WO2011044787A1 - 基于跳频的频率物理资源调度方法及*** - Google Patents
基于跳频的频率物理资源调度方法及*** Download PDFInfo
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- WO2011044787A1 WO2011044787A1 PCT/CN2010/075404 CN2010075404W WO2011044787A1 WO 2011044787 A1 WO2011044787 A1 WO 2011044787A1 CN 2010075404 W CN2010075404 W CN 2010075404W WO 2011044787 A1 WO2011044787 A1 WO 2011044787A1
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- physical resource
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/713—Spread spectrum techniques using frequency hopping
- H04B1/7143—Arrangements for generation of hop patterns
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1867—Arrangements specially adapted for the transmitter end
- H04L1/1893—Physical mapping arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/16—Central resource management; Negotiation of resources or communication parameters, e.g. negotiating bandwidth or QoS [Quality of Service]
- H04W28/26—Resource reservation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
Definitions
- the present invention relates to broadband mobile communication and frequency hopping transmission technologies, and in particular, to a frequency hopping based scheduling method and system. Background technique
- LTE Long Term Evolution
- SC-FDMA uplink single-carrier frequency division multiple access
- SC-FDMA single carrier-FDMA
- the single-carrier frequency division multiple access technology used in the uplink of the LTE system in order to obtain a low peak-to-average power ratio (PAPR), the frequency-frequency diversity of the frequency physical resources is allocated, and the LTE system is in the uplink.
- PAPR peak-to-average power ratio
- Frequency hopping is a spread spectrum technique that uses spectrum hopping to achieve spectral broadening. Widely used in anti-jamming communication systems. The method is to divide a wide frequency band into a number of frequency intervals (called channels) to control the carrier frequency of the signal transmitted by the transmitting end at a specific dwell time.
- channels frequency intervals
- Frequency hopping transmission technology combined with non-frequency selective scheduling can obtain frequency diversity gain.
- Frequency selective scheduling optimizes resource allocation by allocating optimal frequency physical resources to users, and obtains the most fading condition for users to select the lowest fading frequency. Segment, thus realizing the optimal frequency for the user It is described as the case where the user selects the principle of the fading minimum frequency band, and selects some idle frequency bands to allocate frequency physical resources to the user.
- the base station When the base station reaches the scheduling period, the base station performs frequency physical resource scheduling for the users who need to perform resource scheduling according to the occupation of the frequency physical resources.
- the above-mentioned frequency hopping-based non-frequency selective scheduling and the above-mentioned frequency selective scheduling are often difficult to apply simultaneously in one scheduling period because of different frequency physical resource allocation modes, which is not conducive to improving system throughput and the like. Summary of the invention
- the present invention provides a frequency hopping-based frequency physical resource scheduling method and system, which is used to solve the problem that the frequency physical resource allocation cannot be simultaneously applied in the frequency selective scheduling and non-frequency selective scheduling modes, which is not conducive to improving system throughput. Quantity and other performance issues.
- the present invention provides a frequency hopping-based frequency physical resource scheduling method, including the steps of: in two time slots of frequency hopping transmission, reserve frequency physics for activated semi-static scheduling new transmission users and error retransmission users that reach the transmission period.
- the frequency resource corresponding to the available frequency resources is searched according to the scheduling type of the user to be scheduled, and the frequency physical resources are allocated to the frequency selective scheduling user and the non-frequency selective scheduling user in one scheduling period.
- the present invention also provides a frequency hopping-based frequency physical resource scheduling system, comprising: a resource reservation unit, configured to perform a semi-statically scheduled new transmission user for two time slots of a frequency hopping transmission Error retransmitting the user reserved frequency physical resources;
- a scheduling type obtaining unit configured to acquire a scheduling type of the user to be scheduled
- the available resource obtaining unit is configured to obtain, according to the occupancy condition of the frequency physical resource, the available frequency physical resource corresponding to the frequency selective scheduling and the non-frequency selective scheduling type;
- a scheduling unit configured to search for a corresponding available frequency physics according to a scheduling type of the user to be scheduled
- the resource allocates frequency physical resources for the frequency selective scheduling user and the non-frequency selective scheduling user in one scheduling period.
- the beneficial effects of the present invention are as follows: In the same scheduling period, the advantages of the two scheduling methods of frequency selective scheduling and non-frequency selective scheduling based on frequency hopping transmission are comprehensively utilized, and users with good channel quality can obtain optimal using frequency selective scheduling.
- the frequency resource, the user without channel quality information can obtain the frequency diversity gain by frequency hopping, so that the invention can improve the system capacity without increasing the equipment cost; and at the same time, avoid the frequency physical resource resource caused by the frequency hopping resource allocation. Voids and collisions with frequency resources that avoid frequency hopping and non-frequency hopping users.
- FIG. 1 is a schematic diagram of a frequency physical resource allocation manner in which a frequency physical resource hole exists in a frequency hopping transmission in a conventional sub-frame; a schematic diagram of a resource allocation manner;
- FIG. 3 is a flowchart of a method for scheduling a frequency physical resource based on frequency hopping according to a first embodiment of the present invention
- FIG. 6 is a flowchart of a method for scheduling a frequency physical resource based on intra-subframe frequency hopping transmission according to Embodiment 2 of the present invention
- FIG. 7 is a schematic diagram of a frequency resource list based on intra-subframe frequency hopping transmission according to Embodiment 2 of the present invention
- FIG. 8 is a specific flowchart of frequency physical resource scheduling based on intra-subframe frequency hopping transmission according to Embodiment 2 of the present invention
- FIG. 9 is a schematic diagram of a frequency resource list based on inter-subframe frequency hopping transmission according to Embodiment 3 of the present invention
- FIG. 10 is a structural structure of a frequency physical resource scheduling system based on frequency hopping transmission according to Embodiment 4 of the present invention
- the existing frequency physical resource scheduling mode does not combine frequency selective scheduling and non-frequency selective scheduling in one scheduling period.
- the frequency hopping-based frequency physical resource scheduling method provided by the invention comprises the steps of: in two time slots of frequency hopping transmission, firstly, frequency physics is reserved for activated semi-static scheduling new transmission users and error retransmission users that reach the transmission period.
- the resource, the pre-frequency physical resource mode can use the existing mode according to the scheduling type of the user; obtain the scheduling type of the user to be scheduled, and obtain the frequency selective scheduling and the non-frequency selective scheduling type according to the occupation of the frequency physical resource.
- the present invention does not divide the entire frequency physical resource into two parts as in the prior art, one part is used for frequency selective scheduling, and the other part is used for frequency hopping transmission, but is occupied by frequency physical resources on the entire frequency physical resource segment. Situation, find the frequency physical resources available with the scheduling type. Compared with the prior art, the method of combining the frequency selective scheduling and the non-frequency selective scheduling, because the frequency division of the service frequency band is not fixed, the allocation of the frequency physical resources is more flexible and the gain is more obvious.
- the uplink frequency hopping transmission of the LTE system includes intra-subframe frequency hopping and inter-subframe frequency hopping.
- intra-subframe frequency hopping When intra-subframe frequency hopping is used, the two time slots referred to in the hopping frequency of the present invention are intra-subframe frequency hopping.
- One sub-frame, as shown in Figure 1, is a resource hole, so that the frequency physical resource block m ⁇ m+6 of the first time slot SO and the frequency physical resource block n ⁇ n+6 of the second time slot S1 form a hole, which cannot be divided.
- frequency selective scheduling User For non-frequency hopping transmission, frequency selective scheduling User use.
- the two time slots referred to in the hopping frequency of the present invention are new transmission subframes or retransmission subframes hopping between subframes.
- the frequency physical resources occupied by S0 and SI are the same during the two transmissions of the subframe.
- sr The time slot referred to in frequency hopping
- the frequency occupied by the physical resources is different.
- the existing frequency physical resource allocation mode is used, and the frequency physical resource block n ⁇ n+3 of the time slot occupied by the newly transmitted subframe in the frequency hopping may be distributed to the non- For frequency hopping transmission and frequency selective scheduling user 2, the non-frequency selective user 1 based on frequency hopping transmission will perform non-hopping transmission and frequency selection in the second time slot in the frequency hopping when the error occurs.
- Sexually scheduled users 2 collide with frequency physical resources during retransmission.
- the present invention solves the above problem of collision of frequency physical resource holes and frequency physical resources.
- the method for allocating frequency physical resources is: On the slot, if it is found that the first time slot is not occupied, and the second time slot is occupied by the first frequency physical resource, the first frequency physical resource that is not occupied in the first time slot is allocated to the non-occurrence Frequency selective scheduling of users. If the first frequency physical resource is not found, the second frequency physical resource that is not occupied by two consecutive time slots is searched, and the second frequency physical resource is allocated to the non-frequency selective scheduling user.
- This allocation method can not only avoid the holes in the frequency physical resources caused by the allocation of frequency hopping resources, but also avoid the resource transmission of frequency hopping and non-frequency hopping users.
- the complementary resource allocation mode of the intra-subframe frequency hopping transmission the two frequency hopping users 1, 2 jointly occupy the frequency physical resources! ⁇ n+3 and m ⁇ m+3, the physical resources occupied by the two users will not jump outside these two ranges; as shown in Figure 5, the complementary resource allocation mode of inter-subframe frequency hopping transmission, two During the new transmission and retransmission, users will occupy the frequency physical resources n ⁇ n+3 and 111 ⁇ 111+3 without jumping outside this range.
- the scheduling type of the user to be scheduled is a frequency selective scheduling user
- the manner in which the frequency physical resource is allocated is: searching for two consecutive time slots The second frequency physical resource is not occupied, and the second frequency physical resource is allocated to the frequency selective scheduling user.
- a scheduling period is set, and the base station performs frequency physical resource scheduling for users that need to be scheduled every time a certain scheduling period is scheduled, and each time the scheduling period of the base station is reached, it needs to be performed. There may be multiple users scheduled.
- the present invention solves the problem of combining frequency selective scheduling and non-frequency selective scheduling based on frequency hopping transmission in the same scheduling period. As shown in FIG. 3, the present invention has multiple needs.
- the scheduling of the user to perform frequency physical resource scheduling includes the following steps:
- the activated semi-statically scheduled new-pass user that arrives at the transmission period reserves the frequency physical resources allocated to the user when the user is activated.
- the frequency physical resource is reserved for the error retransmission mode corresponding to the different frequency hopping modes, and the frequency physical resource may be reserved according to the existing retransmission mechanism.
- the corresponding available frequency physical resource is the first time slot is not occupied, and the second time slot is occupied by the first frequency physical resource. And a second frequency physical resource that is unoccupied in both time slots; when the scheduling type of the scheduling user is a frequency selective scheduling user, the corresponding available frequency physical resource is unoccupied in both time slots. Two frequency physical resources.
- the method for obtaining the scheduling type of the user to be scheduled is: if the uplink channel quality information of the user is obtained, the scheduling type of the user is frequency selective scheduling; if the uplink channel of the user is not obtained For the quality information, the scheduling type of the user is a non-frequency selective scheduling based on frequency hopping transmission; if the user is a semi-statically scheduled user waiting for activation, the scheduling type of the user is a non-frequency selective scheduling based on frequency hopping transmission. .
- the semi-persistent scheduling user refers to the user for which the base station configures the transmission period and the frequency physical resource location and size to be used for transmission. After the transmission period arrives, the semi-persistent scheduling user will complete the transmission of the frequency physical resources allocated by the base station. Therefore, the transmission period of the semi-persistent scheduling user, the frequency physical resource location and size to be occupied during transmission are allocated by the base station, and the user will occupy a fixed frequency physical resource when the transmission period arrives before the base station is re-allocated.
- the activated semi-static scheduling user has already allocated the user of the transmission period and frequency physical resources.
- the semi-persistent scheduling user waiting for activation is a user waiting for the base station to allocate a transmission period, frequency physical resource.
- S304 Search for the available frequency physical resources according to the scheduling type of the user to be scheduled, and allocate frequency physical resources to the frequency selective scheduling user and the non-frequency selective scheduling user in one scheduling period.
- the scheduling type of the extracted user is a non-frequency selective scheduling
- first searching whether there is a first frequency slot that is not occupied, and the second frequency slot is occupied by the first frequency physical resource if yes, the first The first frequency physical resource that is not occupied by the time slot is allocated to the non-frequency selective scheduling user of the frequency hopping transmission.
- the second The frequency physical resource block m ⁇ m + 3 of the time slot S1 belongs to the first frequency physical resource that meets the requirement, and the frequency physical resource block of the first time slot SO is m ⁇ m + 3 is assigned to the non-frequency selective scheduling user 1 based on frequency hopping transmission.
- the frequency offset occurring in the frequency hopping is fixed for one base station, it is only necessary to allocate the frequency physical resource of the first time slot for the non-frequency selective scheduling user of the frequency hopping transmission, and the user is based on The fixed offset in the frequency hopping will occupy the frequency physical resource block n ⁇ n + 3 of the second time slot S1 after a fixed offset occurs in the second time slot.
- a complementary form of frequency physical resource allocation is constructed.
- the time slot occupied by the new transmission subframe is the first time slot SO′
- the time slot occupied by the retransmission subframe is the second time slot S1, which can also be configured according to the above method.
- the complementary form of the frequency physical resource allocation method will not be described here.
- the method for allocating the frequency physical resource is: searching for a second frequency physical resource that is not occupied by two consecutive time slots, and the second frequency of the segment is Physical resources are allocated to the frequency selective scheduling user.
- the frequency of physical resources occupied by the two time slots of the frequency hopping transmission is the same because the principle of optimal frequency physical resource allocation is to be satisfied.
- the method provided by the embodiment fully utilizes the uplink channel quality information of the mobile user acquired by the base station, allocates the best frequency physical resource by using the frequency selective scheduling, and authorizes the mobile user without the uplink channel quality information or
- Semi-persistent scheduling users use frequency hopping transmission to obtain frequency diversity gain, and comprehensively utilize the advantages of frequency selective scheduling and non-frequency selective scheduling based on frequency hopping transmission, which can improve system throughput and other performance.
- the cell is configured as intra-subframe frequency hopping for one base station.
- the frequency physical resource scheduling method based on frequency hopping in this embodiment includes the following steps: S601: Reserve frequency physical resources for the activated semi-static scheduling new transmission user and the error retransmission user to reach the transmission period,
- S601 Reserve frequency physical resources for the activated semi-static scheduling new transmission user and the error retransmission user to reach the transmission period
- the frequency physical resource occupation and the idle resource list are represented. Therefore, the step is to identify the activated semi-static scheduling new transmission user that arrives at the transmission period in the list indicating the frequency physical resource occupation status. Error retransmitting user's Frequency physical resource occupancy.
- the method for reserving the frequency of the physical resource for the activated semi-statically scheduled new-transmission user that arrives at the transmission period is as follows: Reserve the frequency physical resource allocated to the user when the user is activated;
- the frequency physical resource is in the following manner: Reserve the same frequency physical resource as the frequency physical resource occupied by the newly transmitted subframe of the error retransmission user, and reserve the frequency physical resource for the newly transmitted frequency selective scheduling user.
- the way is: Reserve the same frequency physical resources as the new transmission in two time slots. For a non-frequency selective scheduling user whose new transmission is based on frequency hopping transmission, the frequency physical resource reserved for the two time slots is the same as the frequency physical resource occupied by the new transmission subframe of the error retransmission user.
- the frequency physical resources are respectively put into two queues: a frequency physical resource queue, a frequency physical resource queue 2:
- the frequency physical resource queue 1 includes such a frequency physical resource: For a certain subframe, the first time slot of the frequency physical resource has not been allocated to the user, and the second time slot of the frequency physical resource has been allocated. Used by the user; as shown in Figure 7.
- the frequency physical resource queue 2 includes such a frequency physical resource: For a certain subframe, two time slots of the frequency physical resource are not allocated to the user; as shown in FIG. 7 .
- S603 Construct a scheduling queue according to a scheduling priority of the user to be scheduled, and determine a scheduling type of the user in the scheduling queue:
- the base station obtains the uplink channel quality information of the user through the uplink reference signal, the user is marked with frequency selective scheduling.
- the base station does not acquire the uplink channel quality information of the user, the user is marked to use non-frequency selective scheduling based on frequency hopping transmission.
- the target It is noted that the user uses non-frequency selective scheduling based on frequency hopping transmission.
- the user scheduling priority can be calculated using various current scheduling algorithms, such as the round robin method, the maximum throughput method, the proportional fair method, etc., or configured as needed.
- S604 The user is taken out one by one from the scheduling queue according to the scheduling type, as shown in FIG. 8, which specifically includes the following steps:
- step S801 determining whether the current user is a non-frequency selective scheduling user, if the current user is a non-frequency selective scheduling user, then proceeding to step S802, otherwise moving to step S809;
- step S803 the segment of the frequency physical resource allocated in step S803 is deleted from the frequency physical resource queue 1 and proceeds to step S808;
- step S810 determining whether the frequency physical resource queue 2 is empty, if the frequency physical resource queue 2 is empty, proceeding to step S813, otherwise, proceeding to step S810;
- step S810 the segment of the frequency physical resource allocated in step S810 is deleted from the frequency physical resource queue 2, step S808;
- step S801 to schedule the next user
- the cell is configured as an inter-frame frequency hopping or retransmission subframe for one base station.
- the frequency physical resource scheduling method in this embodiment is given below when inter-subframe frequency hopping transmission is given.
- S901 Reserve frequency physical resources for the activated semi-persistent scheduling new transmission user and the error retransmission user to reach the transmission period.
- the frequency physical resource occupation and the idle frequency resource resource list are represented. Therefore, the step is to identify the frequency physical resource occupation of the activated semi-persistent scheduling new transmission user and the error retransmission user that arrive at the transmission period in the list indicating the frequency physical resource occupation.
- the method for reserving the frequency of the physical resource for the activated semi-statically scheduled new-transmission user that arrives at the transmission period is: Reserve the frequency physical resource allocated to the user when the user is activated; For the error retransmission user, if the error is retransmitted The user is a frequency selective scheduling user, and the frequency physical resource is reserved for the user: The reserved frequency physical resource is the same as the frequency physical resource occupied by the error retransmission user newly transmitted subframe.
- the manner in which the frequency physical resource is reserved for the user is: according to the error retransmitting the frequency physical resource occupied by the user frequency hopping transmission, Reserve frequency physical resources.
- the new transmission is a non-frequency selective scheduling user based on frequency hopping transmission, which actually occupies the same frequency physical resource in two periods of the subframe.
- the first time slot occupied by the new transmission subframe SO' The frequency physical resource block m ⁇ m+3, in the case of error retransmission, in the second time slot S1, the frequency resource resource block is occupied according to the fixed offset of the frequency hopping offset! ! ⁇ n+3.
- the two frequency S0, SI in the subframe occupy the same frequency physical resource.
- the identifier is used in the frequency physical resource list, the following method is used: in the first time slot S0, the identified frequency physical resource is the frequency physical resource actually occupied by the current user, and the second time slot S1 is identified.
- the frequency physical resource is the frequency physical resource that will be occupied by the current user when retransmitting next time, as shown in FIG. 9;
- the frequency physical resources are respectively put into two queues: a frequency physical resource queue, and a frequency physical resource queue 2.
- the frequency physical resource queue 1 includes such a frequency physical resource: the first time slot of the frequency physical resource has not been allocated to the user, and the second time slot of the frequency physical resource has been allocated to the user; 9 is shown.
- the frequency physical resource queue 2 contains such a frequency physical resource: neither of the two time slots of the frequency physical resource is allocated to the user, as shown in FIG.
- S903 Construct a scheduling queue according to a scheduling priority of the user to be scheduled, and determine a scheduling type of the user in the scheduling queue:
- the base station obtains the uplink channel quality information of the user through the uplink reference signal, the user is marked with frequency selective scheduling.
- the base station does not obtain the uplink channel quality information of the user, the user is marked with a non-frequency selective scheduling based on frequency hopping transmission.
- the user is a semi-persistently scheduled user (e.g., a VoIP user) waiting to be activated, then the user is marked with a non-frequency selective scheduling based on frequency hopping transmission.
- a semi-persistently scheduled user e.g., a VoIP user
- the user scheduling priority can be calculated using various current scheduling algorithms, such as the round robin method, the maximum throughput method, the proportional fair method, etc., or configured as needed.
- S904 The user is randomly selected from the scheduling queue according to the scheduling type, and the following steps are specifically included: 5101, determining whether the current user is a non-frequency selective scheduling user, if the current user is a non-frequency selective scheduling user, then proceeding to step S102, otherwise moving to step S109;
- step S103 the segment of the frequency physical resource allocated in step S103 is deleted from the frequency physical resource queue 1 and proceeds to step S108;
- step S113 determining whether the frequency physical resource queue 2 is empty, if the frequency physical resource queue 2 is empty, proceeding to step S113, otherwise, proceeding to step S106;
- the frequency physical resource is deleted from the frequency physical resource queue 2, and the frequency physical resource to be occupied after the current user is hopped is also deleted from the frequency physical resource queue 2 and stored in the frequency physical resource queue 1, and executed.
- step S113 determining whether the frequency physical resource queue 2 is empty, if the frequency physical resource queue 2 is empty, then go to step S113, otherwise, go to step S110;
- step S110 the segment of the frequency physical resource allocated in step S110 is deleted from the frequency physical resource queue 2, step S108;
- the frequency physical resource scheduling method of the method is not only allocated to the frequency physical resources occupied by the user, but also defines the time slot occupied by the allocated frequency physical resources, so that the time-frequency resource allocation is actually completed, so that the user can utilize The allocated time-frequency resources are used for data transmission.
- a frequency hopping-based frequency physical resource scheduling system includes: a resource reservation unit, configured to perform two time slots in frequency hopping transmission, The activated semi-static scheduling new transmission user and the error retransmission user reserved frequency physical resource that arrive at the transmission period; the scheduling type acquisition unit, configured to acquire the scheduling type of the user to be scheduled; the available resource obtaining unit, configured to use the physical resource according to the frequency
- the occupancy condition is obtained by using the frequency-selective scheduling and the non-frequency-selective scheduling type corresponding to the available frequency physical resources;
- the scheduling unit is configured to search for the corresponding available frequency physical resources according to the scheduling type of the user to be scheduled, at the same time in one scheduling period Frequency physical resources are allocated for frequency selective scheduling users and non-frequency selective scheduling users.
- the scheduling unit preferably includes: a first scheduling unit, configured to: when the scheduling type of the user to be scheduled is a non-frequency selective scheduling, allocate the frequency physical resource to the following manner: if the first time slot is found to be unoccupied And when the second time slot is occupied by the first frequency physical resource, the first frequency physical resource that is not occupied in the first time slot is allocated to the non-frequency selective scheduling user, or the first frequency is not found.
- a first scheduling unit configured to: when the scheduling type of the user to be scheduled is a non-frequency selective scheduling, allocate the frequency physical resource to the following manner: if the first time slot is found to be unoccupied And when the second time slot is occupied by the first frequency physical resource, the first frequency physical resource that is not occupied in the first time slot is allocated to the non-frequency selective scheduling user, or the first frequency is not found.
- the second frequency physical resource that is not occupied by two consecutive time slots is searched, and the second frequency physical resource is allocated to the non-frequency selective scheduling user; the second scheduling unit is used for
- the scheduling type of the scheduling user is a frequency selective scheduling user
- the frequency physical resource is allocated to the following method: Searching for a second frequency physical resource that is not occupied by two consecutive time slots, the second frequency physical of the segment The resource is allocated to the frequency selective scheduling user.
- the scheduling type acquiring unit in this embodiment includes: a first type acquiring unit, configured to mark, when the channel quality information of the user is obtained, the scheduling type of the user as a frequency selective scheduling;
- a second type acquiring unit configured to: when the channel quality information of the user is not acquired, mark the scheduling type of the user as a non-frequency selective scheduling based on frequency hopping transmission, and schedule a semi-persistently scheduled user to wait for activation
- the type is marked as a non-frequency selective scheduling based on frequency hopping transmission.
- the system further includes: a scheduling queue construction unit, configured to configure a scheduling queue according to a scheduling priority thereof, wherein the scheduling unit is configured to take out users one by one from the scheduling queue and according to the scheduling queue
- the scheduling type searches for the available frequency physical resources for which frequency physical resource allocation is performed.
- the system is applied to a communication system in which intra-subframe frequency hopping is used, and the two time slots are one subframe in which intra-subframe frequency hopping is used.
- the system can also be applied to a communication system that uses inter-subframe frequency hopping, and the two time slots are new transmission subframes or retransmission subframes that use frequency hopping between subframes.
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JP2012533465A JP5411993B2 (ja) | 2009-10-16 | 2010-07-22 | 周波数ホッピングに基づく周波数物理リソーススケジューリング方法及びシステム |
US13/258,101 US8774160B2 (en) | 2009-10-16 | 2010-07-22 | Method and system for scheduling frequency physical resources based on frequency hopping |
EP10823019.4A EP2485552B1 (en) | 2009-10-16 | 2010-07-22 | Method and system for scheduling frequency-hopping-based frequency physical resources |
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CN2009101783205A CN102045789B (zh) | 2009-10-16 | 2009-10-16 | 基于跳频的频率物理资源调度方法及*** |
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EP (1) | EP2485552B1 (zh) |
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US8774160B2 (en) | 2014-07-08 |
EP2485552A1 (en) | 2012-08-08 |
JP5411993B2 (ja) | 2014-02-12 |
EP2485552B1 (en) | 2018-06-13 |
CN102045789B (zh) | 2013-05-08 |
CN102045789A (zh) | 2011-05-04 |
JP2013507856A (ja) | 2013-03-04 |
US20120250653A1 (en) | 2012-10-04 |
EP2485552A4 (en) | 2016-08-24 |
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