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0.9rc2
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13
.coveragerc
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13
.coveragerc
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@@ -0,0 +1,13 @@
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[run]
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branch = True
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source = stree
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|
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[report]
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||||
exclude_lines =
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if self.debug:
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pragma: no cover
|
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raise NotImplementedError
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if __name__ == .__main__.:
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ignore_errors = True
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omit =
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stree/__init__.py
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47
.github/workflows/main.yml
vendored
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.github/workflows/main.yml
vendored
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@@ -0,0 +1,47 @@
|
||||
name: CI
|
||||
|
||||
on:
|
||||
push:
|
||||
branches: [master]
|
||||
pull_request:
|
||||
branches: [master]
|
||||
workflow_dispatch:
|
||||
|
||||
jobs:
|
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build:
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||||
runs-on: ${{ matrix.os }}
|
||||
strategy:
|
||||
matrix:
|
||||
os: [macos-latest, ubuntu-latest]
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||||
python: [3.8]
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||||
|
||||
steps:
|
||||
- uses: actions/checkout@v2
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||||
- name: Set up Python ${{ matrix.python }}
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||||
uses: actions/setup-python@v2
|
||||
with:
|
||||
python-version: ${{ matrix.python }}
|
||||
- name: Install dependencies
|
||||
run: |
|
||||
pip install -q --upgrade pip
|
||||
pip install -q -r requirements.txt
|
||||
pip install -q --upgrade codecov coverage black flake8 codacy-coverage
|
||||
- name: Lint
|
||||
run: |
|
||||
black --check --diff stree
|
||||
flake8 --count stree
|
||||
- name: Tests
|
||||
run: |
|
||||
coverage run -m unittest -v stree.tests
|
||||
coverage xml
|
||||
- name: Upload coverage to Codecov
|
||||
uses: codecov/codecov-action@v1
|
||||
with:
|
||||
token: ${{ secrets.CODECOV_TOKEN }}
|
||||
files: ./coverage.xml
|
||||
- name: Run codacy-coverage-reporter
|
||||
if: runner.os == 'Linux'
|
||||
uses: codacy/codacy-coverage-reporter-action@master
|
||||
with:
|
||||
project-token: ${{ secrets.CODACY_PROJECT_TOKEN }}
|
||||
coverage-reports: coverage.xml
|
6
.gitignore
vendored
6
.gitignore
vendored
@@ -129,4 +129,8 @@ dmypy.json
|
||||
.pyre/
|
||||
|
||||
.idea
|
||||
.vscode
|
||||
.vscode
|
||||
.pre-commit-config.yaml
|
||||
|
||||
**.csv
|
||||
.virtual_documents
|
13
.travis.yml
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.travis.yml
@@ -1,13 +0,0 @@
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||||
language: python
|
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os: linux
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dist: xenial
|
||||
install:
|
||||
- pip install -r requirements.txt
|
||||
notifications:
|
||||
email:
|
||||
recipients:
|
||||
- ricardo.montanana@alu.uclm.es
|
||||
on_success: never # default: change
|
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on_failure: always # default: always
|
||||
# command to run tests
|
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script: python -m unittest stree.tests
|
46
README.md
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README.md
@@ -1,8 +1,10 @@
|
||||
[](https://travis-ci.com/Doctorado-ML/STree)
|
||||

|
||||
[](https://codecov.io/gh/doctorado-ml/stree)
|
||||
[](https://www.codacy.com/gh/Doctorado-ML/STree?utm_source=github.com&utm_medium=referral&utm_content=Doctorado-ML/STree&utm_campaign=Badge_Grade)
|
||||
|
||||
# Stree
|
||||
|
||||
Oblique Tree classifier based on SVM nodes
|
||||
Oblique Tree classifier based on SVM nodes. The nodes are built and splitted with sklearn SVC models. Stree is a sklearn estimator and can be integrated in pipelines, grid searches, etc.
|
||||
|
||||

|
||||
|
||||
@@ -16,23 +18,43 @@ pip install git+https://github.com/doctorado-ml/stree
|
||||
|
||||
### Jupyter notebooks
|
||||
|
||||
##### Slow launch but better integration
|
||||
- [](https://mybinder.org/v2/gh/Doctorado-ML/STree/master?urlpath=lab/tree/notebooks/benchmark.ipynb) Benchmark
|
||||
|
||||
* [](https://mybinder.org/v2/gh/Doctorado-ML/STree/master?urlpath=lab/tree/test.ipynb) Test notebook
|
||||
- [](https://colab.research.google.com/github/Doctorado-ML/STree/blob/master/notebooks/benchmark.ipynb) Benchmark
|
||||
|
||||
##### Fast launch but have to run first commented out cell for setup
|
||||
- [](https://colab.research.google.com/github/Doctorado-ML/STree/blob/master/notebooks/features.ipynb) Some features
|
||||
|
||||
* [](https://colab.research.google.com/github/Doctorado-ML/STree/blob/master/test.ipynb) Test notebook
|
||||
- [](https://colab.research.google.com/github/Doctorado-ML/STree/blob/master/notebooks/gridsearch.ipynb) Gridsearch
|
||||
|
||||
* [](https://colab.research.google.com/github/Doctorado-ML/STree/blob/master/test2.ipynb) Another Test notebook
|
||||
- [](https://colab.research.google.com/github/Doctorado-ML/STree/blob/master/notebooks/ensemble.ipynb) Ensembles
|
||||
|
||||
* [](https://colab.research.google.com/github/Doctorado-ML/STree/blob/master/test_graphs.ipynb) Test Graphics notebook
|
||||
## Hyperparameters
|
||||
|
||||
### Command line
|
||||
| | **Hyperparameter** | **Type/Values** | **Default** | **Meaning** |
|
||||
| --- | ------------------ | ------------------------------------------------------ | ----------- | ---------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------- |
|
||||
| \* | C | \<float\> | 1.0 | Regularization parameter. The strength of the regularization is inversely proportional to C. Must be strictly positive. |
|
||||
| \* | kernel | {"linear", "poly", "rbf"} | linear | Specifies the kernel type to be used in the algorithm. It must be one of ‘linear’, ‘poly’ or ‘rbf’. |
|
||||
| \* | max_iter | \<int\> | 1e5 | Hard limit on iterations within solver, or -1 for no limit. |
|
||||
| \* | random_state | \<int\> | None | Controls the pseudo random number generation for shuffling the data for probability estimates. Ignored when probability is False.<br>Pass an int for reproducible output across multiple function calls |
|
||||
| | max_depth | \<int\> | None | Specifies the maximum depth of the tree |
|
||||
| \* | tol | \<float\> | 1e-4 | Tolerance for stopping criterion. |
|
||||
| \* | degree | \<int\> | 3 | Degree of the polynomial kernel function (‘poly’). Ignored by all other kernels. |
|
||||
| \* | gamma | {"scale", "auto"} or \<float\> | scale | Kernel coefficient for ‘rbf’ and ‘poly’.<br>if gamma='scale' (default) is passed then it uses 1 / (n_features \* X.var()) as value of gamma,<br>if ‘auto’, uses 1 / n_features. |
|
||||
| | split_criteria | {"impurity", "max_samples"} | impurity | Decides (just in case of a multi class classification) which column (class) use to split the dataset in a node\*\* |
|
||||
| | criterion | {“gini”, “entropy”} | entropy | The function to measure the quality of a split (only used if max_features != num_features). <br>Supported criteria are “gini” for the Gini impurity and “entropy” for the information gain. |
|
||||
| | min_samples_split | \<int\> | 0 | The minimum number of samples required to split an internal node. 0 (default) for any |
|
||||
| | max_features | \<int\>, \<float\> <br><br>or {“auto”, “sqrt”, “log2”} | None | The number of features to consider when looking for the split:<br>If int, then consider max_features features at each split.<br>If float, then max_features is a fraction and int(max_features \* n_features) features are considered at each split.<br>If “auto”, then max_features=sqrt(n_features).<br>If “sqrt”, then max_features=sqrt(n_features).<br>If “log2”, then max_features=log2(n_features).<br>If None, then max_features=n_features. |
|
||||
| | splitter | {"best", "random"} | random | The strategy used to choose the feature set at each node (only used if max_features != num_features). <br>Supported strategies are “best” to choose the best feature set and “random” to choose a random combination. <br>The algorithm generates 5 candidates at most to choose from in both strategies. |
|
||||
|
||||
```bash
|
||||
python main.py
|
||||
```
|
||||
\* Hyperparameter used by the support vector classifier of every node
|
||||
|
||||
\*\* **Splitting in a STree node**
|
||||
|
||||
The decision function is applied to the dataset and distances from samples to hyperplanes are computed in a matrix. This matrix has as many columns as classes the samples belongs to (if more than two, i.e. multiclass classification) or 1 column if it's a binary class dataset. In binary classification only one hyperplane is computed and therefore only one column is needed to store the distances of the samples to it. If three or more classes are present in the dataset we need as many hyperplanes as classes are there, and therefore one column per hyperplane is needed.
|
||||
|
||||
In case of multiclass classification we have to decide which column take into account to make the split, that depends on hyperparameter _split_criteria_, if "impurity" is chosen then STree computes information gain of every split candidate using each column and chooses the one that maximize the information gain, otherwise STree choses the column with more samples with a predicted class (the column with more positive numbers in it).
|
||||
|
||||
Once we have the column to take into account for the split, the algorithm splits samples with positive distances to hyperplane from the rest.
|
||||
|
||||
## Tests
|
||||
|
||||
|
12
codecov.yml
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12
codecov.yml
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@@ -0,0 +1,12 @@
|
||||
overage:
|
||||
status:
|
||||
project:
|
||||
default:
|
||||
target: 90%
|
||||
comment:
|
||||
layout: "reach, diff, flags, files"
|
||||
behavior: default
|
||||
require_changes: false
|
||||
require_base: yes
|
||||
require_head: yes
|
||||
branches: null
|
File diff suppressed because one or more lines are too long
1
data/.gitignore
vendored
1
data/.gitignore
vendored
@@ -1 +0,0 @@
|
||||
*
|
60
main.py
60
main.py
@@ -1,57 +1,29 @@
|
||||
import time
|
||||
from sklearn.model_selection import train_test_split
|
||||
from sklearn.datasets import load_iris
|
||||
from stree import Stree
|
||||
|
||||
random_state=1
|
||||
random_state = 1
|
||||
|
||||
def load_creditcard(n_examples=0):
|
||||
import pandas as pd
|
||||
import numpy as np
|
||||
import random
|
||||
df = pd.read_csv('data/creditcard.csv')
|
||||
print("Fraud: {0:.3f}% {1}".format(df.Class[df.Class == 1].count()*100/df.shape[0], df.Class[df.Class == 1].count()))
|
||||
print("Valid: {0:.3f}% {1}".format(df.Class[df.Class == 0].count()*100/df.shape[0], df.Class[df.Class == 0].count()))
|
||||
y = np.expand_dims(df.Class.values, axis=1)
|
||||
X = df.drop(['Class', 'Time', 'Amount'], axis=1).values
|
||||
if n_examples > 0:
|
||||
# Take first n_examples samples
|
||||
X = X[:n_examples, :]
|
||||
y = y[:n_examples, :]
|
||||
else:
|
||||
# Take all the positive samples with a number of random negatives
|
||||
if n_examples < 0:
|
||||
Xt = X[(y == 1).ravel()]
|
||||
yt = y[(y == 1).ravel()]
|
||||
indices = random.sample(range(X.shape[0]), -1 * n_examples)
|
||||
X = np.append(Xt, X[indices], axis=0)
|
||||
y = np.append(yt, y[indices], axis=0)
|
||||
print("X.shape", X.shape, " y.shape", y.shape)
|
||||
print("Fraud: {0:.3f}% {1}".format(len(y[y == 1])*100/X.shape[0], len(y[y == 1])))
|
||||
print("Valid: {0:.3f}% {1}".format(len(y[y == 0]) * 100 / X.shape[0], len(y[y == 0])))
|
||||
Xtrain, Xtest, ytrain, ytest = train_test_split(X, y, train_size=0.7, shuffle=True, random_state=random_state, stratify=y)
|
||||
return Xtrain, Xtest, ytrain, ytest
|
||||
X, y = load_iris(return_X_y=True)
|
||||
|
||||
# data = load_creditcard(-5000) # Take all true samples + 5000 of the others
|
||||
# data = load_creditcard(5000) # Take the first 5000 samples
|
||||
data = load_creditcard() # Take all the samples
|
||||
|
||||
Xtrain = data[0]
|
||||
Xtest = data[1]
|
||||
ytrain = data[2]
|
||||
ytest = data[3]
|
||||
Xtrain, Xtest, ytrain, ytest = train_test_split(
|
||||
X, y, test_size=0.3, random_state=random_state
|
||||
)
|
||||
|
||||
now = time.time()
|
||||
clf = Stree(C=.01, random_state=random_state)
|
||||
print("Predicting with max_features=sqrt(n_features)")
|
||||
clf = Stree(C=0.01, random_state=random_state, max_features="auto")
|
||||
clf.fit(Xtrain, ytrain)
|
||||
print(f"Took {time.time() - now:.2f} seconds to train")
|
||||
print(clf)
|
||||
print(f"Classifier's accuracy (train): {clf.score(Xtrain, ytrain):.4f}")
|
||||
print(f"Classifier's accuracy (test) : {clf.score(Xtest, ytest):.4f}")
|
||||
print("=" * 40)
|
||||
print("Predicting with max_features=n_features")
|
||||
clf = Stree(C=0.01, random_state=random_state)
|
||||
clf.fit(Xtrain, ytrain)
|
||||
print(f"Took {time.time() - now:.2f} seconds to train")
|
||||
print(clf)
|
||||
print(f"Classifier's accuracy (train): {clf.score(Xtrain, ytrain):.4f}")
|
||||
print(f"Classifier's accuracy (test) : {clf.score(Xtest, ytest):.4f}")
|
||||
proba = clf.predict_proba(Xtest)
|
||||
print("Checking that we have correct probabilities, these are probabilities of sample belonging to class 1")
|
||||
res0 = proba[proba[:, 0] == 0]
|
||||
res1 = proba[proba[:, 0] == 1]
|
||||
print("++++++++++res0 > .8++++++++++++")
|
||||
print(res0[res0[:, 1] > .8])
|
||||
print("**********res1 < .4************")
|
||||
print(res1[res1[:, 1] < .4])
|
371
notebooks/benchmark.ipynb
Normal file
371
notebooks/benchmark.ipynb
Normal file
@@ -0,0 +1,371 @@
|
||||
{
|
||||
"cells": [
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Compare STree with different estimators"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Setup\n",
|
||||
"Uncomment the next cell if STree is not already installed"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"#\n",
|
||||
"# Google Colab setup\n",
|
||||
"#\n",
|
||||
"#!pip install git+https://github.com/doctorado-ml/stree\n",
|
||||
"!pip install pandas"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"import datetime, time\n",
|
||||
"import os\n",
|
||||
"import numpy as np\n",
|
||||
"import pandas as pd\n",
|
||||
"from sklearn.model_selection import train_test_split\n",
|
||||
"from sklearn.metrics import classification_report, confusion_matrix, f1_score\n",
|
||||
"from sklearn.tree import DecisionTreeClassifier\n",
|
||||
"from sklearn.naive_bayes import GaussianNB\n",
|
||||
"from sklearn.neural_network import MLPClassifier\n",
|
||||
"from sklearn.svm import LinearSVC\n",
|
||||
"from stree import Stree"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"if not os.path.isfile('data/creditcard.csv'):\n",
|
||||
" !wget --no-check-certificate --content-disposition http://nube.jccm.es/index.php/s/Zs7SYtZQJ3RQ2H2/download\n",
|
||||
" !tar xzf creditcard.tgz"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Tests"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"print(datetime.date.today(), time.strftime(\"%H:%M:%S\"))"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Load dataset and normalize values"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Load Dataset\n",
|
||||
"df = pd.read_csv('data/creditcard.csv')\n",
|
||||
"df.shape\n",
|
||||
"random_state = 2020"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"print(\"Fraud: {0:.3f}% {1}\".format(df.Class[df.Class == 1].count()*100/df.shape[0], df.Class[df.Class == 1].count()))\n",
|
||||
"print(\"Valid: {0:.3f}% {1:,}\".format(df.Class[df.Class == 0].count()*100/df.shape[0], df.Class[df.Class == 0].count()))"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Normalize Amount\n",
|
||||
"from sklearn.preprocessing import RobustScaler\n",
|
||||
"values = RobustScaler().fit_transform(df.Amount.values.reshape(-1, 1))\n",
|
||||
"df['Amount_Scaled'] = values"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Remove unneeded features\n",
|
||||
"y = df.Class.values\n",
|
||||
"X = df.drop(['Class', 'Time', 'Amount'], axis=1).values\n",
|
||||
"print(f\"X shape: {X.shape}\\ny shape: {y.shape}\")"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Build the models"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Divide dataset\n",
|
||||
"train_size = .7\n",
|
||||
"Xtrain, Xtest, ytrain, ytest = train_test_split(X, y, train_size=train_size, shuffle=True, random_state=random_state, stratify=y)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Linear Tree\n",
|
||||
"linear_tree = DecisionTreeClassifier(random_state=random_state)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Naive Bayes\n",
|
||||
"naive_bayes = GaussianNB()"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Stree\n",
|
||||
"stree = Stree(random_state=random_state, C=.01, max_iter=1e3)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Neural Network\n",
|
||||
"mlp = MLPClassifier(random_state=random_state, alpha=1)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# SVC (linear)\n",
|
||||
"svc = LinearSVC(random_state=random_state, C=.01, max_iter=1e3)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Do the test"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"def try_model(name, model):\n",
|
||||
" print(f\"************************** {name} **********************\")\n",
|
||||
" now = time.time()\n",
|
||||
" model.fit(Xtrain, ytrain)\n",
|
||||
" spent = time.time() - now\n",
|
||||
" print(f\"Train Model {name} took: {spent:.4} seconds\")\n",
|
||||
" predict = model.predict(Xtrain)\n",
|
||||
" predictt = model.predict(Xtest)\n",
|
||||
" print(f\"=========== {name} - Train {Xtrain.shape[0]:,} samples =============\",)\n",
|
||||
" print(classification_report(ytrain, predict, digits=6))\n",
|
||||
" print(f\"=========== {name} - Test {Xtest.shape[0]:,} samples =============\")\n",
|
||||
" print(classification_report(ytest, predictt, digits=6))\n",
|
||||
" print(\"Confusion Matrix in Train\")\n",
|
||||
" print(confusion_matrix(ytrain, predict))\n",
|
||||
" print(\"Confusion Matrix in Test\")\n",
|
||||
" print(confusion_matrix(ytest, predictt))\n",
|
||||
" return f1_score(ytest, predictt), spent"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Train & Test models\n",
|
||||
"models = {\n",
|
||||
" 'Linear Tree':linear_tree, 'Naive Bayes': naive_bayes, 'Stree ': stree, \n",
|
||||
" 'Neural Network': mlp, 'SVC (linear)': svc\n",
|
||||
"}\n",
|
||||
"\n",
|
||||
"best_f1 = 0\n",
|
||||
"outcomes = []\n",
|
||||
"for name, model in models.items():\n",
|
||||
" f1, time_spent = try_model(name, model)\n",
|
||||
" outcomes.append((name, f1, time_spent))\n",
|
||||
" if f1 > best_f1:\n",
|
||||
" best_model = name\n",
|
||||
" best_time = time_spent\n",
|
||||
" best_f1 = f1"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"print(\"*\"*110)\n",
|
||||
"print(f\"*The best f1 model is {best_model}, with a f1 score: {best_f1:.4} in {best_time:.6} seconds with {train_size:,} samples in train dataset\")\n",
|
||||
"print(\"*\"*110)\n",
|
||||
"for name, f1, time_spent in outcomes:\n",
|
||||
" print(f\"Model: {name}\\t Time: {time_spent:6.2f} seconds\\t f1: {f1:.4}\")"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "raw",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"**************************************************************************************************************\n",
|
||||
"*The best f1 model is Stree (SVM Tree), with a f1 score: 0.8603 in 28.4743 seconds with 0.7 samples in train dataset\n",
|
||||
"**************************************************************************************************************\n",
|
||||
"Model: Linear Tree\t Time: 10.25 seconds\t f1: 0.7645\n",
|
||||
"Model: Naive Bayes\t Time: 0.10 seconds\t f1: 0.1154\n",
|
||||
"Model: Stree (SVM Tree)\t Time: 28.47 seconds\t f1: 0.8603\n",
|
||||
"Model: Neural Network\t Time: 9.76 seconds\t f1: 0.7381\n",
|
||||
"Model: SVC (linear)\t Time: 8.21 seconds\t f1: 0.739"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"stree.get_params()"
|
||||
]
|
||||
}
|
||||
],
|
||||
"metadata": {
|
||||
"hide_input": false,
|
||||
"kernelspec": {
|
||||
"display_name": "Python 3",
|
||||
"language": "python",
|
||||
"name": "python3"
|
||||
},
|
||||
"language_info": {
|
||||
"codemirror_mode": {
|
||||
"name": "ipython",
|
||||
"version": 3
|
||||
},
|
||||
"file_extension": ".py",
|
||||
"mimetype": "text/x-python",
|
||||
"name": "python",
|
||||
"nbconvert_exporter": "python",
|
||||
"pygments_lexer": "ipython3",
|
||||
"version": "3.8.2-final"
|
||||
},
|
||||
"toc": {
|
||||
"base_numbering": 1,
|
||||
"nav_menu": {},
|
||||
"number_sections": true,
|
||||
"sideBar": true,
|
||||
"skip_h1_title": false,
|
||||
"title_cell": "Table of Contents",
|
||||
"title_sidebar": "Contents",
|
||||
"toc_cell": false,
|
||||
"toc_position": {},
|
||||
"toc_section_display": true,
|
||||
"toc_window_display": false
|
||||
},
|
||||
"varInspector": {
|
||||
"cols": {
|
||||
"lenName": 16,
|
||||
"lenType": 16,
|
||||
"lenVar": 40
|
||||
},
|
||||
"kernels_config": {
|
||||
"python": {
|
||||
"delete_cmd_postfix": "",
|
||||
"delete_cmd_prefix": "del ",
|
||||
"library": "var_list.py",
|
||||
"varRefreshCmd": "print(var_dic_list())"
|
||||
},
|
||||
"r": {
|
||||
"delete_cmd_postfix": ") ",
|
||||
"delete_cmd_prefix": "rm(",
|
||||
"library": "var_list.r",
|
||||
"varRefreshCmd": "cat(var_dic_list()) "
|
||||
}
|
||||
},
|
||||
"position": {
|
||||
"height": "392px",
|
||||
"left": "1518px",
|
||||
"right": "20px",
|
||||
"top": "40px",
|
||||
"width": "392px"
|
||||
},
|
||||
"types_to_exclude": [
|
||||
"module",
|
||||
"function",
|
||||
"builtin_function_or_method",
|
||||
"instance",
|
||||
"_Feature"
|
||||
],
|
||||
"window_display": true
|
||||
}
|
||||
},
|
||||
"nbformat": 4,
|
||||
"nbformat_minor": 4
|
||||
}
|
229
notebooks/ensemble.ipynb
Normal file
229
notebooks/ensemble.ipynb
Normal file
@@ -0,0 +1,229 @@
|
||||
{
|
||||
"cells": [
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Test Stree with AdaBoost and Bagging with different configurations"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Setup\n",
|
||||
"Uncomment the next cell if STree is not already installed"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"#\n",
|
||||
"# Google Colab setup\n",
|
||||
"#\n",
|
||||
"#!pip install git+https://github.com/doctorado-ml/stree\n",
|
||||
"!pip install pandas"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"import time\n",
|
||||
"import os\n",
|
||||
"import random\n",
|
||||
"import warnings\n",
|
||||
"import pandas as pd\n",
|
||||
"import numpy as np\n",
|
||||
"from sklearn.ensemble import AdaBoostClassifier, BaggingClassifier\n",
|
||||
"from sklearn.model_selection import train_test_split\n",
|
||||
"from sklearn.exceptions import ConvergenceWarning\n",
|
||||
"from stree import Stree\n",
|
||||
"\n",
|
||||
"warnings.filterwarnings(\"ignore\", category=ConvergenceWarning)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"if not os.path.isfile('data/creditcard.csv'):\n",
|
||||
" !wget --no-check-certificate --content-disposition http://nube.jccm.es/index.php/s/Zs7SYtZQJ3RQ2H2/download\n",
|
||||
" !tar xzf creditcard.tgz"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"random_state=1\n",
|
||||
"\n",
|
||||
"def load_creditcard(n_examples=0):\n",
|
||||
" df = pd.read_csv('data/creditcard.csv')\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(df.Class[df.Class == 1].count()*100/df.shape[0], df.Class[df.Class == 1].count()))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(df.Class[df.Class == 0].count()*100/df.shape[0], df.Class[df.Class == 0].count()))\n",
|
||||
" y = df.Class\n",
|
||||
" X = df.drop(['Class', 'Time', 'Amount'], axis=1).values\n",
|
||||
" if n_examples > 0:\n",
|
||||
" # Take first n_examples samples\n",
|
||||
" X = X[:n_examples, :]\n",
|
||||
" y = y[:n_examples, :]\n",
|
||||
" else:\n",
|
||||
" # Take all the positive samples with a number of random negatives\n",
|
||||
" if n_examples < 0:\n",
|
||||
" Xt = X[(y == 1).ravel()]\n",
|
||||
" yt = y[(y == 1).ravel()]\n",
|
||||
" indices = random.sample(range(X.shape[0]), -1 * n_examples)\n",
|
||||
" X = np.append(Xt, X[indices], axis=0)\n",
|
||||
" y = np.append(yt, y[indices], axis=0)\n",
|
||||
" print(\"X.shape\", X.shape, \" y.shape\", y.shape)\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(len(y[y == 1])*100/X.shape[0], len(y[y == 1])))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(len(y[y == 0]) * 100 / X.shape[0], len(y[y == 0])))\n",
|
||||
" Xtrain, Xtest, ytrain, ytest = train_test_split(X, y, train_size=0.7, shuffle=True, random_state=random_state, stratify=y)\n",
|
||||
" return Xtrain, Xtest, ytrain, ytest\n",
|
||||
"\n",
|
||||
"# data = load_creditcard(-1000) # Take all true samples + 1000 of the others\n",
|
||||
"# data = load_creditcard(5000) # Take the first 5000 samples\n",
|
||||
"# data = load_creditcard(0) # Take all the samples\n",
|
||||
"data = load_creditcard(-100000)\n",
|
||||
"\n",
|
||||
"Xtrain = data[0]\n",
|
||||
"Xtest = data[1]\n",
|
||||
"ytrain = data[2]\n",
|
||||
"ytest = data[3]"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Tests"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## STree alone with 100.000 samples and linear kernel"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"now = time.time()\n",
|
||||
"clf = Stree(max_depth=3, random_state=random_state, max_iter=1e3)\n",
|
||||
"clf.fit(Xtrain, ytrain)\n",
|
||||
"print(\"Score Train: \", clf.score(Xtrain, ytrain))\n",
|
||||
"print(\"Score Test: \", clf.score(Xtest, ytest))\n",
|
||||
"print(f\"Took {time.time() - now:.2f} seconds\")"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Adaboost"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"n_estimators = 10\n",
|
||||
"C = 7\n",
|
||||
"max_depth = 3"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"for kernel in ['linear', 'rbf', 'poly']:\n",
|
||||
" now = time.time()\n",
|
||||
" clf = AdaBoostClassifier(base_estimator=Stree(C=C, kernel=kernel, max_depth=max_depth, random_state=random_state, max_iter=1e3), algorithm=\"SAMME\", n_estimators=n_estimators, random_state=random_state)\n",
|
||||
" clf.fit(Xtrain, ytrain)\n",
|
||||
" score_train = clf.score(Xtrain, ytrain)\n",
|
||||
" score_test = clf.score(Xtest, ytest)\n",
|
||||
" print(f\"Kernel: {kernel}\\tTime: {time.time() - now:.2f} seconds\\tScore Train: {score_train:.7f}\\tScore Test: {score_test:.7f}\")"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Bagging"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"n_estimators = 10\n",
|
||||
"C = 7\n",
|
||||
"max_depth = 3"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"for kernel in ['linear', 'rbf', 'poly']:\n",
|
||||
" now = time.time()\n",
|
||||
" clf = BaggingClassifier(base_estimator=Stree(C=C, kernel=kernel, max_depth=max_depth, random_state=random_state, max_iter=1e3), n_estimators=n_estimators, random_state=random_state)\n",
|
||||
" clf.fit(Xtrain, ytrain)\n",
|
||||
" score_train = clf.score(Xtrain, ytrain)\n",
|
||||
" score_test = clf.score(Xtest, ytest)\n",
|
||||
" print(f\"Kernel: {kernel}\\tTime: {time.time() - now:.2f} seconds\\tScore Train: {score_train:.7f}\\tScore Test: {score_test:.7f}\")"
|
||||
]
|
||||
}
|
||||
],
|
||||
"metadata": {
|
||||
"kernelspec": {
|
||||
"display_name": "Python 3",
|
||||
"language": "python",
|
||||
"name": "python3"
|
||||
},
|
||||
"language_info": {
|
||||
"codemirror_mode": {
|
||||
"name": "ipython",
|
||||
"version": 3
|
||||
},
|
||||
"file_extension": ".py",
|
||||
"mimetype": "text/x-python",
|
||||
"name": "python",
|
||||
"nbconvert_exporter": "python",
|
||||
"pygments_lexer": "ipython3",
|
||||
"version": "3.8.2-final"
|
||||
}
|
||||
},
|
||||
"nbformat": 4,
|
||||
"nbformat_minor": 4
|
||||
}
|
359
notebooks/features.ipynb
Normal file
359
notebooks/features.ipynb
Normal file
@@ -0,0 +1,359 @@
|
||||
{
|
||||
"cells": [
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Test sample_weight, kernels, C, sklearn estimator"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Setup\n",
|
||||
"Uncomment the next cell if STree is not already installed"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"#\n",
|
||||
"# Google Colab setup\n",
|
||||
"#\n",
|
||||
"#!pip install git+https://github.com/doctorado-ml/stree\n",
|
||||
"!pip install pandas"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"import time\n",
|
||||
"import random\n",
|
||||
"import warnings\n",
|
||||
"import os\n",
|
||||
"import numpy as np\n",
|
||||
"import pandas as pd\n",
|
||||
"from sklearn.svm import SVC\n",
|
||||
"from sklearn.tree import DecisionTreeClassifier\n",
|
||||
"from sklearn.utils.estimator_checks import check_estimator\n",
|
||||
"from sklearn.datasets import make_classification, load_iris, load_wine\n",
|
||||
"from sklearn.model_selection import train_test_split\n",
|
||||
"from sklearn.utils.class_weight import compute_sample_weight\n",
|
||||
"from sklearn.exceptions import ConvergenceWarning\n",
|
||||
"from stree import Stree\n",
|
||||
"warnings.filterwarnings(\"ignore\", category=ConvergenceWarning)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"if not os.path.isfile('data/creditcard.csv'):\n",
|
||||
" !wget --no-check-certificate --content-disposition http://nube.jccm.es/index.php/s/Zs7SYtZQJ3RQ2H2/download\n",
|
||||
" !tar xzf creditcard.tgz"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"random_state=1\n",
|
||||
"\n",
|
||||
"def load_creditcard(n_examples=0):\n",
|
||||
" df = pd.read_csv('data/creditcard.csv')\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(df.Class[df.Class == 1].count()*100/df.shape[0], df.Class[df.Class == 1].count()))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(df.Class[df.Class == 0].count()*100/df.shape[0], df.Class[df.Class == 0].count()))\n",
|
||||
" y = df.Class\n",
|
||||
" X = df.drop(['Class', 'Time', 'Amount'], axis=1).values\n",
|
||||
" if n_examples > 0:\n",
|
||||
" # Take first n_examples samples\n",
|
||||
" X = X[:n_examples, :]\n",
|
||||
" y = y[:n_examples, :]\n",
|
||||
" else:\n",
|
||||
" # Take all the positive samples with a number of random negatives\n",
|
||||
" if n_examples < 0:\n",
|
||||
" Xt = X[(y == 1).ravel()]\n",
|
||||
" yt = y[(y == 1).ravel()]\n",
|
||||
" indices = random.sample(range(X.shape[0]), -1 * n_examples)\n",
|
||||
" X = np.append(Xt, X[indices], axis=0)\n",
|
||||
" y = np.append(yt, y[indices], axis=0)\n",
|
||||
" print(\"X.shape\", X.shape, \" y.shape\", y.shape)\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(len(y[y == 1])*100/X.shape[0], len(y[y == 1])))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(len(y[y == 0]) * 100 / X.shape[0], len(y[y == 0])))\n",
|
||||
" Xtrain, Xtest, ytrain, ytest = train_test_split(X, y, train_size=0.7, shuffle=True, random_state=random_state)\n",
|
||||
" return Xtrain, Xtest, ytrain, ytest\n",
|
||||
"\n",
|
||||
"data = load_creditcard(-5000) # Take all true samples with up to 5000 of the others\n",
|
||||
"# data = load_creditcard(5000) # Take the first 5000 samples\n",
|
||||
"# data = load_creditcard(-1000) # Take 1000 samples\n",
|
||||
"\n",
|
||||
"Xtrain = data[0]\n",
|
||||
"Xtest = data[1]\n",
|
||||
"ytrain = data[2]\n",
|
||||
"ytest = data[3]\n",
|
||||
"weights = compute_sample_weight(\"balanced\", ytrain)\n",
|
||||
"weights_test = compute_sample_weight(\"balanced\", ytest)\n",
|
||||
"print(weights[:4], weights_test[:4])"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Tests"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Test sample_weights\n",
|
||||
"Compute accuracy with weights in samples. The weights are set based on the inverse of the number of samples of each class"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"C = 23\n",
|
||||
"print(\"Accuracy of Train without weights\", Stree(C=C, random_state=1).fit(Xtrain, ytrain).score(Xtrain, ytrain))\n",
|
||||
"print(\"Accuracy of Train with weights\", Stree(C=C, random_state=1).fit(Xtrain, ytrain, sample_weight=weights).score(Xtrain, ytrain))\n",
|
||||
"print(\"Accuracy of Tests without weights\", Stree(C=C, random_state=1).fit(Xtrain, ytrain).score(Xtest, ytest))\n",
|
||||
"print(\"Accuracy of Tests with weights\", Stree(C=C, random_state=1).fit(Xtrain, ytrain, sample_weight=weights).score(Xtest, ytest))"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Test accuracy with different kernels\n",
|
||||
"Compute accuracy on train and test set with default hyperparmeters of every kernel"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"random_state=1\n",
|
||||
"for kernel in ['linear', 'rbf', 'poly']:\n",
|
||||
" now = time.time()\n",
|
||||
" clf = Stree(C=7, kernel=kernel, random_state=random_state).fit(Xtrain, ytrain)\n",
|
||||
" accuracy_train = clf.score(Xtrain, ytrain)\n",
|
||||
" accuracy_test = clf.score(Xtest, ytest)\n",
|
||||
" time_spent = time.time() - now\n",
|
||||
" print(f\"Time: {time_spent:.2f}s\\tKernel: {kernel}\\tAccuracy_train: {accuracy_train}\\tAccuracy_test: {accuracy_test}\")\n"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Test diferent values of C"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"t = time.time()\n",
|
||||
"for C in (.001, .01, 1, 5, 17):\n",
|
||||
" clf = Stree(C=C, kernel=\"linear\", random_state=random_state)\n",
|
||||
" clf.fit(Xtrain, ytrain)\n",
|
||||
" print(f\"************** C={C} ****************************\")\n",
|
||||
" print(f\"Classifier's accuracy (train): {clf.score(Xtrain, ytrain):.4f}\")\n",
|
||||
" print(f\"Classifier's accuracy (test) : {clf.score(Xtest, ytest):.4f}\")\n",
|
||||
" print(clf)\n",
|
||||
" print(f\"**************************************************\")\n",
|
||||
"print(f\"{time.time() - t:.4f} secs\")"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Test iterator\n",
|
||||
"Check different ways of using the iterator"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"#check iterator\n",
|
||||
"for i in list(clf):\n",
|
||||
" print(i)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"#check iterator again\n",
|
||||
"for i in clf:\n",
|
||||
" print(i)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Test STree is a sklearn estimator"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Make checks one by one\n",
|
||||
"c = 0\n",
|
||||
"checks = check_estimator(Stree(), generate_only=True)\n",
|
||||
"for check in checks:\n",
|
||||
" c += 1\n",
|
||||
" print(c, check[1])\n",
|
||||
" check[1](check[0])"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"# Check if the classifier is a sklearn estimator\n",
|
||||
"check_estimator(Stree())"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Compare to SVM"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"svc = SVC(C=7, kernel='rbf', gamma=.001, random_state=random_state)\n",
|
||||
"clf = Stree(C=17, kernel='rbf', gamma=.001, random_state=random_state)\n",
|
||||
"svc.fit(Xtrain, ytrain)\n",
|
||||
"clf.fit(Xtrain, ytrain)\n",
|
||||
"print(\"== Not Weighted ===\")\n",
|
||||
"print(\"SVC train score ..:\", svc.score(Xtrain, ytrain))\n",
|
||||
"print(\"STree train score :\", clf.score(Xtrain, ytrain))\n",
|
||||
"print(\"SVC test score ...:\", svc.score(Xtest, ytest))\n",
|
||||
"print(\"STree test score .:\", clf.score(Xtest, ytest))\n",
|
||||
"svc.fit(Xtrain, ytrain, weights)\n",
|
||||
"clf.fit(Xtrain, ytrain, weights)\n",
|
||||
"print(\"==== Weighted =====\")\n",
|
||||
"print(\"SVC train score ..:\", svc.score(Xtrain, ytrain))\n",
|
||||
"print(\"STree train score :\", clf.score(Xtrain, ytrain))\n",
|
||||
"print(\"SVC test score ...:\", svc.score(Xtest, ytest))\n",
|
||||
"print(\"STree test score .:\", clf.score(Xtest, ytest))\n",
|
||||
"print(\"*SVC test score ..:\", svc.score(Xtest, ytest, weights_test))\n",
|
||||
"print(\"*STree test score :\", clf.score(Xtest, ytest, weights_test))"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"print(clf)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"## Test max_features"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"for max_features in [None, \"auto\", \"log2\", 7, .5, .1, .7]:\n",
|
||||
" now = time.time()\n",
|
||||
" print(\"*\"*40)\n",
|
||||
" clf = Stree(random_state=random_state, max_features=max_features)\n",
|
||||
" clf.fit(Xtrain, ytrain)\n",
|
||||
" print(f\"max_features {max_features} = {clf.max_features_}\")\n",
|
||||
" print(\"Train score :\", clf.score(Xtrain, ytrain))\n",
|
||||
" print(\"Test score .:\", clf.score(Xtest, ytest))\n",
|
||||
" print(f\"Took {time.time() - now:.2f} seconds\")"
|
||||
]
|
||||
}
|
||||
],
|
||||
"metadata": {
|
||||
"kernelspec": {
|
||||
"display_name": "Python 3",
|
||||
"language": "python",
|
||||
"name": "python3"
|
||||
},
|
||||
"language_info": {
|
||||
"codemirror_mode": {
|
||||
"name": "ipython",
|
||||
"version": 3
|
||||
},
|
||||
"file_extension": ".py",
|
||||
"mimetype": "text/x-python",
|
||||
"name": "python",
|
||||
"nbconvert_exporter": "python",
|
||||
"pygments_lexer": "ipython3",
|
||||
"version": "3.8.2-final"
|
||||
}
|
||||
},
|
||||
"nbformat": 4,
|
||||
"nbformat_minor": 4
|
||||
}
|
253
notebooks/gridsearch.ipynb
Normal file
253
notebooks/gridsearch.ipynb
Normal file
@@ -0,0 +1,253 @@
|
||||
{
|
||||
"cells": [
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Test Gridsearch\n",
|
||||
"with different kernels and different configurations"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Setup\n",
|
||||
"Uncomment the next cell if STree is not already installed"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"#\n",
|
||||
"# Google Colab setup\n",
|
||||
"#\n",
|
||||
"#!pip install git+https://github.com/doctorado-ml/stree\n",
|
||||
"!pip install pandas"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"colab": {},
|
||||
"colab_type": "code",
|
||||
"id": "zIHKVxthDZEa"
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"import random\n",
|
||||
"import os\n",
|
||||
"import pandas as pd\n",
|
||||
"import numpy as np\n",
|
||||
"from sklearn.ensemble import AdaBoostClassifier\n",
|
||||
"from sklearn.svm import LinearSVC\n",
|
||||
"from sklearn.model_selection import GridSearchCV, train_test_split\n",
|
||||
"from stree import Stree"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"colab": {},
|
||||
"colab_type": "code",
|
||||
"id": "IEmq50QgDZEi"
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"if not os.path.isfile('data/creditcard.csv'):\n",
|
||||
" !wget --no-check-certificate --content-disposition http://nube.jccm.es/index.php/s/Zs7SYtZQJ3RQ2H2/download\n",
|
||||
" !tar xzf creditcard.tgz"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"colab": {},
|
||||
"colab_type": "code",
|
||||
"id": "z9Q-YUfBDZEq",
|
||||
"outputId": "afc822fb-f16a-4302-8a67-2b9e2880159b",
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"random_state=1\n",
|
||||
"\n",
|
||||
"def load_creditcard(n_examples=0):\n",
|
||||
" df = pd.read_csv('data/creditcard.csv')\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(df.Class[df.Class == 1].count()*100/df.shape[0], df.Class[df.Class == 1].count()))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(df.Class[df.Class == 0].count()*100/df.shape[0], df.Class[df.Class == 0].count()))\n",
|
||||
" y = df.Class\n",
|
||||
" X = df.drop(['Class', 'Time', 'Amount'], axis=1).values\n",
|
||||
" if n_examples > 0:\n",
|
||||
" # Take first n_examples samples\n",
|
||||
" X = X[:n_examples, :]\n",
|
||||
" y = y[:n_examples, :]\n",
|
||||
" else:\n",
|
||||
" # Take all the positive samples with a number of random negatives\n",
|
||||
" if n_examples < 0:\n",
|
||||
" Xt = X[(y == 1).ravel()]\n",
|
||||
" yt = y[(y == 1).ravel()]\n",
|
||||
" indices = random.sample(range(X.shape[0]), -1 * n_examples)\n",
|
||||
" X = np.append(Xt, X[indices], axis=0)\n",
|
||||
" y = np.append(yt, y[indices], axis=0)\n",
|
||||
" print(\"X.shape\", X.shape, \" y.shape\", y.shape)\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(len(y[y == 1])*100/X.shape[0], len(y[y == 1])))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(len(y[y == 0]) * 100 / X.shape[0], len(y[y == 0])))\n",
|
||||
" Xtrain, Xtest, ytrain, ytest = train_test_split(X, y, train_size=0.7, shuffle=True, random_state=random_state, stratify=y)\n",
|
||||
" return Xtrain, Xtest, ytrain, ytest\n",
|
||||
"\n",
|
||||
"data = load_creditcard(-1000) # Take all true samples + 1000 of the others\n",
|
||||
"# data = load_creditcard(5000) # Take the first 5000 samples\n",
|
||||
"# data = load_creditcard(0) # Take all the samples\n",
|
||||
"\n",
|
||||
"Xtrain = data[0]\n",
|
||||
"Xtest = data[1]\n",
|
||||
"ytrain = data[2]\n",
|
||||
"ytest = data[3]"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"# Tests"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"colab": {},
|
||||
"colab_type": "code",
|
||||
"id": "HmX3kR4PDZEw"
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"parameters = [{\n",
|
||||
" 'base_estimator': [Stree(random_state=random_state)],\n",
|
||||
" 'n_estimators': [10, 25],\n",
|
||||
" 'learning_rate': [.5, 1],\n",
|
||||
" 'base_estimator__split_criteria': ['max_samples', 'impurity'],\n",
|
||||
" 'base_estimator__tol': [.1, 1e-02],\n",
|
||||
" 'base_estimator__max_depth': [3, 5, 7],\n",
|
||||
" 'base_estimator__C': [1, 7, 55],\n",
|
||||
" 'base_estimator__kernel': ['linear']\n",
|
||||
"},\n",
|
||||
"{\n",
|
||||
" 'base_estimator': [Stree(random_state=random_state)],\n",
|
||||
" 'n_estimators': [10, 25],\n",
|
||||
" 'learning_rate': [.5, 1],\n",
|
||||
" 'base_estimator__split_criteria': ['max_samples', 'impurity'],\n",
|
||||
" 'base_estimator__tol': [.1, 1e-02],\n",
|
||||
" 'base_estimator__max_depth': [3, 5, 7],\n",
|
||||
" 'base_estimator__C': [1, 7, 55],\n",
|
||||
" 'base_estimator__degree': [3, 5, 7],\n",
|
||||
" 'base_estimator__kernel': ['poly']\n",
|
||||
"},\n",
|
||||
"{\n",
|
||||
" 'base_estimator': [Stree(random_state=random_state)],\n",
|
||||
" 'n_estimators': [10, 25],\n",
|
||||
" 'learning_rate': [.5, 1],\n",
|
||||
" 'base_estimator__split_criteria': ['max_samples', 'impurity'],\n",
|
||||
" 'base_estimator__tol': [.1, 1e-02],\n",
|
||||
" 'base_estimator__max_depth': [3, 5, 7],\n",
|
||||
" 'base_estimator__C': [1, 7, 55],\n",
|
||||
" 'base_estimator__gamma': [.1, 1, 10],\n",
|
||||
" 'base_estimator__kernel': ['rbf']\n",
|
||||
"}]"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"Stree().get_params()"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"colab": {},
|
||||
"colab_type": "code",
|
||||
"id": "CrcB8o6EDZE5",
|
||||
"outputId": "7703413a-d563-4289-a13b-532f38f82762",
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"clf = AdaBoostClassifier(random_state=random_state, algorithm=\"SAMME\")\n",
|
||||
"grid = GridSearchCV(clf, parameters, verbose=5, n_jobs=-1, return_train_score=True)\n",
|
||||
"grid.fit(Xtrain, ytrain)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": null,
|
||||
"metadata": {
|
||||
"colab": {},
|
||||
"colab_type": "code",
|
||||
"id": "ZjX88NoYDZE8",
|
||||
"outputId": "285163c8-fa33-4915-8ae7-61c4f7844344",
|
||||
"tags": []
|
||||
},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"print(\"Best estimator: \", grid.best_estimator_)\n",
|
||||
"print(\"Best hyperparameters: \", grid.best_params_)\n",
|
||||
"print(\"Best accuracy: \", grid.best_score_)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"Best estimator: AdaBoostClassifier(algorithm='SAMME',\n",
|
||||
" base_estimator=Stree(C=55, max_depth=7, random_state=1,\n",
|
||||
" split_criteria='max_samples', tol=0.1),\n",
|
||||
" learning_rate=0.5, n_estimators=25, random_state=1)\n",
|
||||
"Best hyperparameters: {'base_estimator': Stree(C=55, max_depth=7, random_state=1, split_criteria='max_samples', tol=0.1), 'base_estimator__C': 55, 'base_estimator__kernel': 'linear', 'base_estimator__max_depth': 7, 'base_estimator__split_criteria': 'max_samples', 'base_estimator__tol': 0.1, 'learning_rate': 0.5, 'n_estimators': 25}"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "markdown",
|
||||
"metadata": {},
|
||||
"source": [
|
||||
"Best accuracy: 0.9511777695988222"
|
||||
]
|
||||
}
|
||||
],
|
||||
"metadata": {
|
||||
"colab": {
|
||||
"name": "gridsearch.ipynb",
|
||||
"provenance": []
|
||||
},
|
||||
"kernelspec": {
|
||||
"display_name": "Python 3",
|
||||
"language": "python",
|
||||
"name": "python3"
|
||||
},
|
||||
"language_info": {
|
||||
"codemirror_mode": {
|
||||
"name": "ipython",
|
||||
"version": 3
|
||||
},
|
||||
"file_extension": ".py",
|
||||
"mimetype": "text/x-python",
|
||||
"name": "python",
|
||||
"nbconvert_exporter": "python",
|
||||
"pygments_lexer": "ipython3",
|
||||
"version": "3.8.2-final"
|
||||
}
|
||||
},
|
||||
"nbformat": 4,
|
||||
"nbformat_minor": 4
|
||||
}
|
16
pyproject.toml
Normal file
16
pyproject.toml
Normal file
@@ -0,0 +1,16 @@
|
||||
[tool.black]
|
||||
line-length = 79
|
||||
include = '\.pyi?$'
|
||||
exclude = '''
|
||||
/(
|
||||
\.git
|
||||
| \.hg
|
||||
| \.mypy_cache
|
||||
| \.tox
|
||||
| \.venv
|
||||
| _build
|
||||
| buck-out
|
||||
| build
|
||||
| dist
|
||||
)/
|
||||
'''
|
@@ -1,5 +1 @@
|
||||
numpy
|
||||
scikit-learn
|
||||
pandas
|
||||
matplotlib
|
||||
ipympl
|
||||
scikit-learn>0.24
|
1
runtime.txt
Normal file
1
runtime.txt
Normal file
@@ -0,0 +1 @@
|
||||
python-3.8
|
41
setup.py
41
setup.py
@@ -1,39 +1,36 @@
|
||||
import setuptools
|
||||
|
||||
__version__ = "0.9rc2"
|
||||
__version__ = "1.0rc1"
|
||||
__author__ = "Ricardo Montañana Gómez"
|
||||
|
||||
|
||||
def readme():
|
||||
with open('README.md') as f:
|
||||
with open("README.md") as f:
|
||||
return f.read()
|
||||
|
||||
|
||||
setuptools.setup(
|
||||
name='STree',
|
||||
name="STree",
|
||||
version=__version__,
|
||||
license='MIT License',
|
||||
description='Oblique decision tree with svm nodes',
|
||||
license="MIT License",
|
||||
description="Oblique decision tree with svm nodes",
|
||||
long_description=readme(),
|
||||
long_description_content_type='text/markdown',
|
||||
long_description_content_type="text/markdown",
|
||||
packages=setuptools.find_packages(),
|
||||
url='https://github.com/doctorado-ml/stree',
|
||||
url="https://github.com/doctorado-ml/stree",
|
||||
author=__author__,
|
||||
author_email='ricardo.montanana@alu.uclm.es',
|
||||
keywords='scikit-learn oblique-classifier oblique-decision-tree decision-tree svm svc',
|
||||
author_email="ricardo.montanana@alu.uclm.es",
|
||||
keywords="scikit-learn oblique-classifier oblique-decision-tree decision-\
|
||||
tree svm svc",
|
||||
classifiers=[
|
||||
'Development Status :: 4 - Beta',
|
||||
'License :: OSI Approved :: MIT License',
|
||||
'Programming Language :: Python :: 3.7',
|
||||
'Natural Language :: English',
|
||||
'Topic :: Scientific/Engineering :: Artificial Intelligence',
|
||||
'Intended Audience :: Science/Research'
|
||||
],
|
||||
install_requires=[
|
||||
'scikit-learn>=0.23.0',
|
||||
'numpy',
|
||||
'matplotlib',
|
||||
'ipympl'
|
||||
"Development Status :: 4 - Beta",
|
||||
"License :: OSI Approved :: MIT License",
|
||||
"Programming Language :: Python :: 3.8",
|
||||
"Natural Language :: English",
|
||||
"Topic :: Scientific/Engineering :: Artificial Intelligence",
|
||||
"Intended Audience :: Science/Research",
|
||||
],
|
||||
install_requires=["scikit-learn", "numpy", "ipympl"],
|
||||
test_suite="stree.tests",
|
||||
zip_safe=False
|
||||
zip_safe=False,
|
||||
)
|
||||
|
991
stree/Strees.py
991
stree/Strees.py
File diff suppressed because it is too large
Load Diff
@@ -1,184 +0,0 @@
|
||||
'''
|
||||
__author__ = "Ricardo Montañana Gómez"
|
||||
__copyright__ = "Copyright 2020, Ricardo Montañana Gómez"
|
||||
__license__ = "MIT"
|
||||
__version__ = "0.9"
|
||||
Plot 3D views of nodes in Stree
|
||||
'''
|
||||
|
||||
import os
|
||||
|
||||
import matplotlib.pyplot as plt
|
||||
import numpy as np
|
||||
from sklearn.decomposition import PCA
|
||||
from mpl_toolkits.mplot3d import Axes3D
|
||||
|
||||
from .Strees import Stree, Snode, Siterator
|
||||
|
||||
class Snode_graph(Snode):
|
||||
|
||||
def __init__(self, node: Stree):
|
||||
self._plot_size = (8, 8)
|
||||
self._xlimits = (None, None)
|
||||
self._ylimits = (None, None)
|
||||
self._zlimits = (None, None)
|
||||
n = Snode.copy(node)
|
||||
super().__init__(n._clf, n._X, n._y, n._title)
|
||||
|
||||
def set_plot_size(self, size: tuple):
|
||||
self._plot_size = size
|
||||
|
||||
def _is_pure(self) -> bool:
|
||||
"""is considered pure a leaf node with one label
|
||||
"""
|
||||
if self.is_leaf():
|
||||
return self._belief == 1.
|
||||
return False
|
||||
|
||||
def set_axis_limits(self, limits: tuple):
|
||||
self._xlimits = limits[0]
|
||||
self._ylimits = limits[1]
|
||||
self._zlimits = limits[2]
|
||||
|
||||
def _set_graphics_axis(self, ax: Axes3D):
|
||||
ax.set_xlim(self._xlimits)
|
||||
ax.set_ylim(self._ylimits)
|
||||
ax.set_zlim(self._zlimits)
|
||||
|
||||
def save_hyperplane(self, save_folder: str = './', save_prefix: str = '', save_seq: int = 1):
|
||||
_, fig = self.plot_hyperplane()
|
||||
name = f"{save_folder}{save_prefix}STnode{save_seq}.png"
|
||||
fig.savefig(name, bbox_inches='tight')
|
||||
plt.close(fig)
|
||||
|
||||
def _get_cmap(self):
|
||||
cmap = 'jet'
|
||||
if self._is_pure():
|
||||
if self._class == 1:
|
||||
cmap = 'jet_r'
|
||||
return cmap
|
||||
|
||||
def _graph_title(self):
|
||||
n_class, card = np.unique(self._y, return_counts=True)
|
||||
return f"{self._title} {n_class} {card}"
|
||||
|
||||
def plot_hyperplane(self, plot_distribution: bool = True):
|
||||
fig = plt.figure(figsize=self._plot_size)
|
||||
ax = fig.add_subplot(1, 1, 1, projection='3d')
|
||||
if not self._is_pure():
|
||||
# Can't plot hyperplane of leaves with one label because it hasn't classiffier
|
||||
# get the splitting hyperplane
|
||||
def hyperplane(x, y): return (-self._interceptor - self._vector[0][0] * x
|
||||
- self._vector[0][1] * y) / self._vector[0][2]
|
||||
|
||||
tmpx = np.linspace(self._X[:, 0].min(), self._X[:, 0].max())
|
||||
tmpy = np.linspace(self._X[:, 1].min(), self._X[:, 1].max())
|
||||
xx, yy = np.meshgrid(tmpx, tmpy)
|
||||
ax.plot_surface(xx, yy, hyperplane(xx, yy), alpha=.5, antialiased=True,
|
||||
rstride=1, cstride=1, cmap='seismic')
|
||||
self._set_graphics_axis(ax)
|
||||
if plot_distribution:
|
||||
self.plot_distribution(ax)
|
||||
else:
|
||||
plt.title(self._graph_title())
|
||||
plt.show()
|
||||
return ax, fig
|
||||
|
||||
def plot_distribution(self, ax: Axes3D = None):
|
||||
if ax is None:
|
||||
fig = plt.figure(figsize=self._plot_size)
|
||||
ax = fig.add_subplot(1, 1, 1, projection='3d')
|
||||
plt.title(self._graph_title())
|
||||
cmap = self._get_cmap()
|
||||
ax.scatter(self._X[:, 0], self._X[:, 1],
|
||||
self._X[:, 2], c=self._y, cmap=cmap)
|
||||
ax.set_xlabel('X0')
|
||||
ax.set_ylabel('X1')
|
||||
ax.set_zlabel('X2')
|
||||
plt.show()
|
||||
|
||||
class Stree_grapher(Stree):
|
||||
"""Build 3d graphs of any dataset, if it's more than 3 features PCA shall
|
||||
make its magic
|
||||
"""
|
||||
|
||||
def __init__(self, params: dict):
|
||||
self._plot_size = (8, 8)
|
||||
self._tree_gr = None
|
||||
# make Snode store X's
|
||||
os.environ['TESTING'] = '1'
|
||||
self._fitted = False
|
||||
self._pca = None
|
||||
super().__init__(**params)
|
||||
|
||||
def __del__(self):
|
||||
try:
|
||||
os.environ.pop('TESTING')
|
||||
except:
|
||||
pass
|
||||
plt.close('all')
|
||||
|
||||
def _copy_tree(self, node: Snode) -> Snode_graph:
|
||||
mirror = Snode_graph(node)
|
||||
# clone node
|
||||
mirror._class = node._class
|
||||
mirror._belief = node._belief
|
||||
if node.get_down() is not None:
|
||||
mirror.set_down(self._copy_tree(node.get_down()))
|
||||
if node.get_up() is not None:
|
||||
mirror.set_up(self._copy_tree(node.get_up()))
|
||||
return mirror
|
||||
|
||||
def fit(self, X: np.array, y: np.array) -> Stree:
|
||||
"""Fit the Stree and copy the tree in a Snode_graph tree
|
||||
|
||||
:param X: Dataset
|
||||
:type X: np.array
|
||||
:param y: Labels
|
||||
:type y: np.array
|
||||
:return: Stree model
|
||||
:rtype: Stree
|
||||
"""
|
||||
if X.shape[1] != 3:
|
||||
self._pca = PCA(n_components=3)
|
||||
X = self._pca.fit_transform(X)
|
||||
res = super().fit(X, y)
|
||||
self._tree_gr = self._copy_tree(self._tree)
|
||||
self._fitted = True
|
||||
return res
|
||||
|
||||
def score(self, X: np.array, y: np.array) -> float:
|
||||
self._check_fitted()
|
||||
if X.shape[1] != 3:
|
||||
X = self._pca.transform(X)
|
||||
return super().score(X, y)
|
||||
|
||||
def _check_fitted(self):
|
||||
if not self._fitted:
|
||||
raise Exception('Have to fit the grapher first!')
|
||||
|
||||
def save_all(self, save_folder: str = './', save_prefix: str = ''):
|
||||
"""Save all the node plots in png format, each with a sequence number
|
||||
|
||||
:param save_folder: folder where the plots are saved, defaults to './'
|
||||
:type save_folder: str, optional
|
||||
"""
|
||||
self._check_fitted()
|
||||
if not os.path.isdir(save_folder):
|
||||
os.mkdir(save_folder)
|
||||
seq = 1
|
||||
for node in self:
|
||||
node.save_hyperplane(save_folder=save_folder,
|
||||
save_prefix=save_prefix, save_seq=seq)
|
||||
seq += 1
|
||||
|
||||
def plot_all(self):
|
||||
"""Plots all the nodes
|
||||
"""
|
||||
self._check_fitted()
|
||||
for node in self:
|
||||
node.plot_hyperplane()
|
||||
|
||||
def __iter__(self):
|
||||
return Siterator(self._tree_gr)
|
||||
|
@@ -1,2 +1,3 @@
|
||||
from .Strees import Stree, Snode, Siterator
|
||||
from .Strees_grapher import Stree_grapher, Snode_graph
|
||||
from .Strees import Stree, Snode, Siterator, Splitter
|
||||
|
||||
__all__ = ["Stree", "Snode", "Siterator", "Splitter"]
|
||||
|
121
stree/tests/Snode_test.py
Normal file
121
stree/tests/Snode_test.py
Normal file
@@ -0,0 +1,121 @@
|
||||
import os
|
||||
import unittest
|
||||
import numpy as np
|
||||
from stree import Stree, Snode
|
||||
from .utils import load_dataset
|
||||
|
||||
|
||||
class Snode_test(unittest.TestCase):
|
||||
def __init__(self, *args, **kwargs):
|
||||
self._random_state = 1
|
||||
self._clf = Stree(random_state=self._random_state)
|
||||
self._clf.fit(*load_dataset(self._random_state))
|
||||
super().__init__(*args, **kwargs)
|
||||
|
||||
@classmethod
|
||||
def setUp(cls):
|
||||
os.environ["TESTING"] = "1"
|
||||
|
||||
def test_attributes_in_leaves(self):
|
||||
"""Check if the attributes in leaves have correct values so they form a
|
||||
predictor
|
||||
"""
|
||||
|
||||
def check_leave(node: Snode):
|
||||
if not node.is_leaf():
|
||||
check_leave(node.get_down())
|
||||
check_leave(node.get_up())
|
||||
return
|
||||
# Check Belief in leave
|
||||
classes, card = np.unique(node._y, return_counts=True)
|
||||
max_card = max(card)
|
||||
min_card = min(card)
|
||||
if len(classes) > 1:
|
||||
belief = max_card / (max_card + min_card)
|
||||
else:
|
||||
belief = 1
|
||||
self.assertEqual(belief, node._belief)
|
||||
# Check Class
|
||||
class_computed = classes[card == max_card]
|
||||
self.assertEqual(class_computed, node._class)
|
||||
# Check Partition column
|
||||
self.assertEqual(node._partition_column, -1)
|
||||
|
||||
check_leave(self._clf.tree_)
|
||||
|
||||
def test_nodes_coefs(self):
|
||||
"""Check if the nodes of the tree have the right attributes filled"""
|
||||
|
||||
def run_tree(node: Snode):
|
||||
if node._belief < 1:
|
||||
# only exclude pure leaves
|
||||
self.assertIsNotNone(node._clf)
|
||||
self.assertIsNotNone(node._clf.coef_)
|
||||
if node.is_leaf():
|
||||
return
|
||||
run_tree(node.get_up())
|
||||
run_tree(node.get_down())
|
||||
|
||||
model = Stree(self._random_state)
|
||||
model.fit(*load_dataset(self._random_state, 3, 4))
|
||||
run_tree(model.tree_)
|
||||
|
||||
def test_make_predictor_on_leaf(self):
|
||||
test = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test")
|
||||
test.make_predictor()
|
||||
self.assertEqual(1, test._class)
|
||||
self.assertEqual(0.75, test._belief)
|
||||
self.assertEqual(-1, test._partition_column)
|
||||
|
||||
def test_set_title(self):
|
||||
test = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test")
|
||||
self.assertEqual("test", test.get_title())
|
||||
test.set_title("another")
|
||||
self.assertEqual("another", test.get_title())
|
||||
|
||||
def test_set_classifier(self):
|
||||
test = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test")
|
||||
clf = Stree()
|
||||
self.assertIsNone(test.get_classifier())
|
||||
test.set_classifier(clf)
|
||||
self.assertEqual(clf, test.get_classifier())
|
||||
|
||||
def test_set_impurity(self):
|
||||
test = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test")
|
||||
self.assertEqual(0.0, test.get_impurity())
|
||||
test.set_impurity(54.7)
|
||||
self.assertEqual(54.7, test.get_impurity())
|
||||
|
||||
def test_set_features(self):
|
||||
test = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [0, 1], 0.0, "test")
|
||||
self.assertListEqual([0, 1], test.get_features())
|
||||
test.set_features([1, 2])
|
||||
self.assertListEqual([1, 2], test.get_features())
|
||||
|
||||
def test_make_predictor_on_not_leaf(self):
|
||||
test = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test")
|
||||
test.set_up(Snode(None, [1], [1], [], 0.0, "another_test"))
|
||||
test.make_predictor()
|
||||
self.assertIsNone(test._class)
|
||||
self.assertEqual(0, test._belief)
|
||||
self.assertEqual(-1, test._partition_column)
|
||||
self.assertEqual(-1, test.get_up()._partition_column)
|
||||
|
||||
def test_make_predictor_on_leaf_bogus_data(self):
|
||||
test = Snode(None, [1, 2, 3, 4], [], [], 0.0, "test")
|
||||
test.make_predictor()
|
||||
self.assertIsNone(test._class)
|
||||
self.assertEqual(-1, test._partition_column)
|
||||
|
||||
def test_copy_node(self):
|
||||
px = [1, 2, 3, 4]
|
||||
py = [1]
|
||||
test = Snode(Stree(), px, py, [], 0.0, "test")
|
||||
computed = Snode.copy(test)
|
||||
self.assertListEqual(computed._X, px)
|
||||
self.assertListEqual(computed._y, py)
|
||||
self.assertEqual("test", computed._title)
|
||||
self.assertIsInstance(computed._clf, Stree)
|
||||
self.assertEqual(test._partition_column, computed._partition_column)
|
||||
self.assertEqual(test._sample_weight, computed._sample_weight)
|
||||
self.assertEqual(test._scaler, computed._scaler)
|
224
stree/tests/Splitter_test.py
Normal file
224
stree/tests/Splitter_test.py
Normal file
@@ -0,0 +1,224 @@
|
||||
import os
|
||||
import unittest
|
||||
import random
|
||||
|
||||
import numpy as np
|
||||
from sklearn.svm import SVC
|
||||
from sklearn.datasets import load_wine, load_iris
|
||||
from stree import Splitter
|
||||
|
||||
|
||||
class Splitter_test(unittest.TestCase):
|
||||
def __init__(self, *args, **kwargs):
|
||||
self._random_state = 1
|
||||
super().__init__(*args, **kwargs)
|
||||
|
||||
@staticmethod
|
||||
def build(
|
||||
clf=SVC,
|
||||
min_samples_split=0,
|
||||
splitter_type="random",
|
||||
criterion="gini",
|
||||
criteria="max_samples",
|
||||
random_state=None,
|
||||
):
|
||||
return Splitter(
|
||||
clf=clf(random_state=random_state, kernel="rbf"),
|
||||
min_samples_split=min_samples_split,
|
||||
splitter_type=splitter_type,
|
||||
criterion=criterion,
|
||||
criteria=criteria,
|
||||
random_state=random_state,
|
||||
)
|
||||
|
||||
@classmethod
|
||||
def setUp(cls):
|
||||
os.environ["TESTING"] = "1"
|
||||
|
||||
def test_init(self):
|
||||
with self.assertRaises(ValueError):
|
||||
self.build(criterion="duck")
|
||||
with self.assertRaises(ValueError):
|
||||
self.build(splitter_type="duck")
|
||||
with self.assertRaises(ValueError):
|
||||
self.build(criteria="duck")
|
||||
with self.assertRaises(ValueError):
|
||||
_ = Splitter(clf=None)
|
||||
for splitter_type in ["best", "random"]:
|
||||
for criterion in ["gini", "entropy"]:
|
||||
for criteria in ["max_samples", "impurity"]:
|
||||
tcl = self.build(
|
||||
splitter_type=splitter_type,
|
||||
criterion=criterion,
|
||||
criteria=criteria,
|
||||
)
|
||||
self.assertEqual(splitter_type, tcl._splitter_type)
|
||||
self.assertEqual(criterion, tcl._criterion)
|
||||
self.assertEqual(criteria, tcl._criteria)
|
||||
|
||||
def test_gini(self):
|
||||
expected_values = [
|
||||
([0, 1, 1, 1, 1, 1, 0, 0, 0, 1], 0.48),
|
||||
([0, 1, 1, 2, 2, 3, 4, 5, 3, 2, 1, 1], 0.7777777777777778),
|
||||
([0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 2, 2, 2], 0.520408163265306),
|
||||
([0, 0, 1, 1, 1, 1, 0, 0], 0.5),
|
||||
([0, 0, 1, 1, 2, 2, 3, 3], 0.75),
|
||||
([0, 0, 1, 1, 1, 1, 1, 1], 0.375),
|
||||
([0], 0),
|
||||
([1, 1, 1, 1], 0),
|
||||
]
|
||||
for labels, expected in expected_values:
|
||||
self.assertAlmostEqual(expected, Splitter._gini(labels))
|
||||
tcl = self.build(criterion="gini")
|
||||
self.assertAlmostEqual(expected, tcl.criterion_function(labels))
|
||||
|
||||
def test_entropy(self):
|
||||
expected_values = [
|
||||
([0, 1, 1, 1, 1, 1, 0, 0, 0, 1], 0.9709505944546686),
|
||||
([0, 1, 1, 2, 2, 3, 4, 5, 3, 2, 1, 1], 0.9111886696810589),
|
||||
([0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 2, 2, 2], 0.8120406807940999),
|
||||
([0, 0, 1, 1, 1, 1, 0, 0], 1),
|
||||
([0, 0, 1, 1, 2, 2, 3, 3], 1),
|
||||
([0, 0, 1, 1, 1, 1, 1, 1], 0.8112781244591328),
|
||||
([1], 0),
|
||||
([0, 0, 0, 0], 0),
|
||||
]
|
||||
for labels, expected in expected_values:
|
||||
self.assertAlmostEqual(expected, Splitter._entropy(labels))
|
||||
tcl = self.build(criterion="entropy")
|
||||
self.assertAlmostEqual(expected, tcl.criterion_function(labels))
|
||||
|
||||
def test_information_gain(self):
|
||||
expected_values = [
|
||||
(
|
||||
[0, 1, 1, 1, 1, 1],
|
||||
[0, 0, 0, 1],
|
||||
0.16333333333333333,
|
||||
0.25642589168200297,
|
||||
),
|
||||
(
|
||||
[0, 1, 1, 2, 2, 3, 4, 5, 3, 2, 1, 1],
|
||||
[5, 3, 2, 1, 1],
|
||||
0.007381776239907684,
|
||||
-0.03328610916207225,
|
||||
),
|
||||
([], [], 0.0, 0.0),
|
||||
([1], [], 0.0, 0.0),
|
||||
([], [1], 0.0, 0.0),
|
||||
([0, 0, 0, 0], [0, 0], 0.0, 0.0),
|
||||
([], [1, 1, 1, 2], 0.0, 0.0),
|
||||
(None, [1, 2, 3], 0.0, 0.0),
|
||||
([1, 2, 3], None, 0.0, 0.0),
|
||||
]
|
||||
for yu, yd, expected_gini, expected_entropy in expected_values:
|
||||
yu = np.array(yu, dtype=np.int32) if yu is not None else None
|
||||
yd = np.array(yd, dtype=np.int32) if yd is not None else None
|
||||
if yu is not None and yd is not None:
|
||||
complete = np.append(yu, yd)
|
||||
elif yd is not None:
|
||||
complete = yd
|
||||
else:
|
||||
complete = yu
|
||||
tcl = self.build(criterion="gini")
|
||||
computed = tcl.information_gain(complete, yu, yd)
|
||||
self.assertAlmostEqual(expected_gini, computed)
|
||||
tcl = self.build(criterion="entropy")
|
||||
computed = tcl.information_gain(complete, yu, yd)
|
||||
self.assertAlmostEqual(expected_entropy, computed)
|
||||
|
||||
def test_max_samples(self):
|
||||
tcl = self.build(criteria="max_samples")
|
||||
data = np.array(
|
||||
[
|
||||
[-0.1, 0.2, -0.3],
|
||||
[0.7, 0.01, -0.1],
|
||||
[0.7, -0.9, 0.5],
|
||||
[0.1, 0.2, 0.3],
|
||||
[-0.1, 0.2, 0.3],
|
||||
[-0.1, 0.2, 0.3],
|
||||
]
|
||||
)
|
||||
expected = data[:, 0]
|
||||
y = [1, 2, 1, 0, 0, 0]
|
||||
computed = tcl._max_samples(data, y)
|
||||
self.assertEqual(0, computed)
|
||||
computed_data = data[:, computed]
|
||||
self.assertEqual((6,), computed_data.shape)
|
||||
self.assertListEqual(expected.tolist(), computed_data.tolist())
|
||||
|
||||
def test_impurity(self):
|
||||
tcl = self.build(criteria="impurity")
|
||||
data = np.array(
|
||||
[
|
||||
[-0.1, 0.2, -0.3],
|
||||
[0.7, 0.01, -0.1],
|
||||
[0.7, -0.9, 0.5],
|
||||
[0.1, 0.2, 0.3],
|
||||
[-0.1, 0.2, 0.3],
|
||||
[-0.1, 0.2, 0.3],
|
||||
]
|
||||
)
|
||||
expected = data[:, 2]
|
||||
y = np.array([1, 2, 1, 0, 0, 0])
|
||||
computed = tcl._impurity(data, y)
|
||||
self.assertEqual(2, computed)
|
||||
computed_data = data[:, computed]
|
||||
self.assertEqual((6,), computed_data.shape)
|
||||
self.assertListEqual(expected.tolist(), computed_data.tolist())
|
||||
|
||||
def test_generate_subspaces(self):
|
||||
features = 250
|
||||
for max_features in range(2, features):
|
||||
num = len(Splitter._generate_spaces(features, max_features))
|
||||
self.assertEqual(5, num)
|
||||
self.assertEqual(3, len(Splitter._generate_spaces(3, 2)))
|
||||
self.assertEqual(4, len(Splitter._generate_spaces(4, 3)))
|
||||
|
||||
def test_best_splitter_few_sets(self):
|
||||
X, y = load_iris(return_X_y=True)
|
||||
X = np.delete(X, 3, 1)
|
||||
tcl = self.build(splitter_type="best", random_state=self._random_state)
|
||||
dataset, computed = tcl.get_subspace(X, y, max_features=2)
|
||||
self.assertListEqual([0, 2], list(computed))
|
||||
self.assertListEqual(X[:, computed].tolist(), dataset.tolist())
|
||||
|
||||
def test_splitter_parameter(self):
|
||||
expected_values = [
|
||||
[1, 4, 9, 12], # best entropy max_samples
|
||||
[1, 3, 6, 10], # best entropy impurity
|
||||
[6, 8, 10, 12], # best gini max_samples
|
||||
[7, 8, 10, 11], # best gini impurity
|
||||
[0, 3, 8, 12], # random entropy max_samples
|
||||
[0, 3, 9, 11], # random entropy impurity
|
||||
[0, 4, 7, 12], # random gini max_samples
|
||||
[0, 2, 5, 6], # random gini impurity
|
||||
]
|
||||
X, y = load_wine(return_X_y=True)
|
||||
rn = 0
|
||||
for splitter_type in ["best", "random"]:
|
||||
for criterion in ["entropy", "gini"]:
|
||||
for criteria in [
|
||||
"max_samples",
|
||||
"impurity",
|
||||
]:
|
||||
tcl = self.build(
|
||||
splitter_type=splitter_type,
|
||||
criterion=criterion,
|
||||
criteria=criteria,
|
||||
)
|
||||
expected = expected_values.pop(0)
|
||||
random.seed(rn)
|
||||
rn += 1
|
||||
dataset, computed = tcl.get_subspace(X, y, max_features=4)
|
||||
# print(
|
||||
# "{}, # {:7s}{:8s}{:15s}".format(
|
||||
# list(computed),
|
||||
# splitter_type,
|
||||
# criterion,
|
||||
# criteria,
|
||||
# )
|
||||
# )
|
||||
self.assertListEqual(expected, list(computed))
|
||||
self.assertListEqual(
|
||||
X[:, computed].tolist(), dataset.tolist()
|
||||
)
|
511
stree/tests/Stree_test.py
Normal file
511
stree/tests/Stree_test.py
Normal file
@@ -0,0 +1,511 @@
|
||||
import os
|
||||
import unittest
|
||||
import warnings
|
||||
|
||||
import numpy as np
|
||||
from sklearn.datasets import load_iris, load_wine
|
||||
from sklearn.exceptions import ConvergenceWarning
|
||||
from sklearn.svm import LinearSVC
|
||||
|
||||
from stree import Stree, Snode
|
||||
from .utils import load_dataset
|
||||
|
||||
|
||||
class Stree_test(unittest.TestCase):
|
||||
def __init__(self, *args, **kwargs):
|
||||
self._random_state = 1
|
||||
self._kernels = ["linear", "rbf", "poly"]
|
||||
super().__init__(*args, **kwargs)
|
||||
|
||||
@classmethod
|
||||
def setUp(cls):
|
||||
os.environ["TESTING"] = "1"
|
||||
|
||||
def _check_tree(self, node: Snode):
|
||||
"""Check recursively that the nodes that are not leaves have the
|
||||
correct number of labels and its sons have the right number of elements
|
||||
in their dataset
|
||||
|
||||
Parameters
|
||||
----------
|
||||
node : Snode
|
||||
node to check
|
||||
"""
|
||||
if node.is_leaf():
|
||||
return
|
||||
y_prediction = node._clf.predict(node._X)
|
||||
y_down = node.get_down()._y
|
||||
y_up = node.get_up()._y
|
||||
# Is a correct partition in terms of cadinality?
|
||||
# i.e. The partition algorithm didn't forget any sample
|
||||
self.assertEqual(node._y.shape[0], y_down.shape[0] + y_up.shape[0])
|
||||
unique_y, count_y = np.unique(node._y, return_counts=True)
|
||||
_, count_d = np.unique(y_down, return_counts=True)
|
||||
_, count_u = np.unique(y_up, return_counts=True)
|
||||
#
|
||||
for i in unique_y:
|
||||
number_up = count_u[i]
|
||||
try:
|
||||
number_down = count_d[i]
|
||||
except IndexError:
|
||||
number_down = 0
|
||||
self.assertEqual(count_y[i], number_down + number_up)
|
||||
# Is the partition made the same as the prediction?
|
||||
# as the node is not a leaf...
|
||||
_, count_yp = np.unique(y_prediction, return_counts=True)
|
||||
self.assertEqual(count_yp[1], y_up.shape[0])
|
||||
self.assertEqual(count_yp[0], y_down.shape[0])
|
||||
self._check_tree(node.get_down())
|
||||
self._check_tree(node.get_up())
|
||||
|
||||
def test_build_tree(self):
|
||||
"""Check if the tree is built the same way as predictions of models"""
|
||||
warnings.filterwarnings("ignore")
|
||||
for kernel in self._kernels:
|
||||
clf = Stree(kernel=kernel, random_state=self._random_state)
|
||||
clf.fit(*load_dataset(self._random_state))
|
||||
self._check_tree(clf.tree_)
|
||||
|
||||
def test_single_prediction(self):
|
||||
X, y = load_dataset(self._random_state)
|
||||
for kernel in self._kernels:
|
||||
clf = Stree(kernel=kernel, random_state=self._random_state)
|
||||
yp = clf.fit(X, y).predict((X[0, :].reshape(-1, X.shape[1])))
|
||||
self.assertEqual(yp[0], y[0])
|
||||
|
||||
def test_multiple_prediction(self):
|
||||
# First 27 elements the predictions are the same as the truth
|
||||
num = 27
|
||||
X, y = load_dataset(self._random_state)
|
||||
for kernel in self._kernels:
|
||||
clf = Stree(kernel=kernel, random_state=self._random_state)
|
||||
yp = clf.fit(X, y).predict(X[:num, :])
|
||||
self.assertListEqual(y[:num].tolist(), yp.tolist())
|
||||
|
||||
def test_single_vs_multiple_prediction(self):
|
||||
"""Check if predicting sample by sample gives the same result as
|
||||
predicting all samples at once
|
||||
"""
|
||||
X, y = load_dataset(self._random_state)
|
||||
for kernel in self._kernels:
|
||||
clf = Stree(kernel=kernel, random_state=self._random_state)
|
||||
clf.fit(X, y)
|
||||
# Compute prediction line by line
|
||||
yp_line = np.array([], dtype=int)
|
||||
for xp in X:
|
||||
yp_line = np.append(
|
||||
yp_line, clf.predict(xp.reshape(-1, X.shape[1]))
|
||||
)
|
||||
# Compute prediction at once
|
||||
yp_once = clf.predict(X)
|
||||
self.assertListEqual(yp_line.tolist(), yp_once.tolist())
|
||||
|
||||
def test_iterator_and_str(self):
|
||||
"""Check preorder iterator"""
|
||||
expected = [
|
||||
"root feaures=(0, 1, 2) impurity=1.0000 counts=(array([0, 1]), "
|
||||
"array([750, 750]))",
|
||||
"root - Down(2), <cgaf> - Leaf class=0 belief= 0.928297 impurity="
|
||||
"0.3722 counts=(array([0, 1]), array([725, 56]))",
|
||||
"root - Up(2) feaures=(0, 1, 2) impurity=0.2178 counts=(array([0, "
|
||||
"1]), array([ 25, 694]))",
|
||||
"root - Up(2) - Down(3) feaures=(0, 1, 2) impurity=0.8454 counts="
|
||||
"(array([0, 1]), array([8, 3]))",
|
||||
"root - Up(2) - Down(3) - Down(4), <pure> - Leaf class=0 belief= "
|
||||
"1.000000 impurity=0.0000 counts=(array([0]), array([7]))",
|
||||
"root - Up(2) - Down(3) - Up(4), <cgaf> - Leaf class=1 belief= "
|
||||
"0.750000 impurity=0.8113 counts=(array([0, 1]), array([1, 3]))",
|
||||
"root - Up(2) - Up(3), <cgaf> - Leaf class=1 belief= 0.975989 "
|
||||
"impurity=0.1634 counts=(array([0, 1]), array([ 17, 691]))",
|
||||
]
|
||||
computed = []
|
||||
expected_string = ""
|
||||
clf = Stree(kernel="linear", random_state=self._random_state)
|
||||
clf.fit(*load_dataset(self._random_state))
|
||||
for node in clf:
|
||||
computed.append(str(node))
|
||||
expected_string += str(node) + "\n"
|
||||
self.assertListEqual(expected, computed)
|
||||
self.assertEqual(expected_string, str(clf))
|
||||
|
||||
@staticmethod
|
||||
def test_is_a_sklearn_classifier():
|
||||
warnings.filterwarnings("ignore", category=ConvergenceWarning)
|
||||
warnings.filterwarnings("ignore", category=RuntimeWarning)
|
||||
from sklearn.utils.estimator_checks import check_estimator
|
||||
|
||||
check_estimator(Stree())
|
||||
|
||||
def test_exception_if_C_is_negative(self):
|
||||
tclf = Stree(C=-1)
|
||||
with self.assertRaises(ValueError):
|
||||
tclf.fit(*load_dataset(self._random_state))
|
||||
|
||||
def test_exception_if_bogus_split_criteria(self):
|
||||
tclf = Stree(split_criteria="duck")
|
||||
with self.assertRaises(ValueError):
|
||||
tclf.fit(*load_dataset(self._random_state))
|
||||
|
||||
def test_check_max_depth_is_positive_or_None(self):
|
||||
tcl = Stree()
|
||||
self.assertIsNone(tcl.max_depth)
|
||||
tcl = Stree(max_depth=1)
|
||||
self.assertGreaterEqual(1, tcl.max_depth)
|
||||
with self.assertRaises(ValueError):
|
||||
tcl = Stree(max_depth=-1)
|
||||
tcl.fit(*load_dataset(self._random_state))
|
||||
|
||||
def test_check_max_depth(self):
|
||||
depths = (3, 4)
|
||||
for depth in depths:
|
||||
tcl = Stree(random_state=self._random_state, max_depth=depth)
|
||||
tcl.fit(*load_dataset(self._random_state))
|
||||
self.assertEqual(depth, tcl.depth_)
|
||||
|
||||
def test_unfitted_tree_is_iterable(self):
|
||||
tcl = Stree()
|
||||
self.assertEqual(0, len(list(tcl)))
|
||||
|
||||
def test_min_samples_split(self):
|
||||
dataset = [[1], [2], [3]], [1, 1, 0]
|
||||
tcl_split = Stree(min_samples_split=3).fit(*dataset)
|
||||
self.assertIsNotNone(tcl_split.tree_.get_down())
|
||||
self.assertIsNotNone(tcl_split.tree_.get_up())
|
||||
tcl_nosplit = Stree(min_samples_split=4).fit(*dataset)
|
||||
self.assertIsNone(tcl_nosplit.tree_.get_down())
|
||||
self.assertIsNone(tcl_nosplit.tree_.get_up())
|
||||
|
||||
def test_simple_muticlass_dataset(self):
|
||||
for kernel in self._kernels:
|
||||
clf = Stree(
|
||||
kernel=kernel,
|
||||
split_criteria="max_samples",
|
||||
random_state=self._random_state,
|
||||
)
|
||||
px = [[1, 2], [5, 6], [9, 10]]
|
||||
py = [0, 1, 2]
|
||||
clf.fit(px, py)
|
||||
self.assertEqual(1.0, clf.score(px, py))
|
||||
self.assertListEqual(py, clf.predict(px).tolist())
|
||||
self.assertListEqual(py, clf.classes_.tolist())
|
||||
|
||||
def test_muticlass_dataset(self):
|
||||
datasets = {
|
||||
"Synt": load_dataset(random_state=self._random_state, n_classes=3),
|
||||
"Iris": load_wine(return_X_y=True),
|
||||
}
|
||||
outcomes = {
|
||||
"Synt": {
|
||||
"max_samples linear": 0.9606666666666667,
|
||||
"max_samples rbf": 0.7133333333333334,
|
||||
"max_samples poly": 0.618,
|
||||
"impurity linear": 0.9606666666666667,
|
||||
"impurity rbf": 0.7133333333333334,
|
||||
"impurity poly": 0.618,
|
||||
},
|
||||
"Iris": {
|
||||
"max_samples linear": 1.0,
|
||||
"max_samples rbf": 0.6910112359550562,
|
||||
"max_samples poly": 0.6966292134831461,
|
||||
"impurity linear": 1,
|
||||
"impurity rbf": 0.6910112359550562,
|
||||
"impurity poly": 0.6966292134831461,
|
||||
},
|
||||
}
|
||||
|
||||
for name, dataset in datasets.items():
|
||||
px, py = dataset
|
||||
for criteria in ["max_samples", "impurity"]:
|
||||
for kernel in self._kernels:
|
||||
clf = Stree(
|
||||
C=55,
|
||||
max_iter=1e5,
|
||||
kernel=kernel,
|
||||
random_state=self._random_state,
|
||||
)
|
||||
clf.fit(px, py)
|
||||
outcome = outcomes[name][f"{criteria} {kernel}"]
|
||||
# print(
|
||||
# f"{name} {criteria} {kernel} {outcome} {clf.score(px"
|
||||
# ", py)}"
|
||||
# )
|
||||
self.assertAlmostEqual(outcome, clf.score(px, py))
|
||||
|
||||
def test_max_features(self):
|
||||
n_features = 16
|
||||
expected_values = [
|
||||
("auto", 4),
|
||||
("log2", 4),
|
||||
("sqrt", 4),
|
||||
(0.5, 8),
|
||||
(3, 3),
|
||||
(None, 16),
|
||||
]
|
||||
clf = Stree()
|
||||
clf.n_features_ = n_features
|
||||
for max_features, expected in expected_values:
|
||||
clf.set_params(**dict(max_features=max_features))
|
||||
computed = clf._initialize_max_features()
|
||||
self.assertEqual(expected, computed)
|
||||
# Check bogus max_features
|
||||
values = ["duck", -0.1, 0.0]
|
||||
for max_features in values:
|
||||
clf.set_params(**dict(max_features=max_features))
|
||||
with self.assertRaises(ValueError):
|
||||
_ = clf._initialize_max_features()
|
||||
|
||||
def test_get_subspaces(self):
|
||||
dataset = np.random.random((10, 16))
|
||||
y = np.random.randint(0, 2, 10)
|
||||
expected_values = [
|
||||
("auto", 4),
|
||||
("log2", 4),
|
||||
("sqrt", 4),
|
||||
(0.5, 8),
|
||||
(3, 3),
|
||||
(None, 16),
|
||||
]
|
||||
clf = Stree()
|
||||
for max_features, expected in expected_values:
|
||||
clf.set_params(**dict(max_features=max_features))
|
||||
clf.fit(dataset, y)
|
||||
computed, indices = clf.splitter_.get_subspace(
|
||||
dataset, y, clf.max_features_
|
||||
)
|
||||
self.assertListEqual(
|
||||
dataset[:, indices].tolist(), computed.tolist()
|
||||
)
|
||||
self.assertEqual(expected, len(indices))
|
||||
|
||||
def test_bogus_criterion(self):
|
||||
clf = Stree(criterion="duck")
|
||||
with self.assertRaises(ValueError):
|
||||
clf.fit(*load_dataset())
|
||||
|
||||
def test_predict_feature_dimensions(self):
|
||||
X = np.random.rand(10, 5)
|
||||
y = np.random.randint(0, 2, 10)
|
||||
clf = Stree()
|
||||
clf.fit(X, y)
|
||||
with self.assertRaises(ValueError):
|
||||
clf.predict(X[:, :3])
|
||||
|
||||
# Tests of score
|
||||
|
||||
def test_score_binary(self):
|
||||
X, y = load_dataset(self._random_state)
|
||||
accuracies = [
|
||||
0.9506666666666667,
|
||||
0.9606666666666667,
|
||||
0.9433333333333334,
|
||||
]
|
||||
for kernel, accuracy_expected in zip(self._kernels, accuracies):
|
||||
clf = Stree(
|
||||
random_state=self._random_state,
|
||||
kernel=kernel,
|
||||
)
|
||||
clf.fit(X, y)
|
||||
accuracy_score = clf.score(X, y)
|
||||
yp = clf.predict(X)
|
||||
accuracy_computed = np.mean(yp == y)
|
||||
self.assertEqual(accuracy_score, accuracy_computed)
|
||||
self.assertAlmostEqual(accuracy_expected, accuracy_score)
|
||||
|
||||
def test_score_max_features(self):
|
||||
X, y = load_dataset(self._random_state)
|
||||
clf = Stree(random_state=self._random_state, max_features=2)
|
||||
clf.fit(X, y)
|
||||
self.assertAlmostEqual(0.9246666666666666, clf.score(X, y))
|
||||
|
||||
def test_bogus_splitter_parameter(self):
|
||||
clf = Stree(splitter="duck")
|
||||
with self.assertRaises(ValueError):
|
||||
clf.fit(*load_dataset())
|
||||
|
||||
def test_multiclass_classifier_integrity(self):
|
||||
"""Checks if the multiclass operation is done right"""
|
||||
X, y = load_iris(return_X_y=True)
|
||||
clf = Stree(random_state=0)
|
||||
clf.fit(X, y)
|
||||
score = clf.score(X, y)
|
||||
# Check accuracy of the whole model
|
||||
self.assertAlmostEquals(0.98, score, 5)
|
||||
svm = LinearSVC(random_state=0)
|
||||
svm.fit(X, y)
|
||||
self.assertAlmostEquals(0.9666666666666667, svm.score(X, y), 5)
|
||||
data = svm.decision_function(X)
|
||||
expected = [
|
||||
0.4444444444444444,
|
||||
0.35777777777777775,
|
||||
0.4569777777777778,
|
||||
]
|
||||
ty = data.copy()
|
||||
ty[data <= 0] = 0
|
||||
ty[data > 0] = 1
|
||||
ty = ty.astype(int)
|
||||
for i in range(3):
|
||||
self.assertAlmostEquals(
|
||||
expected[i],
|
||||
clf.splitter_._gini(ty[:, i]),
|
||||
)
|
||||
# 1st Branch
|
||||
# up has to have 50 samples of class 0
|
||||
# down should have 100 [50, 50]
|
||||
up = data[:, 2] > 0
|
||||
resup = np.unique(y[up], return_counts=True)
|
||||
resdn = np.unique(y[~up], return_counts=True)
|
||||
self.assertListEqual([1, 2], resup[0].tolist())
|
||||
self.assertListEqual([3, 50], resup[1].tolist())
|
||||
self.assertListEqual([0, 1], resdn[0].tolist())
|
||||
self.assertListEqual([50, 47], resdn[1].tolist())
|
||||
# 2nd Branch
|
||||
# up should have 53 samples of classes [1, 2] [3, 50]
|
||||
# down shoud have 47 samples of class 1
|
||||
node_up = clf.tree_.get_down().get_up()
|
||||
node_dn = clf.tree_.get_down().get_down()
|
||||
resup = np.unique(node_up._y, return_counts=True)
|
||||
resdn = np.unique(node_dn._y, return_counts=True)
|
||||
self.assertListEqual([1, 2], resup[0].tolist())
|
||||
self.assertListEqual([3, 50], resup[1].tolist())
|
||||
self.assertListEqual([1], resdn[0].tolist())
|
||||
self.assertListEqual([47], resdn[1].tolist())
|
||||
|
||||
def test_score_multiclass_rbf(self):
|
||||
X, y = load_dataset(
|
||||
random_state=self._random_state,
|
||||
n_classes=3,
|
||||
n_features=5,
|
||||
n_samples=500,
|
||||
)
|
||||
clf = Stree(kernel="rbf", random_state=self._random_state)
|
||||
clf2 = Stree(
|
||||
kernel="rbf", random_state=self._random_state, normalize=True
|
||||
)
|
||||
self.assertEqual(0.768, clf.fit(X, y).score(X, y))
|
||||
self.assertEqual(0.814, clf2.fit(X, y).score(X, y))
|
||||
X, y = load_wine(return_X_y=True)
|
||||
self.assertEqual(0.6741573033707865, clf.fit(X, y).score(X, y))
|
||||
self.assertEqual(1.0, clf2.fit(X, y).score(X, y))
|
||||
|
||||
def test_score_multiclass_poly(self):
|
||||
X, y = load_dataset(
|
||||
random_state=self._random_state,
|
||||
n_classes=3,
|
||||
n_features=5,
|
||||
n_samples=500,
|
||||
)
|
||||
clf = Stree(
|
||||
kernel="poly", random_state=self._random_state, C=10, degree=5
|
||||
)
|
||||
clf2 = Stree(
|
||||
kernel="poly",
|
||||
random_state=self._random_state,
|
||||
normalize=True,
|
||||
)
|
||||
self.assertEqual(0.786, clf.fit(X, y).score(X, y))
|
||||
self.assertEqual(0.818, clf2.fit(X, y).score(X, y))
|
||||
X, y = load_wine(return_X_y=True)
|
||||
self.assertEqual(0.702247191011236, clf.fit(X, y).score(X, y))
|
||||
self.assertEqual(0.6067415730337079, clf2.fit(X, y).score(X, y))
|
||||
|
||||
def test_score_multiclass_linear(self):
|
||||
X, y = load_dataset(
|
||||
random_state=self._random_state,
|
||||
n_classes=3,
|
||||
n_features=5,
|
||||
n_samples=1500,
|
||||
)
|
||||
clf = Stree(kernel="linear", random_state=self._random_state)
|
||||
self.assertEqual(0.9533333333333334, clf.fit(X, y).score(X, y))
|
||||
# Check with context based standardization
|
||||
clf2 = Stree(
|
||||
kernel="linear", random_state=self._random_state, normalize=True
|
||||
)
|
||||
self.assertEqual(0.9526666666666667, clf2.fit(X, y).score(X, y))
|
||||
X, y = load_wine(return_X_y=True)
|
||||
self.assertEqual(0.9831460674157303, clf.fit(X, y).score(X, y))
|
||||
self.assertEqual(1.0, clf2.fit(X, y).score(X, y))
|
||||
|
||||
def test_zero_all_sample_weights(self):
|
||||
X, y = load_dataset(self._random_state)
|
||||
with self.assertRaises(ValueError):
|
||||
Stree().fit(X, y, np.zeros(len(y)))
|
||||
|
||||
def test_mask_samples_weighted_zero(self):
|
||||
X = np.array(
|
||||
[
|
||||
[1, 1],
|
||||
[1, 1],
|
||||
[1, 1],
|
||||
[2, 2],
|
||||
[2, 2],
|
||||
[2, 2],
|
||||
[3, 3],
|
||||
[3, 3],
|
||||
[3, 3],
|
||||
]
|
||||
)
|
||||
y = np.array([1, 1, 1, 2, 2, 2, 5, 5, 5])
|
||||
yw = np.array([1, 1, 1, 5, 5, 5, 5, 5, 5])
|
||||
w = [1, 1, 1, 0, 0, 0, 1, 1, 1]
|
||||
model1 = Stree().fit(X, y)
|
||||
model2 = Stree().fit(X, y, w)
|
||||
predict1 = model1.predict(X)
|
||||
predict2 = model2.predict(X)
|
||||
self.assertListEqual(y.tolist(), predict1.tolist())
|
||||
self.assertListEqual(yw.tolist(), predict2.tolist())
|
||||
self.assertEqual(model1.score(X, y), 1)
|
||||
self.assertAlmostEqual(model2.score(X, y), 0.66666667)
|
||||
self.assertEqual(model2.score(X, y, w), 1)
|
||||
|
||||
def test_depth(self):
|
||||
X, y = load_dataset(
|
||||
random_state=self._random_state,
|
||||
n_classes=3,
|
||||
n_features=5,
|
||||
n_samples=1500,
|
||||
)
|
||||
clf = Stree(random_state=self._random_state)
|
||||
clf.fit(X, y)
|
||||
self.assertEqual(6, clf.depth_)
|
||||
X, y = load_wine(return_X_y=True)
|
||||
clf = Stree(random_state=self._random_state)
|
||||
clf.fit(X, y)
|
||||
self.assertEqual(4, clf.depth_)
|
||||
|
||||
def test_nodes_leaves(self):
|
||||
X, y = load_dataset(
|
||||
random_state=self._random_state,
|
||||
n_classes=3,
|
||||
n_features=5,
|
||||
n_samples=1500,
|
||||
)
|
||||
clf = Stree(random_state=self._random_state)
|
||||
clf.fit(X, y)
|
||||
nodes, leaves = clf.nodes_leaves()
|
||||
self.assertEqual(25, nodes)
|
||||
self.assertEquals(13, leaves)
|
||||
X, y = load_wine(return_X_y=True)
|
||||
clf = Stree(random_state=self._random_state)
|
||||
clf.fit(X, y)
|
||||
nodes, leaves = clf.nodes_leaves()
|
||||
self.assertEqual(9, nodes)
|
||||
self.assertEquals(5, leaves)
|
||||
|
||||
def test_nodes_leaves_artificial(self):
|
||||
n1 = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test1")
|
||||
n2 = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test2")
|
||||
n3 = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test3")
|
||||
n4 = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test4")
|
||||
n5 = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test5")
|
||||
n6 = Snode(None, [1, 2, 3, 4], [1, 0, 1, 1], [], 0.0, "test6")
|
||||
n1.set_up(n2)
|
||||
n2.set_up(n3)
|
||||
n2.set_down(n4)
|
||||
n3.set_up(n5)
|
||||
n4.set_down(n6)
|
||||
clf = Stree(random_state=self._random_state)
|
||||
clf.tree_ = n1
|
||||
nodes, leaves = clf.nodes_leaves()
|
||||
self.assertEqual(6, nodes)
|
||||
self.assertEqual(2, leaves)
|
@@ -1,313 +0,0 @@
|
||||
import csv
|
||||
import os
|
||||
import unittest
|
||||
|
||||
import numpy as np
|
||||
from sklearn.datasets import make_classification
|
||||
|
||||
from stree import Stree, Snode
|
||||
|
||||
|
||||
class Stree_test(unittest.TestCase):
|
||||
|
||||
def __init__(self, *args, **kwargs):
|
||||
os.environ['TESTING'] = '1'
|
||||
self._random_state = 1
|
||||
self._clf = Stree(random_state=self._random_state,
|
||||
use_predictions=False)
|
||||
self._clf.fit(*self._get_Xy())
|
||||
super().__init__(*args, **kwargs)
|
||||
|
||||
@classmethod
|
||||
def tearDownClass(cls):
|
||||
try:
|
||||
os.environ.pop('TESTING')
|
||||
except:
|
||||
pass
|
||||
|
||||
def _get_Xy(self):
|
||||
X, y = make_classification(n_samples=1500, n_features=3, n_informative=3,
|
||||
n_redundant=0, n_repeated=0, n_classes=2, n_clusters_per_class=2,
|
||||
class_sep=1.5, flip_y=0, weights=[0.5, 0.5], random_state=self._random_state)
|
||||
return X, y
|
||||
|
||||
def _check_tree(self, node: Snode):
|
||||
"""Check recursively that the nodes that are not leaves have the correct
|
||||
number of labels and its sons have the right number of elements in their dataset
|
||||
|
||||
Arguments:
|
||||
node {Snode} -- node to check
|
||||
"""
|
||||
if node.is_leaf():
|
||||
return
|
||||
y_prediction = node._clf.predict(node._X)
|
||||
y_down = node.get_down()._y
|
||||
y_up = node.get_up()._y
|
||||
# Is a correct partition in terms of cadinality?
|
||||
# i.e. The partition algorithm didn't forget any sample
|
||||
self.assertEqual(node._y.shape[0], y_down.shape[0] + y_up.shape[0])
|
||||
unique_y, count_y = np.unique(node._y, return_counts=True)
|
||||
_, count_d = np.unique(y_down, return_counts=True)
|
||||
_, count_u = np.unique(y_up, return_counts=True)
|
||||
#
|
||||
for i in unique_y:
|
||||
try:
|
||||
number_down = count_d[i]
|
||||
except:
|
||||
number_down = 0
|
||||
try:
|
||||
number_up = count_u[i]
|
||||
except:
|
||||
number_up = 0
|
||||
self.assertEqual(count_y[i], number_down + number_up)
|
||||
# Is the partition made the same as the prediction?
|
||||
# as the node is not a leaf...
|
||||
_, count_yp = np.unique(y_prediction, return_counts=True)
|
||||
self.assertEqual(count_yp[0], y_up.shape[0])
|
||||
self.assertEqual(count_yp[1], y_down.shape[0])
|
||||
self._check_tree(node.get_down())
|
||||
self._check_tree(node.get_up())
|
||||
|
||||
def test_build_tree(self):
|
||||
"""Check if the tree is built the same way as predictions of models
|
||||
"""
|
||||
self._check_tree(self._clf._tree)
|
||||
|
||||
def _get_file_data(self, file_name: str) -> tuple:
|
||||
"""Return X, y from data, y is the last column in array
|
||||
|
||||
Arguments:
|
||||
file_name {str} -- the file name
|
||||
|
||||
Returns:
|
||||
tuple -- tuple with samples, categories
|
||||
"""
|
||||
data = np.genfromtxt(file_name, delimiter=',')
|
||||
data = np.array(data)
|
||||
column_y = data.shape[1] - 1
|
||||
fy = data[:, column_y]
|
||||
fx = np.delete(data, column_y, axis=1)
|
||||
return fx, fy
|
||||
|
||||
def _find_out(self, px: np.array, x_original: np.array, y_original) -> list:
|
||||
"""Find the original values of y for a given array of samples
|
||||
|
||||
Arguments:
|
||||
px {np.array} -- array of samples to search for
|
||||
x_original {np.array} -- original dataset
|
||||
y_original {[type]} -- original classes
|
||||
|
||||
Returns:
|
||||
np.array -- classes of the given samples
|
||||
"""
|
||||
res = []
|
||||
for needle in px:
|
||||
for row in range(x_original.shape[0]):
|
||||
if all(x_original[row, :] == needle):
|
||||
res.append(y_original[row])
|
||||
return res
|
||||
|
||||
def test_subdatasets(self):
|
||||
"""Check if the subdatasets files have the same labels as the original dataset
|
||||
"""
|
||||
self._clf.save_sub_datasets()
|
||||
with open(self._clf.get_catalog_name()) as cat_file:
|
||||
catalog = csv.reader(cat_file, delimiter=',')
|
||||
for row in catalog:
|
||||
X, y = self._get_Xy()
|
||||
x_file, y_file = self._get_file_data(row[0])
|
||||
y_original = np.array(self._find_out(x_file, X, y), dtype=int)
|
||||
self.assertTrue(np.array_equal(y_file, y_original))
|
||||
|
||||
def test_single_prediction(self):
|
||||
X, y = self._get_Xy()
|
||||
yp = self._clf.predict((X[0, :].reshape(-1, X.shape[1])))
|
||||
self.assertEqual(yp[0], y[0])
|
||||
|
||||
def test_multiple_prediction(self):
|
||||
# First 27 elements the predictions are the same as the truth
|
||||
num = 27
|
||||
X, y = self._get_Xy()
|
||||
yp = self._clf.predict(X[:num, :])
|
||||
self.assertListEqual(y[:num].tolist(), yp.tolist())
|
||||
|
||||
def test_score(self):
|
||||
X, y = self._get_Xy()
|
||||
accuracy_score = self._clf.score(X, y)
|
||||
yp = self._clf.predict(X)
|
||||
right = (yp == y).astype(int)
|
||||
accuracy_computed = sum(right) / len(y)
|
||||
self.assertEqual(accuracy_score, accuracy_computed)
|
||||
self.assertGreater(accuracy_score, 0.8)
|
||||
|
||||
def test_single_predict_proba(self):
|
||||
"""Check that element 28 has a prediction different that the current label
|
||||
"""
|
||||
# Element 28 has a different prediction than the truth
|
||||
decimals = 5
|
||||
X, y = self._get_Xy()
|
||||
yp = self._clf.predict_proba(X[28, :].reshape(-1, X.shape[1]))
|
||||
self.assertEqual(0, yp[0:, 0])
|
||||
self.assertEqual(1, y[28])
|
||||
self.assertAlmostEqual(
|
||||
round(0.29026400766, decimals),
|
||||
round(yp[0, 1], decimals),
|
||||
decimals
|
||||
)
|
||||
|
||||
def test_multiple_predict_proba(self):
|
||||
# First 27 elements the predictions are the same as the truth
|
||||
num = 27
|
||||
decimals = 5
|
||||
X, y = self._get_Xy()
|
||||
yp = self._clf.predict_proba(X[:num, :])
|
||||
self.assertListEqual(y[:num].tolist(), yp[:, 0].tolist())
|
||||
expected_proba = [0.88395641, 0.36746962, 0.84158767, 0.34106833, 0.14269291, 0.85193236,
|
||||
0.29876058, 0.7282164, 0.85958616, 0.89517877, 0.99745224, 0.18860349,
|
||||
0.30756427, 0.8318412, 0.18981198, 0.15564624, 0.25740655, 0.22923355,
|
||||
0.87365959, 0.49928689, 0.95574351, 0.28761257, 0.28906333, 0.32643692,
|
||||
0.29788483, 0.01657364, 0.81149083]
|
||||
expected = np.round(expected_proba, decimals=decimals).tolist()
|
||||
computed = np.round(yp[:, 1], decimals=decimals).tolist()
|
||||
for i in range(len(expected)):
|
||||
self.assertAlmostEqual(expected[i], computed[i], decimals)
|
||||
|
||||
def build_models(self):
|
||||
"""Build and train two models, model_clf will use the sklearn classifier to
|
||||
compute predictions and split data. model_computed will use vector of
|
||||
coefficients to compute both predictions and splitted data
|
||||
"""
|
||||
model_clf = Stree(random_state=self._random_state,
|
||||
use_predictions=True)
|
||||
model_computed = Stree(random_state=self._random_state,
|
||||
use_predictions=False)
|
||||
X, y = self._get_Xy()
|
||||
model_clf.fit(X, y)
|
||||
model_computed.fit(X, y)
|
||||
return model_clf, model_computed, X, y
|
||||
|
||||
def test_use_model_predict(self):
|
||||
"""Check that we get the same results wether we use the estimator in nodes
|
||||
to compute labels or we use the hyperplane and the position of samples wrt to it
|
||||
"""
|
||||
use_clf, use_math, X, _ = self.build_models()
|
||||
self.assertListEqual(
|
||||
use_clf.predict(X).tolist(),
|
||||
use_math.predict(X).tolist()
|
||||
)
|
||||
|
||||
def test_use_model_score(self):
|
||||
use_clf, use_math, X, y = self.build_models()
|
||||
b = use_math.score(X, y)
|
||||
self.assertEqual(
|
||||
use_clf.score(X, y),
|
||||
b
|
||||
)
|
||||
self.assertGreater(b, .95)
|
||||
|
||||
def test_use_model_predict_proba(self):
|
||||
use_clf, use_math, X, _ = self.build_models()
|
||||
self.assertListEqual(
|
||||
use_clf.predict_proba(X).tolist(),
|
||||
use_math.predict_proba(X).tolist()
|
||||
)
|
||||
|
||||
def test_single_vs_multiple_prediction(self):
|
||||
"""Check if predicting sample by sample gives the same result as predicting
|
||||
all samples at once
|
||||
"""
|
||||
X, _ = self._get_Xy()
|
||||
# Compute prediction line by line
|
||||
yp_line = np.array([], dtype=int)
|
||||
for xp in X:
|
||||
yp_line = np.append(yp_line, self._clf.predict(xp.reshape(-1, X.shape[1])))
|
||||
# Compute prediction at once
|
||||
yp_once = self._clf.predict(X)
|
||||
#
|
||||
self.assertListEqual(yp_line.tolist(), yp_once.tolist())
|
||||
|
||||
def test_iterator(self):
|
||||
"""Check preorder iterator
|
||||
"""
|
||||
expected = [
|
||||
'root',
|
||||
'root - Down',
|
||||
'root - Down - Down, <cgaf> - Leaf class=1 belief=0.975989 counts=(array([0, 1]), array([ 17, 691]))',
|
||||
'root - Down - Up',
|
||||
'root - Down - Up - Down, <cgaf> - Leaf class=1 belief=0.750000 counts=(array([0, 1]), array([1, 3]))',
|
||||
'root - Down - Up - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([7]))',
|
||||
'root - Up, <cgaf> - Leaf class=0 belief=0.928297 counts=(array([0, 1]), array([725, 56]))',
|
||||
]
|
||||
computed = []
|
||||
for node in self._clf:
|
||||
computed.append(str(node))
|
||||
self.assertListEqual(expected, computed)
|
||||
|
||||
class Snode_test(unittest.TestCase):
|
||||
|
||||
def __init__(self, *args, **kwargs):
|
||||
os.environ['TESTING'] = '1'
|
||||
self._random_state = 1
|
||||
self._clf = Stree(random_state=self._random_state,
|
||||
use_predictions=True)
|
||||
self._clf.fit(*self._get_Xy())
|
||||
super().__init__(*args, **kwargs)
|
||||
|
||||
@classmethod
|
||||
def tearDownClass(cls):
|
||||
try:
|
||||
os.environ.pop('TESTING')
|
||||
except:
|
||||
pass
|
||||
|
||||
def _get_Xy(self):
|
||||
X, y = make_classification(n_samples=1500, n_features=3, n_informative=3,
|
||||
n_redundant=0, n_repeated=0, n_classes=2, n_clusters_per_class=2,
|
||||
class_sep=1.5, flip_y=0, weights=[0.5, 0.5], random_state=self._random_state)
|
||||
return X, y
|
||||
|
||||
def test_attributes_in_leaves(self):
|
||||
"""Check if the attributes in leaves have correct values so they form a predictor
|
||||
"""
|
||||
|
||||
def check_leave(node: Snode):
|
||||
if not node.is_leaf():
|
||||
check_leave(node.get_down())
|
||||
check_leave(node.get_up())
|
||||
return
|
||||
# Check Belief in leave
|
||||
classes, card = np.unique(node._y, return_counts=True)
|
||||
max_card = max(card)
|
||||
min_card = min(card)
|
||||
if len(classes) > 1:
|
||||
try:
|
||||
belief = max_card / (max_card + min_card)
|
||||
except:
|
||||
belief = 0.
|
||||
else:
|
||||
belief = 1
|
||||
self.assertEqual(belief, node._belief)
|
||||
# Check Class
|
||||
class_computed = classes[card == max_card]
|
||||
self.assertEqual(class_computed, node._class)
|
||||
|
||||
check_leave(self._clf._tree)
|
||||
|
||||
def test_nodes_coefs(self):
|
||||
"""Check if the nodes of the tree have the right attributes filled
|
||||
"""
|
||||
|
||||
def run_tree(node: Snode):
|
||||
if node._belief < 1:
|
||||
# only exclude pure leaves
|
||||
self.assertIsNotNone(node._clf)
|
||||
self.assertIsNotNone(node._clf.coef_)
|
||||
self.assertIsNotNone(node._vector)
|
||||
self.assertIsNotNone(node._interceptor)
|
||||
if node.is_leaf():
|
||||
return
|
||||
run_tree(node.get_down())
|
||||
run_tree(node.get_up())
|
||||
|
||||
run_tree(self._clf._tree)
|
||||
|
@@ -1 +1,5 @@
|
||||
from .Strees_test import Stree_test, Snode_test
|
||||
from .Stree_test import Stree_test
|
||||
from .Snode_test import Snode_test
|
||||
from .Splitter_test import Splitter_test
|
||||
|
||||
__all__ = ["Stree_test", "Snode_test", "Splitter_test"]
|
||||
|
17
stree/tests/utils.py
Normal file
17
stree/tests/utils.py
Normal file
@@ -0,0 +1,17 @@
|
||||
from sklearn.datasets import make_classification
|
||||
|
||||
|
||||
def load_dataset(random_state=0, n_classes=2, n_features=3, n_samples=1500):
|
||||
X, y = make_classification(
|
||||
n_samples=n_samples,
|
||||
n_features=n_features,
|
||||
n_informative=3,
|
||||
n_redundant=0,
|
||||
n_repeated=0,
|
||||
n_classes=n_classes,
|
||||
n_clusters_per_class=2,
|
||||
class_sep=1.5,
|
||||
flip_y=0,
|
||||
random_state=random_state,
|
||||
)
|
||||
return X, y
|
339
test.ipynb
339
test.ipynb
File diff suppressed because one or more lines are too long
191
test2.ipynb
191
test2.ipynb
@@ -1,191 +0,0 @@
|
||||
{
|
||||
"cells": [
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 1,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"#\n",
|
||||
"# Google Colab setup\n",
|
||||
"#\n",
|
||||
"#!pip install git+https://github.com/doctorado-ml/stree"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 2,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"import numpy as np\n",
|
||||
"import pandas as pd\n",
|
||||
"from sklearn.svm import LinearSVC\n",
|
||||
"from sklearn.tree import DecisionTreeClassifier\n",
|
||||
"from sklearn.datasets import make_classification, load_iris, load_wine\n",
|
||||
"from sklearn.model_selection import train_test_split\n",
|
||||
"from stree import Stree\n",
|
||||
"import time"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 3,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"import os\n",
|
||||
"if not os.path.isfile('data/creditcard.csv'):\n",
|
||||
" !wget --no-check-certificate --content-disposition http://nube.jccm.es/index.php/s/Zs7SYtZQJ3RQ2H2/download\n",
|
||||
" !tar xzf creditcard.tgz"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 4,
|
||||
"metadata": {},
|
||||
"outputs": [
|
||||
{
|
||||
"output_type": "stream",
|
||||
"name": "stdout",
|
||||
"text": "Fraud: 0.173% 492\nValid: 99.827% 284315\nX.shape (1492, 28) y.shape (1492,)\nFraud: 33.110% 494\nValid: 66.890% 998\n"
|
||||
}
|
||||
],
|
||||
"source": [
|
||||
"random_state=1\n",
|
||||
"\n",
|
||||
"def load_creditcard(n_examples=0):\n",
|
||||
" import pandas as pd\n",
|
||||
" import numpy as np\n",
|
||||
" import random\n",
|
||||
" df = pd.read_csv('data/creditcard.csv')\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(df.Class[df.Class == 1].count()*100/df.shape[0], df.Class[df.Class == 1].count()))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(df.Class[df.Class == 0].count()*100/df.shape[0], df.Class[df.Class == 0].count()))\n",
|
||||
" y = df.Class\n",
|
||||
" X = df.drop(['Class', 'Time', 'Amount'], axis=1).values\n",
|
||||
" if n_examples > 0:\n",
|
||||
" # Take first n_examples samples\n",
|
||||
" X = X[:n_examples, :]\n",
|
||||
" y = y[:n_examples, :]\n",
|
||||
" else:\n",
|
||||
" # Take all the positive samples with a number of random negatives\n",
|
||||
" if n_examples < 0:\n",
|
||||
" Xt = X[(y == 1).ravel()]\n",
|
||||
" yt = y[(y == 1).ravel()]\n",
|
||||
" indices = random.sample(range(X.shape[0]), -1 * n_examples)\n",
|
||||
" X = np.append(Xt, X[indices], axis=0)\n",
|
||||
" y = np.append(yt, y[indices], axis=0)\n",
|
||||
" print(\"X.shape\", X.shape, \" y.shape\", y.shape)\n",
|
||||
" print(\"Fraud: {0:.3f}% {1}\".format(len(y[y == 1])*100/X.shape[0], len(y[y == 1])))\n",
|
||||
" print(\"Valid: {0:.3f}% {1}\".format(len(y[y == 0]) * 100 / X.shape[0], len(y[y == 0])))\n",
|
||||
" Xtrain, Xtest, ytrain, ytest = train_test_split(X, y, train_size=0.7, shuffle=True, random_state=random_state, stratify=y)\n",
|
||||
" return Xtrain, Xtest, ytrain, ytest\n",
|
||||
"\n",
|
||||
"# data = load_creditcard(-5000) # Take all true samples + 5000 of the others\n",
|
||||
"# data = load_creditcard(5000) # Take the first 5000 samples\n",
|
||||
"data = load_creditcard(-1000) # Take all the samples\n",
|
||||
"\n",
|
||||
"Xtrain = data[0]\n",
|
||||
"Xtest = data[1]\n",
|
||||
"ytrain = data[2]\n",
|
||||
"ytest = data[3]"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 5,
|
||||
"metadata": {},
|
||||
"outputs": [
|
||||
{
|
||||
"output_type": "stream",
|
||||
"name": "stdout",
|
||||
"text": "************** C=0.001 ****************************\nClassifier's accuracy (train): 0.9521\nClassifier's accuracy (test) : 0.9598\nroot\nroot - Down, <cgaf> - Leaf class=1 belief=0.980519 counts=(array([0, 1]), array([ 6, 302]))\nroot - Up, <cgaf> - Leaf class=0 belief=0.940217 counts=(array([0, 1]), array([692, 44]))\n\n**************************************************\n************** C=0.01 ****************************\nClassifier's accuracy (train): 0.9521\nClassifier's accuracy (test) : 0.9643\nroot\nroot - Down\nroot - Down - Down, <cgaf> - Leaf class=1 belief=0.986842 counts=(array([0, 1]), array([ 4, 300]))\nroot - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([1]))\nroot - Up, <cgaf> - Leaf class=0 belief=0.937754 counts=(array([0, 1]), array([693, 46]))\n\n**************************************************\n************** C=1 ****************************\nClassifier's accuracy (train): 0.9636\nClassifier's accuracy (test) : 0.9688\nroot\nroot - Down\nroot - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([308]))\nroot - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([8]))\nroot - Up, <cgaf> - Leaf class=0 belief=0.947802 counts=(array([0, 1]), array([690, 38]))\n\n**************************************************\n************** C=5 ****************************\nClassifier's accuracy (train): 0.9665\nClassifier's accuracy (test) : 0.9621\nroot\nroot - Down\nroot - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([308]))\nroot - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([11]))\nroot - Up\nroot - Up - Down\nroot - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([1]))\nroot - Up - Up\nroot - Up - Up - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up\nroot - Up - Up - Up - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up - Up, <cgaf> - Leaf class=0 belief=0.951456 counts=(array([0, 1]), array([686, 35]))\n\n**************************************************\n************** C=17 ****************************\nClassifier's accuracy (train): 0.9741\nClassifier's accuracy (test) : 0.9576\nroot\nroot - Down\nroot - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([306]))\nroot - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([10]))\nroot - Up\nroot - Up - Down\nroot - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([3]))\nroot - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up\nroot - Up - Up - Down\nroot - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([3]))\nroot - Up - Up - Up\nroot - Up - Up - Up - Down\nroot - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up - Up - Up\nroot - Up - Up - Up - Up - Down\nroot - Up - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up - Up - Up - Up\nroot - Up - Up - Up - Up - Up - Down\nroot - Up - Up - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([7]))\nroot - Up - Up - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([4]))\nroot - Up - Up - Up - Up - Up - Up, <cgaf> - Leaf class=0 belief=0.961538 counts=(array([0, 1]), array([675, 27]))\n\n**************************************************\n0.7816 secs\n"
|
||||
}
|
||||
],
|
||||
"source": [
|
||||
"t = time.time()\n",
|
||||
"for C in (.001, .01, 1, 5, 17):\n",
|
||||
" clf = Stree(C=C, random_state=random_state)\n",
|
||||
" clf.fit(Xtrain, ytrain)\n",
|
||||
" print(f\"************** C={C} ****************************\")\n",
|
||||
" print(f\"Classifier's accuracy (train): {clf.score(Xtrain, ytrain):.4f}\")\n",
|
||||
" print(f\"Classifier's accuracy (test) : {clf.score(Xtest, ytest):.4f}\")\n",
|
||||
" print(clf)\n",
|
||||
" print(f\"**************************************************\")\n",
|
||||
"print(f\"{time.time() - t:.4f} secs\")"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 6,
|
||||
"metadata": {},
|
||||
"outputs": [],
|
||||
"source": [
|
||||
"import numpy as np\n",
|
||||
"from sklearn.preprocessing import StandardScaler\n",
|
||||
"from sklearn.svm import LinearSVC\n",
|
||||
"from sklearn.calibration import CalibratedClassifierCV\n",
|
||||
"scaler = StandardScaler()\n",
|
||||
"cclf = CalibratedClassifierCV(base_estimator=LinearSVC(), cv=5)\n",
|
||||
"cclf.fit(Xtrain, ytrain)\n",
|
||||
"res = cclf.predict_proba(Xtest)\n",
|
||||
"#an array containing probabilities of belonging to the 1st class"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 7,
|
||||
"metadata": {},
|
||||
"outputs": [
|
||||
{
|
||||
"output_type": "stream",
|
||||
"name": "stdout",
|
||||
"text": "root\nroot - Down\nroot - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([306]))\nroot - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([10]))\nroot - Up\nroot - Up - Down\nroot - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([3]))\nroot - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up\nroot - Up - Up - Down\nroot - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([3]))\nroot - Up - Up - Up\nroot - Up - Up - Up - Down\nroot - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up - Up - Up\nroot - Up - Up - Up - Up - Down\nroot - Up - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up - Up - Up - Up\nroot - Up - Up - Up - Up - Up - Down\nroot - Up - Up - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([7]))\nroot - Up - Up - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([4]))\nroot - Up - Up - Up - Up - Up - Up, <cgaf> - Leaf class=0 belief=0.961538 counts=(array([0, 1]), array([675, 27]))\n"
|
||||
}
|
||||
],
|
||||
"source": [
|
||||
"#check iterator\n",
|
||||
"for i in list(clf):\n",
|
||||
" print(i)"
|
||||
]
|
||||
},
|
||||
{
|
||||
"cell_type": "code",
|
||||
"execution_count": 8,
|
||||
"metadata": {},
|
||||
"outputs": [
|
||||
{
|
||||
"output_type": "stream",
|
||||
"name": "stdout",
|
||||
"text": "root\nroot - Down\nroot - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([306]))\nroot - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([10]))\nroot - Up\nroot - Up - Down\nroot - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([3]))\nroot - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up\nroot - Up - Up - Down\nroot - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([3]))\nroot - Up - Up - Up\nroot - Up - Up - Up - Down\nroot - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up - Up - Up\nroot - Up - Up - Up - Up - Down\nroot - Up - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([1]))\nroot - Up - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([2]))\nroot - Up - Up - Up - Up - Up\nroot - Up - Up - Up - Up - Up - Down\nroot - Up - Up - Up - Up - Up - Down - Down, <pure> - Leaf class=1 belief=1.000000 counts=(array([1]), array([7]))\nroot - Up - Up - Up - Up - Up - Down - Up, <pure> - Leaf class=0 belief=1.000000 counts=(array([0]), array([4]))\nroot - Up - Up - Up - Up - Up - Up, <cgaf> - Leaf class=0 belief=0.961538 counts=(array([0, 1]), array([675, 27]))\n"
|
||||
}
|
||||
],
|
||||
"source": [
|
||||
"#check iterator again\n",
|
||||
"for i in clf:\n",
|
||||
" print(i)"
|
||||
]
|
||||
}
|
||||
],
|
||||
"metadata": {
|
||||
"kernelspec": {
|
||||
"display_name": "Python 3",
|
||||
"language": "python",
|
||||
"name": "python3"
|
||||
},
|
||||
"language_info": {
|
||||
"codemirror_mode": {
|
||||
"name": "ipython",
|
||||
"version": 3
|
||||
},
|
||||
"file_extension": ".py",
|
||||
"mimetype": "text/x-python",
|
||||
"name": "python",
|
||||
"nbconvert_exporter": "python",
|
||||
"pygments_lexer": "ipython3",
|
||||
"version": "3.7.6-final"
|
||||
}
|
||||
},
|
||||
"nbformat": 4,
|
||||
"nbformat_minor": 2
|
||||
}
|
File diff suppressed because one or more lines are too long
Reference in New Issue
Block a user