IoT

The Internet of Things connects sensors, machines, and devices to networks so they can report data and be controlled remotely, underpinning applications from smart metering and asset tracking to industrial automation. Cellular IoT spans technologies from low-power NB-IoT and LTE-M to higher-bandwidth 5G, with new reduced-capability (RedCap) devices filling the gap between them. As deployments scale, the focus has shifted from connectivity alone to managing fleets of devices, securing them, and turning their data into value. For operators, IoT is a connectivity-plus-platform opportunity; for enterprises, it’s the foundation of connected operations. This channel covers IoT across cellular technologies, platforms, and industry verticals — including device classes, security, and data — with analysis of where connected-device deployments deliver measurable outcomes rather than stalling at the pilot stage.

Smart and Omnispace are collaborating to explore space-based 5G technologies for use cases such as enabling 5G connectivity in remote areas, incorporating IoT and sensors for use in monitoring weather disturbances and natural calamities, and augmenting network coverage for disaster relief, maritime and telematics for vessels and equipment in Philippine market.
Kajeet Smart Private 5G™ Platform and Samsung’s latest 5G RAN innovations to power smart cities, school campuses, utility grids, & factories. The education sector will be the first area of focus for the Kajeet and Samsung collaboration.
Bharti Airtel (Airtel) announced that it had signed 5G network agreements with Ericsson, Nokia, and Samsung to commence 5G deployment in August 2022.
Airtel acquires 19867.8 MHz spectrum in 900 MHz, 1800 MHz, 2100MHz, 3300 MHz and 26 GHz frequency bands through the auction for Rs 43,084 cr. Spectrum secured for 20 years.
The ideal spectrum bank for the best 5G experience, 100x capacity enhancement all done strategically at the least cost.
> Telefónica Tech and Telefónica Global Solutions (TGS) divisions, is testing Sateliot's solution to develop an innovative dual 5G NB-IoT connectivity service that integrates the satellite network with existing terrestrial networks to provide IoT connectivity wherever the customer needs it.
> The new service would extend the coverage of current terrestrial NB-IoT networks to remote areas providing connectivity over 100% of the territory and would be compatible with current NB-IoT devices available on the market.
> The first pre-commercial customer pilots are planned for the end of the year.
BAI Communications (BAI), Sunderland City Council , and the University of Sunderland have announced a new partnership to deploy advanced wireless technologies across the university’s campuses as part of the smart city rollout, supporting research in key areas, enhancing teaching, and improving the student experience.
British Telecom has announced it will deploy a private network at the northeastern port of Tyne in Britain and is expected to go live later this year. The private 5G network will provide fast and low latency connectivity across the port's facilities.
The commercial On Site 5G sale brings 5G to The Port Of Virginia for high-bandwidth industrial uses and secure day-to-day networking
Airtel has implemented two Industrial grade use cases for quality improvement and operational efficiency at Bosch’s state-of-the-art manufacturing facility, utilizing the trial spectrum. In both cases, 5G technology such as mobile broadband and ultra-reliable low latency communications drove automated operations ensuring faster scale up and reduced downtimes. The trial successfully demonstrates Airtel’s capability to deliver high-quality Private Network solutions for Industry 4.0.
OneLayer teams up with Nokia and Cellcom to secure hundreds of doctors' carts, patient beds, and medical devices connected via cellular networks.
Virgin Media O2 Business has switched on the UK’s first 5G-connected hospital with South London and Maudsley NHS Foundation Trust – a provider of mental health services in the United Kingdom. The switch-on is part of Maudsley Digital Lab’s series of digital health and innovation trials funded by NHS Digital, with the private 5G network providing dedicated connectivity for mission-critical digital health use cases for both clinicians and patients.

Frequently Asked Questions

What’s the difference between regular IoT and ‘massive IoT’?
Regular IoT typically refers to a moderate number of connected devices with meaningful data needs, like security cameras streaming video, smart home hubs, or connected vehicles transmitting diagnostic and location data continuously. Massive IoT refers to a fundamentally different scale: enormous numbers, potentially millions, of simple, low-power, low-data sensors, like utility meters, environmental monitors, or asset trackers, that each transmit only small amounts of data infrequently but need to remain connected reliably and cheaply across very large device populations. The distinction matters because massive IoT requires network technology specifically optimized for extremely low power consumption and the ability to support enormous device density per cell, priorities that differ from the higher bandwidth and lower latency priorities of more data-intensive regular IoT applications.
Why does 5G matter for IoT specifically?
5G matters for IoT in several specific ways beyond simply being a faster network. It’s designed to support a far greater density of connected devices per square kilometer than 4G, which matters enormously for massive IoT deployments involving huge numbers of sensors in a concentrated area. It also offers specialized operating modes tailored to different IoT needs: extremely low-power modes for simple sensors that need to run for years on a single battery, and ultra-reliable, low-latency modes for mission-critical applications like industrial robotics or autonomous systems where a delayed connection could cause real operational problems. This flexibility, supporting both massive numbers of simple devices and demanding, latency-sensitive applications on the same network, is a meaningful architectural advance over earlier cellular generations.
What are the biggest barriers to wider IoT adoption?
Several recurring barriers continue to limit how quickly IoT adoption scales. Device and connectivity costs, while falling steadily, still need to make economic sense across potentially millions of deployed units for many proposed use cases, and even small per-device costs add up quickly at that scale. Security concerns are significant, since managing the security of huge numbers of distributed, often physically unattended endpoints is meaningfully harder than securing a smaller number of centrally managed devices. Fragmented standards across different IoT use cases can complicate interoperability between devices and platforms from different manufacturers. Integrating the resulting flood of IoT data into existing business systems and deriving useful insight from it remains a genuine organizational challenge even after connectivity itself is solved.
How do cellular IoT connections compare to alternatives like Wi-Fi or LoRaWAN?
Cellular IoT, using carrier networks like 4G, 5G, NB-IoT, or LTE-M, offers wide-area mobility and carrier-grade reliability without requiring an organization to build its own local wireless infrastructure, making it well suited for devices that move across large areas or are deployed in remote locations without existing local coverage. Wi-Fi can be cheaper for localized deployments within a single building where infrastructure already exists, but doesn’t provide the same wide-area mobility without significant additional infrastructure. LoRaWAN and similar low-power wide-area technologies offer very long battery life and decent range at low cost, attractive for simple, infrequent-data sensors, but typically can’t support the data rates or mobility that cellular IoT can, and often require organizations to deploy their own gateway infrastructure.
What industries are the biggest users of IoT technology today?
Manufacturing has been one of the most active adopters of industrial IoT, using sensors throughout production lines for predictive maintenance, quality control, and real-time process monitoring. Logistics and supply chain companies rely heavily on IoT for asset tracking, monitoring shipment location and condition, like temperature for perishable goods, throughout transit. Agriculture uses IoT sensors to monitor soil conditions, irrigation needs, and livestock health across large rural areas where cellular IoT’s wide coverage is particularly valuable. Utilities use IoT extensively for smart metering and grid monitoring. Healthcare is an increasingly significant adopter too, using connected medical devices and wearables for remote patient monitoring, an application where reliability and security carry particularly high stakes.
How is AI changing what IoT devices and networks can do?
AI is increasingly applied directly to the enormous volumes of data IoT devices generate, since manually analyzing data from potentially millions of sensors isn’t practically possible without automated analysis. AI models are used to detect anomalies in sensor data that might indicate equipment about to fail, to optimize complex systems like energy grids or supply chains based on real-time data from many distributed sensors, and increasingly, to run directly on IoT devices themselves through on-device or edge AI, allowing analysis and decision-making to happen locally rather than requiring every piece of raw data to be transmitted back to a central system. This local processing is particularly valuable where bandwidth is limited or sending all raw data back centrally would be impractical given the volume involved.
What is ‘NB-IoT’ and ‘LTE-M,’ and how do they differ from regular cellular connections?
NB-IoT, short for Narrowband IoT, and LTE-M, short for LTE Machine-Type Communication, are specialized cellular technologies designed specifically for IoT use cases rather than general smartphone-style connectivity. They prioritize extremely low power consumption, allowing devices to run for years on a single battery, and excellent coverage, including reaching devices in challenging locations like deep indoors or underground, over the higher data speeds standard cellular connections prioritize. The two differ in their tradeoffs: NB-IoT generally supports even lower power consumption and better extreme-condition coverage, suited for simple, infrequent-data sensors, while LTE-M supports somewhat higher data rates and mobility, making it better suited for applications like asset tracking that need to maintain a connection while moving.
What security risks are specific to IoT devices, and why are they considered higher risk?
IoT devices are often considered higher security risk for several specific reasons. Many are deployed in huge numbers across physically unattended or hard-to-access locations, making it impractical to manually monitor or service the security of each individual unit. Cost pressures in massive IoT deployments can lead manufacturers to cut corners on security to keep per-unit costs low, sometimes resulting in weak default passwords, infrequent software updates, or limited encryption. Because IoT devices are often deployed for many years without replacement, vulnerabilities discovered after deployment can remain unpatched for extended periods if devices lack reliable update mechanisms. The sheer scale of many deployments also means a single vulnerability could potentially compromise an unusually large number of devices simultaneously.

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