AI Emerges as a Game-Changer in Disaster Management: From Reactive to Proactive

AI Emerges as a Game-Changer in Disaster Management: From Reactive to Proactive

Limitations of Traditional Disaster Management Systems

Throughout history, humanity has constantly faced the threat of natural disasters such as earthquakes, hurricanes, wildfires, and floods, which have the potential to cause extensive destruction, loss of life, and property damage.

Traditional disaster management systems rely heavily on pre-defined rules, unvalidated statistical models, and human expertise and interaction, struggling to manage and process vast, diverse data streams and account for complex variables or unforeseen outcomes.

There are several examples demonstrating how traditional solutions available up until now have fallen short. For example, while satellite images are able to provide a broad overview of an area, due to the insufficient frame rate of the high-speed camera, insufficient detail in the image resolution, and limited camera angles, they might lack the fine detail needed for certain tasks, such as detecting shallow landslides or assessing damage to individual buildings. Geotechnical approaches using borehole inclinometers are expensive, complex, and time-consuming. It is also impossible to conduct continuous monitoring, which is not in line with the principles of scale.

 

High-performance computing and IoT technologies are reducing disaster damage

AI is changing the way disaster warnings are issued. AI, combined with IoT, edge computing, cameras, and sensors, is bringing about significant innovations in disaster prediction. By utilizing generative AI, deep learning, and machine learning algorithms to train on datasets from environmental sensors, environmental images, and disaster information, AI can learn about known disaster types and phenomena. Through trained models, it can identify potential disaster situations and signs that humans cannot directly find. In the early stages of disaster warning, it can identify the type, location, and time of potential disasters, and take proactive disaster prevention measures and actions to reduce the scope and impact of disasters.

 

Rugged edge AI computing platforms and IoT frameworks enable real-time AI disaster prediction and warning systems

AI can extract features and set labels from historical disaster datasets (including real-time environmental sensor values, high-resolution camera image files, and disaster fact records) to train various disaster models and identify potential disaster situations that are difficult for humans or traditional models to identify through model inference. Edge AI computing platforms can collect data sources from on-site sensors and cameras in real time and use pre-trained models to infer and identify disaster precursors to meet the needs of complex AI visual applications while also shortening warning response times. Combined with IoT frameworks, disaster prediction systems can be flexibly deployed in distributed geographical locations. In addition, disaster prediction SaaS developed with cloud-native environments and containerization technologies makes it easier to deploy AI models, AI inference engines, and microservices to edge AI computing platforms, accelerating the auto-scaling of cloud-ground integrated applications. However, disaster management systems in outdoor environments face several significant challenges. Here are some of the most critical ones:

Durability and Environmental Resilience: Outdoor equipment must be rugged enough to withstand harsh conditions, including extreme temperatures, rain, wind, dust, and even impacts from flying debris during disasters like wildfires, floods, or landslides.

Power Autonomy and Instability: Reliable power is crucial, but access to outlets can be limited outdoors. Disaster zones might even experience widespread power outages. This necessitates the system to be self-sufficient with a power generator or solar panels, which have limitations on power storage and energy collection, respectively. Furthermore, the voltage fluctuations caused by unpredictable power sources, such as damaged electrical grids, temporary generators, or solar panels with variable output depending on sunlight, also can disrupt the system's operation.

Robust Connectivity and Data Transmission: Outdoor environments may experience intermittent or limited network connectivity due to factors like terrain obstructions, weather conditions, or the sheer distance from communication infrastructure. This can lead to disruptions in data transmission and potential data loss, which can negatively impact the accuracy and timeliness of disaster management efforts.

 

System Architecture

 

NEXCOM's ATC 3750-IP7-6C is a rugged edge AI computing platform designed for harsh environments. In addition to its high-performance AI computing power, it also integrates wireless communication modules, a variety of wired communication interfaces, external environmental sensors, and high-speed cameras. Its tightly integrated mechanical design, high-airtight waterproof components, three-proof coating protection, vacuum airtightness, and submersion testing helps guarantee stable operation in harsh environments.

Powered by the NVIDIA Jetson AGX Orin system-on-module that delivers up to 275 (INT8) TOPS of AI performance, the ATC 3750-IP7-6C edge AI computing platform comes with the containerized operating system NAL (NEXCOM Acceleration Linux). With the NVIDIA JetPack 6.0 upgrade, it also features new Jetson Platform Services, which add foundational and AI analytics services, generative AI capabilities, and multiple building blocks such as the Video Storage Toolkit (VST) and NVIDIA DeepStream software development kit. This simplify solution development for developers by eliminating the need for repetitive development on NVIDIA Jetson, empowering them to quickly assemble full-featured edge AI systems and manage edge AI applications. Through REST APIs, developers can easily access a variety of microservices, enabling the construction of unified cloud-to-edge vision AI applications. This functionality delivers the seamless replication of cloud-developed microservices and trained AI models to edge devices using IoT gateway and OTA functions.

The alternative IoT OS for ATC 3750-IP7-6C is AIC OT-X. Bridging the gap between OT, IT, and IoT, AIC OT-X converges applications and microservices on edge devices. Industrial computers can be effortlessly transformed into software components. This powerful embedded IoT OS, compatible with x86 platforms, functions as an integrated OT and IoT gateway, supporting OPC UA. It empowers intuitive Docker image deployment from cloud to edge and effortlessly extends microservices for OT and AI applications.

The API gateway acts as a central hub for monitoring software usage, providing valuable insights into the utilization of various software functions. This information can be used to optimize resource allocation and ensure the system operates at peak performance. VST and DeepStream SDK microservices streamline the management, analysis, and optimization of inference performance for data coming from cameras and sensors. Developers can create sophisticated disaster sign recognition applications utilizing multi-camera tracking and zero-shot detection techniques powered by generative AI from the cloud to the edge.

One of the key advantages of the ATC 3750-IP7-6C is its ability to seamlessly integrate with a wide range of environmental sensors. With various I/O ports, including serial and digital I/O, as well as a CAN bus interface, the system can collect data from sensors deployed in the field, providing the necessary fuel for AI models tasked with detecting early warning signs of potential disasters. Through NAL's built-in hardware interfaces, developers can effortlessly access external sensors and peripheral devices using APIs. This intuitive approach simplifies the process of acquiring sensor data and controlling peripheral devices, allowing developers to focus on building innovative applications.

The sensors are deployed throughout the disaster zone to collect environmental data like temperature, wind speed, air quality, water levels, or ground movement. It can also be connected to more peripherals such as GNSS, IP cameras, and IEEE 1588 signal receivers.

Designed to withstand the harshest conditions, the ATC 3750-IP7-6C is built to operate in demanding outdoor environments; it is certified with the IP67 rating. With a wide operating temperature range (-20°C to 70°C), vibration and shock resistance that meets MIL-STD-810 standards, and a 9-36V DC-IN power input, this rugged-edge AI computing platform can be deployed in remote locations and continue functioning reliably, even in the face of extreme conditions.

Environmental sensor data, geospatial imagery, and geographic information can be transmitted to data centers via wired and wireless connections.

The ATC 3750-IP7-6C offers a comprehensive suite of communication options, including Gigabit Ethernet (with PoE+ support), Wi-Fi 5/6, cellular (LTE/5G), and GNSS capabilities. This ensures seamless data transmission and situational awareness, enabling effective coordination with other agencies or response teams.

People use various AI algorithms to classify images of collected data based on whether they should be reviewed or acted upon — if so, an alert is sent out to a command center. Staff from the control center can view the alert in real time and immediately rectify the risk. The technology company continuously refines AI models, provides probabilistic forecasts, and enables real-time monitoring for early detection. With advanced techniques like deep learning, AI can more effectively model highly complex, non-linear systems like weather patterns or wildfire behavior, potentially leading to more reliable, timely warnings and deeper insights into underlying disaster risks.

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2025/01/16
採用事例
NEXCOM

酪農を変える 革新的な組込みファンレスコンピュータ

酪農業は、家畜を管理し、農場経営を最適化する上で大きな課題に直面しています。主なハードルは、牛の正確なモニタリングであり、識別、健康状態、乳量、食品のバイオセキュリティの正確な記録管理を複雑にしています。現在のデータ収集と分析は手作業に頼っており、タイムリーな追跡とデータに基づいた意思決定を妨げています。リアルタイムのデータと見通しの欠如は、潜在的な浪費につながり、牛の繁殖と生産性に悪影響を与えます。これらの課題に対処するには、革新的なソリューションが必要であり、IoTゲートウェイはこのような業界の進歩に有望なアプローチです。NEXCOMのNDiS B560Sは、スリムな組込み型ファンレスコンピュータで、包括的なスマートファーミングソリューションを提供します。電子タグと視覚的な牛のタグを統合し、正確なモニタリング、自動データ収集、栄養分析、最適なリソースの割り当てを可能にしています。   Intel® Core ™ i5-8500T プロセッサを搭載したNDiS B560Sファンレスコンピュータは、シームレスな接続性を提供し、個々の牛の正確な識別と追跡を通じて、牛の健康とパフォーマンスを効果的に向上させます。このシステムは、繁殖記録、健康指標、ミルクの生産量に関するリアルタイムのデータアクセスを容易にし、スマートファーミングのための栄養摂取、繁殖戦略、必要な獣医介入について、十分な情報に基づいた意思決定を行うための重要な情報をオペレーターに提供します。   また、このIoTゲートウェイは、M.2 を介して温度・湿度センサを搭載しており、環境条件の予期的な監視を可能にすることで、熱へのストレスや、牛の健康に対するその他の潜在的な悪影響に関わるリスクを軽減します。LANとWi-Fi機能を統合し、直感的なタッチHMIインターフェースを備えているため、オペレーターは、酪農場のさまざまな側面を遠隔で監視・制御することができます。RFIDタグからのリアルタイムデータにアクセスし、即座にアラートを受け取り、どこからでも情報に基づいた意思決定を行うことができるため、効率性と柔軟性が大幅に向上します。   革新的なNDiS B560Sファンレスコンピュータと牛のタグを活用することで、酪農場はオペレーションに革命を起こし、家畜データを認証し、従来の紙の記録に伴う人的ミスをなくすことができます。この高度なトレーサビリティ・ソリューションは、食品の安全性、規制の効率性、資源配分などを改善します   ソリューションアーキテクチャ     製品の主な特長   Support 8/9th Gen Intel® Core™ i3/i5/i7 LGA socket type embedded processor, up to 35W Intel® H310 Intel® integrated UHD 630 graphic engine Support 2 independent 4K2K 60Hz display output Compact and slim design (H: 39mm) Support 1 x 2.5” SATA HDD 2 x HDMI 2.0, 4 x USB 3.0, 2 x USB 2.0, 2 x GbE LAN, 4 x COM, 1 x Line-out, 1 x Mic-in Support M.2 Key B/E/M Fanless design
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2024/12/30
採用事例
NEXCOM

Smarter Highways Ahead: Empowering ETC Systems with Neu-X302-Q and NDiS B561-PoE for Real-Time Tolling and Vehicle Monitoring

The Background The highway electronic toll collection (ETC) is an important part of modern transportation and can effectively improve vehicle traffic efficiency. The advanced ETC system, combined with real-time vehicle identification and blacklist monitoring functions, assists the police in tracking down vehicle theft and other illegal activities. The solution combines powerful edge computing, high-speed data processing and reliable device connectivity to ensure seamless operation under harsh highway conditions.   Solution Overview The ETC system was built using Neu-X302-Q as the main computing device and NDiS B561-PoE to control the ETC gate and also capture the images through PoE camera. These devices collaborated to deliver robust, real-time data analysis, enabling effective toll management and monitoring.   Neu-X302-Q The Neu-X302-Q served as the main computing platform for processing vehicle data, running blacklist comparisons, and triggering alerts for unauthorized vehicles. Its fanless design, Intel® 8th/9th Core™ processor, and high I/O expandability made it ideal for 24/7 operation in harsh roadside environments. The device handled large-scale data communication and ensured minimal latency, critical for real-time ETC operations.   NDiS B561-PoE The NDiS B561-PoE, powered by Intel® 12th Gen Intel® Core™ processor, not only to controls the ETC gate but also captures images of vehicles passing though ETC lane and immediately communicates with the Neu-X302-Q to process the data. Its advanced graphics support allowed seamless real-time visualization, and the PoE functionality significantly reduced wiring complexity by delivering both data and power through a single cable. Its rugged design ensured uninterrupted operations in extreme conditions.   Overall, the deployment of Neu-X302-Q and NDiS B561-PoE revolutionized the highway ETC system, enabling accurate, high-speed toll processing and offering better control over vehicles that attempt to evade tolls or engage in illegal activities. The Neu-X302-Q and NDiS B561-PoE industrial-grade computing devices can transform highway toll collection, paving the way for smarter and safer road infrastructures.   Application Diagram    
card title
2024/10/24
採用事例
NEXCOM

Neu-X102-N50 エッジPC: 観光体験を革新するリバーサイド革命の実現

ロンドンの賑やかなテムズ川沿いには、洗練されたデジタルトーテムが静かな案内役として立ち並び、訪れる人々を迎えています。これらのモダンな案内板は、リアルタイムの船のスケジュールや天気情報、地域の詳細情報を表示し、リバーサイドでの体験一新しています。このスマートシティの進化の中心にあるのが、NEXCOMの強力なNeu-X102-N50 であり、これら革新的な情報ハブを支える原動力です。   これらの革新的な情報トーテムは、市内のウォーターフロントの観光地全体で、観光客の体験に革命をもたらしています。その外観は地域の美観に合わせて異なるものの、中核を担うのは、NEXCOMの強力なエッジコンピューティングシステム、Neu-X102-N50です。   これらのトーテムの中心には、屋外用途向けに特化した優れた技術が組み込まれています。Neu-X102-N50 は、Intel® Processor N50と最大16GB のRAMを搭載しており、厳しい環境でもスムーズなパフォーマンスを実現します。また、-5° C~50° Cまでの動作温度範囲に対応しており、多様な気候条件でも適応可能です。   Neu-X102-N50 の卓越した技術力は、プロセッサにとどまりません。最大2つのHDMIポートをサポートし、鮮やかなコンテンツを再生して、人目を引くビジュアルで観光客を引き付け、情報を伝えることができます。更に、M.2およびmPCIeスロットを備え、ストレージの拡張やLTEおよびWi-Fi 6 機能に対応し、リッチコンテンツの保存と超高速ワイヤレス接続を実現します。これらの機能により、トーテムは、高い利用者数を誇るエリアでも容易に対応できる、包括的な情報ハブとして機能します。   観光客は、鮮やかな32インチのタッチスクリーンディスプレイを通じて、スケジュールや天気情報以外にも豊富な情報にアクセスできます。地元の観光スポットやおすすめの飲食店、さらにはリアルタイムの大気質データまで、指先ひとつで確認できます。このエッジコンピューティングシステムは、デュアル2.5GbE LANポートと4G LTE接続を備えており、常に最新の情報を提供します。また、USB光センサとCOMポートを通じて、明るさを自動調整することができ、さまざまな光の条件下でも情報を読み取り易くするとともに、システムの省エネにも貢献しており、現代の都市の持続可能性の目標にも合致した設計が実現されています。   トーテムのオペレーターにとって、リモート管理機能は重要な要素です。LANやLTEを通じて、コンテンツの更新やシステムのメンテナンスを行うことができるため、運用コストを大幅に削減し、効率的な管理を行うことができます。   これらのエッジコンピューティングシステムは、観光客の体験を向上させるだけでなく、都市計画や観光管理に役立つ貴重なデータインサイトを提供します。Neu-X102-N50は、USB 3.2の帯域幅ポートに接続したカメラにより、データのスムーズな取り込みと伝送を可能にし、観光客の流れをリアルタイムでモニタリング・分析します。この高度な機能により、都市計画担当者や観光関係者は、リソース配分の最適化や都市のモビリティ向上のための情報に基づいた意思決定を行うことができ、観光客や地元住民の体験をシームレスかつ快適なものにします。   Neu-X102-N50は、都市の景観に自然に溶け込みながら、観光客や地元住民にとって不可欠なサービスを提供する、スマートシティ技術の大きな進歩を象徴しています。都市のより多くのエリアがこの技術を採用するにつれて、観光地との関わり方や、その行動に変革がもたらされ、訪れる人々が、情報をうまく活用しながら、より積極的に豊かな体験ができる、新時代の都市観光の到来が期待されます   ソリューションアーキテクチャ