
Simuletic is a cutting-edge platform that delivers synthetic ground truth data for training and evaluating AI models in high-risk security scenarios. Unlike traditional methods that rely on noisy web data, Simuletic provides photorealistic synthetic datasets specifically designed for weapon detection, knife detection, threat identification, and drone monitoring. These datasets are engineered to cover edge cases that real-world cameras often miss, such as glare, snow, and blur, ensuring your AI models are robust and accurate.
The product stands out with its latest open-source dataset, which includes over 500 VLM-ready conversations with precise bounding box grounding and threat reasoning. This makes it an invaluable resource for researchers and developers working on advanced security AI systems. Simuletic's approach not only enhances model performance but also reduces false positives in surveillance applications, making it a powerful tool for mission-critical AI deployment.
Simuletic operates through a simple, user-friendly process:
| Benefit | Description |
|---|---|
| Time Efficiency | Generate thousands of diverse samples in hours, not months |
| Safety & Compliance | No privacy issues, no legal complications, no need for actors |
| Model Improvement | Train on rare and critical events that are hard to capture in the real world |
| Realistic Testing | Test models on realistic sequences with temporal consistency |
| Scalability | Easily adapt to various environments and use cases |
Simuletic is ideal for organizations looking to build secure, reliable AI systems for public safety, surveillance, and threat detection. Its synthetic data generation capabilities make it a valuable asset for both research and production environments.
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