IP Library › Granted Patent US 12,610,332
Granted Patent B2
US 12,610,332 · App. 18/312,210 · Granted Apr 21, 2026

Optimizing cell searching in 5G new radio wireless networks or other wireless networks

Inventor: Eric Sabol (Cupertino, CA)
Assignee: Raytheon Applied Signal Technology, Inc.
H04W56/0015
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Quick Facts
Patent No.
US 12,610,332
App. No.
18/312,210
Granted
Apr 21, 2026
Kind
B2
Abstract

An apparatus includes a transceiver configured to receive a broadcast signal. The apparatus also includes at least one processor configured to search for a synchronization signal within the broadcast signal. To search for the synchronization signal, the at least one processor is configured to (i) during a first stage, establish a reduced search space and identify one or more locations for the synchronization signal in the reduced search space and (ii) during a second stage, search for the synchronization signal in the one or more identified locations.

Claims (47)

1 . An apparatus comprising:

a transceiver configured to receive a broadcast signal; and

at least one processor configured to search for a synchronization signal within the broadcast signal;

wherein, to search for the synchronization signal, the at least one processor is configured to (i) during a first stage, establish a reduced search space and identify one or more locations for the synchronization signal in the reduced search space using a spectrographic generation operation to generate a spectrogram that displays frequency content of the received broadcast signal and using a spectrogram search operation to determine the one or more locations by comparing the generated spectrogram to an ideal synchronization signal block signature and (ii) during a second stage, search for the synchronization signal in the one or more identified locations.

2 . The apparatus of claim 1 , wherein, during the first stage, the at least one processor is configured to acquire data from the broadcast signal.

3 . The apparatus of claim 1 , wherein, to generate the spectrogram, the at least one processor is configured to tune a sampling rate, a Fast Fourier Transform (FFT) size, or both, based on a subcarrier spacing such that a determined frequency resolution matches the subcarrier spacing.

4 . The apparatus of claim 2 , wherein, during the second stage, the at least one processor is configured to validate each identified location for the synchronization signal in the reduced search space based on correlating the data with reference synchronization signals.

5 . A method comprising:

receiving a broadcast signal; and

searching for a synchronization signal within the broadcast signal;

wherein searching for the synchronization signal comprises (i) during a first stage, establishing a reduced search space and identifying one or more locations for the synchronization signal in the reduced search space using a spectrographic generation operation to generate a spectrogram that displays frequency content of the received broadcast signal and using a spectrogram search operation to determine the one or more locations by comparing the generated spectrogram to an ideal synchronization signal block signature and (ii) during a second stage, searching for the synchronization signal in the one or more identified locations.

6 . The method of claim 5 , further comprising:

during the first stage, acquiring data from the broadcast signal.

7 . The method of claim 5 , wherein generating the spectrogram comprises tuning a sampling rate, a Fast Fourier Transform (FFT) size, or both, based on a subcarrier spacing such that a determined frequency resolution matches the subcarrier spacing.

8 . The method of claim 6 , further comprising:

during the second stage, validating each identified location for the synchronization signal in the reduced search space based on correlating the data with reference synchronization signals.

9 . A non-transitory machine readable medium containing instructions that when executed cause at least one processor to:

search for a synchronization signal within a broadcast signal;

wherein the instructions that when executed cause the at least one processor to search for the synchronization signal comprise (i) instructions that when executed cause the at least one processor, during a first stage, to establish a reduced search space and identify one or more locations for the synchronization signal in the reduced search space using a spectrographic generation operation to generate a spectrogram that displays frequency content of the received broadcast signal and using a spectrogram search operation to determine the one or more locations by comparing the generated spectrogram to an ideal synchronization signal block signature and (ii) instructions that when executed cause the at least one processor, during a second stage, to search for the synchronization signal in the one or more identified locations.

10 . The non-transitory machine readable medium of claim 9 , further containing instructions that when executed cause the at least one processor, during the first stage, to acquire data from the broadcast signal.

11 . The non-transitory machine readable medium of claim 10 ,

wherein the instructions that when executed cause the at least one processor to generate the spectrogram comprise:

instructions that when executed cause the at least one processor to tune a sampling rate, a Fast Fourier Transform (FFT) size, or both, based on a subcarrier spacing such that a determined frequency resolution matches the subcarrier spacing.

12 . The non-transitory machine readable medium of claim 10 , further containing instructions that when executed cause the at least one processor, during the second stage, to validate each identified location for the synchronization signal in the reduced search space based on correlating the data with reference synchronization signals.

13 . The apparatus of claim 1 , wherein, during the first stage, the at least one processor is configured to:

tune the transceiver to a center frequency of a frequency band to be searched within the broadcast signal; and

collect data for a predetermined period of time to capture the synchronization signal within the broadcast signal.

14 . The apparatus of claim 1 , wherein, during the first stage, the at least one processor is configured to:

compare the ideal synchronization signal block signature to the generated spectrogram at a plurality of locations within the spectrogram;

generate a score to quantify a degree of similarity between the ideal synchronization signal block signature at each of the plurality of locations within the spectrogram; and

determine the one or more locations for the synchronization signal based on the score exceeding a predetermined threshold.

15 . The apparatus of claim 1 , wherein the first stage identifies the one or more locations for the synchronization signal as a time/frequency pair.

16 . The method of claim 5 , wherein, during the first stage, the searching further comprises:

tuning a transceiver to a center frequency of a frequency band to be searched within the broadcast signal; and

collecting data for a predetermined period of time to capture the synchronization signal within the broadcast signal.

17 . The method of claim 5 , wherein, during the first stage, the, the searching further comprises:

comparing the ideal synchronization signal block signature to the generated spectrogram at a plurality of locations within the spectrogram;

generating a score to quantify a degree of similarity between the ideal synchronization signal block signature at each of the plurality of locations within the spectrogram; and

determining the one or more locations for the synchronization signal based on the score exceeding a predetermined threshold.

18 . The method of claim 5 , wherein, during the first stage, the, the searching further comprises identifying the one or more locations for the synchronization signal as a time/frequency pair.

19 . The non-transitory machine readable medium of claim 9 , further containing instructions that when executed cause the at least one processor, during the first stage, to:

tune a transceiver to a center frequency of a frequency band to be searched within the broadcast signal; and

collect data for a predetermined period of time to capture the synchronization signal within the broadcast signal.

20 . The non-transitory machine readable medium of claim 9 , further containing instructions that when executed cause the at least one processor, during the first stage, to:

compare the ideal synchronization signal block signature to the generated spectrogram at a plurality of locations within the spectrogram;

generate a score to quantify a degree of similarity between the ideal synchronization signal block signature at each of the plurality of locations within the spectrogram; and

determine the one or more locations for the synchronization signal based on the score exceeding a predetermined threshold.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 4, 2023
From: SABOL, ERIC
To: RAYTHEON APPLIED SIGNAL TECHNOLOGY, INC.
Reel/Frame 063538/0817 →
Continuity (1)
Related Publication 20240373381A1 · Nov 7, 2024
References Cited (9)
US 11272433B2 · Karimli et al. · 2022 [cited by applicant]
US 11751154B2 · Jung · 2023 [cited by examiner]
US 20210014815A1 · Akkarakaran · 2021 [cited by examiner]
US 20210022019A1 · Zha et al. · 2021 [cited by applicant]
US 20210050986A1 · Manolakos · 2021 [cited by examiner]
US 20220150807A1 · Nishant et al. · 2022 [cited by applicant]
US 20240147544A1 · Li · 2024 [cited by examiner]
US 20250071700A1 · Cui · 2025 [cited by examiner]
Nishant et al., “Efficient Protocol to Optimize New Radio Frequency Scanning in 5G Network,” 2021 IEEE 4th 5G World Forum (5GWF), 2021, 6 pages. [cited by applicant]