US2018109286A1PendingUtilityA1
Frequency hopping method for machine type communication
Assignee: NOKIA SOLUTIONS & NETWORKS OYPriority: Apr 9, 2015Filed: Apr 9, 2015Published: Apr 19, 2018
Est. expiryApr 9, 2035(~8.7 yrs left)· nominal 20-yr term from priority
H04W 72/23H04L 69/323H04B 1/7143H04B 2001/7154H04W 4/70H04W 4/005H04W 72/042
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Claims
Abstract
A method and apparatus may include receiving, by a machine type communication user equipment, parameters for frequency hopping in downlink or uplink. The parameters comprise an “X,” ‘Y,” and “Z” parameters, “X” corresponds to a duration for which the same physical resource blocks are used for transmission. ‘Y” corresponds to a frequency hopping period, and “Z” corresponds to a frequency hopping pattern indication. The method may also include performing frequency hopping in accordance with the parameters.
Claims
exact text as granted — not AI-modified1 . A method, comprising:
receiving, by a machine type communication user equipment, parameters for frequency hopping in downlink or uplink, wherein the parameters comprise an “X,” “Y,” and “Z” parameters, “X” corresponds to a duration for which the same physical resource blocks are used for transmission, “Y” corresponds to a frequency hopping period, and “Z” corresponds to a frequency hopping pattern indication; and performing frequency hopping in accordance with the parameters, wherein “X” and “Y” are based on physical downlink shared channel or machine type communication downlink control channel or physical uplink shared channel or physical random access channel repetition levels.
2 . The method according to claim 1 , wherein the one or more parameters for frequency hopping are broadcast, configured via radio resource control signalling or configured via Layer 1 (L1) signalling.
3 . (canceled)
4 . The method according to claim 1 , wherein “X” is based on a channel estimation filter length.
5 . The method according to claim 1 , wherein “Y” corresponds to ceiling (K/n), “K” corresponds to a number of repetitions, “n” is an integer greater than or equal to 2, and “n” is the number of hops in one data transmission configured by an evolved Node B.
6 . The method according to claim 1 , wherein the values of “X” and “Y” are the same for all repetition levels, the number of hops is determined according to the repetition number of the related repetition level and “Y”.
7 . The method according to claim 1 , wherein “X” corresponds to Y−1.
8 . The method according to claim 1 , wherein “Z” is based on an offset or a predefined pattern for physical downlink shared channel or machine type communication downlink control channel or physical uplink shared channel or physical random access channel frequency hopping.
9 . The method according to claim 8 , wherein, the predefined pattern includes half-bandwidth frequency hopping or one-fourth-bandwidth frequency hopping.
10 . The method according to claim 1 , wherein “Z” comprises an index of a pattern of pre-defined PRB blocks, where 6 PRBs constitute a PRB block, for physical downlink shared channel or physical uplink shared channel frequency hopping.
11 . The method according to claim 1 , wherein “Z” comprises an index of any consecutive 6 PRBs, for physical downlink shared channel or physical uplink shared channel frequency hopping.
12 . The method according to claim 10 , wherein a position of frequency hopping is indicated by DCI, where additional bits provide the information of the position of the 6 PRBs for each hop.
13 . The method according to claim 1 , wherein “Z” is indicated by higher layer signaling, “Z” is indicated for the physical downlink shared channel and physical uplink shared channel by the frequency hopping configuration for the respective channel, and indicated by the frequency hopping configuration in the random access response for the machine type communication downlink control channel.
14 . An apparatus, comprising:
at least one processor; and at least one memory including computer program code, the at least one memory and the computer program code configured, with the at least one processor, to cause the apparatus at least to receive parameters for frequency hopping in downlink or uplink, wherein the parameters comprise an “X,” “Y,” and “Z” parameters, “X” corresponds to a duration for which the same physical resource blocks are used for transmission, “Y” corresponds to a frequency hopping period, and “Z” corresponds to a frequency hopping pattern indication; and perform frequency hopping in accordance with the parameters, wherein “X” and “Y” are based on physical downlink shared channel or machine type communication downlink control channel or physical uplink shared channel or physical random access channel repetition levels.
15 . The apparatus according to claim 14 , wherein the one or more parameters for frequency hopping are broadcast, configured via radio resource control signalling or configured via Layer 1 (L1) signalling.
16 . (canceled)
17 . The apparatus according to claim 14 , wherein “X” is based on a channel estimation filter length.
18 . The apparatus according to claim 14 , wherein “Y” corresponds to ceiling (K/n), “K” corresponds to a number of repetitions, “n” comprising an integer greater than or equal to 2, and “n” comprises a number of hops in one data transmission configured by an evolved Node B.
19 . The apparatus according to claim 14 , wherein values of “X” and “Y” are same for all repetition levels, and a number of hops is determined according to a repetition number of a related repetition level and “Y”.
20 . The apparatus according to claim 14 , wherein “X” corresponds to Y−1.
21 . The apparatus according to claim 14 , wherein “Z” is based on an offset or a predefined pattern for physical downlink shared channel or machine type communication downlink control channel or physical uplink shared channel or physical random access channel frequency hopping.
22 . The apparatus according to claim 21 , wherein the predefined pattern includes half-bandwidth frequency hopping or one-fourth-bandwidth frequency hopping.
23 . The apparatus according to claim 14 , wherein “Z” comprises an index of a pattern of pre-defined PRB blocks, where 6 PRBs constitute a PRB block, for physical downlink shared channel or physical uplink shared channel frequency hopping.
24 . The apparatus according to claim 14 , wherein “Z” comprises an index of any consecutive 6 PRBs, for physical downlink shared channel or physical uplink shared channel frequency hopping.
25 . The apparatus according to claim 23 , wherein a position of frequency hopping is indicated by DCI, where additional bits provide information of the position of the 6 PRBs for each hop.
26 . The apparatus according to claim 14 , wherein “Z” is indicated by higher layer signaling, “Z” is indicated for the physical downlink shared channel and physical uplink shared channel by the frequency hopping configuration for the respective channel, and indicated by the frequency hopping configuration in the random access response for the machine type communication downlink control channel.
27 . A computer program product, embodied on a non-transitory computer readable medium, the computer program product configured to control a processor to perform a process, comprising:
receiving, by a machine type communication user equipment, parameters for frequency hopping in downlink and uplink, wherein the parameters comprise an “X,” “Y,” and “Z” parameters, “X” corresponds to a duration for which the same physical resource blocks are used for transmission, “Y” corresponds to a frequency hopping period, and “Z” corresponds to a frequency hopping pattern indication; and performing frequency hopping in accordance with the parameters, wherein “X” and “Y” are based on physical downlink shared channel or machine type communication downlink control channel or physical uplink shared channel or physical random access channel repetition levels.
28 . The computer program product according to claim 27 , wherein the one or more parameters for frequency hopping are broadcast, configured via radio resource control signalling or configured via Layer 1 (L1) signalling.
29 . (canceled)
30 . The computer program product according to claim 27 , wherein “X” is based on a channel estimation filter length.
31 . The computer program product according to claim 27 , wherein “Y” corresponds to ceiling (K/n), “K” corresponds to a number of repetitions, “n” is an integer greater than or equal to 2, and “n” is the number of hops in one data transmission configured by an evolved Node B.
32 . The computer program product according to claim 1 , wherein the values of “X” and “Y” are the same for all repetition levels, a number of hops is determined according to the repetition number of the related repetition level and “Y”.
33 . The computer program product according to claim 27 , wherein “X” corresponds to Y−1.
34 . The computer program product according to claim 27 , wherein “Z” is based on an offset or a predefined pattern for physical downlink shared channel or machine type communication downlink control channel or physical uplink shared channel or physical random access channel frequency hopping.
35 . The computer program product according to claim 34 , wherein, the predefined pattern includes half-bandwidth frequency hopping or one-fourth-bandwidth frequency hopping.
36 . The computer program product according to claim 27 , wherein “Z” comprises an index of a pattern of pre-defined PRB blocks, where 6 PRBs constitute a PRB block, for physical downlink shared channel or physical uplink shared channel frequency hopping.
37 . The computer program product according to claim 27 , wherein “Z” is the index of any consecutive 6 PRBs, for physical downlink shared channel or physical uplink shared channel frequency hopping.
38 . The computer program product according to claim 36 , wherein a position of frequency hopping is indicated by DCI, where additional bits provide the information of the position of the 6 PRBs for each hop.
39 . The computer program product according to claim 27 , wherein “Z” is indicated by higher layer signaling, “Z” is indicated for the physical downlink shared channel and physical uplink shared channel by the frequency hopping configuration for the respective channel, and indicated by the frequency hopping configuration in the random access response for the machine type communication downlink control channel.Join the waitlist — get patent alerts
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