CN103200600A - Sensing node - Google Patents

Sensing node Download PDF

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Publication number
CN103200600A
CN103200600A CN2013100680123A CN201310068012A CN103200600A CN 103200600 A CN103200600 A CN 103200600A CN 2013100680123 A CN2013100680123 A CN 2013100680123A CN 201310068012 A CN201310068012 A CN 201310068012A CN 103200600 A CN103200600 A CN 103200600A
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sensing node
baseband processing
data
processing module
module
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CN2013100680123A
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Chinese (zh)
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尹武
戴宏剑
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Shenzhen Wisesea Electronic Science & Technology Co Ltd
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Shenzhen Wisesea Electronic Science & Technology Co Ltd
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Abstract

The invention provides a sensing node which comprises a data acquisition module for acquiring signals, a Zigbee baseband processing module for processing data output by the data acquisition module and a radio frequency module for receiving signals output by the Zigbee baseband processing module. The radio frequency module comprises at least two antenna units, and the Zigbee baseband processing module comprises a demultiplexer which divides processing data of the Zigbee baseband processing module into a plurality of data chains. The sensing node can be used in Internet of things based on Zigbee technology, the collected data can be sent through a plurality of signal channels, reliability and coverage range of data transmission are improved obviously, data transmission speed is increased, the working function of the sensing node is achieved, data transmission capacity, disturbance-resisting capacity and data transmission coverage range of the sensing node is improved greatly under the same wireless communication environment, and reliability and stability of the Internet of things including the sensing node are improved.

Description

A kind of sensing node
Technical field
The invention belongs to the Internet of Things field, be specifically related to a kind of sensing node that is applied to Internet of Things.
Background technology
Zigbee (short distance, lower powered wireless communication technology) be a kind of emerging closely, low complex degree, low-power consumption, low message transmission rate, radio network technique cheaply, be widely used in the Internet of Things field according to its characteristics, become network struction mode main in the Internet of Things, can be between thousands of small sensing nodes coordinating communication mutually, owing to can intercom mutually between sensing node, therefore can form many transmission paths, ensure that data can be transferred to data center.
Existing Zigbee technology adopts the mode of single channel output more, again by radio-frequency module and amplifier carry out the transmission of signal and simply control circuit form.Network at this sensing node structure, communication between the sensing node is subject to the data transmission capabilities of sensing node, can cause that seriously the losing of under wireless multi-path environment data, signal cover sharply reduce, and the appearance of situation such as data throughout is lower, if strengthen the transmitting power of sensing node, then can cause the huge use of energy, and also be limited in the improvement of sensing node aspect of performance.
Summary of the invention
In order to solve the problems of the technologies described above, the invention provides a kind of sensing node, the mode of this sensing node by many of many data emission circuit solved data and lost phenomenon in transmission course, realized the raising of sensing node service behaviour, to achieve these goals, the present invention is by the following technical solutions:
A kind of sensing node comprises the Zigbee baseband processing module of handling for the data acquisition module of gathering signal, to described data acquisition module output data and the radio-frequency module that receives described Zigbee baseband processing module output signal; Described radio-frequency module comprises at least two antenna elements, and described Zigbee baseband processing module comprises the demultiplexer that described Zigbee baseband processing module deal with data is divided into a plurality of data link.
Further, described Zigbee baseband processing module is SOC.
Further, described Zigbee baseband processing module comprises frequency multiplier, encoder and the modulator that connects successively, and described demultiplexer is connected with the output of described modulator.
Further, described Zigbee baseband processing module also comprises synchronous FIFO module, and described synchronous FIFO module connects the output of described demultiplexer.
Further, described radio-frequency module comprises D/A converter, and described D/A converter is identical with the number of described antenna element.
Further, described radio-frequency module also comprises power amplifier, and described D/A converter is handled the back data and export to described antenna element after described power amplifier is amplified.
Further, described power amplifier is identical with the number of described antenna element.
Further, described data acquisition module comprises one or more transducer and the A/D converter that is connected with described transducer.
Further, described Zigbee baseband processing module also comprises the power distributing unit that is connected with described data link.
Further, described Zigbee baseband processing module also comprises the channel estimation unit that is connected with described power distributing unit.
Sensing node of the present invention can be applied to the Internet of Things network based on the Zigbee technology, the data of gathering can be sent by a plurality of channels, guaranteed reliability of data transmission, realize the function of sensing node work, data transmission capabilities, antijamming capability and the transfer of data coverage of raising sensing node that can be very big under same wireless propagation environment, and then improved the reliability and stability of the Internet of Things network that comprises this sensing node.
Description of drawings
Fig. 1 is the module map of a kind of sensing node execution mode 1 of the present invention;
Fig. 2 is the module map of a kind of sensing node execution mode 2 of the present invention;
Fig. 3 is the module map of a kind of sensing node execution mode 3 of the present invention;
Fig. 4 is execution mode multichannel power allocation scheme figure shown in Figure 3.
Embodiment
The present invention will be further described below in conjunction with accompanying drawing.
Referring to Fig. 1, be depicted as the module map of a kind of sensing node execution mode 1 of the present invention, this sensing node comprises data acquisition module, Zigbee baseband processing module and radio-frequency module.Wherein, data acquisition module is used for Information Monitoring and exports corresponding digital signal, and this information comprises the state information of acquisition target, for example temperature, brightness, pressure etc.The Zigbee baseband processing module is connected with the output of data acquisition module, and it comprises frequency multiplier, encoder, modulator, demultiplexer, data link and the transfer of data synchronous FIFO module that connects successively; Wherein, frequency multiplier mainly is to export spread-spectrum signal after utilizing the digital signal spread-spectrum of DS sequence code to the output of data acquisition module that digital circuit produces in the frequency multiplier; Encoder is differential encoder, and after differential encoder received signal behind the frequency multiplier spread spectrum, the signal that obtains after modulator is to differential coding was modulated and obtained modulation signal; Signal after demultiplexer is finished modulation carries out multichannel and decomposes, and the signal after decomposing is formed data link respectively output to synchronous FIFO module, and synchronous FIFO module is exported to radio-frequency module with data synchronously.Radio-frequency module comprises D/A converter, power amplifier and the antenna element with data path number same number, D/A converter converts the multi-path digital signal of fifo module output analog signal to and exports to power amplifier, amplifies through power amplifier and launches by antenna element.
Demultiplexer can be decomposed into digital signal two-way, three tunnel, four tunnel or multichannel more, and each road can be identical digital signal, also can be the packet that the part digital signal forms, and specifically the size of data that forms according to the digital signal of transmission is determined.
Referring to Fig. 2, be depicted as the module map of a kind of sensing node execution mode 2 of the present invention, this sensing node is compared with execution mode 1, the main distinction has been to comprise the execution mode of data acquisition module, wherein data acquisition module has comprised transducer and A/D converting unit, transducer can be one or a kind of, also can be a plurality of or multiple, and the signal of transducer collection flows to the Zigbee baseband processing module after the A/D converting unit converts digital signal to.
Referring to Fig. 3, be depicted as the module map of a kind of sensing node execution mode 3 of the present invention, this sensing node is compared with execution mode 2, the main distinction is that the Zigbee baseband processing module has further comprised channel estimation unit and power distributing unit, when data are exported, after carrying out channel estimating earlier, carrying out channel according to the result parameter that obtains behind the channel estimating selects, select the channel of transmission performance optimum, recycling power division module is distributed in that the average power size of data link module adjustment by coding and modulation system or bit again carried out power optimization to the binary bits sign indicating number of modulation.Concrete, channel estimation unit utilize modulation signal itself intrinsic, come channel is calculated with irrelevant some features of concrete beared information bit, according to result of calculation, the higher channel of signal to noise ratio is carried out the more power distribution.Determine the signal to noise ratio of channel as the normal RSSI of use in Zigbee (receiving the signal strength signal intensity indication) algorithm, RSSI is the parameter of utilizing software and combination of hardware method to test each channel, one by one the parameter that every channel receives is carried out computational analysis by software, can obtain the signal to noise ratio of different channels.Power distributing unit at first obtains the signal to noise ratio of each channel by channel estimation module, be basis with signal to noise ratio and gross energy, the average power size of the coded system of signal in each channel and modulation type or each bit is selected and adjusted, finish each signal power size is distributed.Wherein, the power division mode is preferentially used the self adaptation principle of pouring water.Can realize the rationalization that the data power resource is distributed by channel estimating and power division, improve the efficiency of transmission of overall communication system.
In the present embodiment, multichannel reception signal is
y = Σ k = 1 m h k p k x k + n i ;
Wherein, k is the label of transmitting antenna, and m is the number of transmitting antenna, and h is channel, and x is the signal of transmitting antenna, n iBe noise.
The multichannel system throughput can be expressed as
f ( p i ) = Σ i = 1 m log 2 ( 1 + | | S i | | 2 λ i 2 p i σ 2 ) ;
Wherein, σ 2Be the white noise variable, || S i‖ is each channel signal receiving intensity, λ iBe each channel characteristic value.. traditional pour water power distribution algorithm or average power algorithm only support the single channel power division can not realize that maybe best resource optimizes performance, and present embodiment is considered total allocation power, and its method of salary distribution at each channel is as follows:
g i ( p i ) = P c - Σ i = 1 m p i - Σ i = 1 m λ i - 1 i=1,2…m;
Here gross power Pc=tr (QQ H), Q iIt is the burst matrix of each receive channel.
Be simplified embodiment and raising enforceability, corrected output distributes formula to be:
p 1 + 1 λ 1 = p 2 + 1 λ 2 = p m + 1 λ m · · · = p c m = u ;
Wherein, p c={ p 1, p 2... p mBe the distribution power of each channel, wherein u is the horizontal constant of pouring water, and determines according to system power.
The multichannel power allocation scheme of present embodiment as shown in Figure 4.
The Zigbee baseband processing module can adopt the SOC SOC (system on a chip), also can adopt MCU processing unit etc.
The above only is the preferred embodiments of the present invention; be not so limit claim of the present invention; every equivalent structure or equivalent flow process conversion that utilizes specification of the present invention and accompanying drawing content to do; or directly or indirectly be used in other relevant technical fields, all in like manner be included in the scope of patent protection of the present invention.

Claims (10)

1. sensing node, it is characterized in that, comprise the Zigbee baseband processing module of handling for the data acquisition module of gathering signal, to described data acquisition module output data and the radio-frequency module that receives described Zigbee baseband processing module output signal; Described radio-frequency module comprises at least two antenna elements, and described Zigbee baseband processing module comprises the demultiplexer that described Zigbee baseband processing module deal with data is divided into a plurality of data link.
2. sensing node according to claim 1 is characterized in that, described Zigbee baseband processing module is SOC.
3. sensing node according to claim 1 is characterized in that, described Zigbee baseband processing module comprises frequency multiplier, encoder and the modulator that connects successively, and described demultiplexer is connected with the output of described modulator.
4. sensing node according to claim 3 is characterized in that, described Zigbee baseband processing module also comprises synchronous FIFO module, and described synchronous FIFO module connects the output of described demultiplexer.
5. sensing node according to claim 1 is characterized in that, described radio-frequency module comprises D/A converter, and described D/A converter is identical with the number of described antenna element.
6. sensing node according to claim 5 is characterized in that, described radio-frequency module also comprises power amplifier, and described D/A converter is handled the back data and export to described antenna element after described power amplifier is amplified.
7. sensing node according to claim 6 is characterized in that, described power amplifier is identical with the number of described antenna element.
8. sensing node according to claim 7 is characterized in that, described data acquisition module comprises one or more transducer and the A/D converter that is connected with described transducer.
9. sensing node according to claim 1 is characterized in that, described Zigbee baseband processing module also comprises the power distributing unit that is connected with described data link.
10. according to claim 1 or 9 described sensing nodes, it is characterized in that described Zigbee baseband processing module also comprises the channel estimation unit that is connected with described power distributing unit.
CN2013100680123A 2013-03-04 2013-03-04 Sensing node Pending CN103200600A (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105407528A (en) * 2015-11-25 2016-03-16 四川省绵阳西南自动化研究所 Wireless ranging communication module based on measurement of asynchronous response time
CN105788207A (en) * 2016-02-29 2016-07-20 成都秦川科技发展有限公司 Wireless data transmission method and device

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1956352A (en) * 2005-10-28 2007-05-02 Ut斯达康通讯有限公司 Distribution method of transmitting antenna speed, power in V-BLAST system
CN101297500A (en) * 2005-10-28 2008-10-29 皇家飞利浦电子股份有限公司 Multiple antenna transmission with variable diversity gain
CN101557367A (en) * 2009-02-27 2009-10-14 东南大学 Method for precoding multi-point limited cooperative multiple-input-multiple-output communication system
CN201757932U (en) * 2010-08-19 2011-03-09 西北工业大学 Dual-frequency wireless sensor node
CN102256380A (en) * 2010-05-18 2011-11-23 西安电子科技大学 Novel wireless multiple input multiple output (MIMO) sensor node
CN202068585U (en) * 2011-04-19 2011-12-07 天津中启创科技有限公司 Data acquisition and transmission system based on ZigBee protocol
CN103138776A (en) * 2013-02-21 2013-06-05 深圳市睿海智电子科技有限公司 Multiple output Zigbee launcher

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1956352A (en) * 2005-10-28 2007-05-02 Ut斯达康通讯有限公司 Distribution method of transmitting antenna speed, power in V-BLAST system
CN101297500A (en) * 2005-10-28 2008-10-29 皇家飞利浦电子股份有限公司 Multiple antenna transmission with variable diversity gain
CN101557367A (en) * 2009-02-27 2009-10-14 东南大学 Method for precoding multi-point limited cooperative multiple-input-multiple-output communication system
CN102256380A (en) * 2010-05-18 2011-11-23 西安电子科技大学 Novel wireless multiple input multiple output (MIMO) sensor node
CN201757932U (en) * 2010-08-19 2011-03-09 西北工业大学 Dual-frequency wireless sensor node
CN202068585U (en) * 2011-04-19 2011-12-07 天津中启创科技有限公司 Data acquisition and transmission system based on ZigBee protocol
CN103138776A (en) * 2013-02-21 2013-06-05 深圳市睿海智电子科技有限公司 Multiple output Zigbee launcher

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
周恩,等: "《现代移动通信技术丛书》", 31 May 2008 *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105407528A (en) * 2015-11-25 2016-03-16 四川省绵阳西南自动化研究所 Wireless ranging communication module based on measurement of asynchronous response time
CN105788207A (en) * 2016-02-29 2016-07-20 成都秦川科技发展有限公司 Wireless data transmission method and device

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