Scheduling method of fire-fighting dispatcher equipment

Through the digital and informatization construction of fire dispatcher equipment, the problems of loose attendance management, difficult communication records and insufficient resource utilization in fire micro stations have been solved, efficient police situation handling and resource scheduling have been achieved, and the digitalization and linkage capabilities of the fire protection system have been improved.

CN120455494AActive Publication Date: 2025-08-08XIAMEN FOUR FAITH COMM TECH
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Patent Information

Application Number
CN202510919654.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-04
Publication Date
2025-08-08
Estimated Expiration
2045-07-04

AI Technical Summary

Technical Problem

Firefighting micro-stations have problems such as loose attendance management of site personnel, difficult to track communication records, poorly related to surrounding micro-stations and low level of digital information, resulting in imperfect fire extinguishing and rescue systems and difficult to maximize the use of micro-station resources.

Method used

It provides a scheduling method for fire dispatcher equipment. Through the functions of equipment registration, information synchronization, alarm monitoring, interactive services and equipment inspection in the district station mode and micro station mode, it realizes the digital information construction of fire dispatcher equipment, and supports dual-screen dual-touch operation, video conferencing, equipment abnormality detection and rapid alarm processing.

Benefits of technology

It realizes the multi-purpose operation of fire dispatcher equipment, supports efficient police situation processing and resource allocation, ensures stable operation of equipment, improves the degree of informatization, and facilitates police reception and handling operations and resource dispatch.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a dispatching method of fire-fighting dispatching machine equipment. The dispatching method comprises the following steps: entering a corresponding working mode according to data; when a district station mode is entered, the fire-fighting dispatching machine reports equipment information after equipment registration; starting a dispatching station deployment graph display service, a station alarm monitoring service and a district station worker interaction service; when a micro station mode is entered, equipment information is reported after fire-fighting dispatcher equipment is registered; the site information is periodically synchronized, and fire-fighting site deployment is displayed on a secondary screen in a map and site information mode; and starting an equipment inspection service, monitoring a district station request service, monitoring a lower computer alarm condition service and a micro station worker interaction service. According to the invention, digital informatization construction of fire-fighting dispatcher equipment (micro-stations and district stations) is realized.
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Description

Technical Field

[0001] The present invention relates to the technical field of firefighting, and in particular to a dispatching method for firefighting dispatch equipment. Background Art

[0002] In the past, firefighting microstations were primarily equipped with firefighting equipment and telephones. Station personnel managed the equipment and, when a fire alarm occurred, used the telephone to report it to superiors for dispatch or to contact nearby firefighting microstations for support. Notices from higher-level district fire stations were issued via paper documents (for non-urgent matters) or by phone. Current firefighting microstations suffer from the following issues: 1. Loose attendance management of site personnel; 2. Using telephone to communicate makes communication records difficult to track; 3. The connection between surrounding micro-stations is not close, and the fire fighting and rescue system is not perfect. 4. The digitalization and informationization of the site are low, and it is difficult to maximize the utilization of micro-site resources. Summary of the Invention

[0003] In view of this, the purpose of the present invention is to propose a dispatching method for fire dispatching equipment to realize the digital information construction of fire dispatching equipment (micro station, district station).

[0004] In order to achieve the above technical objectives, the technical solution adopted by the present invention is: The present invention provides a dispatching method for fire dispatching equipment, which is applied to fire dispatching equipment and includes: S1. When the fire dispatch device is started, it enters the corresponding working mode according to the pre-configured parameters. The working mode includes the area station mode and the micro station mode; S2. When entering the district station mode, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform; and the dispatch station deployment map display service, station alarm monitoring service and district station staff interaction service are activated; S3. Use the dispatch site deployment map display service to synchronize site information regularly, and display the fire station deployment on the secondary screen in the form of a map and site information; S4. When the alarm signal is reported through the site alarm monitoring service, the micro-station fire dispatch is initiated; S5. Execute the functions of on-duty attendance, broadcast / message notification, micro-station or district station name, and video conference initiation through the district station staff interactive service; S6. When entering the micro-station mode, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform. After registration is completed, the site information is synchronized regularly, and the fire station deployment is displayed on the secondary screen in the form of a map plus site information. The equipment inspection service, monitoring area station request service, monitoring lower-level machine alarm service and micro-station staff interaction service are started. S7: When the equipment inspection service detects an abnormality in the lower-level equipment connected to the current fire dispatch equipment, it issues an abnormality message to prompt the on-duty personnel to perform maintenance; S8. Request service through the monitoring area station. Request information sent by the monitoring area station, and perform roll call, broadcast, message or video conferencing services according to the type of request information. S9, when the alarm information is monitored by monitoring the lower computer alarm service, the alarm bell, video projection display and help prompt are activated; S10. Support attendance function and support application of on-duty personnel through micro-station staff interactive service.

[0005] Furthermore, the S1 specifically includes: S11. Log in to the configuration function page of the main program through the administrator account; S12. Configure and modify parameters corresponding to the area station mode or micro station mode on the configuration function page; S13. The main program enters the corresponding working mode according to the corresponding parameters: when the parameters are the parameters corresponding to the area station mode, the main program enters the area station mode; when the parameters are the parameters corresponding to the micro station mode, the main program enters the micro station mode.

[0006] Furthermore, in S2 and S6, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform. Specifically, the following steps are included: S21. When the main program enters the area station mode or micro station mode, the UI interface of the area station mode or micro station mode is started to enter the device registration thread; S22. Read the device ID, the username and password stored in the local flash memory through the device registration thread, and connect to the cloud platform server using the http protocol; S23. Submit the device ID, user name, and password to the cloud platform server for authorization. If the authorization is successful, the registration is successful, and the device information of the current fire dispatch machine device is reported to the fire cloud platform. The device information includes device ID, site location, site name, site type, device online status, device alarm status, historical unprocessed alarm information, historical unreported attendance information, and historical unreported broadcast / message reading status; if the authorization is unsuccessful, it means that the login failed. After the failure is confirmed, the username and password input box is activated, the username and password are modified, and the device registration thread is entered after re-login, and the process returns to S22; S24. The firefighting cloud platform groups the equipment according to the device ID corresponding to the current firefighting dispatch equipment.

[0007] Furthermore, the station information is synchronized regularly in S3 and S6, and the fire station deployment is displayed on the secondary screen in the form of a map plus station information, specifically including: S31. The main program starts a site information synchronization thread, which starts a timer through the site information synchronization thread to send a site information synchronization request to the fire cloud platform. After receiving the site information synchronization request, the fire cloud platform sends the site information of all fire dispatch devices in the same group as the current fire dispatch device to the current fire dispatch device. The site information includes: device ID, site location, site name, site type, device online status, and device alarm status. S32. The current fire dispatch device stores the received site information in the local flash and sends a broadcast message to notify the secondary screen display APP to read the site information from the local flash; S33, the secondary screen displays that the APP calls the map SDK to start the map UI and monitors the site information in real time through the map UI; S34. When the secondary screen displays that the APP has obtained the site information, the map UI monitors that the site information has been updated and updates the location and status of each fire dispatch device on the map based on the obtained site information of each fire dispatch device; S35. The map UI has a map operation toolbar, through which site information search operations, site information query operations, and map zooming and moving operations are performed; when a site information search operation is performed, the map is automatically moved to the searched site location according to the searched site name; when a site information query operation is performed, a pop-up window is first displayed to display a list of query results, including query online sites, alarm status sites, and corresponding type sites. By performing the map zooming and moving operations, a site in the result list is selected, and the map is moved to the site location.

[0008] Furthermore, the S4 specifically includes: S41, the main program enters the background alarm monitoring thread, and monitors the alarm signal in real time through the background alarm monitoring thread; S42. When an alarm signal is received, the micro-station fire dispatch is initiated and an alarm rings to remind the district station on-duty personnel to provide micro-station fire dispatch support; among them, micro-station fire dispatch refers to sending micro-station support broadcasts to the nearest micro-station and initiating video intercoms to designated micro-stations for video telephone command support.

[0009] Furthermore, the S5 specifically includes: S51. The main program is performed through the UI interface: attendance check, broadcast / message notification issuance, micro-station or district station name and video conference initiation business work; S52. When executing the on-and-off work attendance check, enter the attendance UI program. If the attendance information has not been entered, enter S521; if the attendance information has been entered, select the on-and-off work attendance check and enter S522; S521. Edit the information of the person to be entered, start the camera collection service and the fingerprint information collection service to collect the face information and fingerprint information of the person to be entered. First, determine whether the face information and fingerprint information are detected. If not, it means that the entry has timed out or the entry recognition is abnormal, and a prompt of entry failure is given. If so, re-enter the verification. Second, determine whether the face information and fingerprint information are detected. If so, the entry is successful, the personnel information is stored locally and uploaded to the fire cloud platform synchronously. If not, it means that the entry has timed out or the entry recognition is abnormal, and a prompt of entry failure is given. S522, start the camera collection service and the fingerprint information collection service to detect face information and fingerprint information in real time, and determine whether face information or fingerprint information is detected. If not, it means that the face information or fingerprint information has not been entered due to timeout or the entry recognition is abnormal, and return to the UI interface of the main program. If so, match the collected face information or fingerprint information with the local database to determine whether the match is successful. If so, it means that the on-the-job or off-the-job attendance is normal, generate attendance information records to the local database and upload them to the fire cloud platform simultaneously. If not, it means that the person has not been entered. If the timeout has not been entered, return to the UI interface of the main program; S53. When executing broadcast / message notification, if broadcast notification is selected, proceed to S531; if message notification is selected, proceed to S532; S531. Start the voice recording service, and use the voice recording service to determine whether the microphone button is pressed. If so, collect the audio of the microphone channel. If not, collect the audio of the microphone array channel, and generate an audio file after recording the audio of a preset length; determine whether audio playback is required. If so, play the recorded audio; if not, do not play the audio; then proceed to the next step to determine whether to send a prompt. If so, start the site information list, select the target device to be sent, and submit the audio file and the device ID of the target device to the fire cloud platform through the http protocol. The fire cloud platform forwards the audio file to the target device according to the device ID of the target device; if not, do not process it; S532. Start the message entry box and keyboard function, enter the message text, confirm the editing is complete, start the site information list, select the target device to send, and submit the message text and the device ID of the target device to the fire protection cloud platform via the HTTP protocol. The fire protection cloud platform forwards the audio file to the target site based on the device ID of the target device; S54. When executing the roll call of a micro-station or district station, a list of micro-station / district station devices in the same group is displayed in the UI interface. When the corresponding target device in the micro-station / district station device list is selected for roll call, the background service program forwards the roll call request signaling to the target device through the fire protection cloud platform and waits for a roll call response. When a roll call response is received successfully, a roll call success message is displayed on the UI interface, the roll call record is saved to the local database, and the record is synchronously reported to the fire protection cloud platform. When no response is received after a timeout or the response fails, a roll call failure message is displayed on the UI interface, the roll call record is saved to the local database, and the record is synchronously reported to the fire protection cloud platform. S55. When initiating a video conference, the video conference terminal to be used for video conferencing with the current device is selected as the target device. The background service program sends a conference request signaling to the target device and waits for a response from the requested target device. When a response is received, an audio and video channel is established based on the response information, and the audio and video acquisition service and the codec service are started. During the interactive process of the video conference, when the current device needs to send audio and video to the target device, the current device collects audio and video data through the audio and video acquisition service, then encodes the collected audio and video data through the codec service and sends it to the target device. When the current device needs to receive audio and video sent by the target device, it receives the audio and video data from the target device and decodes the audio and video data through the codec service. The audio and video data sent by the current device and the received audio and video data are played on the secondary screen respectively. When a video conference is in progress, the main screen automatically switches to video conference mode to display the other party's video, and displays the local video in the picture-in-picture in the lower right corner of the screen. When the video conference ends, it automatically switches back to the UI interface working mode. Among them, when conducting a video conference, the audio and video collection defaults to collecting audio data of the microphone array channel. When the hand microphone button is detected to be pressed, the button's jump state is obtained, the audio input state parameter is set to hand microphone input, and a broadcast is sent to the recording program to determine whether the current recording is a hand microphone channel recording. If so, the recording continues. If not, the recording is stopped and the hand microphone channel recording is reopened. When the hand microphone button is detected to be released, the button's jump state is obtained, the audio input state parameter is set to microphone array input, and a broadcast is sent to the recording program to determine whether the current recording is a hand microphone channel recording. If so, the recording is stopped and the microphone array channel recording is reopened. If not, the recording continues. Among them, when conducting a video conference, the interrupt processing function of the headphone insertion or removal is registered through the audio chip driver, and the audio parameter configuration API interface is exported. When the headphone is inserted or removed, an interrupt is generated, and the parameter configuration of the audio chip is executed through the interrupt processing function, specifically including: first initializing the parameters of the audio chip, and then judging whether the headphone is in the headphone insertion state. If so, first configure the headphone output channel through the interrupt processing function, and then configure the power amplifier output channel and then control the cancellation of the power amplifier mute function; if not, configure the power amplifier output channel through the interrupt processing function and then control the cancellation of the power amplifier mute function; when the audio output channel needs to be switched, call the audio parameter configuration API interface to enter the parameter configuration function interface. If only headphone output is required, configure the headphone output channel and turn on the power amplifier mute function. If only power amplifier output is required, configure the power amplifier output channel and cancel the power amplifier mute function.

[0010] Furthermore, the S7 specifically includes: S71. Add, delete, modify, and configure the inspection mode of the lower computer devices through the setting function of the main program; wherein the inspection mode includes ICMP, HTTP, and Telnet protocol modes; S72. The device IP and inspection method are read from the configuration list regularly through the device inspection service, and the corresponding protocol method is started to detect whether the lower-level device is online. If it is not online, an abnormal information is sent to the UI interface of the main program, and a pop-up window is displayed on the UI interface of the main program to prompt the abnormal information and the on-duty personnel to perform equipment maintenance; if it is online, the next device inspection is carried out.

[0011] Furthermore, the S8 specifically includes: S81, using the monitoring zone station request service to monitor information sent by the zone station in real time, including zone station name information, zone station broadcast / message information, and video conference information; S82. When the district and station name information is received, the district and station name information is sent to the UI interface of the main program. A pop-up window prompts the on-duty personnel to respond to the roll call. The on-duty personnel must respond on the UI interface within the set time. If the timeout occurs, no response is reported. S83. When receiving a broadcast or message from a zone station, a pop-up window will prompt the user to read the current broadcast or message. If the message is not read within the time limit, the prompt window will automatically close and the unread broadcast or message will be sent to the main program UI interface. The main program UI interface will periodically scroll above the main screen to prompt the on-duty personnel to read it. After checking, the on-duty personnel will report that they have read it and remove it from the scrolling screen. S84. When receiving video conference information, switch the main screen to video conference mode. After the conference ends, switch the main screen back to standard working mode.

[0012] Furthermore, the S9 specifically includes: S91, monitor the alarm information of the lower computer alarm in real time through the monitoring lower computer alarm service, and when an alarm information report is received, automatically start the alarm bell to remind, obtain the corresponding environment camera video and put it on the secondary screen for display; S92: Determine whether an alarm is required. If so, report the alarm information to the firefighting cloud platform. The fire protection cloud platform forwards the alarm information to the district station and each micro-station terminal of the corresponding zone; after the alarm is reported, the alarm service program starts the micro-station alarm linkage, executes the relay opening or closing operation according to the pre-configured parameters, and enters S93; if not, it directly enters S93; S93. Determine whether help is needed from surrounding micro-stations. If so, a list of surrounding micro-stations will pop up. The on-duty personnel can select one or more micro-stations for help or broadcast help to all micro-stations with one click. When the micro-station terminal receiving help receives the help message, a help prompt will automatically pop up and ring a bell to remind you. If not, no action will be taken.

[0013] Furthermore, the S10 specifically includes: S101, supporting attendance function and support application of duty personnel through the micro-station staff interactive service; S102. When entering the attendance function for on-duty personnel, the attendance function supports face attendance mode and fingerprint attendance mode. On-duty personnel can choose face or fingerprint to check in and out of work; S103. When entering the support application, the support types include requesting support from surrounding micro-stations and requesting support from district stations. The on-duty personnel select a support type, record the video and report the support application.

[0014] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art: 1. The main program of the fire dispatching machine equipment in the present invention runs different business modes according to pre-configured parameters, realizing multi-purpose terminal equipment.

[0015] 2. The fire dispatch equipment supports dual-screen dual-touch operation. The secondary screen displays the deployment map, fire dispatch equipment status, alarm video and other information to facilitate alarm handling operations and command.

[0016] 3. Through the district station name function, random checks can be conducted at any time to understand the duty status of lower-level stations.

[0017] 4. The alarm reception can directly execute the micro-station dispatch broadcast and the main station alarm request, which is highly networked and digitalized, and can handle the alarm quickly and effectively.

[0018] 5. Through the broadcast and message function, you can get rid of the traditional telephone or paper information communication, and you can check the reading status of the subordinates at any time to confirm whether the information has been delivered in place.

[0019] 6. Support video conferencing to achieve direct face-to-face communication.

[0020] 7. Through the equipment inspection function, abnormal detection of lower-level equipment can be achieved to ensure that abnormal equipment is repaired in time and the stable and reliable operation of fire-fighting equipment is guaranteed.

[0021] 8. The lower computer and sensor receive alarms, obtain alarm information in a timely manner, and execute linked alarms or requests for help to achieve rapid response to alarms, eliminate safety hazards in a timely manner, and protect the safety of people and property.

[0022] 9. Call for help from surrounding micro-stations, quickly mobilize surrounding fire-fighting resources, eliminate safety hazards in a timely manner, and protect the safety of people and property. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0024] Figure 1 This is an architectural diagram of a fire dispatch machine device provided by an embodiment of the present invention.

[0025] Figure 2 This is a topological diagram of the fire dispatch equipment provided by an embodiment of the present invention.

[0026] Figure 3 The present invention provides a flowchart of a method for dispatching fire dispatch equipment.

[0027] Figure 4 This is a schematic diagram of the execution of a fire dispatch machine device in a zone station mode provided by an embodiment of the present invention.

[0028] Figure 5 This is a schematic diagram of the execution of a fire dispatch machine device in micro station mode provided by an embodiment of the present invention.

[0029] Figure 6 This is a device registration flow chart provided by an embodiment of the present invention.

[0030] Figure 7 This is a flowchart of displaying a map on the secondary screen provided by an embodiment of the present invention.

[0031] Figure 8 This is an attendance flow chart provided by an embodiment of the present invention.

[0032] Figure 9 This is a broadcasting flow chart provided by an embodiment of the present invention.

[0033] Figure 10 This is a message flow chart provided by an embodiment of the present invention.

[0034] Figure 11 This is a video conferencing flow chart provided by an embodiment of the present invention.

[0035] Figure 12 This is a flowchart of switching handheld microphone input provided by an embodiment of the present invention.

[0036] Figure 13 This is a flowchart of the audio collection thread provided by an embodiment of the present invention.

[0037] Figure 14 This is a flow chart of parameter configuration for executing an audio chip provided by an embodiment of the present invention.

[0038] Figure 15 This is a flow chart of audio output switching provided by an embodiment of the present invention.

[0039] Description of the numbers in the figure: 1- Main control module, 2- Network communication module, 21- Ethernet interface, 22- 4G / 5G module, 3- Dual-screen display module, 31- Main screen, 32- Secondary screen, 4- Audio input / output module, 41- Microphone array interface, 42- Hand microphone interface, 43- Amplifier interface, 44- Headphone interface, 5- Camera, 6- Fingerprint module, 7- Alarm input module, 8- Positioning module, 9- Storage module, 10- Relay output module. DETAILED DESCRIPTION

[0040] The present invention will be described in further detail below with reference to the accompanying drawings and examples. It is particularly noted that the following examples are intended only to illustrate the present invention and are not intended to limit the scope of the present invention. Similarly, the following examples are only some embodiments of the present invention and are not intended to be exhaustive. All other embodiments obtained by those of ordinary skill in the art without creative effort are intended to fall within the scope of protection of the present invention.

[0041] See Figures 1-15 A dispatching method for a fire dispatching machine device of the present invention is applied to a fire dispatching machine device, wherein the fire dispatching machine device comprises: a main control module 1, a network communication module 2, a dual-screen display module 3, an audio input / output module 4, a camera 5, a fingerprint module 6, an alarm input module 7, a positioning module 8, a storage module 9 and a relay output module 10, wherein the main control module 1 is connected to the network communication module 2, the dual-screen display module 3, the audio input / output module 4, the camera 5, the fingerprint module 6, the alarm input module 7, the positioning module 8, the storage module 9 and the relay output module 10 respectively; Main control module 1, used to run the main program and switch between area station mode and micro station mode according to pre-configured parameters; The network communication module 2, including the Ethernet interface 21 and the 4G / 5G module 22, establishes a connection with the fire protection cloud platform through the Ethernet interface or the 4G module, and realizes device registration, data synchronization, alarm reporting and command issuance; The dual-screen display module 3 includes a main screen 31 and a secondary screen 32. The secondary screen 32 is connected via an HDMI interface. The main screen 31 displays the UI interface of the main program; the secondary screen 32 is used to display the fire station deployment map and status information. It is connected via a touch screen interface and supports map zooming, movement, and station status interaction operations. The audio input / output module 4 includes a microphone array interface 41, a handheld microphone interface 42, an amplifier interface 43, and a headphone interface 44, which supports audio acquisition and switching during video conferencing. The microphone array interface 41 is used for default audio acquisition, and the handheld microphone interface 42 supports physical button triggering of audio channel switching. The amplifier interface 43 is used to connect to the device's built-in small speaker. The headphone interface 44 is used to connect to headphones or an external active amplifier speaker. Camera 5, used for face recognition attendance, video conferencing, and roll call capture Fingerprint module 6, used for fingerprint attendance; The alarm input module 7 adopts an alarm bell, which is used to receive the signal input of the lower computer sensor or alarm through the GPIO or RS485 interface and trigger the alarm bell and linkage operation; Positioning module 8, using GPS positioning system to locate the current device location; The storage module (Flash) 9 is used for local storage of device configuration, attendance records and alarm data.

[0042] Relay output module 10, used to perform alarm linkage control operations; The scheduling method specifically includes the following steps: S1. When the fire dispatch device is started, it enters the corresponding working mode according to the pre-configured parameters. The working mode includes the area station mode and the micro station mode; In this embodiment, S1 specifically includes: S11. Log in to the configuration function page of the main program through the administrator account; S12. Configure and modify parameters corresponding to the area station mode or micro station mode on the configuration function page; S13. The main program enters the corresponding working mode according to the corresponding parameters: when the parameters are the parameters corresponding to the area station mode, the main program enters the area station mode; when the parameters are the parameters corresponding to the micro station mode, the main program enters the micro station mode.

[0043] S2. When entering the district station mode, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform; and the dispatch station deployment map display service, station alarm monitoring service and district station staff interaction service are activated; In this embodiment, the fire dispatch machine equipment is connected to the network and registered with the fire cloud platform in S2. After successful registration, the equipment information is reported to the fire cloud platform. Specifically, it includes: S21. When the main program enters the zone station mode, the UI interface of the zone station mode is started to enter the device registration thread; S22. Read the device ID, the username and password stored in the local flash memory through the device registration thread, and connect to the cloud platform server using the http protocol; S23. Submit the device ID, user name, and password to the cloud platform server for authorization. If the authorization is successful, the registration is successful, and the device information of the current fire dispatch machine device is reported to the fire cloud platform. The device information includes device ID, site location, site name, site type, device online status, device alarm status, historical unprocessed alarm information, historical unreported attendance information, and historical unreported broadcast / message reading status; if the authorization is unsuccessful, it means that the login failed. After the failure is confirmed, the username and password input box is activated, the username and password are modified, and the device registration thread is entered after re-login, and the process returns to S22; S24. The firefighting cloud platform groups the equipment according to the device ID corresponding to the current firefighting dispatch equipment.

[0044] S3. Use the dispatch site deployment map display service to synchronize site information regularly, and display the fire station deployment on the secondary screen in the form of a map and site information; In this embodiment, the station information is synchronized regularly in S3, and the fire station deployment is displayed on the secondary screen in the form of a map plus station information, specifically including: S31. The main program starts a site information synchronization thread, which starts a timer through the site information synchronization thread to send a site information synchronization request to the fire cloud platform. After receiving the site information synchronization request, the fire cloud platform sends the site information of all fire dispatch devices in the same group as the current fire dispatch device to the current fire dispatch device. The site information includes: device ID, site location, site name, site type, device online status, and device alarm status. S32. The current fire dispatch device stores the received site information in the local flash and sends a broadcast message to notify the secondary screen display APP to read the site information from the local flash; S33, the secondary screen displays that the APP calls the map SDK to start the map UI and monitors the site information in real time through the map UI; S34. When the secondary screen displays that the APP has obtained the site information, the map UI monitors that the site information has been updated and updates the location and status of each fire dispatch device on the map based on the obtained site information of each fire dispatch device; S35. The map UI has a map operation toolbar that supports touch operations of the secondary screen and supports site query, search, map zooming and moving functions of deployment information; site information search operations, site information query operations and map zooming and moving operations are performed through the map operation toolbar; when the site information search operation is performed, the map is automatically moved to the searched site location according to the searched site name; when the site information query operation is performed, a pop-up window is first displayed to display the query result list, including the query online sites, alarm status sites and corresponding type sites. By performing the map zooming and moving operations, a site in the result list is selected, and the map is moved to the site location.

[0045] Among them, the site status icon is in gray, blue and red (other colors can be changed according to user preferences), corresponding to indicating that the device is not online, the device is online normally, and the device is online and in an alarm state.

[0046] S4. When the alarm signal is reported through the site alarm monitoring service, the micro-station fire dispatch is initiated; In this embodiment, S4 specifically includes: S41, the main program enters the background alarm monitoring thread, and monitors the alarm signal in real time through the background alarm monitoring thread; S42. When an alarm signal is received, the micro-station fire dispatch is initiated and an alarm rings to remind the district station on-duty personnel to provide micro-station fire dispatch support; among them, micro-station fire dispatch refers to sending micro-station support broadcasts to the nearest micro-station and initiating video intercoms to designated micro-stations for video telephone command support.

[0047] S5. Execute the functions of on-duty attendance, broadcast / message notification, micro-station or district station name, and video conference initiation through the district station staff interactive service; In this embodiment, S5 specifically includes: S51. The main program is performed through the UI interface: attendance check, broadcast / message notification issuance, micro-station or district station name and video conference initiation business work; S52. When executing the on-and-off work attendance check, enter the attendance UI program. If the attendance information has not been entered, enter S521; if the attendance information has been entered, select the on-and-off work attendance check and enter S522; S521. Edit the information of the person to be entered, start the camera collection service and the fingerprint information collection service to collect the face information and fingerprint information of the person to be entered. First, determine whether the face information and fingerprint information are detected. If not, it means that the entry has timed out or the entry recognition is abnormal, and a prompt of entry failure is given. If so, re-enter the verification. Second, determine whether the face information and fingerprint information are detected. If so, the entry is successful, the personnel information is stored locally and uploaded to the fire cloud platform synchronously. If not, it means that the entry has timed out or the entry recognition is abnormal, and a prompt of entry failure is given. S522. Start the camera collection service and the fingerprint information collection service to detect the face information and fingerprint information in real time, and determine whether the face information or fingerprint information is detected. If not, it means that the face information or fingerprint information has not been entered due to timeout or the entry recognition is abnormal, and return to the UI interface of the main program. If so, match the collected face information or fingerprint information with the local database to determine whether the match is successful. If so, it means that the on-the-job or off-the-job attendance is normal (the first time the same user performs attendance on the same day, the system defaults to on-the-job attendance. The same user has performed on-the-job attendance and subsequent attendance operations are all judged as off-the-job attendance). Generate attendance information records in the local database and upload them to the fire cloud platform synchronously. If not, it means that the person has not been entered. If the timeout is not entered, return to the UI interface of the main program; among them, on-the-job and off-the-job attendance are stored in the local database and synchronized to the fire cloud platform. When the device is offline, it is first stored in the local database and uploaded synchronously when the device is online.

[0048] Among them, the operational process for executing on-duty attendance is as follows: when the UI selects attendance information entry, a new attendance personnel information entry box pops up. After entering the personnel information, click the information entry in the entry box to start the camera collection service and fingerprint information collection service to detect facial information and fingerprint information in real time. When a face or fingerprint is recognized, a pop-up window prompts you to confirm whether to use the face or fingerprint entry. When you select "Confirm" to use it, the UI prompts you to enter it again. The collection service program continues to detect the input information in real time. When you select "Cancel", exit the collection service and return to the new attendance personnel information entry box.

[0049] S53. When executing broadcast / message notification, if broadcast notification is selected, proceed to S531; if message notification is selected, proceed to S532; S531. Start the voice recording service. The voice recording service determines whether the microphone button is pressed according to the property attribute parameter. If so, the microphone channel audio is collected. If not, the microphone array channel audio is collected and the audio of the preset length is recorded to generate an audio file. Determine whether audio playback is required. If so, play the recorded audio. If not, do not play the audio. Then proceed to the next step to determine whether to send a prompt. If so, start the site information list, select the target device to be sent, and submit the audio file and the device ID of the target device to the fire cloud platform through the http protocol. The fire cloud platform forwards the audio file to the target device according to the device ID of the target device. If not, do not process it. S532. Start the message entry box and keyboard function, enter the message text, confirm the editing is complete, start the site information list, select the target device to send, and submit the message text and the device ID of the target device to the fire protection cloud platform via the HTTP protocol. The fire protection cloud platform forwards the audio file to the target site based on the device ID of the target device; After broadcast and message notifications are sent to a microsite, you can check the status of the broadcast messages sent to the corresponding microsite to see whether the broadcast or message information is available. When viewing historical broadcasts, an HTTP request is made to the Fire Protection Cloud Platform to obtain broadcast reading status information. Broadcasts and messages can be sent to one or more microsite devices simultaneously.

[0050] S54. When executing the roll call of a micro-station or district station, a list of micro-station / district station devices in the same group is displayed in the UI interface. When the corresponding target device in the micro-station / district station device list is selected for roll call, the background service program forwards the roll call request signaling to the target device through the fire protection cloud platform and waits for a roll call response. When a roll call response is received successfully, a roll call success message is displayed on the UI interface, the roll call record is saved to the local database, and the record is synchronously reported to the fire protection cloud platform. When no response is received after a timeout or the response fails, a roll call failure message is displayed on the UI interface, the roll call record is saved to the local database, and the record is synchronously reported to the fire protection cloud platform. Among them, the micro station or district station name mentioned here refers to the district station initiating a roll call to the micro station; when the named end device (micro station) receives the roll call information, the roll call response box will automatically pop up and count down for 30 seconds. If the on-duty personnel does not operate within 30 seconds, the information box will be automatically closed and the roll call no response information will be returned. When the on-duty personnel clicks "OK", the information box will be closed, the camera will capture the image and return the roll call success response information, and the image will be reported to the fire cloud platform.

[0051] Among them, the captured image of the roll call response and the roll call record information are merged and stored as the same record on the fire cloud platform.

[0052] S55. When initiating a video conference, the video conference terminal to be connected to the current device is selected as the target device. The background service program sends a conference request signaling to the target device and waits for a response from the requested target device. When a response is received, an audio and video channel is established based on the response information, and the audio and video acquisition service (camera) and codec service are started. During the interactive process of the video conference, when the current device needs to send audio and video to the target device, the current device collects audio and video data through the audio and video acquisition service, then encodes the collected audio and video data through the codec service and sends it to the target device. When the current device needs to receive audio and video sent by the target device, it receives the audio and video data from the target device and decodes the audio and video data through the codec service. The audio and video data sent by the current device and the received audio and video data are played on the secondary screen respectively. Among them, the video conference initiation service is to directly connect the video when the superior initiates a video conference to the subordinate (district station to micro station); when the subordinate initiates a video conference to the superior (micro station to district station), it is necessary to wait for the other party to select the "Allow" button before the video can be connected. If no operation is performed within the time limit or the "Reject" button is selected, the video conference will be automatically hung up and ended.

[0053] When a video conference is in progress, the main screen automatically switches to video conference mode to display the other party's video, and displays the local video in the picture-in-picture in the lower right corner of the screen. When the video conference ends, it automatically switches back to the UI interface working mode. Among them, when conducting a video conference, the audio and video collection defaults to collecting audio data of the microphone array channel. When the hand microphone button is detected to be pressed, the button's jump state is obtained, the audio input state parameter is set to hand microphone input, and a broadcast is sent to the recording program to determine whether the current recording is a hand microphone channel recording. If so, the recording continues. If not, the recording is stopped and the hand microphone channel recording is reopened. When the hand microphone button is detected to be released, the button's jump state is obtained, the audio input state parameter is set to microphone array input, and a broadcast is sent to the recording program to determine whether the current recording is a hand microphone channel recording. If so, the recording is stopped and the microphone array channel recording is reopened. If not, the recording continues. Among them, when conducting a video conference, the audio output of the intercom can be output from the device amplifier and headphones at the same time by default; and there is a "Switch Amplifier" function button in the lower toolbar in the video conference mode, allowing on-duty personnel to operate whether the current amplifier audio is output.

[0054] Among them, when conducting a video conference, the interrupt processing function of the headphone insertion or removal is registered through the audio chip driver, and the audio parameter configuration API interface is exported. When the headphone is inserted or removed, an interrupt is generated, and the parameter configuration of the audio chip is executed through the interrupt processing function, specifically including: first initializing the parameters of the audio chip, and then judging whether the headphone is in the headphone insertion state. If so, first configure the headphone output channel through the interrupt processing function, and then configure the power amplifier output channel and then control the cancellation of the power amplifier mute function; if not, configure the power amplifier output channel through the interrupt processing function and then control the cancellation of the power amplifier mute function; when the audio output channel needs to be switched, call the audio parameter configuration API interface to enter the parameter configuration function interface. If only headphone output is required, configure the headphone output channel and turn on the power amplifier mute function. If only power amplifier output is required, configure the power amplifier output channel and cancel the power amplifier mute function.

[0055] S6. When entering the micro-station mode, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform. After registration is completed, the site information is synchronized regularly, and the fire station deployment is displayed on the secondary screen in the form of a map plus site information. The equipment inspection service, monitoring area station request service, monitoring lower-level machine alarm service and micro-station staff interaction service are started. In this embodiment, the fire dispatch machine equipment is connected to the network and registered with the fire cloud platform in S6. After successful registration, the equipment information is reported to the fire cloud platform. Specifically, it includes: S61, when the main program enters the micro station mode, the UI interface of the micro station mode is started to enter the device registration thread; S62, read the device ID, the user name and password saved in the local flash through the device registration thread, and connect to the cloud platform server using the http protocol; S63, submit the device ID, user name and password to the cloud platform server for signing. If the signing is successful, it means that the registration is successful, and the device information of the current fire dispatch machine equipment is reported to the fire cloud platform. The device information includes device ID, site location, site name, site type, device online status, device alarm status, historical unprocessed alarm information, historical unreported attendance information and historical unreported broadcast / message reading status; if the signing is unsuccessful, it means that the login failed. After the failure is confirmed, the user name and password input box is started, the user name and password are modified, and the device registration thread is entered after re-login, and the process returns to S62; S64. The firefighting cloud platform groups the equipment according to the device ID corresponding to the current firefighting dispatch equipment.

[0056] In this embodiment, the station information is synchronized regularly in S6, and the fire station deployment is displayed on the secondary screen in the form of a map plus station information, specifically including: S65. The main program starts a site information synchronization thread, which starts a timer through the site information synchronization thread to send a site information synchronization request to the fire cloud platform. After receiving the site information synchronization request, the fire cloud platform sends the site information of all fire dispatch devices in the same group as the current fire dispatch device to the current fire dispatch device. The site information includes: device ID, site location, site name, site type, device online status, and device alarm status. S66. The current fire dispatch device stores the received site information in the local flash and sends a broadcast message to notify the secondary screen display app to read the site information from the local flash; S67, the secondary screen displays that the APP calls the map SDK to start the map UI and monitors the site information in real time through the map UI; S68. When the secondary screen displays that the APP has obtained the site information, the map UI monitors that the site information has been updated and updates the location and status of each fire dispatch device on the map based on the obtained site information of each fire dispatch device; S69. The map UI has a map operation toolbar, through which site information search operations, site information query operations, and map zooming and moving operations are performed; when a site information search operation is performed, the map is automatically moved to the searched site location according to the searched site name; when a site information query operation is performed, a pop-up window is first displayed to display a list of query results, including query online sites, alarm status sites, and corresponding type sites. By performing the map zooming and moving operations, a site in the result list is selected, and the map is moved to the site location.

[0057] S7. When the equipment inspection service detects an abnormality in the lower-level device connected to the current fire dispatch equipment, it issues an abnormality message to prompt the on-duty personnel to perform maintenance. The lower-level device includes sensor devices and camera devices. When an abnormality is detected in the sensor device or camera device, an abnormality message is issued. In this embodiment, the S7 specifically includes: S71. Add, delete, modify, and configure the inspection mode of the lower computer devices through the setting function of the main program; wherein the inspection mode includes ICMP, HTTP, and Telnet protocol modes; S72. The device IP and inspection method are read from the configuration list regularly through the device inspection service, and the corresponding protocol method is started to detect whether the lower-level device is online. If it is not online, an abnormal information is sent to the UI interface of the main program, and a pop-up window is displayed on the UI interface of the main program to prompt the abnormal information and the on-duty personnel to perform equipment maintenance; if it is online, the next device inspection is carried out.

[0058] S8. Request service through the monitoring area station. Request information sent by the monitoring area station, and perform roll call, broadcast, message or video conferencing services according to the type of request information. In this embodiment, S8 specifically includes: S81, using the monitoring zone station request service to monitor information sent by the zone station in real time, including zone station name information, zone station broadcast / message information, and video conference information; S82. When the district and station name information is received, the district and station name information is sent to the UI interface of the main program. A pop-up window prompts the on-duty personnel to respond to the roll call. The on-duty personnel must respond on the UI interface within the set time. If the timeout occurs, no response is reported. S83. When receiving a broadcast or message from a zone station, a pop-up window will prompt the user to read the current broadcast or message. If the message is not read within the time limit, the prompt window will automatically close and the unread broadcast or message will be sent to the main program UI interface. The main program UI interface will periodically scroll above the main screen to prompt the on-duty personnel to read it. After checking, the on-duty personnel will report that they have read it and remove it from the scrolling screen. S84. When receiving video conference information, switch the main screen to video conference mode. After the conference ends, switch the main screen back to standard working mode.

[0059] S9, when the alarm information is monitored by monitoring the lower computer alarm service, the alarm bell, video projection display and help prompt are activated; In this embodiment, S9 specifically includes: S91, monitor the alarm information of the lower computer alarm in real time through the monitoring lower computer alarm service, and when an alarm information report is received, automatically start the alarm bell to remind, obtain the corresponding environment camera video and put it on the secondary screen for display; S92: Determine whether an alarm is required. If so, report the alarm information to the firefighting cloud platform. The fire protection cloud platform forwards the alarm information to the district station and each micro-station terminal of the corresponding zone; after the alarm is reported, the alarm service program starts the micro-station alarm linkage, executes the relay opening or closing operation according to the pre-configured parameters, and enters S93; if not, it directly enters S93; S93. Determine whether help is needed from surrounding micro-stations. If so, a list of surrounding micro-stations will pop up. The on-duty personnel can select one or more micro-stations for help or broadcast help to all micro-stations with one click. When the micro-station terminal receiving help receives the help message, a help prompt will automatically pop up and ring a bell to remind you. If not, no action will be taken.

[0060] S10. Support attendance function and support application of on-duty personnel through micro-station staff interactive service.

[0061] In this embodiment, the S10 specifically includes: S101, supporting attendance function and support application of duty personnel through the micro-station staff interactive service; S102. When entering the attendance function for on-duty personnel, the attendance function supports face attendance mode and fingerprint attendance mode. On-duty personnel can choose face or fingerprint to check in and out of work; S103. When entering the support application, the support types include requesting support from surrounding micro-stations and requesting support from district stations. The on-duty personnel select a support type, record the video and report the support application.

[0062] The above descriptions are only some embodiments of the present invention and do not limit the scope of protection of the present invention. Any equivalent device or equivalent process transformation made by using the contents of the description and drawings of the present invention, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.

Claims

1. A dispatching method for fire dispatching equipment, characterized in that: Applied to fire dispatch equipment, including: S1. When the fire dispatch device is started, it enters the corresponding working mode according to the pre-configured parameters. The working mode includes the area station mode and the micro station mode; S2. When entering the district station mode, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform; and the dispatch station deployment map display service, station alarm monitoring service and district station staff interaction service are activated; S3. Use the dispatch site deployment map display service to synchronize site information regularly, and display the fire station deployment on the secondary screen in the form of a map and site information; S4. When the alarm signal is reported through the site alarm monitoring service, the micro-station fire dispatch is initiated; S5. Execute the functions of on-duty attendance, broadcast / message notification, micro-station or district station name, and video conference initiation through the district station staff interactive service; S6. When entering the micro-station mode, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform. After registration is completed, the site information is synchronized regularly, and the fire station deployment is displayed on the secondary screen in the form of a map plus site information. The equipment inspection service, monitoring area station request service, monitoring lower-level machine alarm service and micro-station staff interaction service are started. S7: When the equipment inspection service detects an abnormality in the lower-level equipment connected to the current fire dispatch equipment, it issues an abnormality message to prompt the on-duty personnel to perform maintenance; S8. Request service through the monitoring area station. Request information sent by the monitoring area station, and perform roll call, broadcast, message or video conferencing services according to the type of request information. S9, when the alarm information is monitored by monitoring the lower computer alarm service, the alarm bell, video projection display and help prompt are activated; S10. Support attendance function and support application of on-duty personnel through micro-station staff interactive service.

2. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: Said S1 specifically includes: S11. Log in to the configuration function page of the main program through the administrator account; S12. Configure and modify parameters corresponding to the area station mode or micro station mode on the configuration function page; S13. The main program enters the corresponding working mode according to the corresponding parameters: when the parameters are the parameters corresponding to the area station mode, the main program enters the area station mode; when the parameters are the parameters corresponding to the micro station mode, the main program enters the micro station mode.

3. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: In S2 and S6, the fire dispatch equipment is connected to the network and registered with the fire cloud platform. After successful registration, the equipment information is reported to the fire cloud platform. Specifically, S21. When the main program enters the area station mode or micro station mode, the UI interface of the area station mode or micro station mode is started to enter the device registration thread; S22. Read the device ID, the username and password stored in the local flash memory through the device registration thread, and connect to the cloud platform server using the http protocol; S23. Submit the device ID, user name, and password to the cloud platform server for authorization. If the authorization is successful, the registration is successful, and the device information of the current fire dispatch machine device is reported to the fire cloud platform. The device information includes device ID, site location, site name, site type, device online status, device alarm status, historical unprocessed alarm information, historical unreported attendance information, and historical unreported broadcast / message reading status; if the authorization is unsuccessful, it means that the login failed. After the failure is confirmed, the username and password input box is activated, the username and password are modified, and the device registration thread is entered after re-login, and the process returns to S22; S24. The firefighting cloud platform groups the equipment according to the device ID corresponding to the current firefighting dispatch equipment.

4. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: The station information is synchronized regularly in S3 and S6, and the fire station deployment is displayed on the secondary screen in the form of a map plus station information, specifically including: S31. The main program starts a site information synchronization thread, which starts a timer through the site information synchronization thread to send a site information synchronization request to the fire cloud platform. After receiving the site information synchronization request, the fire cloud platform sends the site information of all fire dispatch devices in the same group as the current fire dispatch device to the current fire dispatch device. The site information includes: device ID, site location, site name, site type, device online status, and device alarm status. S32. The current fire dispatch device stores the received site information in the local flash and sends a broadcast message to notify the secondary screen display APP to read the site information from the local flash; S33, the secondary screen displays that the APP calls the map SDK to start the map UI and monitors the site information in real time through the map UI; S34. When the secondary screen displays that the APP has obtained the site information, the map UI monitors that the site information has been updated and updates the location and status of each fire dispatch device on the map based on the obtained site information of each fire dispatch device; S35. The map UI has a map operation toolbar, through which site information search operations, site information query operations, and map zooming and moving operations are performed; when a site information search operation is performed, the map is automatically moved to the searched site location according to the searched site name; when a site information query operation is performed, a pop-up window is first displayed to display a list of query results, including query online sites, alarm status sites, and corresponding type sites. By performing the map zooming and moving operations, a site in the result list is selected, and the map is moved to the site location.

5. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: The S4 specifically includes: S41, the main program enters the background alarm monitoring thread, and monitors the alarm signal in real time through the background alarm monitoring thread; S42. When an alarm signal is received, the micro-station fire dispatch is initiated and an alarm rings to remind the district station on-duty personnel to provide micro-station fire dispatch support; among them, micro-station fire dispatch refers to sending micro-station support broadcasts to the nearest micro-station and initiating video intercoms to designated micro-stations for video telephone command support.

6. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: The S5 specifically includes: S51. The main program is performed through the UI interface: attendance check, broadcast / message notification issuance, micro-station or district station name and video conference initiation business work; S52. When executing the on-and-off work attendance check, enter the attendance UI program. If the attendance information has not been entered, enter S521; if the attendance information has been entered, select the on-and-off work attendance check and enter S522; S521. Edit the information of the person to be entered, start the camera collection service and the fingerprint information collection service to collect the face information and fingerprint information of the person to be entered. First, determine whether the face information and fingerprint information are detected. If not, it means that the entry has timed out or the entry recognition is abnormal, and a prompt of entry failure is given. If so, re-enter the verification. Second, determine whether the face information and fingerprint information are detected. If so, the entry is successful, the personnel information is stored locally and uploaded to the fire cloud platform synchronously. If not, it means that the entry has timed out or the entry recognition is abnormal, and a prompt of entry failure is given. S522, start the camera collection service and the fingerprint information collection service to detect face information and fingerprint information in real time, and determine whether face information or fingerprint information is detected. If not, it means that the face information or fingerprint information has not been entered due to timeout or the entry recognition is abnormal, and return to the UI interface of the main program. If so, match the collected face information or fingerprint information with the local database to determine whether the match is successful. If so, it means that the on-the-job or off-the-job attendance is normal, generate attendance information records to the local database and upload them to the fire cloud platform simultaneously. If not, it means that the person has not been entered. If the timeout has not been entered, return to the UI interface of the main program; S53. When executing broadcast / message notification, if broadcast notification is selected, proceed to S531; if message notification is selected, proceed to S532; S531. Start the voice recording service, and use the voice recording service to determine whether the microphone button is pressed. If so, collect the audio of the microphone channel. If not, collect the audio of the microphone array channel, and generate an audio file after recording the audio of a preset length; determine whether audio playback is required. If so, play the recorded audio; if not, do not play the audio; then proceed to the next step to determine whether to send a prompt. If so, start the site information list, select the target device to be sent, and submit the audio file and the device ID of the target device to the fire cloud platform through the http protocol. The fire cloud platform forwards the audio file to the target device according to the device ID of the target device; if not, do not process it; S532. Start the message entry box and keyboard function, enter the message text, confirm the editing is complete, start the site information list, select the target device to send, and submit the message text and the device ID of the target device to the fire protection cloud platform via the HTTP protocol. The fire protection cloud platform forwards the audio file to the target site based on the device ID of the target device; S54. When executing the roll call of a micro-station or district station, a list of micro-station / district station devices in the same group is displayed in the UI interface. When the corresponding target device in the micro-station / district station device list is selected for roll call, the background service program forwards the roll call request signaling to the target device through the fire protection cloud platform and waits for a roll call response. When a roll call response is received successfully, a roll call success message is displayed on the UI interface, the roll call record is saved to the local database, and the record is synchronously reported to the fire protection cloud platform. When no response is received after a timeout or the response fails, a roll call failure message is displayed on the UI interface, the roll call record is saved to the local database, and the record is synchronously reported to the fire protection cloud platform. S55. When initiating a video conference, the video conference terminal to be used for video conferencing with the current device is selected as the target device. The background service program sends a conference request signaling to the target device and waits for a response from the requested target device. When a response is received, an audio and video channel is established based on the response information, and the audio and video acquisition service and the codec service are started. During the interactive process of the video conference, when the current device needs to send audio and video to the target device, the current device collects audio and video data through the audio and video acquisition service, then encodes the collected audio and video data through the codec service and sends it to the target device. When the current device needs to receive audio and video sent by the target device, it receives the audio and video data from the target device and decodes the audio and video data through the codec service. The audio and video data sent by the current device and the received audio and video data are played on the secondary screen respectively. When a video conference is in progress, the main screen automatically switches to video conference mode to display the other party's video, and displays the local video in the picture-in-picture in the lower right corner of the screen. When the video conference ends, it automatically switches back to the UI interface working mode. Among them, when conducting a video conference, the audio and video collection defaults to collecting audio data of the microphone array channel. When the hand microphone button is detected to be pressed, the button's jump state is obtained, the audio input state parameter is set to hand microphone input, and a broadcast is sent to the recording program to determine whether the current recording is a hand microphone channel recording. If so, the recording continues. If not, the recording is stopped and the hand microphone channel recording is reopened. When the hand microphone button is detected to be released, the button's jump state is obtained, the audio input state parameter is set to microphone array input, and a broadcast is sent to the recording program to determine whether the current recording is a hand microphone channel recording. If so, the recording is stopped and the microphone array channel recording is reopened. If not, the recording continues. Among them, when conducting a video conference, the interrupt processing function of the headphone insertion or removal is registered through the audio chip driver, and the audio parameter configuration API interface is exported. When the headphone is inserted or removed, an interrupt is generated, and the parameter configuration of the audio chip is executed through the interrupt processing function, specifically including: first initializing the parameters of the audio chip, and then judging whether the headphone is in the headphone insertion state. If so, first configure the headphone output channel through the interrupt processing function, and then configure the power amplifier output channel and then control the cancellation of the power amplifier mute function; if not, configure the power amplifier output channel through the interrupt processing function and then control the cancellation of the power amplifier mute function; when the audio output channel needs to be switched, call the audio parameter configuration API interface to enter the parameter configuration function interface. If only headphone output is required, configure the headphone output channel and turn on the power amplifier mute function. If only power amplifier output is required, configure the power amplifier output channel and cancel the power amplifier mute function.

7. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: The S7 specifically includes: S71. Add, delete, modify, and configure the inspection mode of the lower computer devices through the setting function of the main program; wherein the inspection mode includes ICMP, HTTP, and Telnet protocol modes; S72. The device IP and inspection method are read from the configuration list regularly through the device inspection service, and the corresponding protocol method is started to detect whether the lower-level device is online. If it is not online, an abnormal information is sent to the UI interface of the main program, and a pop-up window is displayed on the UI interface of the main program to prompt the abnormal information and the on-duty personnel to perform equipment maintenance; if it is online, the next device inspection is carried out.

8. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: The S8 specifically includes: S81, using the monitoring zone station request service to monitor information sent by the zone station in real time, including zone station name information, zone station broadcast / message information, and video conference information; S82. When the district and station name information is received, the district and station name information is sent to the UI interface of the main program. A pop-up window prompts the on-duty personnel to respond to the roll call. The on-duty personnel must respond on the UI interface within the set time. If the timeout occurs, no response is reported. S83. When receiving a broadcast or message from a zone station, a pop-up window will prompt the user to read the current broadcast or message. If the message is not read within the time limit, the prompt window will automatically close and the unread broadcast or message will be sent to the main program UI interface. The main program UI interface will periodically scroll above the main screen to prompt the on-duty personnel to read it. After checking, the on-duty personnel will report that they have read it and remove it from the scrolling screen. S84. When receiving video conference information, switch the main screen to video conference mode. After the conference ends, switch the main screen back to standard working mode.

9. A dispatching method for fire dispatching equipment according to claim 1, characterized in that: The S9 specifically includes: S91, monitor the alarm information of the lower computer alarm in real time through the monitoring lower computer alarm service, and when an alarm information report is received, automatically start the alarm bell to remind, obtain the corresponding environment camera video and put it on the secondary screen for display; S92: Determine whether an alarm is required. If so, report the alarm information to the firefighting cloud platform. The fire protection cloud platform forwards the alarm information to the district station and each micro-station terminal of the corresponding zone; after the alarm is reported, the alarm service program starts the micro-station alarm linkage, executes the relay opening or closing operation according to the pre-configured parameters, and enters S93; if not, it directly enters S93; S93. Determine whether help is needed from surrounding micro-stations. If so, a list of surrounding micro-stations will pop up. The on-duty personnel can select one or more micro-stations for help or broadcast help to all micro-stations with one click. When the micro-station terminal receiving help receives the help message, a help prompt will automatically pop up and ring a bell to remind you. If not, no action will be taken.

10. A dispatching method for fire dispatch equipment according to claim 1, characterized in that: The S10 specifically includes: S101, supporting attendance function and support application of duty personnel through the micro-station staff interactive service; S102. When entering the attendance function for on-duty personnel, the attendance function supports face attendance mode and fingerprint attendance mode. On-duty personnel can choose face or fingerprint to check in and out; S103. When entering the support application, the support types include requesting support from surrounding micro-stations and requesting support from district stations. The on-duty personnel select a support type, record the video and report the support application.

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