Free Source Code, Capstone Projects & Programming Tutorials

Your trusted resource for downloadable source code, complete capstone projects with ER diagrams and Chapter 1-5 documentation, AI-ready capstones (RAG, ChatGPT, computer vision), and step-by-step tutorials in PHP, Python, Java, JavaScript, and more. Built by working developers, tested before publishing, and updated for 2026.

📅 Updated weekly | ✅ Code tested before publishing | 👨‍💻 Built by PIES IT Solutions developers

How To Add Animation To PowerPoint Step-by-Step Guide

MS Powerpoint animation

Are you looking to add a contact of excitement to your presentations? In this article, we will guide you through the process of how to add animation to PowerPoint presentations. …

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Discover The Power Of Excel Autofill Shortcut

Discover The Power Of Excel Autofill Shortcut

In this tutorial, we will discover the shortcut for Excel’s Autofill feature. This feature is invaluable, especially when we are working with a large quantity of data. Knowing the shortcuts in …

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How To Select Shape in PowerPoint In Different Ways

Select shapes in powerpoint

In this tutorial, we will show you various methods for selecting shapes in PowerPoint, including clicking on the shape, using the Shift key to select multiple shapes, using the selection …

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POS in PHP with Free Source Code

POS system free source code

In this article, we will discuss the point of sale system in PHP with MySQL database. What is a Point of Sales Software? The point-of-sale software is known to have …

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Shortcut Of Format Painter In Excel: Keyboard Shortcut

Shortcut Of Format Painter In Excel: Keyboard Shortcut

In this tutorial, we will learn the keyboard shortcut for Format Painter in Excel. This article will provide you with the complete information you need for this feature. Knowing the shortcuts …

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ModuleNotFoundError: No Module Named Termcolor

ModuleNotFoundError - No module named termcolor

In this article, we will discuss the solutions on how to fix the ModuleNotFoundError: No Module Named ‘Termcolor’. In addition, the ModuleNotFoundError: No Module Named Termcolor will occur because the …

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Modulenotfounderror: No Module Named ‘Pandas’

ModuleNotFoundError - No module named Pandas

In this article, we will learn how to fix Modulenotfounderror: No Module Named ‘Pandas’ and also provide solutions to solve the error. Moreover, the Modulenotfounderror: No Module Named ‘Pandas’ will …

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Shortcut For Merge And Center In Excel: Complete Guide

Shortcut For Merge And Center In Excel: Complete Guide

Learn the shortcut for how to merge and center cells in Excel using this simple tutorial. This guide will provide you with the complete information you need for this feature. As workers …

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Frequently Asked Questions

Are these deep learning projects free for capstone and thesis use?
Yes. All deep learning projects on this hub are free to download, modify, and submit. No attribution required for academic use. Most are MIT-licensed or include source-code packs with sample datasets and pretrained model weights.
What deep learning frameworks do I need installed?
Most projects use OpenCV (cv2) for video capture and image preprocessing, plus one of: TensorFlow / Keras (Caffe model loading via cv2.dnn, custom CNN training), PyTorch (research-style models, YOLO v5+, transformers), or MediaPipe (Google's optimized face/hand/pose detectors). Install with pip install opencv-python tensorflow keras torch torchvision mediapipe numpy. Python 3.10, 3.11, or 3.12 recommended (avoid 3.13 until all wheels catch up).
Do I need a GPU to run these deep learning projects?
For inference (running a pretrained model on your webcam): no, CPU runs at 15-30 FPS for most computer-vision tasks. For training a custom model on your own dataset: GPU strongly recommended (CPU works but is slow). Free GPU options: Google Colab Free (12-hour sessions, sufficient for most BSIT capstones), Kaggle Notebooks Free (30-hour weekly quota), Paperspace Free tier. No need to buy a $1000+ GPU just for a capstone defense.
Deep learning vs classical machine learning, which should I pick for my capstone?
Pick deep learning when your inputs are unstructured (images, audio, video, text) and you have 10,000+ training samples. Pick classical ML (random forest, SVM, logistic regression) for tabular data, small datasets (under 1,000 rows), or when you need explainable predictions for the panel. Many capstones combine both: deep learning for feature extraction (face embedding via FaceNet) plus classical ML on top (SVM classifier for identity matching).
Why is my OpenCV deep learning model running at 2 FPS?
Three usual causes: (1) Resolution too high, resize frames to 640x480 or 320x240 before inference. (2) Wrong cv2.dnn backend, set net.setPreferableBackend(cv2.dnn.DNN_BACKEND_OPENCV) and net.setPreferableTarget(cv2.dnn.DNN_TARGET_CPU). (3) Heavy model on weak hardware, swap YOLO v5 for MobileNet-SSD or use Haar cascades for simple face/eye detection. Also close other applications and disable laptop battery-save throttling.
Can I extend a single OpenCV demo into a full BSIT capstone?
Yes, and you should. A standalone webcam demo (face detection alone) is too narrow for capstone scope. Wrap it in a real system: face recognition becomes Real-Time Attendance System with PHP/MySQL dashboard, object detection becomes Smart CCTV Alert System with email notifications, drowsiness detection becomes Driver Monitoring System for fleet vehicles. Add user accounts, database logging, simple admin UI, and write Chapters 1-5 manuscript to satisfy panel requirements.
How often is this deep learning projects list updated?
New deep learning projects are added periodically as we receive student requests and new models become OpenCV-compatible. Last refreshed June 2026 with 19 vision-focused projects covering face recognition, object detection, traffic-sign classification, OCR, and more.