WO2015039519A1 - 数据处理的方法及装置 - Google Patents

数据处理的方法及装置 Download PDF

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Publication number
WO2015039519A1
WO2015039519A1 PCT/CN2014/084894 CN2014084894W WO2015039519A1 WO 2015039519 A1 WO2015039519 A1 WO 2015039519A1 CN 2014084894 W CN2014084894 W CN 2014084894W WO 2015039519 A1 WO2015039519 A1 WO 2015039519A1
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WIPO (PCT)
Prior art keywords
data packet
tcp
preset
protocol
modem
Prior art date
Application number
PCT/CN2014/084894
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English (en)
French (fr)
Inventor
邓宇
张岳
彭钰
Original Assignee
华为终端有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 华为终端有限公司 filed Critical 华为终端有限公司
Priority to KR1020167002368A priority Critical patent/KR101798016B1/ko
Priority to US14/906,487 priority patent/US9838509B2/en
Priority to EP14846582.6A priority patent/EP3007494B1/en
Priority to JP2016526436A priority patent/JP6290397B2/ja
Publication of WO2015039519A1 publication Critical patent/WO2015039519A1/zh

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L69/00Network arrangements, protocols or services independent of the application payload and not provided for in the other groups of this subclass
    • H04L69/08Protocols for interworking; Protocol conversion
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3206Monitoring of events, devices or parameters that trigger a change in power modality
    • G06F1/3209Monitoring remote activity, e.g. over telephone lines or network connections
    • 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
    • H04L67/04Protocols specially adapted for terminals or networks with limited capabilities; specially adapted for terminal portability
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3234Power saving characterised by the action undertaken
    • G06F1/3293Power saving characterised by the action undertaken by switching to a less power-consuming processor, e.g. sub-CPU
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L43/00Arrangements for monitoring or testing data switching networks
    • H04L43/10Active monitoring, e.g. heartbeat, ping or trace-route
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/50Network services
    • H04L67/55Push-based network services
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L69/00Network arrangements, protocols or services independent of the application payload and not provided for in the other groups of this subclass
    • H04L69/08Protocols for interworking; Protocol conversion
    • H04L69/085Protocols for interworking; Protocol conversion specially adapted for interworking of IP-based networks with other networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L69/00Network arrangements, protocols or services independent of the application payload and not provided for in the other groups of this subclass
    • H04L69/16Implementation or adaptation of Internet protocol [IP], of transmission control protocol [TCP] or of user datagram protocol [UDP]
    • H04L69/163In-band adaptation of TCP data exchange; In-band control procedures
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/14Session management
    • H04L67/143Termination or inactivation of sessions, e.g. event-controlled end of session
    • H04L67/145Termination or inactivation of sessions, e.g. event-controlled end of session avoiding end of session, e.g. keep-alive, heartbeats, resumption message or wake-up for inactive or interrupted session
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0225Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
    • H04W52/0229Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal where the received signal is a wanted signal
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D10/00Energy efficient computing, e.g. low power processors, power management or thermal management
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • the present invention relates to the field of terminal application technologies, and in particular, to a data processing method and apparatus. Background technique
  • mobile devices use an Internet communication mode based on an application modem-based processor (AP) + Modem (Modem).
  • AP application modem-based processor
  • Modem Modem
  • the AP is responsible for packetizing and sending the data to the modem and parsing the data packet received by the modem.
  • the modem is responsible for transmitting the data packet sent by the AP to the network and reporting the data packet received from the network to the AP.
  • the mobile device has a limited amount of power, and when the data packet is frequently transmitted, the mobile device consumes a large amount of power.
  • a firewall is set up in the AP, and the firewall is used to shield the garbage packets received by the Modem.
  • the modem receives the data packet
  • the AP wakes up the AP, and the AP detects the data packet according to the firewall policy. If the data packet is a garbage data packet, the AP discards the data packet, thereby reducing the workload of the AP parsing the data packet.
  • the method and device for data processing provided by the present invention can solve the problem that the overall energy consumption of the AP and the Modem in the mobile device cannot be significantly reduced.
  • the present invention provides a data processing method, the method being applied to a modem modem, the method comprising:
  • the preset TCP/IP protocol stack And consisting of a transport layer protocol group and/or a network layer protocol group in the TCP/IP protocol suite, where the data packet processed by the preset processing rule is a status data packet, and the status data packet is used to indicate an online state of the terminal;
  • the data packet is processed according to the preset processing rule;
  • the data packet is processed according to the protocol in the preset TCP/IP protocol stack.
  • the method further includes: presetting a TCP/IP protocol stack, including:
  • Presetting a network layer protocol group comprising at least one of the following protocols: ICMP, IGMP; and/or a preset transport layer protocol group, the transport layer protocol group comprising at least one of the following protocols: TCP, foot.
  • a second possible implementation of the first aspect is also provided.
  • Processing the data packet according to the protocol of the TCP/IP protocol stack including:
  • the reachable state of the device queried by the ping packet is obtained; and the reachable state of the device is sent to the server.
  • a third possible implementation manner of the first aspect is further provided.
  • Processing the data packet according to the protocol in the TCP/IP protocol stack including: When the data packet is an IGMP data packet, if the AP is already in a sleep state, the IGMP data packet is discarded.
  • a fourth possible implementation of the first aspect is also provided.
  • the method Before the processing of the data packet according to the protocol in the TCP/IP protocol stack, the method further includes:
  • the port reachability information list is composed of at least one port number, where the port number is an identification number of the activated port;
  • the processing the data packet according to the protocol in the TCP/IP protocol stack including: when the data packet is a TCP data packet or a UDP data packet, if the TCP data packet or the UDP data packet includes a port number If it is not included in the port reachability information list, the TCP data packet or UDP data is discarded.
  • a fifth possible implementation of the first aspect is also provided.
  • the method Before the processing the data packet according to the preset processing rule, the method further includes:
  • the status data packet is a heartbeat data packet or a Push data packet
  • the processing the data packet according to the preset processing rule includes:
  • a sixth possible implementation of the first aspect is also provided, in the first aspect
  • the method further includes: if the network signal strength is less than a preset strength value, and the received data packet is sent by the server If the failure message is sent, the data packet is canceled within the preset waiting time.
  • the present invention also provides a data processing method, where the device is applied to a modulation solution In the modem Mode, the device includes:
  • a receiver of the modem configured to receive a data packet sent by the server
  • a processor of the modem configured to acquire a type of the data packet; determine a type of the data packet received by a receiver of the modem, and a type of a data packet processed by a preset processing rule or in a preset TCP/IP protocol stack Whether the type of the protocol is consistent, and the judgment result is obtained.
  • the preset TCP/IP protocol stack is composed of a transport layer protocol group and/or a network layer protocol group in the TCP/IP protocol family, and the data processed by the preset processing rule
  • the packet is a status data packet, and the status data packet is used to indicate an online status of the terminal;
  • the data packet is processed according to the preset processing rule
  • the data packet is processed according to the protocol in the preset TCP/IP protocol stack.
  • the processor of the modem is further configured to: preset a network layer protocol group, where the network layer protocol group includes at least one of the following protocols: ICMP, IGMP ;
  • a preset transport layer protocol group where the transport layer protocol group includes at least one of the following protocols: TCP, foot.
  • a second possible implementation of the second aspect is also provided.
  • the processor of the modem is configured to process the data packet according to a protocol in the TCP/IP protocol stack, specifically:
  • the processor of the modem is configured to obtain a reachable state of the device queried by the ping packet when the data packet is a ping packet;
  • the apparatus also includes a transmitter of the modem for transmitting the reachable status of the device to the server.
  • a third possible implementation manner of the second aspect is further provided.
  • Modulation The processor of the demodulator is configured to process the data packet according to a protocol in the TCP/IP protocol stack, specifically:
  • the processor of the modem is configured to discard the IGMP data packet if the AP is in a sleep state when the data packet is an IGMP data packet.
  • a fourth possible implementation of the second aspect is also provided.
  • the receiver of the modem is further configured to receive a port reachability information list sent by the AP, where the port reachability information list is composed of at least one port number, where the port number is an identification number of the activated port;
  • the processor of the modem is configured to process the data packet according to a protocol in a TCP/IP protocol stack, specifically:
  • the data packet is a TCP data packet or a UDP data packet
  • the TCP data packet or the UDP data packet includes a port number that is not included in the port reachability information list, the TCP data packet is discarded or UDP data.
  • the receiver of the modem further includes: receiving, by the AP, a preset processing rule, where the status data packet is a heartbeat data packet or a Push data packet;
  • the processor of the modem is configured to process the data packet according to the preset processing rule, specifically:
  • the processor of the modem is configured to, when the receiver of the modem receives the push Push data packet sent by the server, control, according to the Push data packet, the transmitter of the modem to send a response data packet to the server, the response
  • the data packet is used to make the server aware that the mobile device is online.
  • a sixth possible implementation of the second aspect is also provided, in the second aspect
  • the processor of the modem is further configured to: when the network signal strength is less than When the strength value is preset and the receiver of the modem receives the retransmission failure message sent by the server, the transmitter controlling the modem cancels the transmission of the data packet within the preset waiting time.
  • the Modem can acquire the type of the received data packet, determine whether the type of the data packet is different from the type of the data packet processed by the preset processing rule or in the preset TCP/IP protocol stack. Whether the types of the protocols are consistent, if they are consistent, the data packets are processed according to protocols in the TCP/IP protocol stack or preset processing rules.
  • the modem wakes up the AP, and sends all the received data packets to the AP for processing, and the AP is in a awake state for a long time (high power consumption state), resulting in mobile device work. It is expensive.
  • the invention adds a preset TCP/IP protocol stack or a preset processing rule in the memory of the Modem, so that the Modem has the processing capability for some data packets.
  • the AP does not need to wake up the AP, and the Modem can process the data packet instead of the AP. In other words, the AP will wake up the AP to process the packet only if the type of the protocol in the preset TCP/IP stack saved in the Modem or the preset processing rule cannot process the packet.
  • the technical solution of the present invention can prolong the AP's sleep state, reduce the power consumption of the AP, and reduce the power consumption of the mobile device.
  • FIG. 1 is a flowchart of a first method of data processing in an embodiment of the present invention
  • FIG. 2 is a flowchart of a second method for data processing in an embodiment of the present invention.
  • FIG. 3 is a flowchart of a third method of data processing in an embodiment of the present invention.
  • FIG. 4 is a schematic structural diagram of an apparatus for data processing according to an embodiment of the present invention.
  • FIG. 5 is a schematic structural diagram of a terminal of a device with data processing according to an embodiment of the present invention
  • FIG. Figure 6-a is a diagram showing the energy consumption when processing a Ping packet using the prior art
  • FIG. 6-b is a diagram showing the energy consumption when processing a P i ng packet using the embodiment of the present invention. detailed description
  • An embodiment of the present invention provides a data processing method. As shown in FIG. 1 , the method is applied to a modem modem. The method includes:
  • Step 101 Receive a data packet sent by the server, and obtain a type of the data packet.
  • the modem is a wireless modem.
  • the pulse signal propagating along the air interface network is converted into a digital signal recognizable by the mobile terminal through the demodulator.
  • the type of the data packet is any one of the following data packets: Ping packet checking whether the network is connected, Addres s Resolucation Protocol (ARP) data packet, Interne t Control Message Protocol (Interne t Control Mes sage Protocol) , I CMP ) data packet, Internet Group Management Protocol (IGMP) data packet, Transmission Control Protocol (TCP) data packet, User Data Protocol (User Da tagram Protocol, UDP) ) Data packets, etc.
  • ARP Addres s Resolucation Protocol
  • I CMP Interne t Control Message Protocol
  • I CMP Internet Group Management Protocol
  • IGMP Internet Group Management Protocol
  • TCP Transmission Control Protocol
  • UDP User Data Protocol
  • Step 102 Determine whether the type of the data packet matches the type of the data packet processed by the preset processing rule or the type of the protocol in the preset TCP/IP protocol stack, and obtain a determination result.
  • the TCP/IP protocol stack includes a network layer protocol group and/or a transport layer protocol group, and the data packet processed by the preset processing rule is a status data packet.
  • the network layer protocol group is ICMP and/or IGMP
  • the transport layer protocol group is TCP and/or UDP.
  • the status data packet is used to indicate the online status of the terminal.
  • the response data packet is sent to indicate the online status of the terminal.
  • Each protocol and preset processing rule in the TCP/IP stack are used to handle different types. Packet.
  • the type of the data packet matches the type of the protocol in the preset TCP/IP protocol stack or the type of the data packet processed by the preset processing rule, it is determined that the preset TCP/IP protocol stack or the preset processing rule may be used to process the data packet.
  • Type of packet otherwise, it is determined that the default TCP/IP stack or preset processing rules cannot be used to process this type of packet.
  • the type of the data packet is the same as the one or more types of the protocol, or the type of the data packet is one or more types of data packets processed by the preset processing rule.
  • the network layer protocol group includes at least one of the following protocols: ICMP, IGMP.
  • the transport layer protocol group is at least one of the following protocols: TCP, UDP.
  • Step 103a When the type of the data packet matches the type of the data packet processed by the preset processing rule, the data packet is processed according to a preset processing rule.
  • the data packet is processed according to the protocol in the preset TCP/IP protocol stack.
  • Protocols in the TCP/IP protocol stack for example:
  • the network layer protocol can be used to process I CMP packets, and the transport layer protocol can be used to process P i ng packets, TCP packets, and UDP packets.
  • Step 103b When the type of the data packet matches the type of the protocol in the preset TCP/IP protocol stack, the data packet is processed according to a protocol in the preset TCP/IP protocol stack.
  • the processing of the data packet according to the preset processing rule includes: periodically receiving the status data packet sent by the network side server, replying according to the status data packet, or periodically sending the status data packet to the network side server.
  • Preset processing rules if a timing feedback mechanism is specified. The timing feedback mechanism periodically sends a status data packet to the network side server every preset time period, and the status data packet is used to indicate the online status of the terminal, so that the network side server acquires the online status of the terminal.
  • Step 104 If not, wake up the processor AP of the application modem, and send the data packet to the AP, so that the AP processes the data packet.
  • the processor of the application modem is awakened (Appl Icating Proces sor, AP for short).
  • the packet can be processed after the AP is woken up.
  • the data processing method provided by the embodiment of the present invention is capable of acquiring the type of the received data packet, determining whether the type of the data packet is different from the type of the protocol in the preset TCP/IP protocol stack or the data processed by the preset processing rule. Whether the types of packets are consistent. If they are consistent, the packets are processed according to the TCP/IP protocol stack or preset processing rules. Otherwise, the AP is woken up.
  • the Modem wakes up the AP, and sends all the received data packets to the AP for processing.
  • the AP is in an awake state (high power consumption state) for a long time, which causes the mobile device to consume a large amount of power.
  • the protocol or the preset processing rule in the preset TCP/IP protocol stack is added in the Modem, so that the Modem has the processing capability for the partial data packet.
  • the AP does not need to wake up the AP, and the Modem can process the data packet instead of the AP.
  • the AP will wake up the AP to process the data packet only if the protocol or the preset processing rule in the preset TCP/IP protocol stack saved in the Modem cannot process the data packet. Since the power consumption of the Modem is lower than that of the AP when the same operation is completed, the AP can be prolonged in sleep state, and the power consumption of the AP can be reduced, thereby reducing the power consumption of the mobile device.
  • the embodiment of the present invention further provides a data processing method.
  • the preset TCP/IP protocol stack includes:
  • Presetting a network layer protocol group comprising at least one of the following protocols: ICMP, IGMP; and/or a preset transport layer protocol group, the transport layer protocol group comprising at least one of the following protocols: TCP, foot.
  • the data packet is processed according to the protocol in the TCP/IP protocol stack, as shown in FIG. 2, including:
  • Step 201 Acquire a reachable state of the device that is queried by the ping packet.
  • the ping packet is used to detect whether the device exists.
  • the ping packet is parsed according to the ICMP to obtain the network address of the detected device. Find the presence of the network address in the locally reserved routing information table.
  • Step 202 Send a reachable state of the device to the server.
  • the reachable state is divided into reachable or unreachable. If the network address exists in the routing information table, it is reachable. Send reachable information to the server. Otherwise, if the network address does not exist in the routing information table, it is unreachable and sends unreachable information to the server.
  • the processing by the protocol in the TCP/IP protocol stack, processing the data packet, including:
  • the IGMP packet is discarded.
  • the I GMP packet is a broadcast packet, and the content of the I GMP packet is the multicast group information in which the terminal is located. If the AP is in the sleep state, the IGMP packet is directly discarded, which reduces the number of AP wakeups.
  • the IGMP data packet is discarded.
  • the low power state of the screen includes: Lock screen status or screen off status.
  • the number of wake-up times of the AP can be reduced.
  • the method before the processing the data packet according to the protocol in the TCP/IP protocol stack, the method further includes:
  • Step 301 Receive a port reachability information list sent by the AP, where the port reachability information list is composed of at least one port number, and the port number is an identification number of the activated port.
  • Step 302 Determine whether the received port number of the TCP packet or the UDP packet is included in the port reachability information list.
  • the processing the data packet according to the protocol in the TCP/IP protocol stack may further include:
  • Step 303 If the port number included in the TCP packet or the UDP packet is not included in the port reachability information list, the TCP packet or the UDP data is discarded.
  • Step 304 If the port number included in the TCP packet or the UDP packet is included in the port reachable information list, the AP is woken up, and the TCP packet or UDP data is sent to the AP.
  • Each application receives a packet through a dedicated port.
  • the terminal saves a list of all ports that have been activated in the local storage, that is, a list of port reachable information. This list is being played by the AP Sent to the Modem before the sleep state.
  • the modem receives the data packet, if the type of the data packet is a TCP data packet or a UDP data packet, the data packet is processed according to steps 303 to 304. If the port number included in the TCP packet or the UDP packet is not included in the port reachability information list, the terminal cannot process the data packet, and the TCP packet is directly received without waking up the AP. Or UDP packets are dropped.
  • the port number included in the TCP packet or the UDP packet is included in the port reachability information list, it indicates that the TCP packet or the UDP packet can be processed, because the modem does not have the data processing capability of the AP, The AP will be woken up, and the TCP packet or UDP data will be sent to the AP for further processing by the AP.
  • the data processing method provided by the embodiment of the present invention can process a Ping packet, an IGMP data packet, a TCP data packet, or a UDP data packet.
  • the modem can process, the AP does not need to wake up, thereby saving system resources. Reduce system power consumption.
  • the embodiment of the present invention further provides a data processing method.
  • a data processing method As a further description of the method shown in FIG. 1, before the processing the data packet according to a protocol in a TCP/IP protocol stack, the method includes:
  • the status data packet is a heartbeat data packet or a Push data packet
  • the processing the data packet according to the preset processing rule includes:
  • the Push data packet is used in the Push technology, and the Push technology is a technology in which the network side server actively sends information to the client.
  • the Push data packet is a status data packet that the network side server periodically sends to the terminal. When the modem of the terminal receives the Push data packet, it responds to the Push data packet, so that the network side server knows the online status of the terminal.
  • the heartbeat data packet is sent to the server according to the preset duration, where the heartbeat data packet is used to indicate that the mobile device is currently in an online state.
  • the terminal may run instant messaging software and social software that periodically sends heartbeat packets to the network side server to let the server know that the end user is online or offline.
  • the preset duration can be 30s, 60s, etc.
  • the modem does not need to receive the data packet sent by the network side server, and the modem sends the heartbeat data packet to the server according to the preset duration, so that the network side server knows the online state of the terminal.
  • the method further includes: if the network signal strength is less than the preset strength value, and receiving the retransmission failure information sent by the server, canceling sending within a preset waiting time data pack.
  • the network signal strength is detected by a preset detection duration, and if the network signal strength is not less than a preset intensity value, the data packet is sent to the server.
  • the transmission fails, the transmission is re-sent until the transmission is successful. If the network signal is not good, it will be retransmitted all the time, causing the Modem to transmit unnecessarily and waste network resources.
  • a retransmission is performed, and if the retransmission fails, the retransmission failure information sent by the network side server is received, and the current network signal strength is not good (the current network signal strength value is less than the preset strength).
  • the value such as _90dBm decibel milliwatts, cancels the transmission of the packet within the preset waiting time (eg 3 minutes).
  • the network signal strength is detected by a preset detection duration (e.g., 30 s), and if the network signal strength is not less than a preset intensity value, the data packet is sent to the server. If the network signal strength is less than the preset intensity value, the network signal strength is detected by a preset detection duration (eg, 30 s) until the detected network signal strength is not less than a preset intensity value.
  • a preset detection duration e.g. 30 s
  • the data processing method provided by the embodiment of the present invention can determine whether to continue to send data packets according to the current network signal strength after one retransmission failure, thereby reducing waste of network resources.
  • the embodiment of the present invention further provides a device for data processing, the device is located in a modem, and the device is used to perform the method shown in FIG. 1 to FIG. 3.
  • the device includes:
  • the receiver of the modem 41 is configured to receive a data packet sent by the server.
  • a processor 42 of the modem configured to acquire the type of the data packet; Determining whether the type of the data packet received by the receiver 41 of the modem matches the type of the data packet processed by the preset processing rule or the type of the protocol in the preset TCP/IP protocol stack, and obtaining a determination result, the pre-predetermined
  • the TCP/IP protocol stack is composed of a transport layer protocol group and/or a network layer protocol group in the TCP/IP protocol suite.
  • the data packet processed by the preset processing rule is a status data packet, and the status data packet is used to represent The online status of the terminal.
  • the data packet is processed according to the preset processing rule
  • the data packet is processed according to the protocol in the preset TCP/IP protocol stack.
  • the preset processing rules and the preset TCP/IP protocol stack are stored in the memory 44 of the modem, and the processor 42 of the modem reads the preset processing rules and the protocol pairs in the preset TCP/IP protocol stack from the memory 44 of the modem. The packet is processed.
  • the processor 42 of the modem is further configured to: preset a network layer protocol group, where the network layer protocol group includes at least one of the following protocols: ICMP, IGMP;
  • a preset transport layer protocol group where the transport layer protocol group includes at least one of the following protocols: TCP, foot.
  • the processor 42 of the modem is configured to process the data packet according to a protocol in the TCP/IP protocol stack, specifically:
  • the processor 42 of the modem is configured to obtain a reachable state of the device queried by the ping packet when the data packet is a ping data packet;
  • the apparatus also includes a transmitter 43 of the modem for transmitting the reachable status of the device to the server.
  • the processor 42 of the modem is configured to process the data packet according to a protocol in the TCP/IP protocol stack, specifically:
  • the processor 42 of the modem is configured to discard the IGMP data packet if the AP is in a sleep state when the data packet is an IGMP data packet. Further, the receiver 41 of the modem is further configured to receive a port reachability information list sent by the AP, where the port reachability information list is composed of at least one port number, and the port number is an identification number of the activated port.
  • the processor 42 of the modem is configured to process the data packet according to a protocol in a TCP/IP protocol stack, specifically:
  • the processor 42 of the modem is configured to: when the data packet is a TCP data packet or a UDP data packet, if the port number included in the TCP data packet or the UDP data packet is not included in the port reachability information list, The TCP packet or UDP data is discarded.
  • the receiver 41 of the modem further includes: receiving, by the AP, a preset processing rule, where the status data packet is a heartbeat data packet or a Pus h data packet;
  • the processor 42 of the modem is configured to process the data packet according to the preset processing rule, specifically:
  • the processor 42 of the modem is configured to, when the receiver 41 of the modem receives the push Push packet sent by the server, control the transmitter 43 of the modem to send a response packet to the server according to the Push packet.
  • the response data packet is configured to enable the server to learn that the mobile device is in an online state.
  • the processor 42 of the modem is further configured to control the transmitter 43 of the modem to send a heartbeat data packet to the server according to a preset duration, where the heartbeat data packet is used to indicate that the mobile device is currently in an online state.
  • the processor 42 of the modem is further configured to: when the network signal strength is less than a preset strength value, and the receiver 41 of the modem receives the retransmission failure information sent by the server, the transmitter 43 that controls the modem is The packet is canceled within the preset waiting time.
  • the data processing device 51 provided by the embodiment of the present invention is located in the Modem 52, and the terminal includes an AP 53 and a Modem 52 connected to the AP 53.
  • Modem52 communicates with the server over a wireless or wired network.
  • the inventor detects the energy consumption when the terminal receives the Ping packet within one minute.
  • the apparatus for data processing provided by the embodiment of the present invention is not used, as shown in FIG. 6-a, the last line thereof shows that the terminal is losing.
  • the minimum current of the power supply output is 2.
  • the maximum current of the power output is 513.
  • the average current of the 794 mA, power supply output is 53. 145 mA.
  • the last row of the power supply shows that the minimum current of the power output is 1.

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Abstract

本发明公开了一种数据处理的方法及装置,涉及终端应用领域,能够解决无法明显降低移动设备中AP和Modem整体能耗的问题。所述方法包括:接收服务器发送的数据包,获取所述数据包的类型;判断所述数据包的类型与预设处理规则所处理数据包的类型或预设TCP/IP协议栈中的协议的类型是否相符,得到判断结果,所述预设TCP/IP协议栈由TCP/IP协议族中的传输层协议组和/或网络层协议组组成,所述预设处理规则所处理数据包为状态数据包,所述状态数据包用于表示终端的在线状态;如果相符,则根据所述预设TCP/IP协议栈中的协议或预设处理规则对所述数据包进行处理。本发明主要应用于移动设备数据处理及传输的过程中。

Description

数据处理的方法及装置
本申请要求于 2013 年 09 月 17 日提交中国专利局、 申请号为 201310426077.0、 发明名称为 "数据处理的方法及装置"的中国专利申请的优 先权, 其全部内容通过引用包含于本申请中。 技术领域
本发明涉及终端应用技术领域, 尤其涉及一种数据处理的方法及装置。 背景技术
目前, 移动设备釆用基于应用调制解调器的处理器 (App l i ca t i on Proces s or , 简称 AP) +调制解调器(Modem )的互联网通信模式。 在数据包的 传输过程中, AP负责对数据进行打包发给 Modem以及对 Modem接收的数据包 进行解析, Modem负责将 AP发的数据包发送到网络以及从网络接收到的数据 包上报给 AP。 然而在使用过程中, 移动设备的电量有限, 当频繁传输数据包 时, 移动设备功耗大。
为了降低移动设备功耗, 现有技术提供了下述方案: 在 AP中设立一个防 火墙,该防火墙用于屏蔽 Modem接收的垃圾数据包。当 Modem接收到数据包时, 唤醒 AP , AP根据防火墙策略对数据包进行检测, 如果数据包为垃圾数据包则 AP将数据包丟弃, 进而降低 AP解析数据包的工作量。
在实现上述数据处理的过程中,发明人发现现有技术中至少存在如下问题: 现有技术中能够避免 AP侧应用程序接收到垃圾数据包,但 AP和 Modem整体的 降低能耗的效果不明显。 发明内容
本发明提供的一种数据处理的方法及装置,能够解决无法明显降低移动设 备中 AP和 Modem整体能耗的问题。
第一方面, 本发明提供了一种数据处理的方法, 所述方法应用在调制解调 器 Modem中, 所述方法包括:
接收服务器发送的数据包, 获取所述数据包的类型;
判断所述数据包的类型与预设处理规 U 'j所处理数据包的类型或预设 TCP/IP协议栈中的协议的类型是否相符, 得到判断结果, 所述预设 TCP/IP协 议栈由 TCP/IP协议族中的传输层协议组和 /或网络层协议组组成,所述预设处 理规则所处理数据包为状态数据包,所述状态数据包用于表示终端的在线状态; 当所述数据包的类型与预设处理规则所处理数据包的类型相符时,根据所 述预设处理规则对所述数据包进行处理;
当所述数据包的类型与预设 TCP/IP协议栈中的协议的类型相符时, 根据 所述预设 TCP/IP协议栈中的协议对所述数据包进行处理。
在所述第一方面的第一种可能的实现方式中, 所述方法还包括: 预设 TCP/IP协议栈, 包括:
预设网络层协议组,所述网络层协议组包括下述至少一种协议: ICMP、 IGMP; 和 /或, 预设传输层协议组, 所述传输层协议组包括下述至少一种协议: TCP, 腳。
在所述第一方面的第一种可能的实现方式中,还提供了所述第一方面的第 二种可能的实现方式,在所述第一方面的第二种可能的实现方式中, 所述根据 所述 TCP/IP协议栈的协议对所述数据包进行处理, 包括:
当所述数据包为 P i ng数据包时,获取 Ping数据包查询的设备的可达状态; 向服务器发送所述设备的可达状态。
在所述第一方面的第一种可能的实现方式中,还提供了所述第一方面的第 三种可能的实现方式,在所述第一方面的第三种可能的实现方式中, 所述根据 所述 TCP/IP协议栈中的协议对所述数据包进行处理, 包括: 当所述数据包为 IGMP数据包时,如果 AP已处于睡眠状态,则将所述 IGMP 数据包丟弃。
在所述第一方面的第一种可能的实现方式中,还提供了所述第一方面的第 四种可能的实现方式,在所述第一方面的第四种可能的实现方式中, 所述根据 TCP/ IP协议栈中的协议对所述数据包进行处理之前, 所述方法还包括:
接收 AP发送的端口可达信息列表, 所述端口可达信息列表由至少一个端 口号组成, 所述端口号为已激活的端口的标识号;
所述根据 TCP/ IP协议栈中的协议对所述数据包进行处理, 包括: 当所述数据包为 TCP数据包或 UDP数据包时, 如果所述 TCP数据包或 UDP 数据包包含的端口号不包含在所述端口可达信息列表中,则丟弃所述 TCP数据 包或 UDP数据。
在所述第一方面的第一种可能的实现方式中,还提供了所述第一方面的第 五种可能的实现方式,在所述第一方面的第五种可能的实现方式中, 所述根据 所述预设处理规则对所述数据包进行处理之前, 所述方法还包括:
接收 AP发送的预设处理规则, 所述状态数据包为心跳数据包或者 Push 数据包;
所述根据所述预设处理规则对所述数据包进行处理, 包括:
若接收到所述服务器发送的推送 Push数据包,则根据所述 Push数据包向 所述服务器发送响应数据包,所述响应数据包用于使所述服务器获知所述移动 设备处于在线状态。
在所述第一方面或所述第一方面的第一种可能至第五种可能的实现方式 中,还提供了所述第一方面的第六种可能的实现方式,在所述第一方面的第六 种可能的实现方式中, 在向所述服务器发送数据的过程中, 所述方法还包括: 如果网络信号强度小于预设强度值,且接收到的所述数据包为服务器发送 的重发失败信息, 则在预设等待时长内取消发送数据包。
第二方面, 本发明还提供了一种数据处理的方法, 所述装置应用在调制解 调器 Modem中, 所述装置包括:
调制解调器的接收器, 用于接收服务器发送的数据包;
调制解调器的处理器, 用于获取所述数据包的类型; 判断所述调制解调器的接收器接收的所述数据包的类型与预设处理规则 所处理数据包的类型或预设 TCP/IP协议栈中的协议的类型是否相符, 得到判 断结果, 所述预设 TCP/IP协议栈由 TCP/ IP协议族中的传输层协议组和 /或网 络层协议组组成, 所述预设处理规则所处理数据包为状态数据包, 所述状态数 据包用于表示终端的在线状态;
当所述数据包的类型与预设处理规则所处理数据包的类型相符时,根据所 述预设处理规则对所述数据包进行处理;
当所述数据包的类型与预设 TCP/IP协议栈中的协议的类型相符时, 根据 所述预设 TCP/IP协议栈中的协议对所述数据包进行处理。
在所述第二方面的第一种可能的实现方式中,所述调制解调器的处理器还 用于, 预设网络层协议组, 所述网络层协议组包括下述至少一种协议: ICMP、 IGMP;
和 /或, 预设传输层协议组, 所述传输层协议组包括下述至少一种协议: TCP, 腳。
在所述第二方面的第一种可能的实现方式中,还提供了所述第二方面的第 二种可能的实现方式,在所述第一方面的第二种可能的实现方式中, 所述调制 解调器的处理器用于根据所述 TCP/IP协议栈中的协议对所述数据包进行处理, 具体为:
所述调制解调器的处理器用于当所述数据包为 Ping数据包时, 获取 Ping 数据包查询的设备的可达状态;
所述装置还包括调制解调器的发射器,用于向服务器发送所述设备的可达 状态。
在所述第二方面的第一种可能的实现方式中,还提供了所述第二方面的第 三种可能的实现方式,在所述第二方面的第三种可能的实现方式中, 所述调制 解调器的处理器用于根据所述 TCP/ IP协议栈中的协议对所述数据包进行处理, 具体为:
所述调制解调器的处理器用于当所述数据包为 IGMP数据包时, 如果 AP 已处于睡眠状态, 则将所述 IGMP数据包丟弃。
在所述第二方面的第一种可能的实现方式中,还提供了所述第二方面的第 四种可能的实现方式,在所述第二方面的第四种可能的实现方式中, 所述调制 解调器的接收器还用于, 接收 AP发送的端口可达信息列表, 所述端口可达信 息列表由至少一个端口号组成, 所述端口号为已激活的端口的标识号;
所述调制解调器的处理器用于根据 TCP/ IP协议栈中的协议对所述数据包 进行处理, 具体为:
当所述数据包为 TCP数据包或 UDP数据包时, 如果所述 TCP数据包或 UDP 数据包包含的端口号不包含在所述端口可达信息列表中,则丟弃所述 TCP数据 包或 UDP数据。
在所述第二方面的第一种可能的实现方式中,还提供了所述第二方面的第 五种可能的实现方式,在所述第二方面的第五种可能的实现方式中, 所述调制 解调器的接收器还包括, 接收 AP发送的预设处理规则, 所述状态数据包为心 跳数据包或者 Push数据包;
所述调制解调器的处理器用于根据所述预设处理规则对所述数据包进行 处理, 具体为:
所述调制解调器的处理器用于当调制解调器的接收器接收到所述服务器 发送的推送 Push数据包时,根据所述 Push数据包控制所述调制解调器的发射 器向所述服务器发送响应数据包,所述响应数据包用于使所述服务器获知所述 移动设备处于在线状态。
在所述第二方面或所述第二方面的第一种可能至第五种可能的实现方式 中,还提供了所述第二方面的第六种可能的实现方式,在所述第二方面的第六 种可能的实现方式中, 所述调制解调器的处理器还用于, 当网络信号强度小于 预设强度值,且调制解调器的接收器接收到服务器发送的重发失败信息时,控 制所述调制解调器的发射器在预设等待时长内取消发送数据包。
本发明提供的数据处理的方法及装置, Modem能够获取接收到的数据包的 类型,判断所述数据包的类型是否与预设处理规则所处理数据包的类型或预设 TCP/ IP协议栈中的协议的类型是否一致, 如果一致则根据 TCP/ IP协议栈中的 协议或预设处理规则对所述数据包进行处理。 现有技术中, Modem在接收到服 务器发送的数据包之后, 唤醒 AP , 并将接收到的所有数据包均发送给 AP进行 处理, AP长期处于唤醒状态(高功耗状态), 导致移动设备功耗大。 本发明通 过在 Modem的存储器中添加预设 TCP/ IP协议栈或预设处理规则, 使得 Modem 具有了对部分数据包的处理能力。 当数据包的类型与预设 TCP/ IP协议栈中的 协议的类型或预设处理规则相一致时, 无需唤醒 AP , Modem可以代替 AP对数 据包进行处理。 换言之只有当 Modem中保存的预设 TCP/ IP协议栈中的协议的 类型或预设处理规则无法对数据包进行处理时, 才会唤醒 AP对数据包进行处 理。 由于在完成相同操作时, Modem的耗电量低于 AP耗电量, 因此釆用本发 明的技术方案, 能够延长 AP处于休眠状态的时间, 降低 AP功耗, 进而降低移 动设备的功耗。 附图说明
为了更清楚地说明本发明实施例或现有技术中的技术方案,下面将对实施 例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地, 下面描述 中的附图仅仅是本发明的一些实施例,对于本领域普通技术人员来讲,在不付 出创造性劳动的前提下, 还可以根据这些附图获得其他的附图。
图 1为本发明实施例中第一个数据处理的方法的流程图;
图 2为本发明实施例中第二个数据处理的方法的流程图;
图 3为本发明实施例中第三个数据处理的方法的流程图;
图 4为本发明实施例中一个数据处理的装置的结构示意图;
图 5为本发明实施例中具有数据处理的装置的终端的结构示意图; 图 6-a为釆用现有技术处理 P ing数据包时的能耗图;
图 6-b为釆用本发明实施例处理 P i ng数据包时的能耗图。 具体实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清 楚、 完整地描述, 显然, 所描述的实施例仅仅是本发明一部分实施例, 而不是 全部的实施例。基于本发明中的实施例, 本领域普通技术人员在没有作出创造 性劳动前提下所获得的所有其他实施例, 都属于本发明保护的范围。
本发明实施例提供了一种数据处理的方法,如图 1所示, 所述方法应用在 调制解调器 Modem中, 所述方法包括:
步骤 101、 接收服务器发送的数据包, 获取数据包的类型。
从数据包中找到标识数据包类型的标志位 ,根据该标志位确定数据包的类 型。 所述调制解调器为无线调制解调器。 在接收服务器发送的数据包时, 通过 解调器将可沿空口网络传播的脉冲信号转换成移动终端可识别的数字信号。数 据包的类型为下述任意一种数据包: 检查网络是否连通的 Ping数据包、 地址 解析协议 ( Addres s Resolut ion Protocol , ARP )数据包、 Interne t 控制报 文协议 ( Interne t Control Mes sage Protocol , I CMP )数据包、 Internet组 管理协议 ( Internet Group Management Protoco l , IGMP )数据包、 传输控 制协议( Transmi s s ion Control Protocol , TCP )数据包、用户数据才艮协议( User Da tagram Protocol , UDP )数据包等。
步骤 102、 判断数据包的类型与预设处理规则所处理数据包的类型或预设 TCP/ IP协议栈中的协议的类型是否相符, 得到判断结果。
其中, TCP/ IP协议栈包括网络层协议组和 /或传输层协议组, 所述预设处 理规则所处理数据包为状态数据包。 网络层协议组为 ICMP和 /或 IGMP, 传输 层协议组为 TCP和 /或 UDP。 所述状态数据包用于表示终端的在线状态, 如接 收到服务器发送的推送 Push数据包时, 回复响应数据包(用于表示终端的在 线状态)。 TCP/ IP协议栈中的各个协议和预设处理规则分别用于处理不同类型 的数据包。 如果数据包的类型与预设 TCP/IP协议栈中的协议的类型或预设处 理规则处理的数据包的类型相符, 则确定可以采用预设的 TCP/IP协议栈或预 设处理规则处理该类型的数据包, 否则, 确定预设的 TCP/IP协议栈或预设处 理规则无法用于处理该类型的数据包。其中,相符为数据包的类型与协议的一 种或多种类型相同,或为数据包的类型为预设处理规则所处理数据包的一种或 多种类型。 所述网络层协议组包括下述至少一种协议: ICMP、 IGMP。 所述传输 层协议组下述至少一种协议: TCP、 UDP。
步骤 103a、 当数据包的类型与预设处理规则所处理数据包的类型相符时, 根据预设处理规则对数据包进行处理。
当数据包的类型与预设 TCP/IP协议栈中的协议的类型相符时, 根据预设 TCP/IP协议栈中协议的规定对数据包进行处理。 TCP/IP协议栈中的协议例如: 网络层协议可以用于处理 I CMP数据包,传输层协议可以用于处理 P i ng数据包、 TCP数据包、 UDP数据包。
步骤 103b、当数据包的类型与预设 TCP/IP协议栈中的协议的类型相符时, 根据预设 TCP/IP协议栈中的协议对数据包进行处理。
当数据包的类型与预设处理规则所处理数据包的类型相符时,根据预设处 理规则对数据包进行处理。 根据预设处理规则对数据包进行处理, 包括: 定期 接收网络侧服务器发送的状态数据包,根据状态数据包进行回复, 或者定期向 网络侧服务器发送状态数据包。例如:预设处理规则如果规定了定时反馈机制。 定时反馈机制为每隔预设时长向网络侧服务器定时发送一个状态数据包,该状 态数据包用于表示终端在线状态, 以使得网络侧服务器获取终端的在线状态。
步骤 104、 如果不相符, 则唤醒应用调制解调器的处理器 AP, 将数据包发 送给 AP , 以便 AP对数据包进行处理。
当接收到的数据包的类型与预设的 TCP/IP协议栈或预设处理规则处理的 数据包的类型不相符时, 唤醒应用调制解调器的处理器 ( Appl icat ion Proces sor , 简称 AP )。 AP被唤醒之后可对数据包进行处理。 本发明实施例提供的数据处理的方法, 能够获取接收到的数据包的类型, 判断所述数据包的类型是否与预设 TCP/ IP协议栈中的协议的类型或预设处理 规则处理的数据包的类型是否一致, 如果一致则根据 TCP/IP协议栈或预设处 理规则对所述数据包进行处理, 否则唤醒 AP。 现有技术中, Modem在接收到数 据包之后, 唤醒 AP, 并将接收到的所有数据包均发送给 AP进行处理, AP长期 处于唤醒状态 (高功耗状态), 导致移动设备功耗大。 本发明实施例通过在 Modem中添加预设 TCP/IP协议栈中的协议或预设处理规则, 使得 Modem具有 了对部分数据包的处理能力。 当数据包的类型与预设 TCP/IP协议栈中的协议 的类型或预设处理规则相一致时, 无需唤醒 AP, Modem可以代替 AP对数据包 进行处理。 换言之只有当 Modem中保存的预设 TCP/IP协议栈中的协议或预设 处理规则无法对数据包进行处理时, 才会唤醒 AP对数据包进行处理。 由于在 完成相同操作时, Modem的耗电量低于 AP耗电量的, 因此能够延长 AP处于睡 眠状态的时间, 降低 AP功耗, 进而降低移动设备的功耗。
本发明实施例还提供了一种数据处理的方法,作为对图 1所示方法的进一 步说明, 可选的, 预设 TCP/IP协议栈包括:
预设网络层协议组,所述网络层协议组包括下述至少一种协议: ICMP、 IGMP; 和 /或, 预设传输层协议组, 所述传输层协议组包括下述至少一种协议: TCP, 腳。
当所述数据包为 Ping数据包时,所述根据所述 TCP/ IP协议栈中的协议对 所述数据包进行处理, 如图 2所示, 包括:
步骤 201、 获取 Ping数据包查询的设备的可达状态。
Ping数据包用来侦测设备是否存在, 当接收到 Ping命令数据包时, 根据 I CMP对 P i ng数据包进行解析, 得到被侦测设备的网络地址。 在本地保留的路 由信息表中查找是否存在该网络地址。
步骤 202、 向服务器发送设备的可达状态。
可达状态分为可达或不可达。如果路由信息表中存在该网络地址,则可达, 向服务器发送可达信息。 否则, 如果路由信息表中不存在该网络地址, 则不可 达, 向服务器发送不可达信息。
可选的, 当所述数据包为 IGMP数据包时, 所述根据 TCP/ IP协议栈中的协 议对所述数据包进行处理, 包括:
如果 AP已处于睡眠状态, 则将所述 IGMP数据包丟弃。
I GMP数据包为广播数据包, I GMP数据包的内容为终端所在的多播组信息。 如果 AP此时 AP已处于睡眠状态,则直接将 IGMP数据包丟弃, 进而减少 AP的 唤醒次数。
进一步的,所述 AP已处于睡眠状态且屏幕处于低功耗状态,则将所述 IGMP 数据包丟弃。
屏幕处于低功耗状态包括: 锁屏状态或灭屏状态。
本实施例通过直接将 IGMP数据包丟弃, 能够减少 AP的唤醒次数。
可选的, 如图 3所示, 所述根据 TCP/ IP协议栈中的协议对所述数据包进 行处理之前, 所述方法还包括:
步骤 301、 接收 AP发送的端口可达信息列表, 端口可达信息列表由至少 一个端口号组成, 端口号为已激活的端口的标识号。
步骤 302、 判断接收到的 TCP数据包或 UDP数据包包含的端口号是否包含 在端口可达信息列表中。
当所述数据包为 TCP数据包或 UDP数据包时, 所述根据 TCP/ IP协议栈中 的协议对所述数据包进行处理, 可进一步包括:
步骤 303、 如果 TCP数据包或 UDP数据包包含的端口号不包含在端口可达 信息列表中, 则丟弃 TCP数据包或 UDP数据。
步骤 304、 如果 TCP数据包或 UDP数据包包含的端口号包含在端口可达信 息列表中, 则将唤醒 AP, 将 TCP数据包或 UDP数据发送 AP。
每个应用程序通过专属的端口接收数据包。终端在本地存储器中保存一个 记录有已激活的全部端口的列表, 即端口可达信息列表。 该列表由 AP在进行 休眠状态之前发送给 Modem。 Modem在接收到数据包时, 如果数据包的类型为 TCP数据包或 UDP数据包, 则根据步骤 303至步骤 304对数据包进行处理。 如 果所述 TCP数据包或 UDP数据包包含的端口号不包含在所述端口可达信息列表 中, 则说明终端无法对数据包进行处理, 此时无需唤醒 AP , 直接将接收到的 TCP数据包或 UDP数据包丟弃。 如果所述 TCP数据包或 UDP数据包包含的端口 号包含在所述端口可达信息列表中,则说明该 TCP数据包或 UDP数据包可以被 处理, 由于 Modem不具有 AP的数据处理能力, 因此将唤醒 AP , 将所述 TCP数 据包或 UDP数据发送所述 AP , 以便 AP进一步处理。
本发明实施例提供的数据处理的方法,能够对 P ing数据包、 IGMP数据包、 TCP数据包或 UDP数据包进行处理, 在 modem能够进行处理的情况下, 无需唤 醒 AP , 进而节省系统资源, 降低系统功耗。
本发明实施例还提供了一种数据处理的方法,作为对图 1所示方法的进一 步说明, 所述根据 TCP/ IP协议栈中的协议对所述数据包进行处理之前, 所述 方法包括:
接收 AP发送的预设处理规则, 所述状态数据包为心跳数据包或者 Push 数据包;
所述根据所述预设处理规则对所述数据包进行处理, 包括:
若接收到所述服务器发送的推送 Push数据包,则根据所述 Push数据包向 所述服务器发送响应数据包,所述响应数据包用于使所述服务器获知所述移动 设备处于在线状态。
Push数据包用于 Push技术中, Push技术是一种由网络侧服务器主动的将 信息发往客户端的技术。 Push数据包为网络侧服务器定期向终端发送的状态 数据包, 当终端的 modem接收到 Push数据包时, 对 Push数据包进行回复, 进 而使网络侧服务器获知终端的在线状态。
可选的,根据预设时长向所述服务器发送心跳数据包, 所述心跳数据包用 于表示移动设备当前处于在线状态。 日常使用中, 终端可能会运行即时通讯软件以及社交软件, 这些软件会定 时地向网络侧服务器发送心跳数据包,以使得服务器获知终端用户处于在线或 下线状态。 预设时长可以为 30s、 60s等。 此时, 无需接收网络侧服务器发送 的数据包, Modem自行根据预设时长向服务器发送心跳数据包, 进而使网络侧 服务器获知终端的在线状态。
进一步的, 在向所述服务器发送数据的过程中, 所述方法还包括: 如果网络信号强度小于预设强度值,且接收到服务器发送的重发失败信息, 则在预设等待时长内取消发送数据包。
经过预设检测时长检测所述网络信号强度,如果所述网络信号强度不小于 预设强度值, 则向所述服务器发送所述数据包。
现有技术中, 在向服务器发送数据的过程中, 如果发送失败则重新发送, 直到发送成功为止, 如果网络信号不好, 则会一直重发, 导致 Modem无谓的发 送, 浪费网络资源。 本发明实施例中, 当首次发送失败时, 进行一次重发, 如 果重发后接收到网络侧服务器发送的重发失败信息,且当前网络信号强度不佳 (当前网络信号强度值小于预设强度值, 如 _90dBm分贝毫瓦), 则在预设等待 时长(如 3分钟 ) 内取消发送数据包。 经过预设检测时长(如 30 s )检测所述 网络信号强度,如果所述网络信号强度不小于预设强度值, 则向所述服务器发 送所述数据包。如果所述网络信号强度小于预设强度值, 则再经过预设检测时 长(如 30 s )检测所述网络信号强度, 直至检测的所述网络信号强度不小于预 设强度值为止。
本发明实施例提供的数据处理的方法, 能够在一次重发失败后,根据当前 网络信号强度确定是否继续发送数据包, 减少网络资源的浪费。
本发明实施例还提供了一种数据处理的装置, 所述装置位于 Modem中, 所 述装置用于执行图 1至图 3所示的方法, 如图 4所示, 所述装置包括:
调制解调器的接收器 41 , 用于接收服务器发送的数据包。
调制解调器的处理器 42 , 用于获取所述数据包的类型; 判断所述调制解调器的接收器 41接收的所述数据包的类型与预设处理规 则所处理数据包的类型或预设 TCP/ IP协议栈中的协议的类型是否相符, 得到 判断结果, 所述预设 TCP/ IP协议栈由 TCP/ IP协议族中的传输层协议组和 /或 网络层协议组组成, 所述预设处理规则所处理数据包为状态数据包, 所述状态 数据包用于表示终端的在线状态。
当所述数据包的类型与预设处理规则所处理数据包的类型相符时,根据所 述预设处理规则对所述数据包进行处理;
当所述数据包的类型与预设 TCP/ IP协议栈中的协议的类型相符时, 根据 所述预设 TCP/ IP协议栈中的协议对所述数据包进行处理。
预设处理规则和预设 TCP/ IP协议栈存储在调制解调器的的存储器 44中, 调制解调器的处理器 42从调制解调器的存储器 44中读取预设处理规则和预设 TCP/ IP协议栈中的协议对数据包进行处理。
进一步的, 所述调制解调器的处理器 42还用于, 预设网络层协议组, 所 述网络层协议组包括下述至少一种协议: ICMP、 IGMP;
和 /或, 预设传输层协议组, 所述传输层协议组包括下述至少一种协议: TCP, 腳。
进一步的,所述调制解调器的处理器 42用于根据所述 TCP/ IP协议栈中的 协议对所述数据包进行处理, 具体为:
所述调制解调器的处理器 42用于当所述数据包为 P ing数据包时, 获取 Ping数据包查询的设备的可达状态;
所述装置还包括调制解调器的发射器 43 , 用于向服务器发送所述设备的 可达状态。
进一步的,所述调制解调器的处理器 42用于根据所述 TCP/ IP协议栈中的 协议对所述数据包进行处理, 具体为:
所述调制解调器的处理器 42用于当所述数据包为 IGMP数据包时, 如果 AP已处于睡眠状态, 则将所述 IGMP数据包丟弃。 进一步的, 所述调制解调器的接收器 41还用于,接收 AP发送的端口可达 信息列表, 所述端口可达信息列表由至少一个端口号组成, 所述端口号为已激 活的端口的标识号; 所述调制解调器的处理器 42用于根据 TCP/ IP协议栈中的协议对所述数据 包进行处理, 具体为:
所述调制解调器的处理器 42用于当所述数据包为 TCP数据包或 UDP数据 包时,如果所述 TCP数据包或 UDP数据包包含的端口号不包含在所述端口可达 信息列表中, 则丟弃所述 TCP数据包或 UDP数据。
进一步的, 所述调制解调器的接收器 41还包括,接收 AP发送的预设处理 规则, 所述状态数据包为心跳数据包或者 Pus h数据包;
所述调制解调器的处理器 42用于根据所述预设处理规则对所述数据包进 行处理, 具体为:
所述调制解调器的处理器 42用于当调制解调器的接收器 41接收到所述服 务器发送的推送 Push数据包时,根据所述 Push数据包控制所述调制解调器的 发射器 43向所述服务器发送响应数据包, 所述响应数据包用于使所述服务器 获知所述移动设备处于在线状态。
可选的, 所述调制解调器的处理器 42还用于控制所述调制解调器的发射 器 43根据预设时长向所述服务器发送心跳数据包, 所述心跳数据包用于表示 移动设备当前处于在线状态。
进一步的, 所述调制解调器的处理器 42还用于, 当网络信号强度小于预 设强度值, 且调制解调器的接收器 41接收到服务器发送的重发失败信息时, 控制所述调制解调器的发射器 43在预设等待时长内取消发送数据包。
需要说明的是, 如图 5所示, 本发明实施例提供的数据处理的装置 51位 于 Modem52中, 终端包括 AP53和与 AP53连接的 Modem52。 Modem52通过无线 网络或有线网络与服务器进行通信。
发明人检测了一分钟内终端接收 P ing数据包时的能耗。 未釆用本发明实 施例提供的数据处理的装置时,如图 6-a所示, 其中最后一行给出了终端在输 出恒定电压的过程中, 终端的电源输出的电流, 包括 Modem和 AP的共同耗电 电流, 如图 6-a所示, 电源输出的最小电流为 2. 512mA、 电源输出的最大电流 为 513. 794mA、 电源输出的平均电流为 53. 145mA。釆用本发明实施例提供的数 据处理的装置时,如图 6-b所示, 其中最后一行给出了终端在运行过程中电源 输出的最小电流为 1. 484mA、 电源输出的最大电流为 267. 451mA、 电源输出的 平均电流为 43. 321mA。 由于功耗与电流呈正比关系, 因此当电流减小时, 功 率随之降低。比较 6_a中的平均电流 53. 145mA和 6-b中的平均电流 43. 321mA, 能够得出釆用本发明实施例提供的数据处理的装置,能够节省( 53. 145-43. 321 ) /53. 145=0. 185即 18. 5%的能耗。图 6_b中由于 AP的处理转移至 Modem中进行, 因此图 6-b中不会存在图 6-a中高电流的情况, 降低能耗。
所属领域的技术人员可以清楚地了解到, 为描述的方便和简洁,仅以上述 各功能模块的划分进行举例说明, 实际应用中, 可以根据需要而将上述功能分 配由不同的功能模块完成, 即将装置的内部结构划分成不同的功能模块, 以完 成以上描述的全部或者部分功能。上述描述的系统, 装置和单元的具体工作过 程, 可以参考前述方法实施例中的对应过程, 在此不再赘述。
以上所述,仅为本发明的具体实施方式,但本发明的保护范围并不局限于 此,任何熟悉本技术领域的技术人员在本发明揭露的技术范围内, 可轻易想到 变化或替换, 都应涵盖在本发明的保护范围之内。 因此, 本发明的保护范围应 以所述权利要求的保护范围为准。

Claims

权 利 要 求
1、 一种数据处理的方法,其特征在于, 所述方法应用在调制解调器 Modem 中, 所述方法包括:
接收服务器发送的数据包, 获取所述数据包的类型;
判断所述数据包的类型与预设处理规 U 'j所处理数据包的类型或预设 TCP/IP协议栈中的协议的类型是否相符, 得到判断结果, 所述预设 TCP/IP协 议栈由 TCP/IP协议族中的传输层协议组和 /或网络层协议组组成,所述预设处 理规则所处理数据包为状态数据包,所述状态数据包用于表示终端的在线状态; 当所述数据包的类型与预设处理规则所处理数据包的类型相符时,根据所 述预设处理规则对所述数据包进行处理;
当所述数据包的类型与预设 TCP/IP协议栈中的协议的类型相符时, 根据 所述预设 TCP/IP协议栈中的协议对所述数据包进行处理。
2、 根据权利要求 1所述的方法, 其特征在于, 所述预设 TCP/IP协议栈, 包括:
预设网络层协议组,所述网络层协议组包括下述至少一种协议: ICMP、 IGMP; 和 /或, 预设传输层协议组, 所述传输层协议组包括下述至少一种协议: TCP, 腳。
3、 根据权利要求 2所述的方法, 其特征在于, 所述根据所述 TCP/IP协议 栈中的协议对所述数据包进行处理, 包括:
当所述数据包为 P i ng数据包时,获取 Ping数据包查询的设备的可达状态; 向服务器发送所述设备的可达状态。
4、 根据权利要求 2所述的方法, 其特征在于, 所述根据所述 TCP/IP协议 栈中的协议对所述数据包进行处理, 包括:
当所述数据包为 IGMP数据包时,如果 AP已处于睡眠状态,则将所述 IGMP 数据包丟弃。
5、 根据权利要求 2所述的方法, 其特征在于, 所述根据 TCP/ IP协议栈中 的协议对所述数据包进行处理之前, 所述方法还包括:
接收 AP发送的端口可达信息列表, 所述端口可达信息列表由至少一个端 口号组成, 所述端口号为已激活的端口的标识号;
所述根据 TCP/ IP协议栈中的协议对所述数据包进行处理, 包括: 当所述数据包为 TCP数据包或 UDP数据包时, 如果所述 TCP数据包或 UDP 数据包包含的端口号不包含在所述端口可达信息列表中,则丟弃所述 TCP数据 包或 UDP数据。
6、 根据权利要求 2所述的方法, 其特征在于, 所述根据所述预设处理规 则对所述数据包进行处理之前, 所述方法还包括:
接收 AP发送的预设处理规则, 所述状态数据包包括推送 Push数据包; 所述根据所述预设处理规则对所述数据包进行处理, 包括:
若接收到所述服务器发送的 Push数据包,则根据所述 Push数据包向所述 服务器发送响应数据包,所述响应数据包用于使所述服务器获知所述移动设备 处于在线状态。
7、 根据权利要求 1至 6中任一项所述的方法, 其特征在于, 所述方法还 包括:
如果网络信号强度小于预设强度值,且接收到的所述数据包为服务器发送 的重发失败信息, 则在预设等待时长内取消发送数据包。
8、一种数据处理的装置,其特征在于, 所述装置应用在调制解调器 Modem 中, 所述装置包括:
调制解调器的接收器, 用于接收服务器发送的数据包;
调制解调器的处理器, 用于获取所述数据包的类型; 判断所述调制解调器 的接收器接收的所述数据包的类型与预设处理规则所处理数据包的类型或预 设 TCP/ IP协议栈中的协议的类型是否相符, 得到判断结果, 所述预设 TCP/ IP 协议栈由 TCP/ IP协议族中的传输层协议组和 /或网络层协议组组成,所述预设 处理规则所处理数据包为状态数据包,所述状态数据包用于表示终端的在线状 态;
当所述数据包的类型与预设处理规则所处理数据包的类型相符时,根据所 述预设处理规则对所述数据包进行处理;
当所述数据包的类型与预设 TCP/IP协议栈中的协议的类型相符时, 根据 所述预设 TCP/IP协议栈中的协议对所述数据包进行处理。
9、 根据权利要求 8所述的装置, 其特征在于, 所述调制解调器的处理器 还用于,预设网络层协议组,所述网络层协议组包括下述至少一种协议: ICMP、 IGMP;
和 /或, 预设传输层协议组, 所述传输层协议组包括下述至少一种协议: TCP, 腳。
10、 根据权利要求 9所述的装置, 其特征在于, 所述调制解调器的处理器 用于根据所述 TCP/IP协议栈中的协议对所述数据包进行处理, 具体为:
所述调制解调器的处理器用于当所述数据包为 Ping数据包时, 获取 Ping 数据包查询的设备的可达状态;
所述装置还包括调制解调器的发射器,用于向服务器发送所述设备的可达 状态。
11、 根据权利要求 9所述的装置, 其特征在于, 所述调制解调器的处理器 用于根据所述 TCP/IP协议栈中的协议对所述数据包进行处理, 具体为:
所述调制解调器的处理器用于当所述数据包为 IGMP数据包时, 如果 AP 已处于睡眠状态, 则将所述 IGMP数据包丟弃。
12、 根据权利要求 9所述的装置, 其特征在于, 所述调制解调器的接收器 还用于, 接收 AP发送的端口可达信息列表, 所述端口可达信息列表由至少一 个端口号组成, 所述端口号为已激活的端口的标识号;
所述调制解调器的处理器用于根据 TCP/IP协议栈中的协议对所述数据包 进行处理, 具体为:
所述调制解调器的处理器用于当所述数据包为 TCP数据包或 UDP数据包时 , 如果所述 TCP数据包或 UDP数据包包含的端口号不包含在所述端口可达信息列 表中, 则丟弃所述 TCP数据包或 UDP数据。
1 3、 根据权利要求 9所述的装置, 其特征在于, 所述调制解调器的接收器 还包括,接收 AP发送的预设处理规则,所述状态数据包包括推送 Push数据包; 所述调制解调器的处理器用于根据所述预设处理规则对所述数据包进行 处理, 具体为:
所述调制解调器的处理器用于当调制解调器的接收器接收到所述服务器 发送的 Pus h数据包时,根据所述 Push数据包控制所述调制解调器的发射器向 所述服务器发送响应数据包,所述响应数据包用于使所述服务器获知所述移动 设备处于在线状态。
14、 根据权利要求 9至 1 3中任一项所述的装置, 其特征在于, 所述调制 解调器的处理器还用于, 当网络信号强度小于预设强度值,且调制解调器的接 收器接收到服务器发送的重发失败信息时,控制所述调制解调器的发射器在预 设等待时长内取消发送数据包。
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