A Multimedia Data Visualization Based on Ad Hoc Communication Networks and Its Application to Disaster Management
<p>ZigBee module used in this study.</p> "> Figure 2
<p>One example of a system based on Ushahidi.</p> "> Figure 3
<p>One example of a system based on the Multi-Channel Access System.</p> "> Figure 4
<p>The process of establishing connections between centers: when the evacuation centers are established ①, the ZigBee network is planned ②, then the ZigBee nodes are located ③, and the network can be used ④.</p> "> Figure 5
<p>Screen of the proposed system.</p> "> Figure 6
<p>Map data update method.</p> "> Figure 7
<p>PIC format. (<b>a</b>) shows the original picture, (<b>b</b>) the right outlines the compression technique.</p> "> Figure 8
<p>Image data used. The four figures (<b>a</b>–<b>d</b>) show shows map sections at four different levels of detail.</p> "> Figure 9
<p>Figure of placement plan.</p> "> Figure 10
<p>Experimental results of communication situation.</p> "> Figure 11
<p>Experimental results of the communication speed tests.</p> "> Figure 12
<p>Experimental results of sending and receiving geographical data updates.</p> ">
Abstract
:1. Introduction
2. Disaster Information Management Systems
2.1. Current Status of Disaster Information Management
2.2. Overview of the Proposed Zigbee Disaster Control System
2.2.1. ZigBee Network
Name | ZigBee | Wi-Fi | Bluetooth |
---|---|---|---|
Communication distance | 10–3000 m | 100 m | 10 m |
Communication speed | 250 kbps | 11 Mbps | 1 Mbps |
Network capacity | 65,536 nodes | 32 nodes | 7 nodes |
Life-time on battery | several months | several hours | several days |
Application | instrumentation control | wireless LAN | wireless accessories |
- (1)
- Support of a large networkAs up to 65,635 terminals (“ZigBees”) can be configured to form one wireless network, and the configuration can happen independently of location and time.
- (2)
- Ad hoc networkIt is easy to build an ad hoc network, and more stable communication can be realized by providing a higher density of terminals along the intended transfer paths.
- (3)
- Low electric power consumptionMaintaining a long-term battery-powered network is possible.
- (4)
- Low costThe costs of the ZigBee terminals are low, so it is possible to configure a wide area network by using a large number of them.
2.2.2. Optimized Arrangement Method and Radio Wave Propagation Analysis
3. Transmitting and Receiving Map-Data in Low-Speed Communication
3.1. Existing Image-Compression Methods
3.2. Proposed Image-Compression Method
3.3. Comparison of Image-Compression Methods
a | b | c | d | |
---|---|---|---|---|
GIMS | 3.62 | 3.43 | 0.43 | 0.14 |
GIM | 252 | 161 | 21 | 6 |
PIC | 355 | 226 | 26 | 8 |
GIF | 567 | 350 | 79 | 20 |
PNG | 615 | 444 | 66 | 50 |
JPG | 980 | 824 | 268 | 187 |
4. Evaluation Experiment for the Proposed System
4.1. Outline of the Evaluation Experiment
- (1)
- Following the system flow, the time is measured for the calculation of the optimal locations of four ZigBee terminals.
- (2)
- The experimenters transmit and receive disaster related information at 20 different spots. On each spot, the communication speed and the communication quality were measured.
- (3)
- Then, the experimenters obtain new map information about their vicinity from a control center using GPS information and update it. After that, the new range of the radio communication is calculated and visualized.
4.2. Results of the Evaluation Experiment
4.2.1. Installation and Preparation Time
4.2.2. Communication Availability
4.2.3. Communication Speed
4.2.4. Sending and Receiving Geographical Data Updates
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Kawamura, Y.; Wagner, M.; Jang, H.; Nobuhara, H.; Shibuya, T.; Kitahara, I.; Dewan, A.M.; Veenendaal, B. A Multimedia Data Visualization Based on Ad Hoc Communication Networks and Its Application to Disaster Management. ISPRS Int. J. Geo-Inf. 2015, 4, 2004-2018. https://doi.org/10.3390/ijgi4042004
Kawamura Y, Wagner M, Jang H, Nobuhara H, Shibuya T, Kitahara I, Dewan AM, Veenendaal B. A Multimedia Data Visualization Based on Ad Hoc Communication Networks and Its Application to Disaster Management. ISPRS International Journal of Geo-Information. 2015; 4(4):2004-2018. https://doi.org/10.3390/ijgi4042004
Chicago/Turabian StyleKawamura, Youhei, Markus Wagner, Hyongdoo Jang, Hajime Nobuhara, Takeshi Shibuya, Itaru Kitahara, Ashraf M Dewan, and Bert Veenendaal. 2015. "A Multimedia Data Visualization Based on Ad Hoc Communication Networks and Its Application to Disaster Management" ISPRS International Journal of Geo-Information 4, no. 4: 2004-2018. https://doi.org/10.3390/ijgi4042004
APA StyleKawamura, Y., Wagner, M., Jang, H., Nobuhara, H., Shibuya, T., Kitahara, I., Dewan, A. M., & Veenendaal, B. (2015). A Multimedia Data Visualization Based on Ad Hoc Communication Networks and Its Application to Disaster Management. ISPRS International Journal of Geo-Information, 4(4), 2004-2018. https://doi.org/10.3390/ijgi4042004