I will create multiclass classification model

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Canadá

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Data Scientist

I am an analytical, process-driven Data Scientist with hands-on experience across machine learning, deep learning, time series, NLP, and computer vision. I have a proven ability to translate complex d...
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Project Overview: Iris Flower Classification

Summary

This project builds a machine learning classification pipeline designed to predict the species of an Iris flower based on its physical characteristics (sepal length, sepal width, petal length, and petal width). It serves as a end-to-end example of statistical data preparation, model training, and performance evaluation on structured tabular data.

Key Highlights

  • Goal: Classify flower samples into their respective species targets.
  • Algorithm: Implemented using Logistic Regression, providing high accuracy, computational efficiency, and clear model interpretability.
  • Data Processing:
  • Cleaned duplicate entries and verified dataset integrity.
  • Encoded categorical targets into numerical format.
  • Applied an 80/20 train-test split to validate real-world generalization.

Model Evaluation: Performance was evaluated using Accuracy, Precision, Recall, F1-Score, and a Confusion Matrix to ensure zero bias across target classes.


Experiencia:

Procesamiento de imágenes

Lenguaje de programación:

Python

R

SQL

Colab

Java

Marcos:

Scikit-learn

DeepPy

keras

PyTorch

Panda

API:

Microsoft Computer Vision AI

Amazon Rekognition

Herramientas:

Jupyter Notebook

TensorFlow

Excel

MLflow

SimpleCV

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