CN113329064A - Communication method of Internet of things interaction protocol based on water conservancy data acquisition and control - Google Patents

Communication method of Internet of things interaction protocol based on water conservancy data acquisition and control Download PDF

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CN113329064A
CN113329064A CN202110524264.7A CN202110524264A CN113329064A CN 113329064 A CN113329064 A CN 113329064A CN 202110524264 A CN202110524264 A CN 202110524264A CN 113329064 A CN113329064 A CN 113329064A
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data
equipment
byte
water conservancy
message
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CN113329064B (en
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孙丽英
孙誉文
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Henan Zhongzhou Intelligent Water Conservancy Research Institute Co ltd
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Henan Zhongzhou Intelligent Water Conservancy Research Institute Co ltd
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/12Protocols specially adapted for proprietary or special-purpose networking environments, e.g. medical networks, sensor networks, networks in vehicles or remote metering networks
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16YINFORMATION AND COMMUNICATION TECHNOLOGY SPECIALLY ADAPTED FOR THE INTERNET OF THINGS [IoT]
    • G16Y10/00Economic sectors
    • G16Y10/35Utilities, e.g. electricity, gas or water
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16YINFORMATION AND COMMUNICATION TECHNOLOGY SPECIALLY ADAPTED FOR THE INTERNET OF THINGS [IoT]
    • G16Y40/00IoT characterised by the purpose of the information processing
    • G16Y40/10Detection; Monitoring
    • GPHYSICS
    • G16INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR SPECIFIC APPLICATION FIELDS
    • G16YINFORMATION AND COMMUNICATION TECHNOLOGY SPECIALLY ADAPTED FOR THE INTERNET OF THINGS [IoT]
    • G16Y40/00IoT characterised by the purpose of the information processing
    • G16Y40/50Safety; Security of things, users, data or systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L63/00Network architectures or network communication protocols for network security
    • H04L63/08Network architectures or network communication protocols for network security for authentication of entities
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L63/00Network architectures or network communication protocols for network security
    • H04L63/08Network architectures or network communication protocols for network security for authentication of entities
    • H04L63/0807Network architectures or network communication protocols for network security for authentication of entities using tickets, e.g. Kerberos
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q9/00Arrangements in telecontrol or telemetry systems for selectively calling a substation from a main station, in which substation desired apparatus is selected for applying a control signal thereto or for obtaining measured values therefrom

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Abstract

The invention relates to a communication method of an Internet of things interaction protocol based on water conservancy data acquisition and control, wherein the interaction protocol is simple and clear, the structure is clear and is oriented to behaviors, directional operation is easy to realize, dynamic encryption is realized, and the program is simple to realize. The protocol can be applied to any water conservancy data acquisition and control equipment, has loose and free data format and strong expansibility, and has strong practicability for high concurrent micro-service, intelligent digitization of water conservancy sensing equipment, water conservancy big data processing and the like. The method is used for the interactive communication of long connection and short connection between equipment, equipment and a master station and between the equipment and a user in the working scene of a water conservancy data acquisition and remote control sensor; the behavior data of the equipment can be decomposed, analyzed and processed according to the behavior-oriented characteristics by mainly utilizing efficient acquisition and efficient communication of the specified data.

Description

Communication method of Internet of things interaction protocol based on water conservancy data acquisition and control
Technical Field
The invention relates to the technical field of water conservancy and hydrology data acquisition and control, in particular to a communication method of an Internet of things interaction protocol based on water conservancy data acquisition and control.
Background
The acquisition of water conservancy and hydrological data is to record daily conditions of various aspects of water conservancy facilities such as rivers, lakes, reservoir areas and the like, describe the change of each water conservancy facility in one year according to a database formed by long-term accumulation of water conservancy and hydrological data and is used for guiding the following water conservancy work. Therefore, the acquisition work of the hydrological data is very important.
Along with the development of communication technology and the improvement of the automation degree of measuring equipment, the collection of the existing water conservancy hydrological data is basically changed into automatic equipment for watching and collecting, then the hydrological data is transmitted to a main station through a network for storage and later development and utilization, the equipment for collecting the water conservancy hydrological data becomes a part of the whole network, some collecting equipment also has the function of remote control, the collecting equipment itself becomes a simple computer terminal, and water conservancy workers at each level can directly access the main station or the collecting equipment through a handheld user terminal or through special software, and the mutual access and control process needs to provide a special method for guarantee.
Disclosure of Invention
In order to solve the problems, the invention provides a communication method of an internet of things interaction protocol based on water conservancy data acquisition and control.
The technical scheme of the invention is as follows: (with claims)
The beneficial technical effects of the invention are as follows:
the communication method of the Internet of things interaction protocol based on water conservancy data acquisition and control has the advantages of simple and clear interaction protocol, definite structure and behavior-oriented behavior, easiness in directional operation, dynamic encryption and simplicity in program implementation. The protocol can be applied to any water conservancy data acquisition and control equipment, has loose and free data format and strong expansibility, and has strong practicability for high concurrent micro-service, intelligent digitization of water conservancy sensing equipment, water conservancy big data processing and the like.
The protocol is used for the interactive communication of long connection and short connection between equipment, equipment and a master station and between the equipment and a user in the working scene of the water conservancy data acquisition and remote control sensor; the behavior data of the equipment can be decomposed, analyzed and processed according to the behavior-oriented characteristics by mainly utilizing efficient acquisition and efficient communication of the specified data. The protocol is characterized by easy segmentation and analysis and is suitable for interaction scenes of various intelligent interconnection devices. The classification use is flexible and easy to position, data and information can be directly cut and obtained aiming at different transaction nodes, and meanwhile, the uniform format of the interaction protocol of each end under the whole interaction scene is facilitated.
1. Simple structure and easy data acquisition
2. The structure is orientable and the decomposition is simple
3. The method is simple in analysis and capable of directly issuing instructions for equipment behaviors
4. Transparent transmission mode is simple and easy to operate
5. Can be directly used for IM interaction between devices or IM interaction between users and devices
6. And the dynamic encryption mode has stronger data protection.
Drawings
FIG. 1 is an Internet of things architecture diagram of the water conservancy data acquisition and control of the present invention;
FIG. 2 is a schematic diagram of a specific application example of the method of the present invention;
Detailed Description
In an embodiment, referring to fig. 1-2 of the specification, in fig. 1, the internet of things includes a terminal acquisition device, a master station, a client device, which are located on site, and are networked through a communication network, the terminal acquisition device is provided with a sensor for acquiring various hydrological data, in fig. 2, the terminal acquisition device and the master station, the user terminal device and the master station, and the terminal acquisition device and the user terminal device perform interactive communication through a dedicated interactive protocol, and the interactive protocol includes the following structural diagram:
AE(BE)
[ overall length (2) ] [ behavior class (2) ] [ framing number (2) ] [ checksum (8) ]
DE
[ ID Length (1) ] [ device ID per se ] [ ID Length (1) ] [ destination device ID ]
DE
[ subclass identification (1) ] [ data body length (2) ] [ data validity check (8) ]
CD
[ subclass identification (1) ] [ device interaction information length (2) ] [ device interaction information ] [ Block code (48) ]
BC
[ subclass identification (1) ] [ dialog length (2) ] [ dialog content ] [ dialog SessionID (8) ] [ TOKEN check field (8) ]
EA(EB)
The above structure of the interaction protocol defines:
the head frame of the uplink message is marked as AE, the downlink is BE, the tail frame of the uplink message is marked as EA, and the downlink is EB; the interactive driving party and the interactive passive party can be directly and obviously distinguished;
the identification domain is separated from the main body by DE characters, so that the legality of the message can be directly checked according to a fixed length or the ID domain information can be directly accessed;
the interactive frame tail of the data class is CD, the interactive class of the equipment is BC, and the positioned class information and data can be directly obtained by cutting;
the subclass mark defines the transaction classification of the content, and the EE mark has no content;
the data verification domain is a dynamic token of the equipment, and the block code is a previous equipment of the equipment chain and the token chain of the equipment and is used for verifying the trust information; the session SessionID is the binding ID of the session content class;
the checksum is the sum of all bytes and is used for checking the message entity.
In the interaction protocol
Predefined behavior-oriented type definitions:
first byte 03 + second byte AF of behavior class: long connection registration
Behavior class first byte 01 + behavior class second byte AF: short connection mark
③ first byte 02 + second byte EF of behavior class: long connection heartbeat/short connection signal broadcast main station
Fourth, a first byte 05 + a second byte 01: active reporting of data
Fifth, the first byte 05 + the second byte 03 of the behavior class: data recall test return
Sixthly, the first byte 05 + the second byte 05 of the behavior class: data transparent transmission
Seventh behavior class first byte 06 + behavior class second byte AF: active reporting of events and faults
The first byte 06 + the second byte BF of the behavior class of the (b): event, failure recall return
Ninthly, a first byte EF + a second byte EF of the behavior class: forwarding or transparent transmission interactive dialogue;
other types can be self-defined to expand;
the predefined behavior types are specifically:
(03 AF) Long join registration
The system comprises a server side or a sensor device, a server side or a collector (fog operation cluster), wherein the server side is used for initiating the server side or the sensor device, storing the correspondence between the connection of the device and a head ID, generating a TOKEN of a check domain according to a fixed parameter and replying the TOKEN to the device side;
② 01AF short connection identification
The device is used for initiating a server or a collector (fog operation cluster) by an equipment end or sensor equipment, the server definitely identifies the connection as short connection after receiving the short connection, the communication mode of the device is a short connection mode, and the device responds to a confirmation frame after logging all head information and closes the connection;
③ 02EF Long connection heartbeat/short connection signal broadcast main station
The device side is used for synchronously notifying the existence of the master station, so that the master station side can know that the device exists and is in a working state; the effective duration can be customized according to the equipment condition;
0501 data active reporting
The device is used for the synchronous or asynchronous active reporting of the collected data of the equipment, and the reporting interval of the real-time or non-real-time data can be customized;
0503 data recall return
The equipment side is used for calling and testing data initiated by the server side, and the equipment side processes the command and then returns corresponding data; the overtime duration can be self-defined;
data transparent transmission of 0505
The method is used for all end-to-end message transparent forwarding and gateway positioning forwarding;
seventhly 06 active report of AF event and fault
The method is used for reporting the event and fault data initiated by the server actively, and if 06EE is the identifier, all the events are normal;
(iii) allowing detection of BF event and failure to return
The device side is used for responding to the data of the server side event and the fault recall test; if 06EE, all is normal;
ninthly EFEF forwarding or transparent transmission interactive dialogue
The method is used for end-to-end interactive transparent transmission between the interactive gateway pair equipment and between the users; the gateway should not have other parsing or processing operations than asynchronous thread message log saving in this state.
The identity authentication in the message interaction in the method is confirmed by the header identification information of long connection login or short connection, the login information and the identity identification information are fixed by the MD5 and a time label, the identity information and the connection are stored by the server in a key value pair mode, and the state parameter of the first connection in the effective duration is stored by the short connection.
The data domain and information domain encryption of the message in the method uses an encryption machine of a main station server side, parameter values which are added or subtracted for each byte or every two bytes are generated at intervals of dynamic duration, and the last weight is kept at the same time when the dynamic change is carried out each time, so that the situation that the message cannot be decrypted due to the fact that the message is obtained in the case of the encryption and the like is avoided.
The method comprises the following steps of:
after the message is acquired, the TOKEN is analyzed, and the identity legitimacy of the TOKEN must be confirmed by the server side and the equipment side; and obtaining the weight value for decryption through the main station encryption machine after confirming that the TOKEN is legal.
The message in the communication engineering in the method comprises the following four data formats: JSON, XML, TXT, BYTE
JSON is mainly used for encapsulation of data classes, such as:
{ "water level": 100, "flow rate": 10, "rainfall": 99.99}
The XML format is used for encapsulation of instructions and configurations, such as:
<cmd>
<time>20210101000101</time>
<command>make_sleep</command>
< desc > sensor dormancy </desc >
<objectID>CGQ000001</objectID>
</cmd>
The TXT format is relatively free, and is mainly used for natural language in interaction, etc., such as:
#0908A44433# # master # # SESSION _ ID:0101# water conservancy # please give I the present data. #;
#1108A44411# # Water conservancy # SESSION _ ID:0101# # Master, Happy afternoon! The current location of me is at the garden opening
The BYTE is used for transmitting files and streaming data, and can split and package the files generated by the sensor or the concentrator in real time and send the files to each end; and is also the main transmission format for remote upgrade.
Wherein the extension of the type definition of the behavior class needs to be customized according to different application scenarios.
Several commonly used scenarios are:
the water level data of the designated river area is actively reported synchronously,
The flow data of the designated river area is actively reported synchronously,
Specifying an on-hook event for river sensor monitoring equipment,
Appointing a river sensor dormancy command,
Appointing river water level, flow and rainfall data,
Data processing of water level, flow and rainfall of specified river area,
The default values of the generic response frame are:
FFFF Normal EEEE Exception
The following is a protocol property identification application description:
data communication between the intelligent Internet of things equipment and the central gateway, namely directly acquiring a data domain and a data theme (subclass identification) according to the fixed-length and behavior identification;
the intelligent Internet of things equipment forms a fog operation cluster, and data or interactive information can be directly acquired according to the end point ID and the class identification;
the intelligent Internet of things equipment AI performs anthropomorphic interaction, namely conversation contents are directly sent according to the behavior type identification, the subclass identification and the destination equipment;
in three special scenes, the subclass identification field of the data can be defined so as to control the analysis and the behavior direction of the message.
And performing application analysis and calculation according to the definition, or directly acquiring a useful data part in the message.

Claims (6)

1. A communication method of an Internet of things interaction protocol based on water conservancy data acquisition and control is characterized in that the Internet of things comprises terminal acquisition equipment, a main station, user side equipment and a communication network, wherein the terminal acquisition equipment, the main station, the user side equipment and the three are positioned on site and are networked through the communication network, the terminal acquisition equipment is provided with a sensor for acquiring various hydrological data, the terminal acquisition equipment and the main station, the user side equipment and the main station, and the terminal acquisition equipment and the user side equipment are in interactive communication through a special interaction protocol, and the interaction protocol comprises the following structural diagrams:
AE(BE)
[ overall length (2) ] [ behavior class (2) ] [ framing number (2) ] [ checksum (8) ]
DE
[ ID Length (1) ] [ device ID per se ] [ ID Length (1) ] [ destination device ID ]
DE
[ subclass identification (1) ] [ data body length (2) ] [ data validity check (8) ]
CD
[ subclass identification (1) ] [ device interaction information length (2) ] [ device interaction information ] [ Block code (48) ]
BC
[ subclass identification (1) ] [ dialog length (2) ] [ dialog content ] [ dialog SessionID (8) ] [ TOKEN check field (8) ]
EA(EB)
The above structure of the interaction protocol defines:
the head frame of the uplink message is marked as AE, the downlink is BE, the tail frame of the uplink message is marked as EA, and the downlink is EB; the interactive driving party and the interactive passive party can be directly and obviously distinguished;
the identification domain is separated from the main body by DE characters, so that the legality of the message can be directly checked according to a fixed length or the ID domain information can be directly accessed;
the interactive frame tail of the data class is CD, the interactive class of the equipment is BC, and the positioned class information and data can be directly obtained by cutting;
the subclass mark defines the transaction classification of the content, and the EE mark has no content;
the data verification domain is a dynamic token of the equipment, and the block code is a previous equipment of the equipment chain and the token chain of the equipment and is used for verifying the trust information; the session SessionID is the binding ID of the session content class;
the checksum is the sum of all bytes and is used for checking the message entity.
2. The communication method of the internet of things interaction protocol based on water conservancy data acquisition and control as claimed in claim 1, wherein: in the interaction protocol
Predefined behavior-oriented type definitions:
first byte 03 + second byte AF of behavior class: long connection registration
Behavior class first byte 01 + behavior class second byte AF: short connection mark
③ first byte 02 + second byte EF of behavior class: long connection heartbeat/short connection signal broadcast main station
Fourth, a first byte 05 + a second byte 01: active reporting of data
Fifth, the first byte 05 + the second byte 03 of the behavior class: data recall test return
Sixthly, the first byte 05 + the second byte 05 of the behavior class: data transparent transmission
Seventh behavior class first byte 06 + behavior class second byte AF: active reporting of events and faults
The first byte 06 + the second byte BF of the behavior class of the (b): event, failure recall return
Ninthly, a first byte EF + a second byte EF of the behavior class: forwarding or transparent transmission interactive dialogue;
other types can be self-defined to expand;
the predefined behavior types are specifically:
(03 AF) Long join registration
The system comprises a server side or a sensor device, a server side or a collector (fog operation cluster), wherein the server side is used for initiating the server side or the sensor device, storing the correspondence between the connection of the device and a head ID, generating a TOKEN of a check domain according to a fixed parameter and replying the TOKEN to the device side;
② 01AF short connection identification
The device is used for initiating a server or a collector (fog operation cluster) by an equipment end or sensor equipment, the server definitely identifies the connection as short connection after receiving the short connection, the communication mode of the device is a short connection mode, and the device responds to a confirmation frame after logging all head information and closes the connection;
③ 02EF Long connection heartbeat/short connection signal broadcast main station
The device side is used for synchronously notifying the existence of the master station, so that the master station side can know that the device exists and is in a working state; the effective duration can be customized according to the equipment condition;
0501 data active reporting
The device is used for the synchronous or asynchronous active reporting of the collected data of the equipment, and the reporting interval of the real-time or non-real-time data can be customized;
0503 data recall return
The equipment side is used for calling and testing data initiated by the server side, and the equipment side processes the command and then returns corresponding data; the overtime duration can be self-defined;
data transparent transmission of 0505
The method is used for all end-to-end message transparent forwarding and gateway positioning forwarding;
seventhly 06 active report of AF event and fault
The method is used for reporting the event and fault data initiated by the server actively, and if 06EE is the identifier, all the events are normal;
(iii) allowing detection of BF event and failure to return
The device side is used for responding to the data of the server side event and the fault recall test; if 06EE, all is normal;
ninthly EFEF forwarding or transparent transmission interactive dialogue
The method is used for end-to-end interactive transparent transmission between the interactive gateway pair equipment and between the users; the gateway should not have other parsing or processing operations than asynchronous thread message log saving in this state.
3. The communication method of the internet of things interaction protocol based on water conservancy data acquisition and control as claimed in claim 2, wherein: the identity authentication in the message interaction in the method is confirmed by the header identification information of long connection login or short connection, the login information and the identity identification information are fixed by the MD5 and a time label, the identity information and the connection are stored by the server in a key value pair mode, and the state parameter of the first connection in the effective duration is stored by the short connection.
4. The communication method of the Internet of things interaction protocol based on water conservancy data acquisition and control as claimed in claim 3, wherein: the data domain and information domain encryption of the message in the method uses an encryption machine of a main station server side, parameter values which are added or subtracted for each byte or every two bytes are generated at intervals of dynamic duration, and the last weight is kept at the same time when the dynamic change is carried out each time, so that the situation that the message cannot be decrypted due to the fact that the message is obtained in the case of the encryption and the like is avoided.
5. The communication method of the Internet of things interaction protocol based on water conservancy data acquisition and control as claimed in claim 4, wherein: the method comprises the following steps of:
after the message is acquired, the TOKEN is analyzed, and the identity legitimacy of the TOKEN must be confirmed by the server side and the equipment side; and obtaining the weight value for decryption through the main station encryption machine after confirming that the TOKEN is legal.
6. The communication method of the Internet of things interaction protocol based on water conservancy data acquisition and control as claimed in claim 5, wherein: the message in the communication engineering in the method comprises the following four data formats: JSON, XML, TXT, BYTE
JSON is mainly used for encapsulation of data classes, such as:
{ "water level": 100, "flow rate": 10, "rainfall": 99.99}
The XML format is used for encapsulation of instructions and configurations, such as:
<cmd>
<time>20210101000101</time>
<command>make_sleep</command>
< desc > sensor dormancy </desc >
<objectID>CGQ000001</objectID>
</cmd>
The TXT format is relatively free, and is mainly used for natural language in interaction, etc., such as:
#0908A44433# # master # # SESSION _ ID 0101# Water conservancy # please give I the current data;
#;
#1108A44411# # Water conservancy # SESSION _ ID:0101# # Master, Happy afternoon! The current location of me is at the garden opening
The BYTE is used for transmitting files and streaming data, and can split and package the files generated by the sensor or the concentrator in real time and send the files to each end; and is also the main transmission format for remote upgrade.
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Citations (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101692675A (en) * 2009-10-20 2010-04-07 中国电子科技集团公司第二十八研究所 Multichannel intelligent data communication processing system
CN102714814A (en) * 2012-03-06 2012-10-03 华为终端有限公司 Data transmission method and system, electrical gateway and master station
CN103200253A (en) * 2013-03-27 2013-07-10 江苏航天智联信息科技发展有限公司 Water conservation Internet of things oriented multiple heterogeneous network communication protocol building method
US20150052253A1 (en) * 2014-09-22 2015-02-19 Weaved, Inc. Multi-server fractional subdomain dns protocol
CN104460635A (en) * 2014-12-24 2015-03-25 四川谊田集群科技有限公司 Integrated information platform system based on intelligent hydraulic power plant
CN105721490A (en) * 2015-07-01 2016-06-29 北京东润环能科技股份有限公司 Intelligent collection terminal, master station system and data processing method
CN105763426A (en) * 2016-04-12 2016-07-13 北京理工大学 Multiprotocol instant messaging system-based Internet of Things business processing system
CN106131085A (en) * 2016-08-31 2016-11-16 江苏蓝创智能科技股份有限公司 The communication means of remote intelligent control system
CN106254392A (en) * 2016-09-28 2016-12-21 天津轻工职业技术学院 Communication means based on the exTLV Message Protocol that dynamically can customize
CN107547574A (en) * 2017-10-31 2018-01-05 哈尔滨工业大学 A kind of communication system and method based on puppy parc
CN107800554A (en) * 2016-09-05 2018-03-13 华为数字技术(苏州)有限公司 Collecting method, device and system
CN108234614A (en) * 2017-12-25 2018-06-29 华南理工大学 A kind of exchange method based on custom protocol and Netty frames
CN109040144A (en) * 2018-10-19 2018-12-18 京信通信系统(中国)有限公司 Things-internet gateway data processing method, device, storage medium and gateway
CN109495492A (en) * 2018-12-05 2019-03-19 四川奥地建筑设计有限公司 Communication system for intelligent water utilities industry
CN109510759A (en) * 2018-10-22 2019-03-22 智强通达科技(北京)有限公司 A kind of Universal-purpose quick multi-protocol gateway realization system and method
US20190132839A1 (en) * 2017-10-31 2019-05-02 Tionesta, Llc Communication protocol overlay
CN110581847A (en) * 2019-08-26 2019-12-17 杭州城市大数据运营有限公司 Input foreknowledge system
CN110719296A (en) * 2019-10-25 2020-01-21 福建网能科技开发有限责任公司 Method for automatically analyzing message data in terminal communication protocol
CN111464322A (en) * 2019-01-18 2020-07-28 阿里巴巴集团控股有限公司 Communication method, device, equipment and storage medium of Internet of things platform and equipment
CN111698306A (en) * 2020-06-04 2020-09-22 中国科学院地理科学与资源研究所 Hydrological real-time flow data acquisition and processing method based on Internet of things
CN111935322A (en) * 2020-10-12 2020-11-13 之江实验室 Industrial internet control system and method based on PowerLink industrial protocol
CN112311862A (en) * 2020-10-21 2021-02-02 湖南涛峻科技有限公司 Multifunctional interconnection communication protocol system and data state maintenance process thereof

Patent Citations (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101692675A (en) * 2009-10-20 2010-04-07 中国电子科技集团公司第二十八研究所 Multichannel intelligent data communication processing system
CN102714814A (en) * 2012-03-06 2012-10-03 华为终端有限公司 Data transmission method and system, electrical gateway and master station
CN103200253A (en) * 2013-03-27 2013-07-10 江苏航天智联信息科技发展有限公司 Water conservation Internet of things oriented multiple heterogeneous network communication protocol building method
US20150052253A1 (en) * 2014-09-22 2015-02-19 Weaved, Inc. Multi-server fractional subdomain dns protocol
CN104460635A (en) * 2014-12-24 2015-03-25 四川谊田集群科技有限公司 Integrated information platform system based on intelligent hydraulic power plant
CN105721490A (en) * 2015-07-01 2016-06-29 北京东润环能科技股份有限公司 Intelligent collection terminal, master station system and data processing method
CN105763426A (en) * 2016-04-12 2016-07-13 北京理工大学 Multiprotocol instant messaging system-based Internet of Things business processing system
CN106131085A (en) * 2016-08-31 2016-11-16 江苏蓝创智能科技股份有限公司 The communication means of remote intelligent control system
CN107800554A (en) * 2016-09-05 2018-03-13 华为数字技术(苏州)有限公司 Collecting method, device and system
CN106254392A (en) * 2016-09-28 2016-12-21 天津轻工职业技术学院 Communication means based on the exTLV Message Protocol that dynamically can customize
US20190132839A1 (en) * 2017-10-31 2019-05-02 Tionesta, Llc Communication protocol overlay
CN107547574A (en) * 2017-10-31 2018-01-05 哈尔滨工业大学 A kind of communication system and method based on puppy parc
CN108234614A (en) * 2017-12-25 2018-06-29 华南理工大学 A kind of exchange method based on custom protocol and Netty frames
CN109040144A (en) * 2018-10-19 2018-12-18 京信通信系统(中国)有限公司 Things-internet gateway data processing method, device, storage medium and gateway
CN109510759A (en) * 2018-10-22 2019-03-22 智强通达科技(北京)有限公司 A kind of Universal-purpose quick multi-protocol gateway realization system and method
CN109495492A (en) * 2018-12-05 2019-03-19 四川奥地建筑设计有限公司 Communication system for intelligent water utilities industry
CN111464322A (en) * 2019-01-18 2020-07-28 阿里巴巴集团控股有限公司 Communication method, device, equipment and storage medium of Internet of things platform and equipment
CN110581847A (en) * 2019-08-26 2019-12-17 杭州城市大数据运营有限公司 Input foreknowledge system
CN110719296A (en) * 2019-10-25 2020-01-21 福建网能科技开发有限责任公司 Method for automatically analyzing message data in terminal communication protocol
CN111698306A (en) * 2020-06-04 2020-09-22 中国科学院地理科学与资源研究所 Hydrological real-time flow data acquisition and processing method based on Internet of things
CN111935322A (en) * 2020-10-12 2020-11-13 之江实验室 Industrial internet control system and method based on PowerLink industrial protocol
CN112311862A (en) * 2020-10-21 2021-02-02 湖南涛峻科技有限公司 Multifunctional interconnection communication protocol system and data state maintenance process thereof

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
李贡湘等: "面向即插即用的物联网传感设备数据采集系统", 《中国海洋大学学报(自然科学版)》 *

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