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Report abuseML Engineer | Computer Vision | Multimodal Retrieval | Architecture-Level R&D
ML Engineer focused on designing efficient, interpretable ML systems under real-world constraints.
🔗 https://github.com/Y-R-A-V-R-5/VisionTracker
🔗 https://github.com/Y-R-A-V-R-5/YOLO-Tweaks
ML & Vision: PyTorch, YOLO (v8–v11), OpenCV
Retrieval: CLIP, FAISS, NNDescent
Engineering: Python, Git, modular ML systems
Analysis: Matplotlib, Seaborn
GitHub: https://github.com/Y-R-A-V-R-5
LinkedIn: https://www.linkedin.com/in/yravr/
Email: adithyavardhanreddy2003@gmail.com
Examines model fragility across capacity, fidelity, stability, representation, and temporal axes. Isolated and multi-axis experiments reveal sensitivity to noise, drift, and randomness. Metrics pri…
Jupyter Notebook
Studies width & depth scaling to identify diminishing returns, hardware-aware sweet spots, and practical capacity limits. Measures marginal utility of larger models on real hardware, emphasizing em…
Jupyter Notebook
Architecture-level study of how early CNN downsampling choices affect bias, generalization, and CPU inference behavior under constrained settings.
Jupyter Notebook 2
VisionTracker benchmarks multi-object tracking using YOLOv11l with SORT, DeepSORT, and OCSORT. It provides heuristic metrics like track lifetime, ID switches, bounding box volatility, and trajector…
Jupyter Notebook 2
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