How Do You Choose the Most Optimal Real-Time Location & Sensor Solutions (RTLSS) For Your Project?

2023-01-06 12:00:08
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How Do You Choose the Most Optimal Real-Time Location & Sensor Solutions (RTLSS) for your Project?
Illustration: © IoT For All

The real-time location market is expected to reach ~$40B by 2030 – almost 10X the market size today; stack the real-time sensor market on top, and the collective market value of Real-Time Location & Sensor Solutions (RTLSS) straddles $100B+ in value. The exponential growth of RTLSS is compounded by a variety of global macroeconomic trends, including:

  • Increased pressure on corporate ROI, thereby scaling the need for digitization, streamlined data, and analytics, especially in the aftermath of COVID-19. 
  • The proliferation of enabling technology – e.g., the introduction of lower-cost, hyper-accurate, and low-infrastructure hardware.
  • Workplace health & safety – enforcement of stricter employment policies.

'The real-time location market is expected to reach ~$40B by 2030 – almost 10X the market size today.' -AetherIoTClick To Tweet

Indoor RTLSS, in particular, is well-positioned to revolutionize industries such as supply chain, grocery logistics, and healthcare. Today, for example, hospital nurses spend an average of 1 hour per shift looking for misplaced equipment, resulting in millions of dollars lost per year to ‘wasted’ wages and equipment replacement. This, among many other use cases involving asset management, people tracking, and environmental sensoring have expedited adoption of real-time IoT technology across businesses big and small.

The quest to implement RTLSS, however, is riddled with confusion (to say the least). There are multiple radio protocols to consider, and it’s often difficult for business owners to assess which solution works best for each project. We’re here to help with this – for starters, we’ve created a set of 7 important considerations across the most common indoor RTLSS protocols today. Depending on which criteria matters the most for your project (e.g., cost vs. location accuracy, the hassle of set-up vs. scalability), we hope these comparisons provide you with directional guidance on how to choose the ‘optimal’ RTLSS.

Let’s get started!

The most common protocols used in indoor RTLSS today are BLE RSSI – fixed reader (mobile tags), BLE RSSI – fixed tags (mobile reader), BLE AoA, UWB, and Wireless Mesh.

Choosing RTLSS

To evaluate each of these protocols for your project, you may want to consider (at least) these 7 important criteria:

  1. Set-up cost, which generally increases when wiring/cabling or specialized staff training is required.
  2. Tag cost.
  3. Location accuracy.
  4. Battery-operated readers; these readers do not need wiring/cabling, thereby reducing infrastructure costs, staff training, and site intrusion.
  5. Susceptibility to environmental interference, including multi-paths, reflections, etc.
  6. Susceptibility to data flooding – i.e., network throughput; when too much radio traffic results in data packet collisions, jamming, and/or loss.
  7. Scaling operations to new sites.

At a high level, here’s how each RTLSS technology breaks down on the above-mentioned criteria.

Breakdown of each evaluation criteria by RTLSS technology

Let’s unpack each evaluation criteria a bit more to aid in choosing RTLSS that’s right for your project:

1. Set-Up Cost

Set-up cost

  • High: BLE AoA and UWB require wiring (e.g., through walls, under floors) to install expensive readers, which can cost up to 4 digits per unit and require specialized training & support.
  • Low-Medium: BLE RSSI (2) needs the mobile reader to have a continuous power source (e.g., using a smartphone as the reader) or transmit data through access points / gateways (e.g., Lora – requires purchasing expensive Lora gateways & specialized training).
  • Low: BLE RSSI (1) requires wiring, however, readers are generally cheap (<$100); Wireless Mesh leverages fully battery-operated tags & readers – install via a 2-sided sticker, straps, or screw. Minimal staff training & no site intrusion.

2. Tag Cost

Tag cost

  • Indexing BLE (RSSI & AoA) tags at 100 percent – UWB tags can cost 4-10X (400-1,000 percent), and Wireless Mesh can cost 1.3-1.5X (130-150 percent).

3. Location Accuracy

Location accuracy

  • BLE RSSI – fixed reader typically cannot discern beyond ‘room-level’ accuracy.
  • BLE RSSI – fixed tag and Wireless Mesh fulfill the vast majority of indoor project needs (locating wheelchairs, people, pallets, etc.).
  • BLE AoA and UWB accuracy is used for hyper-specific purposes (e.g., urgently locating a small surgery tool). Both need a direct line-of-sight (LOS) to objects in order to achieve sub-meter accuracy.

4. Battery-Operated Readers

Battery-operated readers

  • Wireless Mesh readers survive fully on battery (minimizing infrastructure and power-consumption costs).
  • BLE RSSI – fixed tag can be configured to 1) run on frequently-recharged battery (thus more power consumption costs), OR 2) leverage the likes of Lora as the data transmission protocol. Latter requires specialized readers (e.g., those that combine BLE + Lora protocols).

5. Susceptibility to Environmental Interference

Susceptibility to environmental interference

  • The large bandwidth of UWB allows for optimal immunity against signal interference (e.g., multipath, reflections).

6. Susceptibility to Data Flooding

Susceptibility to data flooding

  • BLE RSSI – fixed readers and BLE RSSI – fixed tags are limited to just 3 channels on the 2.4 GHz band; as a result, they’re susceptible to data flooding from other devices that operate on the same band/channels (e.g., WiFi, BLE on smartphones).
  • BLE RSSI – fixed reader also relies on mobile tags (which ‘shout’ signals to be picked up by the fixed readers); consequently, areas with a large density of tracked assets (e.g., hundreds of pallets within a ~900m2 space) will experience especially high flooding / lost packets.

7. Scaling Operations to New Sites

Scaling operations to new sites

  • To scale BLE AoA and UWB beyond a project zone (e.g., one part of a factory floor), professional work is needed to set up additional wiring for new readers.
  • BLE RSSI – fixed reader needs more wiring to scale, however, the process should be simpler (vs. AoA, UWB). 
  • To scale Wireless Mesh and BLE RSSI – fixed tag, simply put up more battery-operated devices, which can take just minutes per individual device.

With all these considerations in mind, here’s what a high-level decision tree might look like for your project:

RTLSS decision tree visual

To Conclude

Hope the above has been helpful! Remember though – there is no ‘one-size-fits-all’; each radio protocol will be ‘optimal’ in different scenarios, and sometimes even the same project may require multiple protocols (e.g., leveraging UWB to obtain sub-meter accuracy in certain project zones while leaning on Wireless Mesh for ease-of-deployment in others).

If you’re interested in exploring how to choose RTLSS – there is much more to unpack and considerations we didn’t have the opportunity to get into, such as the area of deployment layout, compatibility with existing infrastructure, etc. Keep an eye out for analyses on these topics in our future posts!

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  • Location Technology
  • Connectivity
  • Network and Protocols
  • Sensors

  • Location Technology
  • Connectivity
  • Network and Protocols
  • Sensors

参考译文
如何为您的项目选择最优的实时位置和传感器解决方案(RTLSS) ?
插图:© IoT For All → 实时定位市场预计到2030年将达到约400亿美元——几乎是现在市场规模的10倍;再叠加实时传感器市场,实时定位与传感器解决方案(RTLSS)的总体市场规模将超过1000亿美元。RTLSS的指数级增长受到多种全球宏观经济趋势的推动,包括:企业对投资回报率(ROI)的压力增加,从而推动数字化、数据精简和分析的需求,尤其是在新冠疫情之后。促进技术的普及——例如,低成本、高精度、低基础设施的硬件被引入。工作场所健康与安全——更严格的雇佣政策被强制执行。"实时定位市场预计到2030年将达到约400亿美元——几乎是现在市场规模的10倍。"—AetherIoT点击推文转发室内RTLSS尤为有望革新供应链、杂货物流和医疗保健等行业。例如,今天医院护士平均每个班次要花费1小时寻找丢失的设备,每年因此损失数百万美元的“浪费”工资和设备更换费用。包括资产管理、人员追踪和环境传感在内的众多应用案例,已经加速了实时物联网技术在大小企业中的应用。然而,实施RTLSS的尝试却充满了困惑(至少是这样)。要考虑的无线协议有很多,企业主往往很难评估哪种解决方案最适合每一个项目。我们在这里可以帮助你——首先,我们创建了一个涵盖当今最常见室内RTLSS协议的7个重要考虑因素的清单。根据你的项目最关键的标准(例如,成本与定位精度、设置的复杂性与可扩展性),我们希望这些比较能为你提供选择“最佳”RTLSS的指导方向。让我们开始吧!当今最常见的室内RTLSS协议有:BLE RSSI——固定读取器(移动标签)、BLE RSSI——固定标签(移动读取器)、BLE AoA、UWB和无线网状网络。选择RTLSS为了评估每种协议对你的项目是否适用,你可能需要考虑(至少)以下7个重要标准:设置成本,通常在需要布线/布缆或专业人员培训时会增加。标签成本。定位精度。使用电池供电的读取器;这些读取器不需要布线/布缆,从而降低了基础设施成本、人员培训和对现场的干扰。对环境干扰的敏感性,包括多路径、反射等。对数据洪流的敏感性——即网络吞吐量;当太多无线通信流量造成数据包冲突、阻塞和/或丢失时。扩展到新站点的操作。从宏观层面来看,每种RTLSS技术在上述标准上的表现如下。我们再更详细地分析每个评估标准,以帮助你为项目选择合适的RTLSS:1. 设置成本高:BLE AoA和UWB需要布线(例如,通过墙壁、地板下)安装昂贵的读取器,每个读取器可能需要高达四位数的成本,并且需要专业培训与支持。中低:BLE RSSI(2)需要移动读取器持续有电源(例如,使用智能手机作为读取器),或通过接入点/网关(例如,Lora——需要购买昂贵的Lora网关和专业培训)。低:BLE RSSI(1)需要布线,但读取器通常价格便宜(<100美元);无线网状网络使用完全由电池供电的标签和读取器——通过双面贴纸、绑带或螺丝安装。人员培训需求极少,且不对现场造成干扰。2. 标签成本以BLE(RSSI和AoA)标签为100%参考——UWB标签的成本可达4-10倍(400-1000%),而无线网状网络标签的成本约为1.3-1.5倍(130-150%)。3. 定位精度BLE RSSI——固定读取器通常无法分辨到“房间级”以下的精度。BLE RSSI——固定标签和无线网状网络基本能满足大部分室内项目的需要(定位轮椅、人员、货箱等)。BLE AoA和UWB的精度用于高度特定的用途(例如,紧急寻找小型手术工具)。两者都需要直接视距(LOS)才能实现亚米级精度。4. 电池供电的读取器无线网状网络的读取器完全依靠电池工作(最小化基础设施和电力消耗成本)。BLE RSSI——固定标签可设置为1)频繁充电的电池(因此电力消耗成本更高),或2)使用Lora作为数据传输协议。后者需要专门的读取器(例如,同时支持BLE和Lora协议的设备)。5. 对环境干扰的敏感度UWB的大带宽使其对信号干扰具有最佳的抗干扰能力(例如,多路径、反射)。6. 对数据洪流的敏感度BLE RSSI——固定读取器和BLE RSSI——固定标签仅限于2.4 GHz频段上的3个信道;因此,它们容易受到在同一频段/信道运行的其他设备的数据洪流影响(例如,WiFi、智能手机上的BLE)。BLE RSSI——固定读取器还依赖移动标签(这些标签发出信号供固定读取器接收);因此,在存在大量追踪资产的区域(例如,约900平方米的空间内有数百个货箱)时,数据洪流和数据包丢失会特别严重。7. 扩展到新站点的操作要扩展BLE AoA和UWB超过一个项目区域(例如,工厂的某个区域),需要专业人员进行新的布线以安装新的读取器。BLE RSSI——固定读取器扩展时需要更多布线,但流程应更为简单(相对于AoA、UWB)。要扩展无线网状网络和BLE RSSI——固定标签,只需放置更多电池供电设备,每个设备可能只需几分钟。在考虑了所有这些因素之后,你的项目可能会有一个大致的决策树,如下所示:结论希望以上内容对你有所帮助!但请记住——没有“一刀切”的解决方案;每种无线协议在不同场景下才最“理想”,有时甚至同一个项目也可能需要多种协议(例如,在某些项目区域使用UWB实现亚米级精度,而在其他区域依赖无线网状网络以方便部署)。如果你有兴趣了解更多如何选择RTLSS的内容——还有更多内容值得探讨,比如部署区域布局、与现有基础设施的兼容性等。请关注我们未来的帖子,我们将深入分析这些话题!推文分享分享邮件定位技术连接性网络与协议传感器 → 定位技术连接性网络与协议传感器
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