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    Home»Machine Learning»Building a Streamlit App for Deepfake Audio Detection and Multi-label Defect Prediction | by Ayesha Saeed | May, 2025
    Machine Learning

    Building a Streamlit App for Deepfake Audio Detection and Multi-label Defect Prediction | by Ayesha Saeed | May, 2025

    Team_AIBS NewsBy Team_AIBS NewsMay 4, 2025No Comments2 Mins Read
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    In at the moment’s fast-paced world of machine studying, constructing interactive and user-friendly purposes can tremendously improve the expertise and accessibility of predictive fashions. On this weblog publish, we discover the event of a Streamlit app that mixes two vital duties: Deepfake Audio Detection and Multi-label Defect Prediction. The app permits customers to interactively check fashions that establish manipulated audio and predict software program defects.

    Deepfake Audio Detection:

    Deepfake know-how has gained vital consideration because of its potential influence on media, safety, and privateness. On this app, customers can add audio recordsdata, and the system predicts whether or not the audio is pretend or actual. The mannequin makes use of MFCC (Mel Frequency Cepstral Coefficients), a typical characteristic in audio processing, to extract significant traits from the audio file. The app integrates a number of fashions, similar to SVM, Logistic Regression, Perceptron, and a deep neural community (DNN), to categorise audio as both pretend or actual.

    Multi-label Defect Prediction:

    In software program growth, predicting and figuring out defects early is crucial to make sure product high quality. This app helps customers enter software program characteristic information by way of a CSV file, predicting a number of defect labels primarily based on skilled fashions. Utilizing Logistic Regression, SVM, Perceptron, and DNN, the app makes predictions and shows outcomes for numerous potential defects in software program programs.

    Key Options of the Streamlit App:

    1. Deepfake Audio Detection: Customers can add an audio file, and the app predicts whether or not the audio is actual or pretend utilizing numerous fashions.
    2. Multi-label Defect Prediction: Customers can add a CSV file with characteristic information, and the app will predict software program defect labels primarily based on a number of machine studying fashions.
    3. Interactive Interface: The app is designed to be user-friendly, with easy choices to add audio recordsdata or CSV information and look at outcomes immediately.

    This mixture of deepfake detection and defect prediction in a single app offers an ideal demonstration of how machine studying fashions could be deployed to unravel real-world issues in a simple method.

    #AI #MachineLearning #DeepfakeDetection #DefectPrediction #DataScience #Streamlit #TechInnovation #ArtificialIntelligence #SoftwareEngineering



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