14 Commits

11 changed files with 1416 additions and 28 deletions

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@@ -19,15 +19,15 @@ jobs:
steps:
- uses: actions/checkout@v4
- name: Set up Python 3.10
- name: Set up Python 3.x
uses: actions/setup-python@v4
with:
python-version: "3.10"
python-version: "3.x"
- name: install dependencies
run: |
python -m pip install --upgrade pip
pip install ".[test,doc]"
pip install ".[test]"
- name: Lint with flake8
run: |

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@@ -32,15 +32,14 @@ jobs:
- name: Checkout
uses: actions/checkout@v4
- name: Set up Python 3.10
- name: Set up Python 3.x
uses: actions/setup-python@v5
with:
python-version: '3.10'
python-version: '3.x'
- name: Install dependencies
run: |
python -m pip install --upgrade pip
# Installe le projet en mode éditable avec les extras de doc
pip install -e ".[doc]"
- name: Setup Pages

21
LICENSE Normal file
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@@ -0,0 +1,21 @@
MIT License
Copyright (c) 2026 Loïc GUEZO and chahrazad DAHMANI
Permission is hereby granted, free of charge, to any person obtaining a copy
of this software and associated documentation files (the "Software"), to deal
in the Software without restriction, including without limitation the rights
to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
copies of the Software, and to permit persons to whom the Software is
furnished to do so, subject to the following conditions:
The above copyright notice and this permission notice shall be included in all
copies or substantial portions of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
SOFTWARE.

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@@ -3,7 +3,7 @@
> A **University of Paris-Est Créteil (UPEC)** Semester 6 project.
## Documentation
- 🇫🇷 [Version Française](https://guezoloic.github.io/millesima-ai-engine)
- 🇫🇷 [Version Française](https://millesima-ai.github.guezoloic.com)
> note: only french version enabled for now.
---
@@ -12,7 +12,7 @@
1. **Clone the repository:**
```bash
git clone https://github.com/votre-pseudo/millesima-ai-engine.git
git clone https://github.com/guezoloic/millesima-ai-engine.git
cd millesima-ai-engine
```

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@@ -5,12 +5,12 @@ Lobjectif de ce projet est détudier, en utilisant des méthodes dappre
## projet
<div style="text-align: center;">
<object
data="/millesima-ai-engine/projet.pdf"
data="/projet.pdf"
type="application/pdf"
width="100%"
height="1000px"
>
<p>Votre navigateur ne peut pas afficher ce PDF.
<a href="/millesima-ai-engine/projet.pdf">Cliquez ici pour le télécharger.</a></p>
<a href="/projet.pdf">Cliquez ici pour le télécharger.</a></p>
</object>
</div>

1287
docs/learning.ipynb Normal file

File diff suppressed because one or more lines are too long

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@@ -1,5 +1,5 @@
site_name: "Projet Millesima S6"
site_url: "https://github.guezoloic.com/millesima-ai-engine/"
site_url: "https://millesima-ai.github.guezoloic.com"
theme:
name: "material"
@@ -7,6 +7,7 @@ theme:
plugins:
- search
- mkdocstrings
- mkdocs-jupyter
extra:
generator: false

View File

@@ -1,11 +1,14 @@
[project]
name = "projet-millesima-s6"
name = "millesima-project-s6"
version = "0.1.0"
dependencies = [
"requests==2.32.5",
"beautifulsoup4==4.14.3",
"pandas==2.3.3",
"tqdm==4.67.3",
"scikit-learn==1.7.2",
"matplotlib==3.10.8",
"seaborn==0.13.2"
]
[tool.pytest.ini_options]
@@ -14,7 +17,12 @@ testpaths = ["tests"]
[project.optional-dependencies]
test = ["pytest==8.4.2", "requests-mock==1.12.1", "flake8==7.3.0"]
doc = ["mkdocs<2.0.0", "mkdocs-material==9.6.23", "mkdocstrings[python]"]
doc = [
"mkdocs<2.0.0",
"mkdocs-material==9.6.23",
"mkdocstrings[python]",
"mkdocs-jupyter==0.26.1",
]
[build-system]
requires = ["setuptools", "wheel"]

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@@ -92,18 +92,25 @@ class Cleaning:
self._vins = self._vins.join(appellation_dummies)
return self
def drop_empty_price(self) -> "Cleaning":
self._vins = self._vins.dropna(subset=["Prix"])
return self
def main() -> None:
if len(argv) != 2:
raise ValueError(f"Usage: {argv[0]} <filename.csv>")
filename = argv[1]
cleaning: Cleaning = Cleaning(filename)
cleaning.drop_empty_appellation() \
.fill_missing_scores() \
.encode_appellation() \
.getVins() \
.to_csv("clean.csv", index=False)
def main(filename: str | None = None) -> None:
if not filename:
if len(argv) != 2:
raise ValueError(f"Usage: {argv[0]} <filename.csv>")
filename = argv[1]
cleaning: Cleaning = (
Cleaning(filename)
.drop_empty_appellation()
.fill_missing_scores()
.encode_appellation()
.drop_empty_price()
)
cleaning.getVins().to_csv("clean.csv", index=False)
if __name__ == "__main__":

64
src/learning.py Executable file
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@@ -0,0 +1,64 @@
# from typing import Any, Callable
# from pandas import DataFrame
# from sklearn.linear_model import LinearRegression
# from sklearn.preprocessing import StandardScaler
# from sklearn.model_selection import train_test_split
# from sklearn.pipeline import make_pipeline
# import matplotlib.pyplot as plt
# from cleaning import Cleaning
# class Learning:
# def __init__(self, vins: DataFrame, target: str) -> None:
# self.X = vins.drop(target, axis=1)
# self.y = vins[target]
# self.X_train, self.X_test, self.y_train, self.y_test = train_test_split(
# self.X, self.y, test_size=0.25, random_state=49
# )
# def evaluate(
# self,
# estimator,
# pretreatment=None,
# fn_score=lambda m, xt, yt: m.score(xt, yt),
# ):
# pipeline = make_pipeline(pretreatment, estimator) if pretreatment else estimator
# pipeline.fit(self.X_train, self.y_train)
# score = fn_score(pipeline, self.X_test, self.y_test)
# prediction = pipeline.predict(self.X_test)
# return score, prediction
# def draw(self, predictions, y_actual):
# plt.figure(figsize=(8, 6))
# plt.scatter(
# predictions,
# y_actual,
# alpha=0.5,
# c="royalblue",
# edgecolors="k",
# label="Vins",
# )
# mn = min(predictions.min(), y_actual.min())
# mx = max(predictions.max(), y_actual.max())
# plt.plot(
# [mn, mx],
# [mn, mx],
# color="red",
# linestyle="--",
# lw=2,
# label="Prédiction Parfaite",
# )
# plt.xlabel("Prix estimés (estim_LR)")
# plt.ylabel("Prix réels (y_test)")
# plt.title("titre")
# plt.legend()
# plt.grid(True, linestyle=":", alpha=0.6)
# plt.show()

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@@ -490,11 +490,12 @@ class Scraper:
savestate((page, cache))
def main() -> None:
if len(argv) != 3:
raise ValueError(f"{argv[0]} <filename> <sous-url>")
filename = argv[1]
suburl = argv[2]
def main(filename: str | None = None, suburl: str | None = None) -> None:
if filename is None or suburl is None:
if len(argv) != 3:
raise ValueError(f"Usage: python {argv[0]} <filename> <sous-url>")
filename = argv[1]
suburl = argv[2]
scraper: Scraper = Scraper()
scraper.getvins(suburl, filename)