 每个文件只有开始的 class 是模型本身,其它代码都是用来测试的,每个模型的实现都在 100 行以内

Note: Only the class at the beginning of each file is the model itself, the rest of the code is for testing, and the implementation of each model is within 100 lines


1. Logistic Regression

File - logistic_regression.py

Cost Function -

Optimization Algorithm - Gradient descent method


2. Support Vector Machine

File - support_vector_machine.py

Example -

Cost Function -

Optimization Algorithm - Sequential minimal optimization (SMO)


3. Perception

File - perception.py

Example -


4. Naive Bayes

File - naive_bayes.py

Example -


5. K-Nearest Neighbor

File - k_nearest_neighbor.py | util_kd_tree.py

Example -


6. Decision Tree

File - decision_tree.py

Optimization Algorithm - Generalized Iterative Scaling (GIS)

Example -


7. Random Forest

File - random_forest.py | | decision_tree.py

Example -


8. Gradient Boosting Decision Tree

File - gradient_boosting_decision_tree.py | decision_tree.py


9. Linear Discriminant Analysis

File - linear_discriminant_analysis.py


10. Maximum Entropy

File - maximum_entropy.py

Example -


11. Gaussian Discriminant Analysis

File - gaussian_discriminant_analysis.py


12. Principal Component Analysis

File - principal_component_analysis.py

Example -


13. K-means

File - kmeans.py | util_kd_tree.py




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