This application is based on and claims priority under 35 U.S.C. § 119 to Korean Patent Application Nos. 10-2021-0059512, filed on May 7, 2021 and 10-2021-0098569, filed on Jul. 27, 2021, in the Korean Intellectual Property Office, the disclosures of which are incorporated by reference herein in their entireties.
This disclosure relates generally to wireless communications and more particularly to a user equipment (UE) communicating with a base station in a fifth-generation (5G) compatible mobile network, and an operating method thereof.
The 3rd Generation Partnership Project (3GPP) Release 17 prescribes standards and suggests newly added functions for the enhancement of 5G (“5G new radio (NR)”) mobile network technology. The newly added functions, however, may result in higher processing times for a UE to process a physical downlink shared channel (PDSCH), and thereby cause unwanted delays. The PDSCH processing time of a UE is a factor determining the UE's capability, and such capability may be considered by a base station when determining whether or how to communicate with the UE.
Embodiments of the inventive concept provide a user equipment for improving communication capability by determining a physical downlink shared channel (PDSCH) processing time thereof, taking into account functions newly added to fifth-generation (5G) mobile network technology, and an operating method thereof.
According to an aspect of the inventive concept, there is provided an operating method of a user equipment communicating with a base station in a 5G mobile network. The operating method includes setting at least one value of at least one time parameter based on at least one activated function in the 5G mobile network; determining a processing time for a PDSCH from the base station based on the at least one value; determining a capability of the user equipment by comparing the processing time with a reference time; and transmitting information including the capability of the user equipment to the base station.
According to another aspect of the inventive concept, there is provided an operating method of a user equipment communicating with a base station in a 5G mobile network. The operating method includes setting at least one time parameter to at least one value corresponding to a time required to process multicast and broadcast services (MBS)-related data in the 5G mobile network; determining a processing time for a PDSCH reflecting the at least one value; determining a capability of the user equipment based on the processing time; and transmitting information including the capability of the user equipment to the base station.
According to still another aspect of the inventive concept, there is provided an operating method of a user equipment communicating with a first base station based on a 5G mobile network. The operating method includes setting at least one time parameter to at least one value corresponding to a time required to cancel interference by a cell-specific reference signal (CRS) received from a second base station; generating a processing time for a PDSCH reflecting the at least one value; determining a capability of the user equipment based on the processing time; and transmitting information including the capability of the user equipment to the first base station.
According to a further aspect of the inventive concept, there is provided a user equipment including a transceiver configured to receive a PDSCH from a first base station based on a 5G mobile network; and a controller configured to generate information and transmit the information to the first base station through the transceiver, the information indicating a capability determined by a processing time for the PDSCH, wherein the controller is further configured to set at least one value of at least one time parameter based on an activated function in the 5G mobile network and determine the processing time for the PDSCH based on the at least one value of the at least one time parameter.
According to further aspects of the inventive concepts, the above operating methods are applied to mobile networks other than 5G networks, and the above-summarized UEs are employed in such other mobile networks.
Embodiments of the inventive concept will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings in which:
Hereinafter, embodiments will be described in detail with reference to the accompanying drawings.
The first base station BS1 may provide wireless broadband access to a plurality of user equipments (UEs) 21 to 26 in a coverage area 20. For example, UE 21 may be located in a small business SB, UE 22 may be located in an enterprise E, UE 23 may be located in a WiFi hot spot HS, UE 24 may be located in a residence R, and UEs 25 and 26 may each correspond to a mobile device M such as a cellular phone, a wireless laptop, or a wireless personal digital assistant (PDA). The second base station BS2 may provide wireless broadband access to UEs 25 and 26 in a coverage area 30 thereof. In an example embodiment, the first through third base stations BS1, BS2, and BS3 may communicate with one another or with the UEs 21 to 26 using fifth-generation (5G), long-term evolution (LTE), LTE-advanced (LTE-A), WiMAX, WiFi, code division multiple access (CDMA), global system for mobile communications (GSM), wireless local area network (WLAN), or other wireless communication technology.
Hereinafter, to facilitate understanding of concepts taught herein, an example is presented in which the first base station BS1 supports 5G mobile network-based communication, and the second base station BS2 supports LTE mobile network-based communication. The example also assumes that UEs 25 and 26 are located in an overlapping area between the coverage area 20 of the first base station BS1 and the coverage area 30 of the second base station BS2, and the UEs 25 and 26 support 5G mobile network-based communication. Hereinafter, operations of the UE 25 are primarily described, but such operations may also be applied to UEs 21 to 24 and 26. Aspects of the inventive concept may be applied to next generation mobile network communication as well as 5G mobile network communication.
The first base station BS1 may transmit a control channel including downlink or uplink scheduling information to the UE 25. The UE 25 may perform 5G mobile network-based communication with the first base station BS1 based on the control channel. For example, the UE 25 may identify a physical downlink shared channel (PDSCH), which is received from the first base station BS1, based on information included in the control channel, decode the PDSCH, and obtain data included in the PDSCH. A PDSCH is a downlink channel that may carry different types of data, including user data. Herein, when a UE “receives a PDSCH” from a base station, the UE receives data from the base station through the PDSCH.
In an example embodiment, a wireless system including the first base station BS1 and the UE 25 may support various functions of a 5G mobile network defined in the 3rd Generation Partnership Project (3GPP) Release 17 or the like. Some of the various functions of the 5G mobile network may influence the PDSCH processing time of the UE 25. In an example embodiment, the functions may include multicast and broadcast services (MBS) and/or cancellation of interference by a cell-specific reference signal (CRS).
MBS may also be referred to as multimedia broadcast multicast services (MBMS). According to MBS, the same content may be transmitted to a plurality of UEs in an MBS service area. Point-to-multipoint wireless resources are allocated to base stations participating in transmission so that the same signal may be transmitted to the UEs of all users that have subscribed to the MBS.
Cancellation of interference by a CRS may refer to an operation, performed by a UE in communication with a first base station, of cancelling interference by a CRS received from a neighboring base station, e.g., UE 25 in communication with the base station BS1 canceling interference by a CRS from the second base station BS2.
Besides those mentioned above, there may be various 5G mobile network functions that may influence the PDSCH processing time of the UE 25. When these functions are activated, the UE 25 may determine (e.g., by calculation) and allocate the PDSCH processing time, taking into account the activated functions. Hereinafter, operations performed by the UE 25 when the functions of MBS and/or the cancellation of interference by a CRS is activated are mainly described.
In an example embodiment, the UE 25 may set the value of at least one time parameter based on an activated function in a 5G mobile network. The time parameter may be referred to as a time relaxation parameter. The term “activated function” as used herein may refer to a function selected by the first base station BS1 and supported by both the first base station BS1 and the UE 25. For example, a function that is not selected by the first base station BS1 or is not supported by either the first base station BS1 or the UE 25 may be referred to as an inactivated function. The time parameter corresponds to an activated function, and the UE 25 may set the time parameter to a predetermined value according to the activated function or to a variable value according to a network state. “Network state” as used herein may refer to a state concerning heterogeneous signals overlapping a “data frequency region” allocated to the PDSCH of a UE. For example, “network state” may relate to a degree of overlap between a data frequency region of NR and signals of LTE, and the like. The details thereof are described below.
In an example embodiment, the UE 25 may determine a processing time for a PDSCH, which is received from the first base station BS1, based on a value of at least one time parameter. Equations related to the processing time may be defined in 3GPP TS 38.214 or the like, as described in detail below.
In an example embodiment, the UE 25 may compare a PDSCH processing time with a reference time and determine the capability thereof. For example, the reference time may vary with an activated function. When the activated function is expected to increase the PDSCH processing time, the reference time may be increased compared to before, and vice versa (the reference time is positively correlated with the determined PDSCH processing time). In other words, the capability of a UE may not be accurately determined when an increased PDSCH processing time (due to an activated function) is compared to a reference time used before the function was activated. Accordingly, the reference time may be changed according to the activated function according to embodiments herein.
In an example embodiment, the UE 25 may transmit information including the capability thereof to the first base station BS1. The first base station BS1 may recognize the capability of the UE 25 by referring to the information received from the UE 25 and determine the hybrid automatic repeat and request (HARQ) Ack/Nack timing of the UE 25. The details thereof are described below.
According to an example embodiment, a UE may accurately determine a PDSCH processing time, taking into account a 5G mobile network function influencing the PDSCH processing time, such that a base station may effectively configure a network for communication with the UE. As a result, the communication capability between the base station and the UE may be enhanced.
Referring to
The processing circuit 130 may receive data signals from the controller 110. The processing circuit 130 may encode, multiplex, and/or convert into analog the data signals. The RF transceivers 142_1 to 142_n may perform frequency up-conversion on IF or baseband signals output from the processing circuit 130 and transmit RF signals to the antennas 144_1 to 144_n. In some embodiments, the processing circuit 130 may be referred to as an RF integrated circuit.
In an example embodiment, the controller 110 may perform general communication control operations of the base station 100 for 5G mobile network-based communication and may include a scheduler 112 that schedules the uplink and downlink to a UE. In an example embodiment, the scheduler 112 may perform scheduling based on the capability received from a UE, taking into account the MBS and/or the cancellation of interference by a CRS (i.e., CRS-interference cancellation (IC)). In some embodiments, the controller 110 may be referred to as a baseband processor.
The controller 110 may execute a program and/or a process stored in the scheduler 112 to perform general communication control of the base station 100. In some embodiments, the scheduler 112 may be stored in the memory 120 as program code, and the controller 110 perform the operation of the scheduler 112 by accessing the memory 120 and executing the program code.
Referring to
The RF transceiver 192 may receive RF signals from a base station through the antennas 194_1 to 194_m. The RF transceiver 192 may down-convert the RF signals into IF or baseband signals. The processing circuit 180 may generate data signals by filtering, decoding, and/or digitizing IF or baseband signals. The controller 160 may additionally process the data signals. In some embodiments, the processing circuit 180 may be referred to as an RF integrated circuit.
The processing circuit 180 may receive data signals from the controller 160. The processing circuit 180 may encode, multiplex, and/or convert into analog the data signals. The RF transceiver 192 may perform frequency up-conversion on IF or baseband signals output from the processing circuit 180 and transmit RF signals to the antennas 194_1 to 194_m
In an example embodiment, the controller 160 may perform general communication control operations for 5G mobile network-based communication and may include an information circuit 162. In some embodiments, the controller 160 may be referred to as a baseband processor.
In an example embodiment, the information circuit 162 may determine a processing time for a received PDSCH, taking into account MBS and/or CSR-IC when one or both of these functions is activated. In detail, when MBS are activated, the information circuit 162 may determine a value of at least one time parameter based on an overlap pattern between a common frequency region allocated to an MBS PDSCH and a data frequency region allocated to a unicast (or group cast) PDSCH. When CRS-IC is activated, the information circuit 162 may determine a value of at least one time parameter based on the slot configuration of a PDSCH and/or the number of LTE mobile network-based CRSs, which overlap with a data frequency region allocated to the PDSCH and are received from another base station. Here, the number of CRSs overlapping with the data frequency region may be interpreted as the number of symbols, to which a CRS is allocated among symbols included in the data frequency region.
In an example embodiment, the information circuit 162 may determine a PDSCH processing time using at least one time parameter, which is determined, taking into account MBS or CRS-IC, and determine the capability thereof. The information circuit 162 may generate information including the capability thereof and transmit the information to a base station through the processing circuit 180, the RF transceiver 192, and the antennas 194_1 to 194_m.
The controller 160 may execute a program and/or a process stored in the memory 170 to perform general communication control operations of the UE 150. In an example embodiment, the information circuit 162 may be stored in the memory 170 as program code, and the controller 160 may perform the operations of the information circuit 162 by accessing the memory 170 and executing the program code. The memory 170 may also store a table utilized to determine a PDSCH processing time, where the table may contain values of time parameters described below and may be consistent with standards such as 5G.
Referring to
A minimum transmission unit in the frequency domain is a subcarrier, and a total system transmission bandwidth may include NBW subcarriers 204. A basic unit of a resource in the time-frequency domain may be a resource element (RE) 212 and may be represented by an OFDM symbol index and a subcarrier index. A resource block (RB) 208 may be defined by Nsymb OFDM symbols 202 consecutive in the time domain and NRB subcarriers 210 consecutive in the frequency domain. Accordingly, one RB 208 may include Nsymb*NRB REs 212. An RB pair may correspond to a unit of two RBs 208 consecutive along the time axis and include 2Nsymb*NRB REs 212.
A PDSCH allocated to resources in the time-frequency domain in
According to an example embodiment, a UE may take into account signals overlapping with a PDSCH according to an activated function when generating a processing time for the PDSCH. The PDSCH processing time may vary with an overlap state.
Referring further to
As described above, the number of slots per subframe may vary with the subcarrier interval set value μ, and accordingly, the number of slots per frame may be changed. The number of slots per subframe according to the subcarrier interval set value μ, Nslotsubframe,μ, and the number of slots per frame according to the subcarrier interval set value μ, Nslotframe,μ, may be defined as shown in Table 1.
In some embodiments, the number of slots per subframe may vary with the number of symbols included in one slot.
In an example embodiment, when CRS-IC is activated, a UE may determine a PDSCH processing time based on a slot configuration. In other words, because a CRS is transmitted by a subframe having a fixed format (e.g., a subcarrier interval of 15 kHz) of an LTE mobile network while a slot configuration for a PDSCH based on a 5G mobile network is variable, CRS-IC may need to be performed using different methods according to slot configurations. A time taken for CRS-IC may vary with the different methods. Accordingly, in an example embodiment, a UE may select a method consistent with a slot configuration, perform CRS-IC based on the selected method, and determine a PDSCH processing time, taking into account a time for the selected method.
Referring to
In the second scenario, BWP is used for UE power saving. For example, although a UE is capable of communicating using a system bandwidth 415 used by a base station or a part (e.g., a BWP2420) of the system bandwidth 415, the base station may set a narrower frequency bandwidth (e.g., a BWP1425) for power saving.
In the third scenario, individual BWPs are used in correspondence to different numerologies. Numerology refers to diversification of physical layer configuration to realize optimal data transmission in accordance with various service requirements. For example, a subcarrier interval in an OFDM access (OFDMA) structure including a plurality of subcarriers may be variably adjusted according to a certain requirement. A UE may perform communication based on a plurality of numerologies at a time. in
When a UE transitions from an RRC_IDLE state or an RRC_INACTIVE state to an RRC_CONNECTED state, a BWP used by the UE to try to access a network is referred to as an initial BWP. When the UE successfully accesses a base station and enters the RRC_CONNECTED state, the base station may set an additional BWP for the UE.
In the three scenarios described above, a plurality of BWPs may be set for a UE, and thereafter, a certain one of the BWPs may be activated by a base station. For example, in the third scenario, the BWP1430 and the BWP2445 may be set for a UE, and one of the BWP1430 and the BWP2445 may be activated by a base station. Accordingly, the UE may transmit and receive data using a BWP that is activated for downlink or uplink.
When a plurality of BWPs are set for a UE, the UE may change the activated BWP. This change is referred to as BWP switching. This may be performed by allocating resources to a desired BWP in a Physical Downlink Control Channel (PDCCH) transmitted by a base station.
The same numerology may be used in an unlicensed band in the third scenario. For example, because equipment such as a WLAN operates at a bandwidth of 20 MHz in the unlicensed band, a base station may set multiple 20-MHz BWPs, such as the BWP1430 and the BWP2445, and change each BWP for a UE or UEs according to the congestion of the unlicensed band.
Here, BWPs in
Referring to
In an example embodiment, the first user equipment UE1 may receive a PDSCH, interchangeably hereafter, a “global PDSCH”, including the first PDSCH and the second PDSCH and perform decoding on the first PDSCH and the second PDSCH. In other words, a global PDSCH processing time of the first user equipment UE1 may include a processing time for the first PDSCH and a processing time for the second PDSCH. Here, the processing time for the first PDSCH may be defined as a time required to process data related to MBS. Hereinafter, a method of calculating a PDSCH processing time is described with reference to
Referring to
In an example embodiment, the PDSCH processing time Tproc,1 of the first user equipment UE1 may be calculated using Equation 1.
T
proc,1=(N1+d′1,1+d2)(2048+144)·κ2−μ·TCText+TMBS, d′1,1=d1,1+Y [Equation 1]
Tproc,1 is described in detail in section 5.3 of 3GPP TS 38.214, where the document 3GPP TS 38.214 is incorporated herein by reference. Hereinafter, first and second time parameters according to example embodiments are mainly described.
In an example embodiment, at least one time parameter is set to at least one value corresponding to a time required to process MBS-related data. When the at least one time parameter is a plurality of time parameters, it includes a first time parameter and a second time parameter. The first time parameter may be TMBS, and the second time parameter may be Y added to d1,1. In some embodiments, the at least one time parameter includes only one of the first and second time parameters TMBS and Y. In this regard, Tproc,1 may be calculated using Equation 2 or Equation 3.
T
proc,1=(N1+d1,1+d2)(2048+144)·κ2−μ·TCText+TMBS [Equation 2]
T
proc,1=(N1+d′1,1+d2)(2048+144)·κ2−μ·TCText, d′1,1=d1,1+Y1 [Equation 3]
Equation 2 corresponds to an embodiment of calculating a processing time, taking into account only the first time parameter TMBS, and Equation 3 corresponds to an embodiment of calculating a processing time, taking into account only the second time parameter Y. Hereinafter, an embodiment of calculating a processing time, taking into account the first and second time parameters TMBS and Y, is mainly described, but embodiments are not limited thereto. The processing time may be calculated taking into account only one of the first and second time parameters TMBS and Y, and/or other time parameters
Referring further to
In an example embodiment, the values X1 and Y1 may be variable. For instance, a UE may adjust the values X1 and Y1 based on an overlap pattern between a common frequency region allocated to the first PDSCH for MBS and a data frequency region allocated to the second PDSCH based on unicast (or group cast). The overlap pattern is a factor that determines the PDSCH processing time of the UE. As the complexity of the overlap pattern increases, the PDSCH processing time of the UE may increase. For example, the complexity of the overlap pattern may be determined by the frequency-axis width of an overlapping region, the number of overlapping regions, or the like. Example embodiments thereof are described below.
In an example embodiment, a plurality of UEs may process an overlapping region using different methods, and the values X1 and Y1 may vary with the UEs according to the processing methods. For example, a UE may process the second PDSCH first and then process the first PDSCH. Another UE may process the first PDSCH in an overlapping region first during processing of the second PDSCH and resume the processing of the second PDSCH after completing the processing of the first PDSCH.
As described above, the values X1 and Y1 used to determine a PDSCH processing time may vary.
Referring to
For example, each of the first and second data frequency regions DFR11 and DFR21 may not overlap with the common frequency region CFR11. The first and second user equipments UE1 and UE2 may respectively determine a PDSCH processing time, taking into account that the first and second data frequency regions DFR11 and DFR21, respectively, do not overlap with the common frequency region CFR11.
Referring to
In an example embodiment, a PDSCH processing time with respect to the overlap pattern in
Referring to
Referring to
For example, the first data frequency region DFR12 may overlap with the first common frequency region CFR12, and the frequency-axis width of an overlapping region therebetween may correspond to a first width W11. The second data frequency region DFR22 may overlap with the first and second common frequency regions CFR12 and CFR22. The frequency-axis width of an overlapping region between the second data frequency region DFR22 and the first common frequency region CFR12 may correspond to the first width W11, and the frequency-axis width of an overlapping region between the second data frequency region DFR22 and the second common frequency region CFR22 may correspond to a second width W21. For example, the first width may be different from or the same as the second width W21.
As described above, the overlap pattern may be defined by the number of overlapping regions, the frequency-axis width of an overlapping region, or the like. For example, the second user equipment UE2 has an overlap pattern including two overlapping regions and may thus determine a longer PDSCH processing time than the first and third user equipments UE1 and UE3. When the first width W11 is different from the second width W21, the first and third user equipments UE1 and UE3 may determine different PDSCH processing times. This will be described in detail below.
However, the embodiment of the overlap pattern in
Referring to
Referring to
In an example embodiment, the first user equipment UE1 may determine a PDSCH processing time based on an overlap pattern between the data frequency region DFR13 and the first to third common frequency regions CFR13, CFR23, and CFR33. The first user equipment UE1 may determine the PDSCH processing time based on the fact that there are three overlapping regions and on first to third widths W13, W23, and W33 of the respective overlapping regions along the frequency axis. For example, the first user equipment UE1 may identify in the table of
Referring to
In an example embodiment, the first user equipment UE1 may cancel interference by the CRS and decode a received PDSCH. In other words, the PDSCH processing time of the first user equipment UE1 may include a time required to cancel the interference by the CRS and a time required to decode the PDSCH.
Referring further to
In an example embodiment, the PDSCH processing time Tproc,1 of the first user equipment UE1 may be calculated using Equation 4.
T
proc,1=(N1+d′1,1+d2)(2048+144)·κ2−μ·TC+Text+TCRSIC, d′1,1=d1,1+Y [Equation 4]
Tproc,1 is described in detail in section 5.3 of 3GPP TS 38.214. Hereinafter, third and fourth time parameters according to example embodiments are mainly described.
In an example embodiment, at least one time parameter is set to at least one value corresponding to a time required to cancel interference by a CRS and may include a third time parameter and a fourth time parameter. The third time parameter may be TCRSIC and the fourth time parameter may be Y added to d1,1. In some embodiments, the at least one time parameter may include only one of the third and fourth time parameters TCRSIC and Y. In this regard, Tproc,1 may be calculated using Equation 5 or Equation 6.
T
proc,1=(N1+d1,1+d2)(2048+144)·κ2−μ·TC+Text+TCRSIC [Equation 5]
T
proc,1=(N1+d′1,1+d2)(2048+144)·κ2−μ·TC+Text, d′1,1=d1,1+Y [Equation 6]
Equation 5 corresponds to an embodiment of calculating a processing time, taking into account only the third time parameter TCRSIC, and Equation 6 corresponds to an embodiment of calculating a processing time, taking into account only the fourth time parameter Y. Hereinafter, an embodiment of calculating a processing time, taking into account the third and fourth time parameters TCRSIC and Y, is mainly described, but embodiments are not limited thereto. The processing time may be calculated taking into account only one of the third and fourth time parameters TCRSIC and Y.
Referring to
In an example embodiment, the values X2 and Y2 may be variable. For example, a UE may adjust the values X2 and Y2 based on a slot configuration. The UE may adjust the values X2 and Y2 based on a subcarrier interval or the number of symbols included in a slot. For example, the UE may adjust the values X2 and Y2 based on the number of CRSs overlapping with a data frequency region allocated to a PDSCH. As the number of CRSs overlapping with the data frequency region increases, the PDSCH processing time of the UE may also increase. The values X2 and Y2 used to determine a PDSCH processing time may vary with a slot configuration. The details thereof may be defined as standards in 3GPP TS 38.214 or the like.
Referring to
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The memory 1010 may include a program storage 1011, which stores a program for controlling an operation of the electronic apparatus 1000, and a data storage 1012, which stores data generated during execution of the program. The data storage 1012 may store data necessary for the operation of an application program 1013 and the operation of a processing time generation program 1014. In an example embodiment, the data storage 1012 may store a table TB of values of time parameters necessary to determine a PDSCH processing time. For example, the table TB may comply with standards disclosed in 3GPP TS 38.214 or the like.
The program storage 1011 may include the application program 1013 and the processing time generation program 1014. At this time, a program included in the program storage 1011 may be a set of instructions and expressed as an instruction set. The application program 1013 may include program code for executing various applications run by the electronic apparatus 1000. In other words, the application program 1013 may include code (or commands) related to various applications run by the processor 1022. The processing time generation program 1014 may include control code for generating a PDSCH processing time, according to example embodiments. In an example embodiment, the processor 1022 may set at least one value of at least one time parameter based on a function activated in a 5G mobile network and determine a PDSCH processing time using the value, by executing the processing time generation program 1014.
The communication processor 1090 of the electronic apparatus 1000 may perform communication functions for voice communication and data communication. The processor 1022 may receive a 5G mobile network-based PDSCH and an MBS-related PDSCH or an LTE mobile network-based CRS from a base station through the communication processor 1090.
A peripheral device interface 1023 may control connection among the input/output controller 1040, the communication processor 1090, the processor 1022, and a memory interface 1021. The processor 1022 may control a plurality of base stations to provide a service using at least one software program. At this time, the processor 1022 may execute at least one program stored in the memory 1010 to provide a service corresponding to the program.
The input/output controller 1040 may provide an interface between an input/output device, such as the display unit 1050 or the input device 1060, and the peripheral device interface 1023. The display unit 1050 displays status information, input text, a moving picture, and/or a still picture. For example, the display unit 1050 may display information about an application program run by the processor 1022.
The input device 1060 may provide input data, which is generated by the selection of the electronic apparatus 1000, to the processor unit 1020 through the input/output controller 1040. At this time, the input device 1060 may include a keypad, which includes at least one hardware button, and/or a touch pad sensing touch information. For example, the input device 1060 may provide touch information, such as a touch, a movement of the touch, or the release of the touch, which is detected through a touch pad, to the processor 1022 through the input/output controller 1040.
Referring to
While the inventive concept has been particularly shown and described with reference to embodiments thereof, it will be understood that various changes in form and details may be made therein without departing from the spirit and scope of the following claims.
Number | Date | Country | Kind |
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10-2021-0059512 | May 2021 | KR | national |
10-2021-0098569 | Jul 2021 | KR | national |