SearcharxivSearch

arXiv subjects

Manisha More

Publications and source records attributed to Manisha More.

2 recordsLinked to original sources

NiyamAI - An Intent-Bound AI Agent with Cryptographically Verifiable Guardrails using Zero-Knowledge Proofs

Autonomous LLM agents with tool execution capabilities introduce severe security risks through prompt injection, goal hijacking, and unauthorized action invocation. Existing guardrails rely on unverified, host local software filters system prompts, semantic classifiers, policy engines that share the execution environment of the untrusted agent, offering no guarantee to an external observer that a safety policy was correctly evaluated. A compromised host produces no evidence of its own failure. This paper presents NiyamAI, an intent bound runtime guardrail architecture providing cryptographically verifiable execution integrity for autonomous agents. At session initialization, permitted tools and operational constraints are sealed into an immutable Intent Contract under a SHA256 commitment. Every tool invocation is intercepted by a deterministic authority gate and classified by a dedicated neural Judge (11->8->2 feedforward network). For each authorized action, NiyamAI generates a succinct zkSNARK proof certifying correct policy evaluation under the committed contract; execution proceeds only after that proof verifies. Across 2,000 AgentSafetyBench scenarios under 5fold stratified crossvalidation with out of fold scoring, NiyamAI achieves 88.8% F1 at a 1.0% false positive rate (bootstrap 95% CI [85.5%, 92.1%]), against 66.8% for Llama Prompt Guard 2, 46.2% for GPTOSSSafeguard, and 40.4% for NeMo Guardrails; McNemar's exact test confirms each margin at p < 0.0001. Proof generation adds 1.7 s per approved action, verification 51 ms, with an 18.6 KB proof verifiable by any third party without access to model parameters. We further subject NiyamAI's own enforcement mechanism to 18 adversarial vectors across six classes, disclosing two implementation vulnerabilities identified and remediated during development.

cs.AI

AI-Powered Early Detection of Critical Diseases using Image Processing and Audio Analysis

Early diagnosis of critical diseases can significantly improve patient survival and reduce treatment costs. However, existing diagnostic techniques are often costly, invasive, and inaccessible in low-resource regions. This paper presents a multimodal artificial intelligence (AI) diagnostic framework integrating image analysis, thermal imaging, and audio signal processing for early detection of three major health conditions: skin cancer, vascular blood clots, and cardiopulmonary abnormalities. A fine-tuned MobileNetV2 convolutional neural network was trained on the ISIC 2019 dataset for skin lesion classification, achieving 89.3% accuracy, 91.6% sensitivity, and 88.2% specificity. A support vector machine (SVM) with handcrafted features was employed for thermal clot detection, achieving 86.4% accuracy (AUC = 0.89) on synthetic and clinical data. For cardiopulmonary analysis, lung and heart sound datasets from PhysioNet and Pascal were processed using Mel-Frequency Cepstral Coefficients (MFCC) and classified via Random Forest, reaching 87.2% accuracy and 85.7% sensitivity. Comparative evaluation against state-of-the-art models demonstrates that the proposed system achieves competitive results while remaining lightweight and deployable on low-cost devices. The framework provides a promising step toward scalable, real-time, and accessible AI-based pre-diagnostic healthcare solutions.

cs.CV