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Communication System And Communication Device

Abstract: [Problem] To provide a communication system and communication device. [Solution] The communication system is provided with a base station a communication device and a gateway device that has: a first communication unit that communicates via a first communication method with the base station; a second communication unit that communicates via a second communication method with the communication device; an ID information retaining unit that retains the corresponding relationship between second ID information in the second communication method and first ID information in the first communication method of the communication device; and a category information retaining unit that is for sharing category information indicating the characteristics of the communication device with the communication device. The first communication unit performs communication with the base station relating to the communication device in accordance with the category information using the first ID information of the communication device.

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Notices, Deadlines & Correspondence

Patent Information

Application #
Filing Date
31 May 2013
Publication Number
49/2014
Publication Type
INA
Invention Field
COMMUNICATION
Status
Email
remfry-sagar@remfry.com
Parent Application

Applicants

SONY CORPORATION
1 7 1 Konan Minato ku Tokyo 1080075

Inventors

1. TAKANO Hiroaki
c/o SONY CORPORATION 1 7 1 Konan Minato ku Tokyo 1080075

Specification

Description
Title of Invention
COMMUNICATION SYSTEM AND COMMUNICATION APPARATUS
Technical Field
[OOO 11
The present invention relates to a communication system and a
communication apparatus.
Background Art
[0002]
Currently, the standardization of a wireless communication system of 4G is
under way in 3GPP (Third Generation Partnership Project). According to 4G,
improvements in maximum communication speed and quality improvements in cell
edges can be realized by using technologies such as the relay and carrier aggregation.
In addition, improvements of coverage are discussed by introducing base stations
other than eNodeB (micro-cell base station) such as HeNodeB (Home eNodeB,
femto-cell base station, small base station for mobile phones) and RHH (remote radio
head). A relay apparatus (relay node) performing a relay is described in, for
example, Patent Literature below.
[0003]
In 3GPP, on the other hand, discussions about MTC (Machine Type
Communications) are also under way. MTC is generally synonymous with M2M
(Machine to Machine) and means communication between machines that is not
directly used by humans. MTC is mainly performed between a server and an MTC
terminal not directly used by humans.
[0004]
As an MTC application in a medical system, for example, a case in which
an MTC terminal collects electrocardiogram information of humans and transmits
the electrocardiogram information to a server by using an uplink when some trigger
condition is satisfied can be considered. As another MTC application, a case in
which a vending machine is caused to function as an MTC terminal and a server
causes vending machines under control to report sales at regular intervals (for
example, 30 days) can also be considered.
[OOOS]
5 Such an MTC terminal generally has, as an example, the following features,
but each MTC terminal does not have to have all the following features and which
features each MTC terminal has depends on the application.
Almost no movement (Low Mobility)
Small-capacity data transmission (Online Small Data Transmission)
10 Extremely low power consumption (Extra Low Power Consumption)
Handling by grouping MTC (Group based MTC Features)
Citation List
Patent Literature
15 [0006]
Patent Literature 1 : JP 2007-602 12 A
Summary of Invention
Technical Problem
20 [0007]
However, the number of MTC terminals is expected to be enormous and it is
important to efficiently manage the MTC terminals. Also, a case in which an MTC
terminal has a communication interface incompatible with 4G can be considered.
[OOOS]
2 5 The present invention is made in view of the above problems and an object
thereof is to provide a novel and improved communication system and
communication apparatus capable of connecting a communication apparatus such as
an MTC terminal to a network provided by a base station.
30 Solution to Problem
[0009]
According to an embodiment of the present disclosure, there is provided a
communication system including a base station, a communication apparatus, and a
gateway apparatus including a first communication unit that communicates with the
base station in a first communication method, a second communication unit that
communicates with the communication apparatus in a second communication
method, an identification information holding unit that holds a correspondence
between first identification information in the first communication method and
second identification information in the second communication method of the
communication apparatus, and a category information holding unit to share category
information showing a characteristic of the communication apparatus with the
communication apparatus. The first communication unit performs communication
of the communication apparatus in accordance with the category information with
the base station by using the first identification information of the communication
apparatus.
[OO 1 01
The second communication unit may communicate with the communication
apparatus by using the second identification information of the communication
apparatus.
[OO 1 11
The second communication unit may transmit characteristic information to
the communication apparatus and receives the category information of the
communication apparatus changed based on the characteristic information from the
communication apparatus. The first communication unit may transmit the category
information received by the second communication unit to the base station. The
category information holding unit may hold the category information received by the
second communication unit.
[OO 121
The gateway apparatus may further include a characteristic information
selection unit that selects the characteristic information based on the category
information received from the communication apparatus and before being changed.
[00 131
The characteristic information may show a characteristic recommended to
the communication apparatus.
[OO 141
The gateway apparatus may further include an intermittent reception
5 management unit that holds a reception period to intermittently receive paging from
the base station for the communication apparatus and causes the second
communication unit to notify the communication apparatus of a reception period
having an offset for the reception period.
[00 1 51
10 When data addressed to the communication apparatus is received by the first
communication unit from the base station, the second communication unit may
transmit the data to the communication apparatus. If the data addressed to the
communication apparatus is successfully received, the first communication unit may
transmit a reception confirmation signal to the base station before checking whether
15 the data is successfully received by the communication apparatus.
[00 1 61
The gateway apparatus may communicate with a plurality of
communication apparatuses. The gateway apparatus may further include an
adjustment unit that adjusts each reception period for the first communication unit to
20 perform intermittent reception for each of the plurality of communication
apparatuses. The adjustment unit may adjust each of the reception periods in a
manner that a reception period other than one reception period isan integral multiple
of the one reception period.
[00 1 71
25 The gateway apparatus may communicate with a plurality of
communication apparatuses. The first communication unit may intermittently
receive in a short reception period or a long reception period for the communication
apparatuses in an active state and intermittently receives in a sleep reception period
for the communication apparatuses in a sleep state. The long reception period and
30 the sleep reception period may be set as integral multiples of the short reception
period and each reception period is set in a manner that phases thereof are uniform.
[OO 1 81
The first communication unit may acquire a timing advance value by
performing a random access procedure to the base station and uses the common
timing advance value for communication with a plurality of communication
5 apparatuses.
[00 1 91
The first communication unit may transmit an acquisition request of the first
identification information of each of the plurality of communication apparatuses to
the base station to acquire the first identification information of each of the plurality
10 of communication apparatuses from the base station.
[0020]
The first communication method may be a mobile communication method
and the second communication method may be a wireless LAN communication
method.
15 [0021]
The communication apparatus may be implemented in the gateway
apparatus. The first communication method may be a mobile communication
method and the second communication method may be a communication method
using a dedicated interface in the gateway apparatus.
20 [0022]
According to an embodiment of the present disclosure, there is provided a
communication apparatus configured to communicate with a gateway apparatus in a
second communication method, the gateway apparatus communicating with a base
station in a first communication method, communicating with the communication
25 apparatus in the second communication method, holding a correspondence between
first identification information in the first communication method and second
identification information in the second communication method of the
communication apparatus, and sharing category information showing a characteristic
of the communication apparatus.
30
Advantageous Effects of Invention
[0023]
According to the present invention, as described above, a communication
apparatus such as an MTC terminal can be connected to a network provided by a
base station.
5
Brief Description of Drawings
[0024]
[Fig. 11 Fig. 1 is an explanatory view showing a configuration example of a wireless
communication system.
10 [Fig. 21 Fig. 2 is an explanatory view showing a first implementation form of an
MTC gateway.
[Fig. 33 Fig. 3 is an explanatory view showing a second implementation form of the
MTC gateway.
[Fig. 41 Fig. 4 is an explanatory view showing a third implementation form of the
15 MTC gateway.
[Fig. 51 Fig. 5 is an explanatory view showing a fourth implementation form of the
MTC gateway.
[Fig. 61 Fig. 6 is an explanatory view showing a sequence for category settings.
[Fig. 71 Fig. 7 is a sequence diagram showing a contention type random access
20 procedure.
[Fig. 81 Fig. 8 is an explanatory view showing a configuration of an MTC terminal 1
and the MTC gateway according to a first embodiment of the present invention.
[Fig. 91 Fig. 9 is a sequence diagram showing a random access procedure for each
MTC terminal.
25 [Fig. 101 Fig. 10 is an explanatory view showing communication concerning the
MTC terminal.
[Fig. 111 Fig. 11 is an explanatory view showing a transfer sequence of a DRX
period.
[Fig. 121 Fig. 12 is an explanatory view showing intermittent reception by the MTC
30 gateway and the MTC terminal.
[Fig. 131 Fig. 13 is an explanatory view showing the configuration of the MTC
terminal and the MTC gateway according to a second embodiment of the present
invention.
[Fig. 141 Fig. 14 is a sequence diagram showing an operation of the MTC terminal
and the MTC gateway according to the second embodiment.
[Fig. 151 Fig. 15 is an explanatory view showing the configuration of the MTC
terminal and the MTC gateway according to a third embodiment of the present
invention.
[Fig. 161 Fig. 16 is an explanatory view showing a relationship of each DRX period.
[Fig. 171 Fig. 17 is a sequence diagram showing the operation of the MTC terminal
and the MTC gateway according to the third embodiment.
[Fig. 181 Fig. 18 is a functional block diagram showing the configuration of a base
station according to a fourth embodiment.
[Fig. 191 Fig. 19 is an explanatory view showing the relationship of each DRX
period.
[Fig. 201 Fig. 20 is a sequence diagram showing the operation according to the fourth
embodiment.
[Fig. 211 Fig. 21 is a sequence diagram showing the operation according to a fifth
embodiment.
Description of Embodiment
[0025]
Hereinafter, preferred embodiments of the present invention will be
described in detail with reference to the appended drawings. Note that, in this
specification and the drawings, elements that have substantially the same function
and structure are denoted with the same reference signs, and repeated explanation is
omitted.
[0026]
In the present specification and drawings, a plurality of structural elements
having substantially the same functional configuration may be distinguished by
attaching different alphabets to the end of the same reference numeral. For example,
a plurality of structural elements having substantially the same hnctional
configuration is distinguished when necessary like MTC terminals 20A, 20B, 20C.
However, if there is no need to distinguish a plurality of structural elements having
substantially the same functional configuration, only the same reference numeral is
attached. If there is no need to particularly distinguish, for example, the MTC
terminals 20A, 20B, 20C, the terminals are called simply the MTC terminal 20.
[0027]
"Description of Embodiment" will be described in the order of items shown
below:
1. Overview of Wireless Communication System
1 - 1. Configuration of Wireless Communication System
1-2. Implementation Form of MTC Gateway
1-3. Consideration of MTC Gateway
1-4. Categories of UE and MTC Terminal
1-5. Paging
1-6. Random Access
2. Description of Each Embodiment
2- 1. First Embodiment
2-2. Second Embodiment
2-3. Third Embodiment
2-4. Fourth Embodiment
2-5. Fifth Embodiment
3. Conclusion -
[0028]
4. Overview of Wireless Communication System>
Currently, the standardization of a wireless communication system of 4G is
under way in 3GPP. The embodiments of the present invention can be applied to, as
an example, a wireless communication system of 4G and thus, an overview of the
wireless communication system of 4G will first be provided.
[0029]
[I-1 . Configuration of Wireless Communication System]
Fig. 1 is an explanatory view showing a configuration example of a wireless
communication system 1. As shown in Fig. 1, the wireless communication system
1 includes an operator domain 10, an MTC terminal 20, an MTC gateway 30, and an
MTC server 40.
[0030]
5 The operator domain 10 includes MME (Mobility Management Entity) that
sets and releases sessions for data communication and controls handover, S-GW
(Serving Gateway) that routes and transfers user data, and base stations like eNodeB,
a relay node, and Home eNodeB, which is a small base station for home.
[003 11
10 The MTC server 40 is a node that manages each of the MTC terminals 20
and controls each of the MTC terminals 20 to, for example, collect information. Fig.
1 shows an example in which the MTC server 40 is arranged outside the operator
domain 10, but the MTC server 40 may also be arranged inside the operator domain
10. The MTC server 40 operates according to a command issued by, for example,
15 an MTC user 42.
[0032]
The MTC terminal 20 is a wireless terminal, which is discussed in 3GPP,
customized to MTC as communication between machines that is not directly used by
humans. The MTC terminal 20 performs communication according to the operator
20 domain 10 and the application. The MTC terminal 20 also performs two-way
communication with the MTC server 40 via the operator domain 10.
[0033]
As an MTC application in a medical system, for example, a case in which
the MTC terminal 20 collects electrocardiogram information of humans and
25 transmits the electrocardiogram information to a server by using an uplink when
some trigger condition is satisfied can be considered. As another MTC application,
a case in which a vending machine is caused to function as the MTC terminal 20 and
the MTC server 40 causes vending machines under control to report sales at regular
intervals (for example, 30 days) can also be considered.
30 [0034]
The MTC terminal 20 described above generally has, as an example, the
following features, but each of the MTC terminals 20 does not have to have all the
following features and which features each of the MTC terminals 20 has depends on
the application.
Almost no movement (Low Mobility)
5 Small-capacity data transmission (Online Small Data Transmission)
Extremely low power consumption (Extra Low Power Consumption)
Handling by grouping MTC (Group based MTC Features)
[0035]
Incidentally, the MTC 20 is an example of the user terminal (UE: User
10 Equipment) and the embodiments of the present invention are applicable also to non-
MTC terminals such as mobile phones and PCs (Personal Computers).
[0036]
As shown in Fig. 1, one or a plurality of the MTC terminals 20 is
subordinate to the MTC gateway 30, which is connected to the operator domain 10
15 including base stations by representing the subordinate MTC terminals 20. The
MTC gateway 30 is considered to be introduced from the following background:
(1) The number of the MTC terminals 20 is expected to be enormous and thus,
the management by the base station is simplified by a plurality of the MTC terminals
20 being bundled and handled by the MTC gateway 30.
20 (2) A case in which the function of the MTC terminal 20 is implemented in any
one apparatus can be considered.
(3) A case in which the MTC terminal 20 has a communication interface
incompatible with 4G such as Zigbee and wireless LAN defined by IEEE802.11 can
be considered.
25 [0037]
[l-2. Implementation Form of MTC Gateway]
The above MTC gateway 30 can be realized in various forms in relation to a
base station 12 and the MTC terminal 20. Some examples the implementation form
of the MTC gateway 30 will be described below with reference to FIGS. 2 to 5.
30 [0038]
Fig. 2 is an explanatory view showing a first implementation form of the
MTC gateway 30. In the first implementation form, the MTC gateway 30 is
connected to the base station 12 by an LTE-A cellular and connected to the MTC
terminal 20 by a non-cellular such as Zigbee and wireless LAN.
[0039]
5 Fig. 3 is an explanatory view showing a second implementation form of the
MTC gateway 30. In the second implementation form, the MTC gateway 30 is
connected to the base station 12 by the LTE-A cellular and connected to the MTC
terminal 20 also by the LTE-A cellular.
[0040]
10 Fig. 4 is an explanatory view showing a third implementation form of the
MTC gateway 30. In the third implementation form, the function of the MTC
terminal 20 is implemented in the MTC gateway 30 and thus, the MTC gateway 30 is
connected to the base station 12 by the LTE-A cellular and connected to the MTC
terminal 20 through a dedicated interface in the MTC gateway 30.
15 [0041]
Fig. 5 is an explanatory view showing a fourth implementation form of the
MTC gateway 30. In the fourth implementation form, though the entity of the MTC
gateway 30 is not present, the MTC terminals 20 operate in collaboration and the
Eunction of the MTC gateway 30 is virtually realized by, for example, one of the
20 MTC terminals 20 representing the other MTC terminal 20.
[0042]
[I-3. Consideration of MTC Gateway]
Cases of how the above MTC gateway 30 is recognized by the base station
12 and the MTC terminal 20 will be considered below.
25 [0043]
(The MTC gateway 30 viewed from the base station 12)
Case 1
The MTC gateway 30 is recognized by the base station 12 as one piece of
UE by the subordinate MTC terminals 20 being completely represented by the MTC
30 gateway 30 and the presence of the MTC terminals 20 subordinate to the MTC
gateway 30 cannot be recognized by the base station 12. In this case, the base
station 12 needs to communicate with only the MTC gateway 30 and thus, the load
on C-Plane can be reduced by reduced signaling. However, when a plurality of the
MTC terminals 20 having different categories actually belongs to the MTC gateway
30, it is difficult to represent the MTC gateway 30 as a single category. The
5 category will be described later in " 1-4. Categories of UE and MTC Terminal".
[0044]
Case 2
The MTC gateway 30 is actually present and performs communication, but
the MTC gateway 30 is logically transparent and only the MTC terminals 20 appear
10 to be present from the base station 12. In this case, the base station 12 can directly
handle the category and attributes of each of the MTC terminals 20, but signaling
does not decrease.
[0045]
Case 3
15 The MTC gateway 30 may transparently relay communication between the
base station 12 and the MTC terminal 20, and both the MTC gateway 30 and the
MTC terminal 20 are recognized by the base station 12 by a portion of settings or
communication being performed by representing the MTC terminals 20. In this
case, the MTC gateway 30 performs a portion of settings and the like by representing
20 the MTC terminals 20 and thus, the signaling load can be reduced.
[0046]
Case 4 -
The entity of the MTC gateway 30 is not present and the base station 12
directly communicates with each of the MTC terminals 20, and the MTC terminals
25 20 operate in collaboration and the MTC gateway 30 is recognized by the base
station 12 as if to be logically present by one of the MTC terminals 20 representing
the other MTC terminals 20.
[0047]
The MTC gateway 30 in Case 2 and Case 3 has some similarities to a relay
30 node of 4G currently being discussed, but is different in the way of recognition by
eNodeB or UE (including the MTC terminal 20). More specifically, the relay node
is recognized by eNodeB as a relay node and recognized by UE as eNodeB, but the
MTC gateway 30 is recognized by the base station 12, as described above, as the
MTC terminal 20 and recognized by the MTC terminal 20, as will be described later,
as a base station such as Zigbee or wireless LAN. However, the way the relay node
5 should be is currently still being discussed and the MTC gateway 30 according to the
present embodiment could be defined as a category of the relay node.
[0048]
(MTC gateway 30 viewed from the MTC terminal 20)
Case A
10 The MTC gateway 30 and the MTC terminal 20 are connected by wireless
LAN or the like and the MTC gateway 30 is recognized by the MTC terminal 20 as
an access point of wireless LAN or the like. In this case, even if the MTC terminal
20 is a non-cellular system, the MTC terminal 20 can be accommodated in a 4G
communication system, but it is difficult for each of the MTC terminals 20 to operate
15 as requested by 4G
[0049]
Case B
The function of the MTC terminal 20 is implemented in the MTC gateway
30 and the MTC terminal 20 and the MTC gateway 30 are connected by a dedicated
20 interface. In this case, there is no need to individually prepare a plurality of the
MTC terminals 20 and, for example, a case in which the function of the MTC
terminals 20 is implemented in one apparatus such as a mobile phone can be
considered.
[0050]
25 Case C
The entity of the MTC gateway 30 is not present and the base station 12
directly communicates with each of the MTC terminals 20, and the MTC terminals
20 operate in collaboration and the MTC gateway 30 is recognized by the base
station 12 as if to be logically present by one of the MTC terminals 20 representing
30 the other MTC terminals 20. This case has an advantage that the MTC gateway 30
is not needed, but how the MTC terminal 20 collaborates is matter to be discussed.
[005 11
Case D
The MTC gateway 30 is connected to the MTC terminal 20 in a form
conforming to a 4G circuit.
5 100521
(Combination of each case)
Cases in which the MTC gateway 30 is recognized by the base station 12
like Cases 1 to 4 and cases in which the MTC gateway 30 is recognized by the MTC
terminal 20 like Cases A to D have been described. As implementation form
10 examples of the MTC gateway 30, combinations of Cases 1 to 4 and Cases A to C are
shown below.
[0053]
[Table 11
[0054]
The description herein focuses on the MTC gateway 30 in the form
Gateway
itllplemlentatioa
form
Case(i)
Case($
Case(iii)
Case(1v)
Case(v)
Cztse(si)
Case(it)
corresponding to the above case (v) or (vi), that is, the MTC gateway 30 viewed from
Disadvantages
It is cW35rult
to &he the
category of
he gatmay.
It is diffic~ilt
to &he the
category of
the gateuqt
S i g a h g does
not derrease.
Sigdmg does
not decrease.
It is not clew
in itrhrch case
the gateway
&ordd
represent-
It is not clear
in which case
the gateway
should
represent-
By which
aleam to
achieve
colaborntion
between MTC
is unkno\.-n.
Gateway
viewed Erom
base station
(1)
(1)
(2)
(2)
(3)
(3)
(3>
Gateuay
viewed h r n
MTC t e m d
(A)
03)
(A)
@)
(A)
(B>
(c)
Advantages
SignEdkg m y
be reduced.
- S i p a h g my
be reduced.
- A p l ~ d t yof
tdr
can be
implemented in
me tem%al.
The gateuxy
teimind itself is
not needed.
the base station 12 corresponds to Case 3 and the MTC gateway 30 viewed from the
MTC terminal 20 corresponds to Case A or Case B.
[0055]
[I-4. Categories of UE and MTC Terminal]
Each embodiment of the present invention described below includes an
embodiment related to the category, an embodiment related to paging, and an
embodiment related to random access. Thus, before starting to describe each
embodiment, the category, paging, and random access will be described.
[0056]
In LTE, the category of UE is classified into Category 1 to Category 5.
These categories are classified in accordance with UE capabilities.
[0057]
[Table 21
15 [0058]
Fig. 6 is an explanatory view showing a sequence for category settings. As
shown in Fig. 6, UE 22 makes an application for the category thereof to the base
station 12 (S62) and the base station 12 returns a confirmation signal to the UE 22
(S64). Incidentally, the UE 22 can change the category by making an application of
20 the category again after being detached and reattached.
[0059]
The categories of UE have been described and classifLing the MTC terminal
20 into a plurality of categories can also be considered. Thus, an example of
categories of the MTC terminal 20 discussed by the present inventors is shown below.
25 [0060]
[Table 31
Peak rate
downlink
C a t q a c f CategoryS
ask rak
uplink
MlMO
dawnlink , ,, ,
Category1 Categaty2 , [ Cat9igatyf.
10Mbps 5OMbps 1O OMbps 1i 50Mbps 30QMbps
SMbps
optional
,,,,,, ,,, , , , , ,
ZWbps [ OOMbps SOMbps
-.-.,"
2x2 2x2
75Mbpa
232 4x4
[0061]
As described above, the category can be decided in accordance with
capabilities (characteristics) of each feature such as Low Mobility and Power
5 Consumption of the MTC terminal 20. The above category classification is an
example only and features of the MTC terminal 20 range widely and therefore, more
categories may be provided.
[0062]
The base station 12 is considered to control communication with each of the
10 MTC terminals 20 according to the category of each of the MTC terminals 20. For
example, the base station 12 may make adjustment requests to the MTC terminal 20
whose Mobility is "High Mobility" more frequently than to the MTC terminal 20
whose Mobility is "Low Mobility".
[0063]
15 [ 1-5. Paging]
The UE may make the transition to the sleep mode to save power
consumption. The UE operating in sleep mode observes the paging channel
transmitted from the base station 12 in a DRX (Discontinues Receotion) period and,
if there is no message addressed to the UE, returns to a lower power consumption
20 state and, if there is a message addressed to the UE, operates according to the
message. The paging channel contains an incoming call making a notification that
data addressed to the UE is present in the base station 12 and a message making it
known that system information (for example, the frequency used) of the base station
12 has been updated. Such a sleep mode function is expected to be implemented
25 also in the MTC terminal 20.
[ 1 -6. Random Access]
The UE establishes a connection to the base station 12 by executing a
procedure called random access with the base station 12. In the random access
5 procedure, a timing advance value to adjust the transmission timing of an uplink by
the UE is obtained. Though the distance between each piece of UE and the base
station 12 is different, a plurality of pieces of UE can multiplex resource blocks in an
uplink by making adjustments using the timing advance value so that data
transmitted from each piece of UE reaches the base station 12 at the same time.
10 [0065]
The random access procedure is roughly divided into two types of a
contention type and a contention free type. The contention type is basically used,
but the contention free type may also be used for more reliable random access. For
example, the contention free type is used to connect to the new base station 12 after
15 handover. However, some sequences of 64 provided sequences are used for the
contention free type and thus, the contention free type may not always be usable.
[0066]
Fig. 7 is a sequence diagram showing the above contention type random
access procedure. As shown in Fig. 7, first the UE 22 transmits a random access
20 preamble to the base station 12 (Step 1). Each of 64 sequences provided as a
random access preamble is orthogonal and thus, even if a different sequence is
transmitted to the same resources (at the same time, at the same frequency) as a
random access preamble, the base station 12 can separate each random access
preamble. However, if random access preambles of the same sequence are
25 transmitted using the same resources, it is difficult for the base station 12 to detect
each random access preamble due to the collision.
[0067]
If a random access preamble is successfully received from the UE 22, the
base station 12 judges the distance from the UE 22 based on the reception timing of
30 the random access preamble to calculate the timing advance value for the UE 22 to
adjust the transmission timing.
[0068]
Then, the base station 12 transmits a random access response to the UE 22
(Step 2). The random access response contains the above timing advance value and
also scheduling information for an uplink. However, the step is not executed if
5 there is no available resource for scheduling an uplink.
100691
Then, the UE 22 transmits L2L3 messages by using resources indicated by
the scheduling information received in Step 2 as a connection request (Step 3).
Incidentally, a case when the same random access preamble is transmitted by a
10 plurality of pieces of the UE 22 in Step 1 and the base station 12 successfully
receives one of the random access preambles can be considered. In this case, the
plurality of pieces of the UE 22 recognizes that the random access response
transmitted from the base station 12 in Step 2 is addressed to the respective pieces of
the UE 22 and the plurality of pieces of the UE 22 transmits the L2L3 messages
15 using the same resources. Thus, the base station 12 can receive none of the L2L3
messages or one of the L21L3 messages transmitted from the plurality of pieces of
the UE 22.
[0070]
If the L2L3 messages transmitted from the UE 22 are successfully received
20 in Step 3, the base station 12 returns ACK to the UE 22 (Step 4). If there is no
av'ailable resource for ACK transmission, the base station 12 does not return ACK.
Thus, the UE 22 recognizes that the random access is successful by receiving ACK in
Step 4.
[0071]
<2. Description of Each Embodiment>
As described in "2-1. First Embodiment" to "2-5. Fifth Embodiment" in
detail as examples, the present invention is carried out in various forms. Each
embodiment will successively be described below.
[0072]
<2-1. First Embodiment>
(Focus point)
Because an MTC gateway is transparent when viewed from the base station
12, if the MTC gateway simply relays information from the base station to an MTC
terminal, delay requirements may not be satisfied. When, for example, hybrid ARQ
(Automatic Retransmission Request) is used, 8 ms is defined as the round trip time.
5 However, if the MTC gateway simply relays information from the base station to the
MTC terminal, there may be cases when the round trip time cannot be satisfied.
The hybrid ARQ is a Stop And Wait type method by which the transmitter waits to
transmit the next data until ACK or NACK for transmission data is received.
[0073]
10 Also in the random access procedure, if the MTC terminal transmits L2L3
after receiving a random access response shown in Fig. 7 via the MTC gateway, a
problem of delay arises like the above case.
LO0741
Therefore, it is not preferable to cause the MTC gateway to operate simply
15 to relay by installing all information about 4G in the MTC terminal from the
viewpoint of delay or response. On the other hand, it is not realistic to install all
information about 4G in the MTC gateway.
[0075]
The first embodiment of the present invention is made in view of the above
20 circumstances as a focus point and according to the first embodiment of the present
invention, it is possible to provide a transparent aspect or an aspect to represent MTC
terminals to an MTC gateway. The first embodiment of the present invention will
be described in detail below with reference to Figs. 8 to 12.
[0076]
25 (Configuration of the first embodiment)
Fig. 8 is an explanatory view showing the configuration of an MTC terminal
20-1 and an MTC gateway 30-1 according to the first embodiment of the present
invention.
[0077]
30 As shown in Fig. 8, the MTC terminal 20-1 includes a wireless LAN
communication unit 210, a category information holding unit 220, a DRX
management unit 230, a MAC-ID holding unit 240, and an application 250. The
MTC gateway 30-1 includes a wireless LAN communication unit 310, a category
information holding unit 320, a DRX management unit 330, a C-RNTI holding unit
340, and a data buffer 350.
5 [0078]
The wireless LAN communication unit 210 of the MTC terminal 20-1
performs wireless communication with the wireless LAN communication unit 310
(second communication unit) of the MTC gateway 30-1 according to the wireless
communication such as IEEE802.11aY by n, or ac. Fig. 8 shows an example in
10 which the MTC terminal 20-1 and the MTC gateway 30-1 are connected by wireless
LAN as an example of a non-cellular system (mobile communication method, second
communication method), but the MTC terminal 20-1 and the MTC gateway 30-1
may also be connected by another non-cellular system (for example, Zigbee).
[0079]
15 Further, as shown in Fig. 4, the function of the MTC terminal 20-1 may be
implemented in the MTC gateway 30-1 as software and in this case, the MTC
terminal 20-1 may be connected to the MTC gateway 30-1 via a dedicated interface.
[OOSO]
The category information holding unit 320 of the MTC gateway 30-1 holds
20 category information of the MTC terminal 20-1. The category information is
considered to change due to the application 250 in the MTC terminal 20-1 and so is
also held by the category information holding unit 220 of the MTC terminal 20-1. -
Thus, transparency is realized by category information being shared by the MTC
terminal 20-1 and the MTC gateway 30-1.
25 [OOSl]
The DRX management unit 330 (intermittent reception management unit) of
the MTC gateway 30-1 holds and manages the DRX period (intermittent reception
period) for a cellular communication unit 360 of the MTC gateway 30-1 to receive
paging information for the MTC terminal 20-1. Similarly, the DRX management
30 unit 230 of the MTC terminal 20-1 holds the DRX period for the wireless LAN
communication unit 210 to receive paging information transferred from the MTC
gateway 30-1. While details thereof will be described with reference to Fig. 12, the
DRX period of the MTC terminal 20-1 has an offset for the DRX period of the MTC
e gateway 30- 1.
[0082]
5 The C-RNTI holding unit 340 (identification information holding unit) of
the MTC gateway 30-1 associates and holds C-RNTI as identification information of
the MTC terminal 20-1 in 4G and MAC-ID as identification information of the MTC
terminal 20-1 in wireless LAN. On the other hand, the MAC - ID holding unit 240
of the MTC terminal 20-1 holds MAC - ID of the MTC terminal 20-1. Incidentally,
10 in addition to MAC-ID, the MTC terminal 20-1 may hold C-RNTI.
[0083]
The data buffer 350 of the MTC gateway 30-1 is a buffer to temporarily
hold data to be relayed between the base station 12 and the MTC terminal 20-1. For
example, data to be transmitted from the base station 12 to the MTC terminal 20-1
15 and data to be transmitted from the MTC terminal 20-1 to the base station 12 are
temporarily held in the data buffer 350.
[0084]
e The cellular communication unit 360 (first communication unit) of the MTC
gateway 30-1 performs communication with the base station 12 according to 4G
20 (first communication method).
[0085]
In the present embodiment, as described above, the MTC terminal 20-1 is
caused to hold category information, MAC-ID corresponding to C-RNTI, and the
DRX period and other 4G processing is performed by the MTC gateway 20-1 as a
25 proxy. The random access, data communication, and DRX operation according to
the present embodiment will concretely be described below.
[0086]
(Operation according to the first embodiment)
Random access
30 Fig. 9 is a sequence diagram showing a random access procedure for each of
the MTC terminals 20-1. As shown in Fig. 9, when an acquisition request of CRNTI
is received from the MTC terminal 20-1 (S404), the MTC-gateway 30-1
performs random access to the base station 12 (S408).
[0087]
The timing advance value and C-RNTI for the MTC terminal 20-1 are
5 acquired by the random access in S408 and so the MTC gateway 30-1 holds the
acquired C-RNTI for the MTC terminal 20-1 in the C-RNTI holding unit 340 (S412).
[OOSS]
Then, if a plurality of the MTC terminals 20-1 is subordinate, the MTC
gateway 30-1 repeats the processing shown in Fig. 9 as many times as the number of
10 the subordinate MTC terminals 20-1. Incidentally, the MTC gateway 30-1 may
notify the MTC terminal 20-1 of the acquired C-RNTI.
[0089]
Data communication
Fig. 10 is an explanatory view showing communication concerning the
15 MTC terminal 20-1. As shown in Fig. 10, a case when the base station 12 transmits
data to the MTC terminal 20-1 whose C-RNTI is "xx" and whose MAC-ID is "yy"
will be considered. In this case, the base station 12 transmits data A by setting CRNT1:
xx as the address (S420).
[0090]
20 Then, if the data A is successfully received, the MTC gateway 30-1 returns
ACK to the base station 12 before whether the data A is successfully received by the
MTC terminal 20-1 is checked (S422). When ACK is received from the MTC
gateway 30-1, the base station 12 transmits the next data B (S426). If the reception
of data A fails, the MTC gateway 30-1 returns NACK and the base station 12
25 retransmits the data A.
[009 11
On the other hand, if the data is successfully received, the MTC gateway 30-
1 sets MAC-1D:yy as the address and transmits the data A to the MTC terminal 20-1
(S424). Then, if the data A is successfully received, the MTC terminal 20-1 returns
30 ACK to the MTC gateway 30-1 (S428).
[0092]
As described above, the round trip time defined for hybrid ARQ can be
satisfied while realizing transparency by ACKNACK being returned by the MTC
'gateway 30-1 as a proxy.
[0093]
5 -DRX
Fig. 11 is an explanatory view showing a transfer sequence of a DRX period.
As shown in Fig. 11, when the DRX period to intermittently receive paging for the
MTC terminal 20-1 is received from the base station 12, the MTC gateway 30-1
holds the DRX period in the DRX management unit 330 (S430).
10 [0094]
Then, the DRX management unit 330 of the MTC gateway 30-1 causes the
wireless LAN communication unit 3 10 to transmit a DRX period having an offset for
the DRX period received from the base station 12 to the MTC terminal 20-1 (S434).
Subsequently, the DRX management unit 230 of the MTC terminal 20-1 holds the
15 DRX period received by the wireless LAN communication unit 310. The
relationship between the DRX period of the MTC gateway 30-1 and the DRX period
of the MTC terminal 20-1 will be described with reference to Fig. 2.
[0095]
Fig. 12 is an explanatory view showing intermittent reception by the MTC
20 gateway 30-1 and the MTC terminal 20-1. As shown in Fig. 12, the MTC terminal
20-1 performs intermittent reception in conjunction with the MTC gateway 30-1. In
- consideration of the delay between reception and transmission of a paging channel
by the MTC gateway 30-1, the DRX period of the MTC terminal 20-1 is set so as to
have an offset for the DRX period of the MTC gateway 30-1.
25 [0096]
According to the first embodiment of the present invention, as described
above, the MTC gateway 30-1 having a transparent aspect can be realized while
satisfying the delay requirements in 4G.
[0097]
30 [2-2. Second Embodiment]
(Focus point)
A plurality of MTC terminals classified into different categories could be
subordinate to an MTC gateway. However, category features of some MTC
terminal and category features of another MTC terminal could be contradictory.
For example, while Mobility of an MTC terminal classified into Category 2 shown in
5 Table 3 is "Low Mobility", Mobility of an MTC terminal classified into Category 5 is
"High Mobility". Thus, a contradiction arises if an MTC terminal classified into
Category 2 and an MTC terminal classified into Category 5 are subordinate to the
same MTC gateway.
[0098]
10 The second embodiment of the present invention is made in view of the
above circumstances as a focus point and according to the second embodiment of the
present invention, a contradiction in category settings of MTC terminals can be
prevented from arising. The second embodiment of the present invention will be
described in detail below with reference to Figs. 13 and 14.
15 [0099]
(Configuration of the second embodiment)
Fig. 13 is an explanatory view showing the configuration of an MTC
terminal 20-2 and an MTC gateway 30-2 according to the second embodiment of the
present invention.
20 [OlOO]
As shown in Fig. 13, the MTC terminal 20-2 includes the wireless LAN
communication unit 210, the category information holding unit 220, a category
change unit 224, the DRX management unit 230, the MAC-ID holding unit 240, and
the application 250. The MTC gateway 30-2 includes the wireless LAN
25 communication unit 310, the category information holding unit 320, a recommended
feature management unit 324, the DRX management unit 330, the C-RNTI holding
unit 340, and the data buffer 350. A configuration of the MTC terminal 20-2 and
the MTC gateway 30-2 according to the second embodiment that is different from
the configuration of the MTC terminal 20-1 and the MTC gateway 30-1 according to
30 the first embodiment will be mainly described below.
[OlOl]
The recommended feature management unit 324 (characteristic information
selection unit) of the MTC gateway 30-2 selects features (characteristics)
recommended to the subordinate MTC terminal 20 and causes the wireless LAN
communication unit 310 to notify the MTC terminal 20-2 of the features. The
5 recommended feature management unit 324 may make an inquiry about the category
of each of the subordinate MTC terminals 20-2 to select recommended features for
each feature item.
[O 1021
An example of selecting recommended features is described above, but the
10 MTC gateway 30-2 may conversely select features to be avoided and cause the
wireless LAN communication unit 310 to notify the MTC terminal 20-2 of the
features. If, for example, the MTC terminal 20-2 whose "Mobility" is "High
Mobility" is the majority, the recommended feature management unit 324 may select
"Low Mobility" as features to be avoided.
15 [0103]
The category change unit 224 of the MTC terminal 20-2 changes features of
the MTC terminal 20-2 based on features notified from the MTC gateway 30-2. For
example, a case when the category of the MTC terminal 20-2 is Category 2 shown in
Table 3 and "High Mobility" is notified as recommended features from the MTC
20 gateway 30-2 is considered. In this case, the category change unit 224 may change
the category of the MTC terminal 20-2 to a category whose Mobility is "High
Mobility" such as Category 4 or 5.
[0 1041
Also, a case when the category of the MTC terminal 20-2 is Category 2
25 shown in Table 3 and "Low Mobility" is notified as capabilities to be avoided from
the MTC gateway 30-2 is considered. In this case, the category change unit 224
may change the category of the MTC terminal 20-2 to a category whose Mobility is
"High Mobility" such as Category 4 or 5.
[0 1051
30 If it is difficult to change to a category satisfying features notified from the
MTC gateway 30-2, the MTC terminal 20-2 may release the connection to the MTC
gateway 30-2. An example of selecting recommended features is described above,
but the MTC gateway 30-2 may select recommended categories or categories to be
avoided and notifL the MTC terminal 20-2 thereof.
[0106]
5 (Operation of the second embodiment)
The configuration of the MTC terminal 20-2 and the MTC gateway 30-2
according to the second embodiment has been described. Next, the operation of the
MTC terminal 20-2 and the MTC gateway 30-2 according to the second embodiment
will be described with reference to Fig. 14.
10 [0107]
Fig. 14 is a sequence diagram showing the operation of the MTC terminal
20-2 and the MTC gateway 30-2 according to the second embodiment. As shown
in Fig. 14, when the MTC gateway 30-2 first requests a notification of the category
from the MTC terminal 20-2 (S452), the MTC terminal 20-2 notifies the MTC
15 gateway 30-2 of the category thereof in response to the request from the MTC
gateway 30-2 (S454).
[0108]
When a plurality of the MTC terminals 20-2 is subordinate to the MTC
gateway 30-2, the processing in S452 and S454 is performed for each of the
20 subordinate MTC terminals 20-2. However, in S452, the MTC gateway 30-2 may
transmit a category notification request to a plurality of the MTC terminals 20-2 in a
broadcast at a time.
[0 1091
Next, the recommended feature management unit 324 of the MTC gateway
25 30-2 selects features recommended to the subordinate MTC terminal 20-2 based on
the category of the subordinate MTC terminal 20-2 (S456). Subsequently, when a
query about recommended features is received from the MTC terminal 20-2 (S458),
the MTC gateway 30-2 notifies the MTC terminal 20-2 of the features selected in
S456 (S460).
30 [OllO]
Next, if the notified features and features of the MTC terminal 20-2 are
contradictory based on the features notified from the MTC gateway 30-2, the
category change unit 224 of the MTC terminal 20-2 may change the features of the
MTC terminal 20-2 if necessary (S462). Subsequently, the MTC terminal 20-2
holds the changed category in the category information holding unit 220 and notifies
5 the MTC gateway 30-2 of the changed category (S464).
[Olll]
Next, the MTC gateway 30-2 notifies the base station 12 of the category
notified from the MTC terminal 20-2 (S466). Then, when category setting
confirmation is received from the base station 12 (S468), the MTC gateway 30-2
10 holds the category in the category information holding unit 320 and transmits the
category setting confirmation to the MTC terminal 20-2 (S470).
[0112]
According to the second embodiment of the present invention, as described
above, the MTC gateway 30-2 can be introduced by preventing a contradiction of
15 category settings of MTC terminals from arising.
[0113]
[2-3. Third Embodiment]
(Focus point)
When an MTC gateway is transparent when viewed from a base station and
20 a plurality of MTC terminals is subordinate to the MTC gateway, a different DRX
period (paging period) can be set to each of the MTC terminals. In this case, the
MTC gateway intermittently receives a paging channel for each of the MTC
terminals individually and thus, the number of times of reception increases and there
is a concern about increased power consumption of the MTC gateway.
25 [0114]
The third embodiment of the present invention is made in view of the above
circumstances as a focus point and according to the third embodiment of the present
invention, power consumption of an MTC gateway can be curbed by adjusting the
DRX period for each MTC terminal. The third embodiment of the present
30 invention will be described in detail below with reference to Figs. 15 to 17.
[0115]
(Configuration of the third embodiment)
Fig. 15 is an explanatory view showing the configuration of an MTC
terminal 20-3 and an MTC gateway 30-3 according to the third embodiment of the
present invention.
5 [0116]
As shown in Fig. 15, the MTC terminal 20-3 includes the wireless LAN
communication unit 210, the category information holding unit 220, the category
change unit 224, the DRX management unit 230, the MAC-ID holding unit 240, and
the application 250. The MTC gateway 30-3 includes the wireless LAN
10 communication unit 310, the category information holding unit 320, the
recommended feature management unit 324, the DRX management unit 330, the CRNTI
holding unit 340, and the data buffer 350. A configuration of the MTC
terminal 20-3 and the MTC gateway 30-3 according to the third embodiment that is
different from the configuration of the MTC terminal 20-1 and the MTC gateway 30-
15 1 according to the first embodiment will be mainly described below.
[0117]
The DRX management unit 330 of the MTC gateway 30-3 includes a DRX
adjustment unit 332 that adjusts the DRX period of a plurality of the subordinate
MTC terminals 20-3. More specifically, the DRX adjustment unit 332 adjusts the
20 DRX period for each of the MTC terminals 20-3 in such a way that other DRX
periods than the shortest DRX period are integral multiples of the shortest DRX
period.
[0118]
For example, as shown in Fig. 16, the DRX period for each of the MTC
25 terminals 20-3 is adjusted in such a way that the DRX periods of an MTC terminal
20-3B and an MTC terminal 20-3C are integral multiples of the shortest DRX period
of an MTC terminal 20-3A. By adopting the above configuration, when a paging
channel is received in the shortest DRX period for the MTC terminal 20-3A, the
cellular communication unit 360 of the MTC gateway 30-3 can also receive paging
30 channels for the other MTC terminals 20-3B, 20-3C simultaneously. As a result,
the number of times of reception of the MTC gateway 30-3 is reduced and thus,
power consumption for DRX of the MTC gateway 30-3 can be curbed.
[0119]
(Operation of the third embodiment)
The configuration of the MTC terminal 20-3 and the MTC gateway 30-3
5 according to the third embodiment has been described. Next, the operation of the
MTC terminal 20-3 and the MTC gateway 30-3 according to the third embodiment
will be described with reference to Fig. 17.
[O 1201
Fig. 17 is a sequence diagram showing the operation of the MTC terminal
10 20-3 and the MTC gateway 30-3 according to the third embodiment. As shown in
Fig. 17, when a plurality of MTC terminals 20-3A, 20-3B, ... subordinate to the MTC
gateway 30-3 notifies the MTC gateway 30-3 of the respective DRX period (S482,
S484), the DRX adjustment unit 332 of the MTC gateway 30-3 adjust the DRX
period for each of the MTC terminals 20-3 (S486).
15 [0121]
More specifically, the DRX adjustment unit 332 of the MTC gateway 30-3
adjusts the DRX period for each of the MTC terminals 20-3 in such a way that other
DRX periods than the shortest DRX period are integral multiples of the shortest
DRX period.
20 [0122]
Subsequently, the MTC gateway 30-3 notifies the base station 12 of the
adjusted DRX period for each of the MTC terminals 20-3 (S488) and, when a setting
confirmation of the DRX period is received from the base station 12 (S490),
transmits the setting confirmation of the DRX period to each of the MTC terminals
25 20-3 (S492, S494).
[0 1231
<2-4. Fourth Embodiment>
(Focus point)
A case when both of an MTC terminal whose state is RRC-Connected and
30 an MTC terminal whose state is RRC-IDLE are subordinate to an MTC gateway can
be considered. RRC - Connected is an active state in which communication with a
base station can be performed. RRC - IDLE is a sleep state in which power
consumption is curbed by observing paging channels in the DRX period.
[0 1241
Even if the state is RRC-Connected, as shown in "Chapter 7.2 3GPP TS
5 36.300N, the DRX period may be set. The DRX period is roughly divided into long
and short periods and a transition to a long period is assumed when no paging
channel is received in a predetermined period during operation in a short period.
Switching between short and long periods is performed by a decision of a base
station or control of UE (MTC terminal) from the base station.
10 [0125]
The DRX period in RRC-IDLE described above is diverse and also short
and long DRX periods in RRC-Connected exist, but if these DRX periods are not
synchronized, there is a concern about a higher operation rate of the MTC gateway
and increased power consumption.
15 [0126]
The fourth embodiment of the present invention is made in view of the
above circumstances as a focus point and according to the fourth embodiment of the
present invention, power consumption of an MTC gateway can be curbed by
adjusting the DRX period of ach state. The fourth embodiment of the present
20 invention will be described in detail below with reference to Figs. 18 to 20.
[0 1271
(Configuration of the fourth embodiment)
Fig. 18 is a functional block diagram showing the configuration of the base
station 12 according to the fourth embodiment. As shown in Fig. 18, the base
25 station 12 includes an MTC terminal management unit 120, a DRX adjustment unit
130, and a cellular communication unit 160.
[0128]
Thy MTC terminal management unit 120 manages the MTC terminals 20
subordinate to each of the MTC gateways 30 as a group and holds C-RNTI and P-
30 RNTI (Paging Radio Network Temporary Identify) of each of the MTC terminals 20.
P-RNTI is used for transmission of paging to the MTC terminal 20 whose state is
RRC-IDLE and C-RNTI or P-RNTI is used for transmission of a control signal to
the MTC terminal 20 whose state is RRC-Connected.
[0 1291
The cellular communication unit 160 performs communication with the
5 MTC gateway 30 following a cellular communication method such as 4G.
[0130]
The DRX adjustment unit 130 adjusts the DRX period of RRC-Connected
and the DRX period of RRC-IDLE. More specifically, the DRX period of
RRC-IDLE is longer than the DRX period of RRC-Connected and thus, the DRX
10 adjustment unit 130 adjusts each DRX period in such a way that the DRX period of
RRC-IDLE is an integral multiple of the long DRX period of RRC-Connected.
Also, the DRX adjustment unit 130 adjusts each DRX period in such a way that the
long DRX period is an integral multiple of the short DRX period. Further: the DRX
adjustment unit 130 makes uniform phases of the DRX period of RRCIDLE, the
15 short DRX period, and the long DRX period.
[0131]
For example, as shown in Fig. 19, by adjusting lengths and phases of the
DRX period of RRC-IDLE, the short DRX period, and the long DRX period, DRX
of RRC-IDLE is performed simultaneously with DRX of RRC-Connected in both
20 cases of the transition from the short DRX period to the long DRX period and the
transition from the long DRX period to the short DRX period.
[0 1321
Therefore, even if both of the MTC terminal 20 whose state is
RRC-Connected and the MTC terminal 20 whose state is =IDLE are
25 subordinate to the MTC gateway 30, power consumption of the MTC gateway 30
can be curbed by reducing the operation rate of the MTC gateway 30.
[0133]
(Operation of the fourth embodiment)
The configuration of the base station 12 according to the fourth embodiment
30 has been described. Next, the operation according to the fourth embodiment will be
described with reference to Fig. 20.
[0 1341
Fig. 20 is a sequence diagram showing the operation according to the fourth
embodiment. As shown in Fig. 20, when the MTC terminal 20 first requests the
DRX period of RRC-IDLE (S504), the MTC gateway 30 transfers the request to the
5 base station 12 (S508).
[0135]
Then, the DRX adjustment unit 130 of the base station 12 adjusts the DRX
period of RRC-IDLE so as to be an integral multiple of the long DRX period of
RRC-Connected and also phases of the DRX period of RRC-IDLE and the long
10 DRX period are uniform (S512). Subsequently, the MTC terminal 20 is notified of
setting content of the DRX period via the MTC gateway 30 (S516, S520).
[0136]
[2-5. Fifth Embodiment]
(Focus point)
15 The first embodiment in which the MTC gateway 30 performs random
access to each of the MTC terminals 20-1 to obtain C-RNTI and the timing advance
value of each of the MTC terminals 20-1 has been described with reference to Fig. 9.
[0137]
However, the timing advance value is used only for an uplink between the
20 MTC gateway and base station. Thus, the timing advance value of the MTC
terminal is considered to be enough. However, currently there is no procedure for
using the timing advance value acquired by another terminal for communication of
some tenhinal.
[0138]
25 The fifth embodiment of the present invention is made in view of the above
circumstances as a focus point and according to the fifth embodiment of the present
invention, signaling by random access and the load of an MTC gateway can be
reduced. The fifth embodiment of the present invention will be described in detail
below with reference to Fig. 2 1.
30 [0139]
(Operation of the fifth embodiment)
Fig. 21 is a sequence diagram showing the operation according to the fifth
embodiment. As shown in Fig. 21, an MTC gateway 30-5 first performs random
access to the base station 12 to acquire the timing advance value (S524).
[0 1 401
5 Subsequently, when an acquisition request of C-RNTI is received from the
MTC terminal 20 (S528), the MTC gateway 30-5 transmits the acquisition request of
C-RNTI for the MTC terminal 20 to the base station 12 (S532).
[0141]
Then, when C-RNTI for the MTC terminal 20 is provided in response to the
10 request from the base station 12 (S536), the MTC gateway 30-5 holds the C-RNTI
for the MTC terminal 20 in the C-RNTI holding unit 340 (S540). The MTC
gateway 30-5 may or may not notify the MTC terminal 20 of the C-RNTI.
[O 1421
Subsequently, the MTC gateway 30-5 performs uplink communication of
15 the MTC terminal 20 by using the C-RNTI provided in S536 and the timing advance
value acquired in S524. That is, the MTC gateway 30-5 uses the common timing
advance value acquired in S524 for uplink communication of a plurality of
subordinate MTC terminals 20.
[0 1431
20 According to the fifth embodiment described above, the number of times of
random access by the MTC gateway 30-5 decreases and thus, signaling by random
- access and the load of the MTC gateway 30-5 can be reduced.
[0 1441
<3. Conclusion>
2 5 According to the embodiments of the present invention, as described above,
an MTC gateway having a transparent aspect can be realized while satisfying the
delay requirements in 4G. Also according to the embodiments of the present
invention, an MTC gateway can be introduced by preventing a contradiction of
category settings of MTC terminals from arising. Also according to the
30 embodiments of the present invention, power consumption for DRX of an MTC
gateway can be curbed. Also according to the embodiments of the present
invention, signaling by random access and the load of an MTC gateway can be
reduced.
[0145]
The preferred embodiments of the present invention have been described
5 above with reference to the accompanying drawings, whilst the technical scope of the
present invention is not limited to the above examples, of course. A person skilled
in the art may find various alterations and modifications within the scope of the
appended claims, and it should be understood that they will naturally come under the
technical scope of the present invention.
10 [0146]
For example, each step in processing of the MTC terminal 20 or the MTC
gateway 30 herein does not necessarily have to be executed along a time series in the
order described in a sequence diagram. For example, each step in processing of the
MTC terminal 20 or the MTC gateway 30 may be executed in a different order from
15 the order described in a sequence diagram or in parallel.
[0 1471
In addition, a computer program causing hardware such as a CPU, ROM,
and RAM contained in the MTC terminal 20, the MTC gateway 30, or the base
station 12 to fulfill the function equivalent to each configuration of the MTC terminal
20 20, the MTC gateway 30, and the base station 12 described above. Also, a storage
medium storing the computer program is provided.
Reference Signs List
[0148]
25 10 Operator domain
12 Base station
20 MTC terminal
30 MTC gateway
4 0 MTC server
30 120 MTC terminal management unit
130,332DRX adjustment unit
160, 360Cellular communication unit
2 10, 3 10 Wireless LAN communication unit
220, 320Category information holding unit
230,330DRX management unit
5 240 MAC-ID holding unit
250 Application
324 Recommended feature management unit
340 C-RNTI holding unit
3 50 Data buffer
10

CLAIMS
Claim 1
A communication system comprising:
a base station;
5 a communication apparatus; and
a gateway apparatus including
a first communication unit that communicates with the base station
in a first communication method,
a second communication unit that communicates with the
10 communication apparatus in a second communication method,
an identification information holding unit that holds a
correspondence between first identification information in the first communication
method and second identification information in the second communication method
of the communication apparatus, and
15 a category information holding unit to share category information
showing a characteristic of the communication apparatus with the communication
apparatus,
wherein the first communication unit performs communication of
the communication apparatus in accordance with the category information with the
20 base station by using the first identification information of the communication
apparatus.
Claim 2
The communication system according to claim 1, wherein the second
25 communication unit communicates with the communication apparatus by using the
second identification information of the communication apparatus.
Claim 3
The communication system according to claim 2,
30 wherein the second communication unit transmits characteristic information
to the communication apparatus and receives the category information of the
communication apparatus changed based on the characteristic information from the
communication apparatus,
wherein the first communication unit transmits the category information
received by the second communication unit to the base station, and
5 wherein the category information holding unit holds the category
information received by the second communication unit.
Claim 4
The communication system according to claim 3, wherein the gateway
10 apparatus further includes a characteristic information selection unit that selects the
characteristic information based on the category information received from the
communication apparatus and before being changed.
Claim 5
15 The communication system according to claim 4, wherein the characteristic
information shows a characteristic recommended to the communication apparatus.
Claim 6
The communication system according to claim 1, wherein the gateway
20 apparatus further includes an intermittent reception management unit that holds a
reception period to intermittently receive paging from the base station for the
communication apparatus and causes the second communication unit to notify the
communication apparatus of a reception period having an offset for the reception
period.
2 5
Claim 7
The communication system according to claim 1,
wherein, when data addressed to the communication apparatus is received
by the first comlnunication unit from the base station, the second communication unit
30 transmits the data to the communication apparatus, and
wherein, if the data addressed to the communication apparatus is
successfUlly received, the first communication unit transmits a reception
confirmation signal to the base station before checking whether the data is
successfully received by the communication apparatus.
5 Claim 8
The communication system according to claim 1,
wherein the gateway apparatus communicates with a plurality of
communication apparatuses,
wherein the gateway apparatus further includes an adjustment unit that
10 adjusts each reception period for the first communication unit to perform intermittent
reception for each of the plurality of communication apparatuses, and
wherein the adjustment unit adjusts each of the reception periods in a
manner that a reception period other than one reception period is an integral multiple
of the one reception period.
15
Claim 9
The communication system according to claim 1,
wherein the gateway apparatus communicates with a plurality of
communication apparatuses,
20 wherein the first communication unit intermittently receives in a short
reception period or a long reception period for the communication apparatuses in an
active state and intermittently receives in a sleep reception period for the
communication apparatuses in a sleep state, and
wherein the long reception period and the sleep reception period are set as
25 integral multiples of the short reception period and each reception period is set in a
manner that phases thereof are uniform.
Claim 10
The communication system according to claim 1, wherein the first
30 communication unit acquires a timing advance value by performing a random access
procedure to the base station and uses the common timing advance value for
4014 1
communication with a plurality of communication apparatuses.
Claim 11
The communication system according to claim 10, wherein the first
5 communication unit transmits an acquisition request of the first identification
information of each of the plurality of communication apparatuses to the base station
to acquire the first identification information of each of the plurality of
communication apparatuses from the base station.
10 Claim 12
The gateway apparatus according to claim 1, wherein the first
communication method is a mobile communication method and the second
communication method is a wireless LAN communication method.
15 Claim13
The communication system according to claim 1,
wherein the communication apparatus is implemented in the gateway
apparatus, and
wherein the first communication method is a mobile communication method
20 and the second communication method is a communication method using a dedicated
interface in the gateway apparatus.
Claim 14
A communication apparatus configured to communicate with a' gateway
25 apparatus in a second communication method, the gateway apparatus communicating
with a base station in a first communication method, communicating with the
communication apparatus in the second communication method, holding a
correspondence between first identification information in the first communication
method and second identification information in the second communication method
30 of the communication apparatus, and sharing category information showing a
- characteristic of the communication apparatus.

Documents

Application Documents

# Name Date
1 4840-DELNP-2013.pdf 2013-06-13
2 4840-delnp-2013-Form-3-(30-10-2013).pdf 2013-10-30
3 4840-delnp-2013-Correspondence Others-(30-10-2013).pdf 2013-10-30
4 4840-delnp-2013-GPA.pdf 2014-01-21
5 4840-delnp-2013-Form-5.pdf 2014-01-21
6 4840-delnp-2013-Form-3.pdf 2014-01-21
7 4840-delnp-2013-Form-2.pdf 2014-01-21
8 4840-delnp-2013-Form-1.pdf 2014-01-21
9 4840-delnp-2013-Drawings.pdf 2014-01-21
10 4840-delnp-2013-Description (Complete).pdf 2014-01-21
11 4840-delnp-2013-Correspondence-Others.pdf 2014-01-21
12 4840-delnp-2013-Claims.pdf 2014-01-21
13 4840-delnp-2013-Abstract.pdf 2014-01-21
14 4840-DELNP-2013-FER.pdf 2018-12-27
15 4840-DELNP-2013-OTHERS-100619.pdf 2019-06-14
16 4840-DELNP-2013-Correspondence-100619.pdf 2019-06-14
17 4840-DELNP-2013-PETITION UNDER RULE 137 [21-06-2019(online)].pdf 2019-06-21
18 4840-DELNP-2013-OTHERS [24-06-2019(online)].pdf 2019-06-24
19 4840-DELNP-2013-FER_SER_REPLY [24-06-2019(online)].pdf 2019-06-24
20 4840-DELNP-2013-CORRESPONDENCE [24-06-2019(online)].pdf 2019-06-24
21 4840-DELNP-2013-CLAIMS [24-06-2019(online)].pdf 2019-06-24
22 4840-DELNP-2013-ABSTRACT [24-06-2019(online)].pdf 2019-06-24
23 4840-DELNP-2013-Power of Attorney-260619.pdf 2019-07-03
24 4840-DELNP-2013-Power of Attorney-260619-.pdf 2019-07-03
25 4840-DELNP-2013-OTHERS-260619.pdf 2019-07-03
26 4840-DELNP-2013-Correspondence-260619.pdf 2019-07-03
27 4840-DELNP-2013-Correspondence-260619-.pdf 2019-07-03
28 4840-DELNP-2013-Correspondence to notify the Controller [18-06-2021(online)].pdf 2021-06-18
29 4840-DELNP-2013-US(14)-HearingNotice-(HearingDate-18-06-2021).pdf 2021-10-17

Search Strategy

1 SEARCH_12-12-2018.pdf