This application claims priority to Taiwan Application Serial Number 103121938, filed Jun. 25, 2014, the entirety of which is herein incorporated by reference.
1. Field of Invention
The invention relates to a monitoring and pre-warning system, and particularly relates to a monitoring and pre-warning system and method that may integrate heterogeneous network for disaster prevention.
2. Description of Related Art
In typical, there are two types of disaster prevention system. One is an onsite disaster prevention system, and the other is a regional disaster prevention system. The onsite disaster prevention system is used to process a rapid disaster information report for a fixed point, such as a school Each detecting apparatus in the onsite disaster prevention system senses the disaster information to generate a corresponding warning individual. In other words, it is not necessary to integrate different disaster information from different detecting apparatus to generate the warning information. Therefore, the onsite disaster prevention system may generate a pre-warning information immediately for a fixed point. However, because the onsite disaster prevention system only processes a rapid disaster information report for a fixed point, the disaster information is not transferred to other region when the disaster happens. The other region may not use this disaster information to improve the reliability of issuing pre-warning information.
On the other hand, the regional disaster prevention system may receive and integrate disaster information form different fixed points to generate more reliable pre-warning information. In typical, the regional disaster prevention system uses a public network or buries another communication lines to form a communication connection in a region. The building cost and maintenance fee is expensive. Moreover, such communication connection needs base stations to transfer the disaster information. Therefore, once one of the base stations is out of order, the communication connection will be cut off to make the disaster information be not transferred in the region, which causes the regional disaster prevention system be failure.
Accordingly, the present invention provides a disaster monitoring and pre-warning system that may integrate heterogeneous network to provide a complete informing disaster information platform to improve the pre-warning efficiency.
Accordingly, the present invention provides a disaster monitoring and pre-warning system comprises a disaster informing system, peer-to-peer wireless communication devices, a monitoring host and a pre-warning message issuing host. The disaster informing system transfers at least one first disaster information. The peer-to-peer wireless communication devices sense at least one disaster event to generate at least one second disaster information. The at least one second disaster information is transferred by a peer-to-peer technology. The monitoring host receives the at least one first disaster information and the at least one second disaster information to generate a first pre-warning information. The pre-warning message issuing host issues the first pre-warning information.
The present invention also provides a disaster monitoring and pre-warning method. First, a disaster information is received. The disaster information is from a disaster informing system or a plurality of peer-to-peer wireless communication devices. Next, a determination step is performed to determine whether or not the disaster information is a pre-warning information. When the disaster information is not a pre-warning information, a data of the disaster information is compared with a pre-warning threshold value. When the data of the disaster information is larger than the pre-warning threshold value, a determination step is performed to determine whether or not a pre-warning information about the disaster information has been issued. When the pre-warning information about the disaster information has not been issued, the pre-warning information about the disaster information is issued.
Accordingly, an onsite disaster information is transferred in a WMN structure. The WMN structure provides multiple communication paths between a WMN device and another WMN device. Therefore, even though a WMN device in a communication path is failure, the packet original transferred in the communication path may be changed to transfer through another communication path. Therefore, the communication stability may be improved. Moreover, the monitoring host may integrate the regional disaster information into onsite disaster information to provide a complete disaster information.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the invention as claimed.
The invention can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
Reference will now be made in detail to the present embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
The disaster information is usually not transferred to a predetermined position because the communication system is destroyed by the disaster. Therefore, for avoiding the foregoing problem, this present invention utilizes the telecom network to transfer the disaster information for the remote monitoring terminals and utilizes the peer-to-peer wireless transmission technology to transfer the disaster information to adjacent region through the Wireless Mesh Network (WMN) in real time for the sensing and warning terminals. Therefore, when a disaster event happens, even though the base station is out of work, a WMN is still formed among the sensing and warning terminals to achieve pre-warning function in real time. Many WMN devices are disposed in a WMN. Each WMN device has receiving and transferring information function to wireless communicate with other WMN device to transfer the packet. Thus, the communication between the WMN devices and between the WMN device and the network is changed from wired to wireless to form WMN structure, which provides multiple communication paths from a WMN device to another WMN device. In other words, even though a WMN device in the WMN structure is out of work, a WMN device still can communicate with another WMN device through other communication paths without the failed WMN device. Thus, the communication interruption situation because of the WMN device out of work is not happened. Accordingly, when an information is transferred to a WMN device, this WMN device may select another WMN device to transfer this information. Such information transmission process is continuously performed until this information is transferred to the wireless gateway. Then, the wireless gateway transfers this information to the network.
Moreover, a sensing module or a warning module is selectively disposed in each WMN device, such as the WMN main station 102, each of the WMN relay stations 103 and each of the WMN assistant stations 104, to serve as a sensing terminal or a warning terminal. The sensing module is a rainfall sensor, a water stage sensor or an earthquake sensor. The warning module is a speaker. The WMN main station 102 is a base station of the WMN. The WMN main station 102 receives disaster information sensed by the WMN assistant stations 104 or the WMN relay stations 103 through the WMN relay stations 103. That is, the disaster information sensed by each WMN assistant station 104 and each WMN relay station 103 is transferred to the WMN main station 102 through other WMN relay stations 103 to upload the monitoring host 101. Then, the monitoring host 101 sends this disaster information to the pre-warning message issuing host 105 that generates pre-warning message to the mobile phone 107 to inform the public. Moreover, the WMN main station 102 has a two-way information flow interaction function. That is, the WMN main station 102 not only may transfer the disaster information sensed by the WMN assistant stations 104 and WMN relay stations 103 to the monitoring host 101 but also may require the monitoring host 101 the disaster information transferred from the disaster informing system 108. Then, the WMN main station 102 may transfer the disaster information from the disaster informing system 108 to the WMN assistant stations 104 and WMN relay stations 103. The WMN assistant stations 104 and WMN relay stations may warn the public through the warning module disposed thereon. In other words, the WMN assistant stations 104 and the WMN relay stations 103 are a sensing terminal and a warning terminal, which improves the pre-warning function. On the other hand, for improving the communication quality, the WMN assistant stations 104 and the WMN relay stations 103 are disposed outside of a house and the WMN main station 102 is disposed in a house for operators to manage in convenience.
In this embodiment, the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 have similar structure that include the micro-controller, the wireless communication module and the routing module. The display and the sensing module are selectively disposed in the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240. That is, if one of the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 is only used to transfer the disaster information, it is not necessary to dispose the display and the sensing module thereon. Moreover, the displays 202, 212, 222, 232 and 242 in the claimed invention are used to inform the disaster information. However, in another embodiment, other warning apparatus, such as speakers, can also be used to inform the public.
The micro-controllers 201, 211, 221, 231 and 241 of the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 are used to serve as main controllers. The routing modules 205, 215, 225, 235 and 245 couple with the micro-controllers 201, 211, 221, 231 and 241 respectively to determine the path of the disaster information from source to destination. The routing module 205, 215, 225, 235 and 245 send the path to the micro-controllers 201, 211, 221, 231 and 241 respectively. The wireless communication modules 204, 214, 224, 234 and 244 couple with the routing module 205, 215, 225, 235 and 245 to wireless transfer and receive the disaster information according to the control of the routing module 205, 215, 225, 235 and 245. The sensing modules 203, 213, 223, 233 and 243 couple with the micro-controllers 201, 211, 221, 231 and 241 respectively to detect a disaster data and transfer this data to the micro-controllers 201, 211, 221, 231 and 241 respectively. The displays 202, 212, 222, 232 and 242 couple with the micro-controllers 201, 211, 221, 231 and 241 respectively to display the sensing data from the sensing modules 203, 213, 223, 233 and 243, or the operation stat of the WMN device, or the pre-warning information. Moreover, because the WMN main station 200 is responsible to the logical arrangement and operating of the WMN, a network management module 206 is disposed in the WMN main station 200. On the other hand, an additional wired communication module 207 is also is disposed in the WMN main station 200 to insure that the WMN main station 200 may wired or wireless communicate with the monitoring host 101.
In this embodiment, all the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 are used not only to transfer disaster information but also to sense the disaster data. Therefore, all the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 are disposed sensing modules. Moreover, if all the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 are required to inform the disaster information, all the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 are disposed warning devices (not shown in the
Accordingly, when the monitoring host 101 wants to acquire the data of the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240, the monitoring host 101 may send an acquiring to the WMN main station 200. Then, the network management module 206 of the WMN main station 200 may send the required data, such as the network connection state, the sensing module connection state or the reading data of the sensing module, of the WMN main station 200, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 to the monitoring host 101 through the wired communication 207 or the wireless communication module 204. In an embodiment, the network management module 206 uses a network management protocol, such as a SNMP protocol, to manage this WMN.
On the other hand, the WMN main station 200 may require the disaster informing system 108 to transfer the latest disaster information through the wired communication 207 or the wireless communication module 204. The WMN main station 200 may also require the sensing data of the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 through the wireless communication module 204. The WMN main station 200 further requires the sensing data from the sensing module 203 of the WMN main station 200 through the first micro-controller 201. Then, the WMN main station 200 may integrate all the data to generate a pre-warning information according to a rule. The WMN main station 200 may inform the public the pre-warning information through the display 202. The WMN main station 200 may also send the pre-warning information to the monitoring host 101 to inform the mobile 107 of the public through the pre-warning message issuing host 105. On the other hand, if the pre-warning information is generated according to the latest disaster information that the WMN main station 200 requires the disaster informing system 108 through the wired communication 207 or the wireless communication module 204, the WMN main station 200 may transfer this pre-warning information to the wireless modules 214, 224, 234 and 244 of the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 through the wireless communication module 204. Then, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 may inform this pre-warning information to the public through the displays 212, 222, 232, and 242.
On the other hand, after the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 receive the sensing data from the sensing modules 213, 223, 233 and 243, the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 may also generate a pre-warning information according to a rule. Then, the routing modules 215, 225, 235 and 245 of the three WMN relay stations 210, 220 and 230 and the WMN assistant station 240 may decide a best path to transfer this pre-warning information to the WMN main station 200. For example, when the WMN assistant station 240 receives the sensing data from its sensing module 243, the routing modules 245 may decide a best path, such as form the third WMN relay station 230 and the first WMN relay station 210 to transfer this pre-warning information to the WMN main station 200. The WMN main station 200 may send this pre-warning information to the monitoring host 101 to inform the mobile 107 of the public through the pre-warning message issuing host 105. In this embodiment, there are three WMN relay stations 210, 220 and 230. Therefore, even though the third WMN relay station 230 is failure, the routing modules 245 of the WMN assistant station 240 may change the path in real time to avoid the third WMN relay station 230, such as form the second WMN relay station 220 and the first WMN relay station 210 to transfer this pre-warning information to the WMN main station 200. Therefore, according to this embodiment, the communication quality and the communication reliable are improved.
The monitoring host 101 includes a data output module 110, a priority determination module 120, a data processing module 130, a data input module 140, a database module 150 and an assistant decision module 160. The data input module 140 collects the data from the WMN main station 102 and the disaster informing system 108 to transfer to the data processing module 130 to process. Then, the data processing module 130 stores the processed data to the database module 150. Next, the priority determination module 120 determines the most urgent pre-warning information according an issuing rule to transfer to the data output module 110. Then, the data output module 110 outputs the pre-warning information to the pre-warning message issuing host 105 to inform the mobile 107 of the public. On the other hand, the data output module 110 may also output the pre-warning information to the WMN main station 102 to transfer to the WMN relay stations 103 and WMN assistant stations 104 to inform the public through displays thereon. The monitoring host 101 further comprises an assistant decision module 160 that can provide an additional data from the data output module 110 to assist the priority determination module 120 to rearrange the priority. For example, the assistant decision module 160 is an image monitor. In an embodiment, the data output module 110 outputs the rainfall data from the sensing module of the WMN relay stations 103 and WMN assistant stations 104. However, the rainfall data does not reach a threshold value to issue a pre-warning information. Therefore, no any pre-warning information is issued. At this time, because the assistant decision module 160 is an image monitor disposed closed to a river, the assistant decision module 160 can provide a real time image of the water stage data of this river to the priority determination module 120 to determine whether or not to rearrange the priority and to issue a pre-warning information.
The pre-warning message issuing host 105 may further provide a location based service (LBS) according to the GPS data transferred from the WMN relay stations 103 and the WMN assistant stations 104. That is, the pre-warning message issuing host 105 may issue a pre-warning information to inform the public according to the GPS data. For example, if P wave sensing modules disposed on the WMN relay stations 103 and the WMN assistant stations 104 sense earthquake information, the pre-warning message issuing host 105 issues a pre-warning information to inform the public according to the GPS data. A Short Message Service or an Application program, such as the skype or the line, is used to help the pre-warning message issuing host 105 to inform the public.
As shown in the
In step 502, the disaster information is stored in the database module. In an embodiment, the data processing module 130 stores the disaster information in the database module 150. The data processing module 130 also sends the disaster information to the priority determination module 120.
In step 503, a determination step is performed to determine whether or not the disaster information is a pre-warning information. In an embodiment, the priority determination module 120 determines whether or not the disaster information is a pre-warning information. If the disaster information is a pre-warning information, which means this disaster information has been decided by an expert, the disaster information has to be sent out immediately. Accordingly, in step 504, a pre-warning information is sent out. In an embodiment, the monitoring host 101 generates a pre-warning information to the data output module 110. Then, the data output module 110 outputs the pre-warning information to the pre-warning message issuing host 105 to inform the mobile 107 of the public. On the other hand, the data output module 110 may also output the pre-warning information to the WMN main station 102 to transfer to the WMN relay stations 103 and WMN assistant stations 104 to inform the public through displays thereon. If the disaster information is not a pre-warning information, which means this disaster information has not been decided by an expert, the disaster information has to be further analyzed. Accordingly, in step 505, this disaster information is compared with a threshold value to determine whether or not to issue a pre-warning information. In an embodiment, this disaster information is compared with a threshold value recorded in a record table stored in the database module 150 to determine whether or not the sensing value of the disaster information is larger than the threshold value, and then to determine whether or not to issue a pre-warning information.
When the sensing value of the disaster information is larger than the threshold value, a step 506 is performed. In step 506, a determination step is performed to determine whether or not a same pre-warning information has been issued. In an embodiment, for reducing the number to issue the pre-warning information, a determination step is performed to determine whether or not a same pre-warning information has been issued. If a same pre-warning information has been issued, the pre-warning information does not be issued in step 508. If a same pre-warning information has not been issued, the pre-warning information is issued in step 509. Then, in step 510, the pre-warning information is sent out. In an embodiment, the monitoring host 101 generates a pre-warning information to the data output module 110. Then, the data output module 110 outputs the pre-warning information to the pre-warning message issuing host 105 to inform the mobile 107 of the public. On the other hand, the data output module 110 may also output the pre-warning information to the WMN main station 102 to transfer to the WMN relay stations 103 and WMN assistant stations 104 to inform the public through displays thereon.
When the sensing value of the disaster information is less than the threshold value, a step 507 is performed. In step 507, a determination step is performed to determine whether or not a same pre-warning information has been issued. In an embodiment, for reducing the number to issue the pre-warning information, a determination step is performed to determine whether or not a same pre-warning information has been issued. If no any same pre-warning information has been issued, which means there is no disaster event happens, a step 511 is performed. No any pre-warning information is issued in step 511. If a same pre-warning information has been issued, which means the disaster event is over, a step 512 is performed to generate a removing pre-warning information. Then, the removing pre-warning information is sent out is step 513. In an embodiment, the monitoring host 101 generates the removing pre-warning information to the data output module 110. Then, the data output module 110 outputs the removing pre-warning information to the pre-warning message issuing host 105 to inform the mobile 107 of the public. On the other hand, the data output module 110 may also output the removing pre-warning information to the WMN main station 102 to transfer to the WMN relay stations 103 and WMN assistant stations 104 to inform the public through displays thereon.
On the other hand, all the WMN main station 102, the WMN relay stations 103 and WMN assistant stations 104 have micro-controllers. The record table of the
Accordingly, the disaster monitoring and pre-warning system may integrate onsite disaster information and regional disaster information. The monitoring host may integrate the regional disaster information into onsite disaster information to provide a complete disaster information. Moreover, the onsite disaster information is transferred in a WMN structure. In a WMN structure, each WMN device has transferring and receiving function. The packet from a WMN device can be passed by another WMN device. Therefore, the transferring range is enlarged. On the other hand, the WMN structure provides multiple communication paths between a WMN device and another WMN device. In other words, even though a WMN device in a communication path is failure, the packet original transferred in the communication path may be changed to transfer through another communication path. Therefore, the communication stability may be improved.
Although the present invention has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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103121938 A | Jun 2014 | TW | national |
Number | Name | Date | Kind |
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7705721 | Chen | Apr 2010 | B1 |
20120112901 | Chasko | May 2012 | A1 |
Number | Date | Country |
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2012015784 | Feb 2012 | WO |
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Fire Agency of the Ministry of Interior of Taiwan, R.O.C., Cloud Planning for Disaster Prevention and Rescue, Aug. 9, 2012(http://www.nfa.gov.tw/main/List.aspx?ID=&MenuID=745). |
Chung-Hsin Lai et al., Investigation of Application of Short Message Service in Agricultural Information Communication System, 2012. |
The 2nd examination report of the corresponding Taiwan application issued on Aug. 24, 2015. |
Number | Date | Country | |
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20150379863 A1 | Dec 2015 | US |