Internet of Things (IoT) and Smart Connectivity
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Background: With the increasing number of IoT devices, cloud-based data processing leads to latency and security concerns. AI-powered edge computing can reduce processing delays and enhance device autonomy.
Challenge: Develop an AI-integrated edge computing framework that processes IoT sensor data locally on embedded devices, reducing cloud dependency and improving response time.
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Background: IoT devices require energy-efficient VLSI chips to function optimally with limited power sources. Reducing energy consumption while maintaining performance is a key challenge.
Challenge: Develop an ultra-low-power VLSI chip optimized for IoT applications, ensuring longer battery life and enhanced efficiency.
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Background: With aging populations and increasing chronic diseases, remote patient monitoring is crucial for real-time health tracking and emergency response.
Challenge: Develop an IoT-enabled health monitoring system that tracks patient vitals, detects anomalies, and provides real-time alerts to healthcare providers.
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Background: Wearable devices can provide continuous health tracking, helping in early detection of diseases like Parkinson’s, diabetes, and cardiovascular conditions.
Challenge: Develop a smart wearable IoT device that can continuously monitor health parameters and predict disease symptoms using AI/ML.
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Background: Urban traffic congestion leads to pollution, fuel wastage, and long commute times. IoT can optimize traffic flow using real-time analytics.
Challenge: Develop an IoT-powered traffic management system that uses sensor data and AI analytics to dynamically control traffic signals and reduce congestion.
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Background: Unplanned downtime in industries leads to huge financial losses. Predictive maintenance using IoT can detect failures before they occur.
Challenge: Develop an AI-powered predictive maintenance system using Industrial IoT (IIoT) sensors to analyze equipment health and prevent failures.
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Background: Traditional farming methods are inefficient and prone to climate-related challenges. IoT-powered smart farming can increase productivity and resource efficiency.
Challenge: Develop an IoT-based smart farming solution that monitors soil conditions, optimizes irrigation, and predicts crop health using AI.
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Background: Greenhouses require continuous monitoring of temperature, humidity, and light levels. IoT-based automation can optimize environmental conditions for crop growth.
Challenge: Develop a smart IoT greenhouse automation system that monitors and regulates climate conditions to enhance crop yield.
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Background: Air pollution is a major public health concern, affecting millions of people. IoT sensors can enable real-time pollution monitoring, and AI can predict air quality trends to issue early health alerts.
Challenge: Develop an IoT-based air quality monitoring system that collects real-time pollution data, analyzes trends, and provides AI-driven health alerts.
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Background: Urban waste collection is often inefficient, leading to overflowing bins, unsanitary conditions, and increased pollution. An IoT-based waste management system can optimize garbage collection and reduce operational costs.
Challenge: Develop an IoT-enabled smart waste management system that monitors garbage levels and optimizes collection routes for better efficiency.
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Background: Many patients, especially elderly and chronically ill individuals, forget to take medications on time. An AI-powered IoT-based smart dispenser can improve medication adherence and patient health.
Challenge: Develop an intelligent pill dispenser that reminds patients to take medicine on time and alerts caregivers when doses are missed.
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Background: With overburdened healthcare systems, rural areas often lack access to medical professionals. A virtual AI-driven doctor can analyze symptoms and suggest preliminary medical advice before a doctor consultation.
Challenge: Develop an AI-powered virtual doctor assistant that collects patient symptoms via wearable sensors and provides preliminary health insights before connecting with a doctor.
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Background: Traditional prosthetic limbs lack real-time adaptability to a user’s movement, limiting comfort and functionality. IoT and AI can create smart prosthetics that learn and adapt to user behavior.
Challenge: Develop an AI-integrated IoT-powered smart prosthetic limb that adapts to user movement patterns, providing a more natural and intuitive experience.
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Background: Farmers struggle with detecting crop diseases, pest infestations, and nutrient deficiencies. Drones with AI-powered image analysis can assess crop health in real time.
Challenge: Develop an IoT-enabled drone system that captures aerial images of crops, analyzes plant health, and provides early pest/disease detection alerts.
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Background: Food supply chains lack transparency, leading to fraud, counterfeiting, and safety issues. Blockchain & IoT can ensure authenticity, traceability, and freshness of agricultural products.
Challenge: Develop a blockchain-based agricultural supply chain system that tracks food from farm to table using IoT sensors for real-time data collection.
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Background: Edge computing requires high-performance AI-ready hardware for faster real-time processing without cloud dependency.
Challenge: Develop a VLSI-based AI accelerator optimized for edge computing applications, ensuring low latency, high efficiency, and minimal power consumption.
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Background: With increasing IoT cyber threats, secure data transmission is critical for protecting sensitive device communications.
Challenge: Develop a VLSI-based cryptographic accelerator for IoT security, enabling hardware-level encryption and authentication.
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Background: With the expansion of 5G and beyond, network processing requires real-time AI acceleration to optimize data transmission speeds.
Challenge: Develop an FPGA-based AI accelerator that enhances 5G network performance by optimizing signal processing and data routing.
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Background: IoT devices require energy-efficient hardware for long-term operation on low-power battery sources.
Challenge: Develop a VLSI-optimized sensor interface that processes sensor data efficiently while minimizing power consumption for IoT edge devices.
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Background: Traditional CPUs and GPUs struggle with real-time AI processing due to high power consumption and inefficiencies.
Challenge: Design a neuromorphic VLSI processor that mimics the human brain’s synaptic learning for low-power AI computations in IoT and robotics.
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Background: IoT firmware is vulnerable to attacks that modify boot processes. Secure hardware booting mechanisms can ensure tamper-proof device authentication.
Challenge: Develop an FPGA-based secure boot and authentication system that ensures hardware-level security for embedded IoT devices.
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Background: Optimizing IoT chip design is challenging due to power constraints, thermal issues, and computational efficiency.
Challenge: Develop an AI-driven VLSI optimization tool that automates layout generation, power optimization, and circuit performance tuning for IoT chips.
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Background: This initiative encourages students to develop innovative ideas across diverse domains, including Environmental Sustainability, Healthcare & Medical Innovation, Education & Learning Technology, Agriculture & Food Technology, Transportation & Mobility Solutions, Smart Home & IoT Solutions, Cybersecurity & Privacy, Fintech & Business Solutions, and Entertainment & Gaming Solutions.
Challenge: The goal is to enhance the management and generation of renewable/sustainable resources efficiently. Projects must be original, avoiding previously selected or implemented ideas. Unimplemented concepts from various hackathons are also eligible, provided they address a well-defined problem statement.
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