WO2016155098A1 - 基于节点连接芯片的节点网络及信息传输端口确定方法 - Google Patents
基于节点连接芯片的节点网络及信息传输端口确定方法 Download PDFInfo
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F13/00—Interconnection of, or transfer of information or other signals between, memories, input/output devices or central processing units
- G06F13/38—Information transfer, e.g. on bus
- G06F13/40—Bus structure
- G06F13/4004—Coupling between buses
- G06F13/4022—Coupling between buses using switching circuits, e.g. switching matrix, connection or expansion network
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F13/00—Interconnection of, or transfer of information or other signals between, memories, input/output devices or central processing units
- G06F13/38—Information transfer, e.g. on bus
- G06F13/40—Bus structure
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F13/00—Interconnection of, or transfer of information or other signals between, memories, input/output devices or central processing units
- G06F13/38—Information transfer, e.g. on bus
- G06F13/40—Bus structure
- G06F13/4063—Device-to-bus coupling
- G06F13/4068—Electrical coupling
- G06F13/4072—Drivers or receivers
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W40/00—Communication routing or communication path finding
- H04W40/24—Connectivity information management, e.g. connectivity discovery or connectivity update
Definitions
- the present invention relates to the field of electronic information technology, and in particular, to a node network based on a node connection chip and a method for determining an information transmission port.
- the existing damage detection system usually puts the loop circuit in the area to be tested. When a link of the loop circuit is destroyed, the damage detection system can obtain the information that has been destroyed, but the loop circuit cannot provide information about the destruction. Link details.
- each part is designed with a separate circuit, but still has the disadvantages that are difficult to overcome - only part of which is destroyed and applied to textile clothing Monitoring textile damage is very limited because the technology does not allow the creation of high-density loops.
- subnets that include many detection loops connected to the local microcontroller and send local status information to the host processor through the local microcontroller, but a large number of subnets means that the data transmission bus is too wide and the data processing speed is high. slow.
- the node connection chip constitutes the node network, and the data transmission port is determined to realize the rapid transmission of data, and the damage detection system is quickly provided. Detailed node information.
- the main object of the present invention is to provide a method for determining a node network and an information transmission port based on a node connection chip, and forming a node network through a node connection chip, and realizing rapid data transmission by determining the information transmission port, thereby rapidly detecting the damage detection system. Provide detailed node information.
- the present invention provides a node network based on a node connection chip.
- the node-connected chip-based node network includes a central processing unit and a plurality of node connection chips, the central processing unit is connected to at least one of the node connection chips, and the node connection chips are connected by a data port signal, the node
- the connection chip includes a microprocessor and four data ports that are signally coupled to the microprocessor, and the four of the data ports are evenly distributed around the node connection chip.
- the present invention also provides a method of determining an information transmission port applied to the above-mentioned node network.
- the method for determining the information transmission port includes the following steps:
- S2 the next detection port of the current detection chip is used as the current detection port, and S1 is executed;
- S6 The next detection port of the current detection chip is used as a port for transmitting information
- S8 The detection port in the opposite direction of the port transmitting the information is used as the port for transmitting information
- S9 Send, by the port transmitting the information, the information of the neighbor chip connected to the current detection port to the neighbor chip connected to the port signal of the transmission information.
- the current detection chip is a node connection chip that needs to transmit data
- the initial value of the current detection port is a preset data port.
- the next detection port is one of the data ports of the current detection chip except the current detection port.
- the embodiment of the present invention determines whether the current detection port of the current detection chip is closed or normal, and if so, the next detection port of the current detection chip is used as the current detection port, otherwise The current detection port is closed, and the detection port in the opposite direction of the current detection port is used as the port for transmitting information, and it is determined whether the port for transmitting the information is normal. If yes, the information of the neighbor chip connected to the current detection port is sent through the port transmitting the information.
- the neighboring chip connected to the port signal for transmitting information and sequentially determines whether the other data ports of the current detecting chip are normal and performs data transmission, and regularly and comprehensively realizes the determination and data transmission of the transmission information port in the node network, and the application In the damage detection system, the node detection information is quickly provided with detailed node information.
- FIG. 1 is a schematic structural view of a first preferred embodiment of a system for acquiring a characteristic spectral position according to the present invention
- the main object of the present invention is to provide a method for determining a node network and an information transmission port based on a node connection chip, and forming a node network through a node connection chip, and realizing rapid data transmission by determining the information transmission port, thereby rapidly detecting the damage detection system. Provide detailed node information.
- the present invention provides a node network based on a node connection chip.
- FIG. 1 is a schematic structural diagram of a node network based on a node connection chip according to a preferred embodiment of the present invention.
- the node-connected chip-based node network includes a central processing unit 02 and a plurality of node connection chips 01.
- the central processing unit 02 is connected to at least one of the node connection chips, and the node connection chips are connected by a data port 2 signal.
- the node connection chip includes a microprocessor 1 and four data ports 2 connected to the microprocessor signal, and the four data ports are evenly distributed around the node connection chip 01.
- FIG. 2 is a schematic structural view of a node connecting chip according to a preferred embodiment of the present invention.
- the node connection chip includes a microprocessor 1 and a data port 2 that is signally connected to the microprocessor 1.
- the data port 2 includes a switching unit 21, a receiving unit 22, and a transmitting unit 23, and the data port 2 and the
- the microprocessor 1 is connected through a power input end, a receiving data end, a receiving data ground end, a selecting end, a power output end, a transmitting data end, and a transmitting data ground end signal, and the data port 2 passes through the signal input end and the signal output end.
- the node connection chip 01 communicates with the neighbor node through the data port 2 for data communication.
- the microprocessor 1 is a microprocessing unit having data processing and storage functions for processing and storing data transmitted and received through the data port 2.
- the data port 2 is configured to receive data sent by the outside world and send data that the node connection chip needs to send.
- the data port 2 includes a switching unit 21, a receiving unit 22 and a transmitting unit 23, and the switching unit 21 is configured to control the receiving unit 22 and the transmitting unit 23 to be effective under the control of the microprocessor 1, ie In different cases, the data port 2 is configured to receive data sent by the outside world or data used to send the node connection chip.
- the node network comprises a central processing unit 02, which is connected to at least one of the node connection chips.
- the central processing unit 02 may be connected to a plurality of node connection chips therein, and when one of the nodes connected to the central processing unit is connected When the chip is damaged, other nodes can also transmit data through other data transmission channels.
- a central processor and a plurality of nodes form a node network, and the central processor is connected to at least one node for receiving specific node information through the node network, where the node includes a microprocessor and a data port, and the data port can be The other nodes are extended, and the data transmission port is determined to realize fast data transmission, and the detailed node information is quickly provided for the damage detection system.
- a port connector is provided on the data port of the node, and the nodes are connected by the port connector signal.
- a port connector is set between the node and the node. When any two nodes are connected through the port, the port connector is connected together, which is quick and convenient. When a node is damaged, you can also quickly repair the node network by repairing the port connector or replacing it with a new one.
- the data ports are arranged in four, and the four data ports are evenly distributed around the nodes.
- Four data ports can be set to extend the neighbor nodes on the top, bottom, left, and right to form a square node network.
- a new data transmission channel can be established through other neighbor nodes to transmit data.
- the adjacent two nodes are connected by signal lines to different data port signals.
- FIG. 3 is a schematic diagram showing the external structure of a preferred embodiment of the inventive node connection chip.
- Four of the data ports are disposed on different horizontal planes around the node, and two of the data ports are The signal line is set up and the other two data port signal lines are facing down. Specifically, as shown in FIG.
- the data ports (actually signal line extension portions of the data port) are respectively 201, 202, 203, 204, and are disposed in the The nodes are connected to different horizontal planes around the chip, and wherein the signal lines of the data port 201 and the data port 202 are disposed upward, and the signal lines of the other two data ports 203 and 204 are disposed downward. Only one of the signal lines 2021 of the data port 202 and one of the signal lines 2031 of the data port 203 are identified in the figure. The purpose of this setting is to facilitate the signal connection between two adjacent nodes through different signal lines to two different data ports.
- the present invention also provides a method of determining an information transmission port applied to the above-mentioned node network.
- the method for determining the information transmission port includes the following steps:
- the current detection chip may send the request feedback status information to the neighboring chip connected to the current detection port to determine whether the current detection port of the current detection chip is closed or normal.
- the current detection chip is a node connection chip that needs to transmit data
- the initial value of the current detection port is a preset data port.
- the data port below the current detection chip is the initial value of the current detection port.
- S2 the next detection port of the current detection chip is used as the current detection port, and S1 is executed;
- the current detection port of the current detection chip is turned off or normal, it indicates that the neighboring chip connected to the current detection port is the last broken node connection chip or the normal node connection chip, and the next data of the current detection chip is The port acts as the current detection port and continues to execute S1. Otherwise, it indicates that the neighbor chip connected to the current detection port has been corrupted. At this time, S3 is executed, the current detection port is closed, the data transmission is not performed through the current detection port, and the detection port in the opposite direction of the current detection port is used as the port for transmitting information.
- S6 The next detection port of the current detection chip is used as a port for transmitting information
- the next detection port is one of the data ports of the current detection chip except the current detection port.
- S8 The detection port in the opposite direction of the port transmitting the information is used as the port for transmitting information
- S9 Send, by the port transmitting the information, the information of the neighbor chip connected to the current detection port to the neighbor chip connected to the port signal of the transmission information.
- the embodiment of the present invention determines whether the current detection port of the current detection chip is closed or normal, and if so, the next detection port of the current detection chip is used as the current detection port, if otherwise, the current detection port is closed, and the detection of the current detection port in the opposite direction is detected.
- the port serves as a port for transmitting information, and determines whether the port for transmitting the information is normal.
- the port transmitting the information sends the information of the neighbor chip connected to the current detection port to the neighbor chip connected to the port signal of the transmission information, and sequentially Iteratively judges whether other data ports of the current detection chip are normal and performs data transmission, and regularly and comprehensively realizes the determination and data transmission of the transmission information port in the node network, and is applied to the damage detection system to quickly provide detailed information for the damage detection system. Node information.
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Abstract
本发明公开了基于节点连接芯片的节点网络及信息传输端口确定方法。通过判断当前检测芯片的当前检测端口是否关闭或者正常,若是则将当前检测芯片的下一个检测端口作为当前检测端口,若否则关闭当前检测端口,并将当前检测端口相反方向的检测端口作为传输信息的端口,判断传输信息的端口是否正常,若是则通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片,并依次循环判断当前检测芯片的其他数据端口是否正常并进行数据传输,有规律且全面的实现了节点网络中传输信息端口的确定和数据传输。
Description
技术领域
本发明涉及电子信息技术领域,尤其涉及一种基于节点连接芯片的节点网络及信息传输端口确定方法。
背景技术
现有的损毁检测系统通常的做法是将环路电路放置在待测区域,当环路电路一个链路被毁坏时,损毁检测系统能够获取到已经损毁的信息,但环路电路不能提供关于毁坏链路的详细信息。随着技术的发展,为了区别待测区域的毁坏部分,每个部分设计了单独的回路,但仍然具有很难克服的缺点-只能识别其中的一部分被毁坏,且将其应用于纺织衣物中监测纺织物的损毁情况时非常受限,因为本技术不允许创建的高密度环路。因此,出现了包括很多与本地微控制器连接的检测环路并通过本地微控制器发送本地状态信息至主处理器的子网,但大量子网意味着数据传输总线要求太宽,数据处理速度慢。
基于此,有必要设计一种基于节点连接芯片的节点网络及信息传输端口确定方法,通过节点连接芯片构成节点网络,通过对信息传输端口的确定,实现数据的快速传输,为损毁检测系统快速提供详细的节点信息。
发明内容
本发明的主要目的在于提供一种基于节点连接芯片的节点网络及信息传输端口确定方法,通过节点连接芯片构成节点网络,通过对信息传输端口的确定,实现数据的快速传输,为损毁检测系统快速提供详细的节点信息。
为实现上述目的,本发明提供了一种基于节点连接芯片的节点网络。
所述基于节点连接芯片的节点网络包括中央处理器和多个节点连接芯片,所述中央处理器与其中至少一个节点连接芯片连接,所述节点连接芯片之间通过数据端口信号连接,所述节点连接芯片包括微处理器以及与所述微处理器信号连接的四个数据端口,四个所述数据端口均匀分布于所述节点连接芯片的四周。
为实现上述目的,本发明还提供了一种应用于上述节点网络的信息传输端口的确定方法。
所述信息传输端口的确定方法包括如下步骤:
S1:判断当前检测芯片的当前检测端口是否关闭或者正常;若是,执行S2;否则,执行S3;
S2:将当前检测芯片的下一个检测端口作为当前检测端口,执行S1;
S3:关闭当前检测端口,并将当前检测端口相反方向的检测端口作为传输信息的端口;
S4:判断传输信息的端口是否正常;若是,执行S5;否则,执行S6;
S5:则通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片,执行S1;
S6:将当前检测芯片的下一个检测端口作为传输信息的端口;
S7:判断传输信息的端口是否正常;若是,执行S9;否则,执行S8;
S8:将传输信息的端口相反方向的检测端口作为传输信息的端口;
S9:通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片。
在其中一个实施例中,所述当前检测芯片为需要传输数据的节点连接芯片,所述当前检测端口的初始值为预设的数据端口。
在其中一个实施例中,所述下一个检测端口为所述当前检测芯片的除所述当前检测端口之外的其他数据端口中的其中一个数据端口。
本发明采用上述技术方案,带来的技术效果为:本发明实施例通过判断当前检测芯片的当前检测端口是否关闭或者正常,若是则将当前检测芯片的下一个检测端口作为当前检测端口,若否则关闭当前检测端口,并将当前检测端口相反方向的检测端口作为传输信息的端口,并判断所述传输信息的端口是否正常,若是则通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片,并依次循环判断当前检测芯片的其他数据端口是否正常并进行数据传输,有规律且全面的实现了节点网络中传输信息端口的确定和数据传输,应用于损毁检测系统中,为损毁检测系统快速提供详细的节点信息。
附图说明
图1为本发明获取特征光谱位置的系统第一优选实施例结构示意图;
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本发明,并不用于限定本发明。
本发明的主要目的在于提供一种基于节点连接芯片的节点网络及信息传输端口确定方法,通过节点连接芯片构成节点网络,通过对信息传输端口的确定,实现数据的快速传输,为损毁检测系统快速提供详细的节点信息。
为实现上述目的,本发明提供了一种基于节点连接芯片的节点网络。
参照图1,图1所示为本发明基于节点连接芯片的节点网络较佳实施例结构示意图。所述基于节点连接芯片的节点网络包括中央处理器02和多个节点连接芯片01,所述中央处理器02与其中至少一个节点连接芯片连接,所述节点连接芯片之间通过数据端口2信号连接,所述节点连接芯片包括微处理器1以及与所述微处理器信号连接的四个数据端口2,四个所述数据端口均匀分布于所述节点连接芯片01的四周。
参照图2,图2所示为本发明节点连接芯片较佳实施例结构示意图。所述节点连接芯片包括微处理器1以及与所述微处理器1信号连接的数据端口2,所述数据端口2包括切换单元21、接收单元22和发送单元23,所述数据端口2与所述微处理器1通过电源输入端、接收数据端、接收数据地端、选择端、电源输出端、发送数据端、发送数据地端信号连接,所述数据端口2通过信号输入端和信号输出端与外界进行数据通讯。在本发明实施例中,所述节点连接芯片01通过数据端口2与邻居节点连接芯片进行数据通讯。
所述微处理器1为具有数据处理和存储功能的微处理单元,所述微处理器1用于处理和存储通过所述数据端口2发送和接收的数据。所述数据端口2用于接收外界发送的数据以及发送所述节点连接芯片需要发送的数据。所述数据端口2包括切换单元21、接收单元22和发送单元23,所述切换单元21用于在所述微处理器1的控制下控制所述接收单元22和所述发送单元23有效,即在不同的情况下,所述数据端口2用于接收外界发送的数据或用于发送所述节点连接芯片需要发送的数据。
所述节点网络包括中央处理器02,所述中央处理器02与其中至少一个节点连接芯片连接。为了确保所述中央处理器02与其他节点连接芯片构成多个数据传输通道,所述中央处理器02可以与其中的多个节点连接芯片连接,当与所述中央处理器连接的其中一个节点连接芯片损毁时,其他节点连接芯片还可以通过其他的数据传输通道进行传输数据。
本发明实施例通过中央处理器和多个节点构成节点网络,中央处理器与至少一个节点信号连接,用于通过节点网络接收具体的节点信息,节点包括微处理器和数据端口,通过数据端口可以扩展其他的节点,通过对信息传输端口的确定,实现数据的快速传输,为损毁检测系统快速提供详细的节点信息。
在其中一个实施例中,所述节点的数据端口上设置端口连接器,所述节点之间通过所述端口连接器信号连接。为了便于构成节点网络,节点与节点之间设置了端口连接器,任何两个节点通过端口连接时,通过端口连接器将其连接在一起,快捷方便。当某个节点被损毁时,也可以通过修复端口连接器或者更换新的节点的方式,快速修复节点网络。
在其中一个实施例中,参照图1,所述数据端口设置四个,四个所述数据端口均匀分布于所述节点的四周。设置四个数据端口能够在上下左右分别扩展邻居节点,构成方形节点网络,且当其中一个邻居节点损毁时,还可以通过其他邻居节点建立新的数据传输通道进行传输数据。相邻的所述两个节点之间通过信号线朝向不同的两个数据端口信号连接。
在其中一个实施例中,参照图3,图3所示为发明节点连接芯片较佳实施例外部结构示意图,四个所述数据端口设置于节点四周不同的水平面上,且其中两个数据端口的信号线朝上设置,另外两个数据端口信号线朝下设置。具体地,如图3所示在本发明节点连接芯片外部结构示意图中,四个所述数据端口(实际是数据端口的信号线延伸部分)分别为201、202、203、204,设置于所述节点连接芯片四周不同的水平面上,且其中数据端口201和数据端口202的信号线朝上设置,另外两个数据端口203和数据端口204的信号线朝下设置。图中仅标识出了数据端口202的其中一个信号线2021,以及数据端口203其中一个信号线2031。这样设置的目的,便于相邻的两个节点之间通过信号线朝向不同的两个数据端口信号连接。
为实现上述目的,本发明还提供了一种应用于上述节点网络的信息传输端口的确定方法。
所述信息传输端口的确定方法包括如下步骤:
S1:判断当前检测芯片的当前检测端口是否关闭或者正常;若是,执行S2;否则,执行S3;
具体地,可以通过当前检测芯片向与其当前检测端口连接的邻居芯片发送请求反馈状态信息来判断当前检测芯片的当前检测端口是否关闭或者正常。
在其中一个实施例中,所述当前检测芯片为需要传输数据的节点连接芯片,所述当前检测端口的初始值为预设的数据端口。例如,以当前检测芯片的下方数据端口为当前检测端口的初始值。
S2:将当前检测芯片的下一个检测端口作为当前检测端口,执行S1;
具体地,若当前检测芯片的当前检测端口关闭或者正常,说明与当前检测端口连接的邻居芯片为上次损毁的节点连接芯片或者为正常的节点连接芯片,将所述当前检测芯片的下一个数据端口作为当前检测端口,继续执行S1。否则,说明与当前检测端口连接的邻居芯片已经被损毁。此时执行S3,关闭当前检测端口,不再通过当前检测端口进行数据传输,并将当前检测端口相反方向的检测端口作为传输信息的端口。
S3:关闭当前检测端口,并将当前检测端口相反方向的检测端口作为传输信息的端口;
S4:判断传输信息的端口是否正常;若是,执行S5;否则,执行S6;
S5:则通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片,执行S1;
S6:将当前检测芯片的下一个检测端口作为传输信息的端口;
在其中一个实施例中,所述下一个检测端口为所述当前检测芯片的除所述当前检测端口之外的其他数据端口中的其中一个数据端口。
S7:判断传输信息的端口是否正常;若是,执行S9;否则,执行S8;
S8:将传输信息的端口相反方向的检测端口作为传输信息的端口;
S9:通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片。
本发明实施例通过判断当前检测芯片的当前检测端口是否关闭或者正常,若是则将当前检测芯片的下一个检测端口作为当前检测端口,若否则关闭当前检测端口,并将当前检测端口相反方向的检测端口作为传输信息的端口,并判断所述传输信息的端口是否正常,若是则通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片,并依次循环判断当前检测芯片的其他数据端口是否正常并进行数据传输,有规律且全面的实现了节点网络中传输信息端口的确定和数据传输,应用于损毁检测系统中,为损毁检测系统快速提供详细的节点信息。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。
Claims (4)
- 一种基于节点连接芯片的节点网络,其特征在于,所述节点网络包括中央处理器和多个节点连接芯片,所述中央处理器与其中至少一个节点连接芯片连接,所述节点连接芯片之间通过数据端口信号连接,所述节点连接芯片包括微处理器以及与所述微处理器信号连接的四个数据端口,四个所述数据端口均匀分布于所述节点连接芯片的四周。
- 一种应用于权利要求1所述的基于节点连接芯片的节点网络的信息传输端口的确定方法,其特征在于,所述信息传输端口的确定方法包括如下步骤:S1:判断当前检测芯片的当前检测端口是否关闭或者正常;若是,执行S2;否则,执行S3;S2:将当前检测芯片的下一个检测端口作为当前检测端口,执行S1;S3:关闭当前检测端口,并将当前检测端口相反方向的检测端口作为传输信息的端口;S4:判断传输信息的端口是否正常;若是,执行S5;否则,执行S6;S5:则通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片,执行S1;S6:将当前检测芯片的下一个检测端口作为传输信息的端口;S7:判断传输信息的端口是否正常;若是,执行S9;否则,执行S8;S8:将传输信息的端口相反方向的检测端口作为传输信息的端口;S9:通过传输信息的端口发送与当前检测端口连接的邻居芯片的信息至与传输信息的端口信号连接的邻居芯片。
- 如权利要求2所述的节点网络信息传输端口的确定方法,其特征在于,所述当前检测芯片为需要传输数据的节点连接芯片,所述当前检测端口的初始值为预设的数据端口。
- 如权利要求2所述的节点网络信息传输端口的确定方法,其特征在于,所述下一个检测端口为所述当前检测芯片的除所述当前检测端口之外的其他数据端口中的其中一个数据端口。
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