Xander - A package to train Classification, Regression, and Image Classification models.
Project description
Xander-AI
Xander-AI is a Python package designed to handle classification, regression, text, and image-related tasks with minimal setup and maximum efficiency.
Installation
pip install xander-ai
Usage
General Instructions
- Supported Tasks:
regression,classification,text, andimage. - Target Column (
target_col):- Required for
regression,classification, andtexttasks. - Not required for the
imagetask.
- Required for
- Hyperparameters:
- Accepts a dictionary where the key
epochsis used to define the number of training epochs.
- Accepts a dictionary where the key
Task-Specific Details
Image Task
- Dataset Format:
- Provide a
.zipfile containing a folder. - Inside the folder:
- Subfolders represent class labels.
- Images within subfolders correspond to their class.
- Provide a
Example Directory Structure:
dataset.zip
│
├── class_1/
│ ├── image1.jpg
│ ├── image2.jpg
│ └── ...
│
├── class_2/
│ ├── image1.jpg
│ ├── image2.jpg
│ └── ...
│
└── class_n/
├── image1.jpg
├── image2.jpg
└── ...
Example Code for Image Task:
from xander_ai import Xander
# Hyperparameters for training
hyperparameters = {
"epochs": 10,
}
# Initialize the Xander model for image task
xander = Xander(
dataset_path='path_to_your_dataset.zip', # Provide path to zip file
model_name="v1", # You can change the model name as required
hyperparameters=hyperparameters, # Provide hyperparameters
task="image" # Specify task as 'image'
)
# Train the model
xander.train()
Regression Task
- Dataset Format:
- The dataset should have a target column specified using
target_col. - Ensure that the dataset is in a
.csvor.xlsxformat.
- The dataset should have a target column specified using
Example Code for Regression Task:
from xander_ai import Xander
# Hyperparameters for training
hyperparameters = {
"epochs": 20,
}
# Initialize the Xander model for regression task
xander = Xander(
dataset_path='path_to_your_dataset.csv', # Provide path to your dataset
model_name="v1", # Model version or name
hyperparameters=hyperparameters, # Hyperparameters dictionary
target_col="target", # Name of the target column
task="regression" # Specify task as 'regression'
)
# Train the model
xander.train()
Classification Task
- Dataset Format:
- The dataset should have a target column specified using
target_col. - The dataset should be in a
.csvor.xlsxformat.
- The dataset should have a target column specified using
Example Code for Classification Task:
from xander_ai import Xander
# Hyperparameters for training
hyperparameters = {
"epochs": 15,
}
# Initialize the Xander model for classification task
xander = Xander(
dataset_path='path_to_your_dataset.csv', # Provide path to your dataset
model_name="v1", # Model version or name
hyperparameters=hyperparameters, # Hyperparameters dictionary
target_col="target", # Name of the target column
task="classification" # Specify task as 'classification'
)
# Train the model
xander.train()
Text Task
- Dataset Format:
- The dataset should have a target column specified using
target_col. - The dataset should be in a
.csvor.xlsxformat.
- The dataset should have a target column specified using
Example Code for Text Task:
from xander_ai import Xander
# Hyperparameters for training
hyperparameters = {
"epochs": 25,
}
# Initialize the Xander model for text task
xander = Xander(
dataset_path='path_to_your_text_dataset.csv', # Provide path to your dataset
model_name="v1", # Model version or name
hyperparameters=hyperparameters, # Hyperparameters dictionary
target_col="text_target", # Name of the target column
task="text" # Specify task as 'text'
)
# Train the model
xander.train()
License
MIT License
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