Reducing interference from downlink attackers

By detecting and reducing downlink power on affected branches, the method addresses PIM interference in wireless devices, enhancing uplink performance and maintaining downlink functionality in FDD and TDD radios with multiple antenna ports.

JP7742487B2Active Publication Date: 2025-09-19TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
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Patent Information

Application Number
JP2024516703
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-03
Publication Date
2025-09-19
Estimated Expiration
2041-12-03

AI Technical Summary

Technical Problem

Wireless devices suffer from self-generated intermodulation distortion, particularly in FDD radios, leading to reduced receiver sensitivity and interference in uplink channels due to passive intermodulation (PIM) distortion.

Method used

A method to detect interference levels in multiple antenna branches, identify affected uplink channels, and reduce downlink power for specific downlink carriers to mitigate PIM interference, applicable to FDD and TDD radios with multiple antenna ports.

Benefits of technology

Effectively reduces PIM interference without compromising uplink performance, suitable for large antenna arrays, and compatible with existing PIM reduction solutions, maintaining downlink functionality.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method and system for reducing interference on a wireless unit from passive intermodulation (PIM) distortion is described. A base station wireless unit may have multiple antennas, each receiving and transmitting communications over a different frequency. The embodiments below of the present disclosure can identify the source of PIM and then reduce the power of the aggressor downlink carrier on the affected antenna. This can reduce the PIM that desensitizes the uplink receiver.
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Description

[Technical Field]

[0001] The present disclosure is directed to reducing interference in wireless devices. [Background technology]

[0002] Transmitters that transmit and receive simultaneously can suffer from self-generated intermodulation distortion. For example, an FDD (frequency division duplex) radio can generate passive intermodulation (PIM) distortion in the filter, antenna, external radio mechanisms, or anywhere else the transmitted signal is present. The receiver's uplink channel can suffer from reduced sensitivity if there is some overlap with the frequency spectrum of this intermodulation distortion. Radios with multiple physical antenna ports can also suffer from PIM. Summary of the Invention

[0003] One embodiment of the present disclosure includes a method performed by a wireless unit for reducing interference in an uplink channel of the wireless unit. The method can include detecting an interference level in each of multiple antenna branches of the wireless unit and selecting one or more of the multiple branches based on the detection. A further step includes identifying one or more uplink channels on the selected branch that are affected by the interference based at least in part on the detected interference level, wherein each of the one or more identified uplink channels is associated with one or more downlink carriers. The method also includes reducing downlink power for at least one of the one or more downlink carriers.

[0004] Another embodiment may include a method for identifying and reducing interference in a wireless unit. Steps may include detecting one or more levels of interference on multiple uplink channels comprising one or more antenna branches of a base station. Further steps may include identifying one or more of the multiple uplink channels affected by the interference, each of the one or more uplink channels being associated with one or more downlink carriers, and reducing downlink power for at least one of the one or more downlink carriers.

[0005] This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used as an indication of the scope of the claimed subject matter.

[0006] The foregoing has outlined rather broadly the features and technical advantages of the present disclosure in order that the detailed description that follows may be better understood. Additional features and advantages of the present disclosure will be described hereinafter, which form the subject of the claims. Those skilled in the art will appreciate that the conception and specific embodiments disclosed may be readily utilized as a basis for modifying or designing other structures for carrying out the same purposes of the present disclosure. It should also be realized by those skilled in the art that such equivalent constructions do not depart from the spirit and scope of the appended claims. The novel features believed characteristic of the present disclosure, both as to its organization and manner of operation, together with further objects and advantages, will now be described in detail with reference to the accompanying drawings and accompanying drawings. Related As will be better understood from the following description, it is to be expressly understood, however, that each of the figures is provided for the purpose of illustration and description only and is not intended as a definition of the limits of the present disclosure. [Brief explanation of the drawings]

[0007] For a more complete understanding of the present disclosure, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:

[0008] [Figure 1] 1 is a diagram of an embodiment of a wireless unit in accordance with the present disclosure.

[0009] [Figure 2] 1 is a process flow diagram of an embodiment of a method according to the present disclosure.

[0010] [Figure 3] 1 is a process flow diagram of an embodiment of a method according to the present disclosure.

[0011] [Figure 4] 1 is a process flow diagram of an embodiment of a method according to the present disclosure.

[0012] [Figure 5] 1 is a diagram of an embodiment of a user device in accordance with the present disclosure.

[0013] [Figure 6] 1 is a diagram of an embodiment of a network node in the present disclosure.

[0014] [Figure 7] 1 is a diagram of an embodiment of a telecommunications system in accordance with the present disclosure.

[0015] [Figure 8] 1 is a process flow diagram of an embodiment of a method according to the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0016] Before describing the various embodiments of the present disclosure in detail, the present disclosure provides, among other things, exemplary systems, methods, apparatus, articles of manufacture, processIt should be understood that the present disclosure is not limited to the parameters of the components and / or kits, which may, of course, vary. Therefore, while certain embodiments of the present disclosure will be described in detail with reference to specific configurations, parameters, components, elements, etc., the description is illustrative and should not be construed as limiting the scope of the claims. Furthermore, the terminology used herein is for the purpose of describing the embodiments and does not necessarily limit the scope of the claims.

[0017] Passive intermodulation (PIM) distortion can interfere with the communication capabilities of wireless units, such as base stations, user devices, satellites, or any other wireless devices. PIM in radios with multiple branches may be reduced somewhat by receiver algorithms and prior art solutions such as PIM cancellation. Receiver algorithms include interference cancellation and combining (IRC) algorithms. IRC algorithms improve uplink performance in the presence of interference, such as inter-cell interference. IRC algorithms can also reduce PIM, but this means that the effectiveness of inter-cell interference reduction is reduced (i.e., PIM requires some of the degrees of freedom from the IRC algorithm). PIM cancellation is another technique that can reduce PIM from uplink signals in radios. However, in some cases, the residual PIM that exists after PIM cancellation is large enough to affect UL performance. The implementation cost of PIM cancellation can be prohibitive, even for radios with large antenna arrays.

[0018] The embodiments of the present disclosure reduce PIM by turning off / down power on at least one downlink carrier on at least one antenna branch. The embodiments can prevent PIM from being generated by sacrificing some downlink power. For a 32-branch radio with two downlink carriers, this may correspond to reducing power by less than 0.1 dB in some cases.

[0019] The solutions disclosed herein have numerous advantages over the prior art. The described embodiments do not sacrifice uplink performance to reduce PIM and are not limited by the behavior of the PIM source. Furthermore, they are applicable to any intermodulation order, any level of PIM magnitude, and any time-varying behavior of the PIM source. They can be used simultaneously with other PIM reduction solutions and have little impact on downlink performance when used with large antenna arrays.

[0020] FIG. 1 illustrates a possible radio unit embodiment according to the present disclosure. In this embodiment, a base station in a cellular network includes a radio unit 100. The radio unit 100 includes four antennas 110, 120, 130, and 140. These are sometimes referred to as "antenna branches," and any particular radio unit 100 may include more or fewer antennas or antenna branches. In this embodiment, each antenna 110, 120, 130, and 140 can utilize two different downlink carriers 150 and 160 located at different frequencies, and two uplink channels 151 and 161 located at different frequencies. In this embodiment, two FDD frequency pairs (150-160, 151-161) are shown, but other radio unit and antenna embodiments can function with more or fewer carriers. During operation, the wireless unit 100 may experience PIM on one or more of the antennas 110, 120, 130, 140 in one or more of the uplink channels 151, 161. For illustrative purposes only, FIG. 1 shows PIM 180 occurring on the antenna 140 in the uplink channel 151. As described further herein, embodiments under the present disclosure include techniques for identifying where the PIM 180 is occurring and for taking countermeasures, such as reducing the power of one of the target antennas 140, downlink frequencies 150 or 160, thus reducing the effects of the PIM 180 while maintaining functionality of the wireless unit 100.

[0021] Various embodiments of the present disclosure can be used for FDD (Frequency Division Duplex) AAS (Advanced Antenna System) radios. This can typically refer to base station radios with more than eight antenna branches, although other base stations, radio units, and devices are contemplated under this disclosure. Other applications can include non-AAS FDD radios, TDD (Time Division Duplex) radios with multiple TDD configurations (e.g., dual-band TDD radios where carriers in one band use a different DL-UL (Downlink-Uplink) pattern than carriers in the other band), and others.

[0022] 2 illustrates one possible method embodiment 200 of the present disclosure. Step 210 is computing absolute or relative levels of PIM in the uplink channel for various antenna branches and / or identifying which branches should be addressed by mitigation efforts, as in step 220. Step 220 reduces the problematic uplink PIM, for example, by reducing some or all of the associated aggressor downlink carriers on the same branch. Step 230 disables the reduction of step 220. Each step of this method can be performed in various ways, as further described below.

[0023] In the context of this disclosure, an associated downlink carrier refers to a downlink signal that is involved in causing a PIM problem occurring in a certain uplink channel.

[0024] Step 210 of FIG. 2 is to calculate the absolute or relative levels of PIM in the uplink channel for multiple antenna branches and / or identify for which branches mitigation action should be performed.

[0025] One embodiment of this step is to perform UL measurements simultaneously on multiple branches for each uplink channel and then compare the UL measurement results between the branches. In FDD AAS radios, strong in-line PIM can cause the UL power in a branch affected by PIM to be significantly higher than the UL power in a branch not affected by PIM. For example, UL power can be measured simultaneously on multiple branches. The branch with the highest power level is selected, and the UL power is compared between the two branches. No. The branch with the highest power level may be compared to the measurement of the branch with the highest power level. Alternatively, the branch with the highest power level may be compared to the average power level across all branches. If the difference between the two values ​​exceeds some threshold (e.g., 0.1 dB, 1 dB, or another value depending on the embodiment and user needs), the high UL power measurement is identified as the branch that should be addressed by a reduction step, as in step 220 of FIG. 2.

[0026] This example may be modified to detect multiple branches using inline PIM so that reduction is performed on multiple branches. The branch with the highest power level may be compared to the third-highest branch power measurement. These two measurements are used with a threshold to determine whether the branch with the highest power level should be addressed by a reduction step. The branch with the second-highest power level can then be compared to the third-highest power measurement. These two measurements are used with a threshold (the same or different from the threshold used for the highest measurement branch) to determine whether the branch with the second-highest power level should be addressed by a reduction step.

[0027] In some embodiments, UL power measurements can be made in the time domain for multiple branches over some specified duration. A shorter duration can reduce the time it takes to identify which branch should be addressed by a reduction step. A shorter duration increases the variance of the measurements, which increases the probability of false positives.

[0028] In some embodiments, the UL measurements can correspond to other metrics obtained for each antenna branch. Examples are UL RSSI (Received Signal Strength Indicator), or UL interference and noise measurements. Compared to time-domain measurements, there may be some additional latency associated with these types of measurements. The advantage is that these measurements are already available, and some can separate out the power comprised of all signals that are not the desired UL signal.

[0029] To address possible errors, inaccuracies, or intermittent PIM occurrences in the measurements, the simultaneous measurement and comparison can be repeated two or more times. Basing a decision on multiple noisy measurements can reduce the probability of a false positive. Using multiple measurements may involve increased delay in determining which branch should be addressed by a reduction step. Various methods for incorporating multiple measurements are contemplated under the present disclosure so that appropriate reduction steps are implemented.

[0030] In one example, a radio unit may take N measurements (e.g., of UL power). If a percentage of the measurements exceed some threshold, a reduction step may be applied to the identified branch. For example, if N=10, 10 measurements may be taken for a given antenna or antenna branch. The threshold may be, for example, 0.5 dB or 0.1 dB higher than the comparison level. For example, if 5 out of 10 measurements exceed the threshold, the given antenna or antenna branch may be subject to a reduction step. After 10 measurements, in this example, another 10 measurements are taken and compared, and so on. Alternatively, the system may always keep the last N measurements, and if, for example, 5 exceed the threshold, subject The antenna or antenna branch may be subjected to a reduction.

[0031] There are several reasons why some UL measurements may need to be discarded. The UL power on multiple branches exceeds some UL power threshold. This can occur if there is other strong interference not related to PIM. The number of branches considered as "multiple" exceeds the maximum number of branches that should be addressed by the reduction. As an example, if the reduction step is set to handle a maximum of two branches, and more than two branches exceed some threshold, the measurements may be discarded. • Problems with UL measurements were detected, such as overflow of the digital representation of a number. The state of some radio function was changed immediately before the measurement. Examples of a changing state in the radio are the occurrence of automatic gain control in the receiver, or some state change in the linearization in the transmitter, or other possible sources of transient signals in the radio that may affect the UL measurement.

[0032] The UL measurement embodiments are described as simultaneous. However, embodiments of the present disclosure include situations in which measurements are relatively close in time, even if not completely simultaneous, or may occur at predefined time slots, or may be due to the occurrence of a trigger event. The UL measurements do not need to be strictly simultaneous, and can be performed in delayed or near real-time embodiments. The method embodiments of step 210 of FIG. 2 can be performed sequentially or non-sequentially.

[0033] In continuous embodiments, the UL measurements may or may not be periodic. In a first example, the UL measurements may be made continuously and the method may be performed after a sufficient number of measurements are available. In a second example, the method may be performed periodically. In this case, the UL measurements may be made when the method is performed, but not in between.

[0034] In non-continuous embodiments, an event can trigger a measurement. For example, a measurement can be taken when a problem is detected, such as a change in a UL performance metric, such as total cell throughput. In another example, in step 230 of FIG. 2, stopping the reduction can be triggered, or when determining whether the reduction method in step 220 can be disabled.

[0035] Some of the above embodiments describe how UL measurements can be used to identify which branch(es) should be addressed by reduction (i.e., which branch(es) may have PIM in any of their uplink channels). However, in other embodiments, other PIM detection solutions can be utilized. For example, an IRC algorithm can be used to identify antenna branches that require reduction. In another example, PIM cancellation techniques may be used to identify antennas or antenna branches that require reduction. These PIM detection methods (such as IRC or PIM cancellation) may allow certain embodiments of the present disclosure to avoid UL measurements while still identifying where reduction is needed.

[0036] Step 220 of FIG. 2 reduces the problematic uplink PIM, for example, by reducing some or all of the aggressor downlink carriers on the same branch.

[0037] One embodiment of step 220 is to reduce the power of at least one DL (Downlink) carrier on the same branch to reduce the PIM level. This reduction may be to reduce the total carrier power, e.g., the power associated with the carrier associated with the identified frequency. The amount of reduction may be based on the level of PIM, or the impact of PIM. For example, the level of PIM may be estimated from step 210 from any measurements made, or may be directly available from a PIM detection method (e.g., IRC or PIM removal). The reduction may correspond to muting the DL carrier responsible for generating the PIM problem monitored in the UL channel with the associated, ie, identified, uplink channel. The reduction may involve blocking some data from being transmitted on the carrier for the DL branch to be addressed. This data may correspond to the PDSCH (Physical Downlink Shared Channel), while allowing the signaling needed for the user equipment to identify system information.

[0038] In other reduction embodiments, when there are multiple frequencies on a branch (and similarly multiple carriers transmitting data), all frequencies can be reduced. It is also possible to reduce a subset of frequencies on a branch. There are multiple embodiments for selecting which DL frequencies to reduce.

[0039] On a particular antenna or antenna branch, some downlink carriers will have more influence on the level of PIM than others. As an example, for a branch with two DL carriers, the DL carrier closest to the affected UL channel will have a greater influence on the PIM level. This type of relationship may be used to determine which DL carrier should be addressed by the proposed power reduction method.

[0040] When multiple branches are of interest, it may be advantageous not to mute the same DL carrier on all branches (i.e., to distribute DL degradation (power reduction) across multiple carriers). For example, a particular carrier may be the 1700 MHz band, and this frequency is the affected UL channel. The radio unit may choose to reduce the power used in the 1700 MHz band across all antennas, but this may impair downlink performance at this frequency. Instead, it may be preferable to simply reduce power in the 1700 MHz band on only one or two antennas. The status of carriers on other branches that have already been reduced may be used in determining which DL carriers on another branch should be reduced. Furthermore, it is possible that at least one of the DL carriers should not be reduced (e.g., predetermined by the radio operator). This constraint is used in determining which DL carriers should be power reduced.

[0041] In some embodiments, the PIM mitigation step 220 is enabled by the scheduler only when high pathloss users, also known as cell-edge users, are scheduled on the PIM affected uplink frequency 151. The pathloss threshold used by the scheduler to trigger this action may be configurable and may depend on the PIM level. This may help to reduce the impact of the PIM mitigation solutions described herein on DL network level performance.

[0042] After performing a reduction step (such as step 220 in Figure 2), a decision must be made when to terminate the reduction step. This step, such as step 230 in Figure 2, can involve a variety of approaches.

[0043] There are several reasons for disabling PIM reduction from the previous step. One is that PIM is dynamic. Since this problem can occur, it would be advantageous not to permanently reduce some of the DL carriers on some branches. Another reason is that all detection algorithms have some false alarm probability. This probability means that in some cases, a reduction step (step 220 in Figure 2) is expected to be used to address a false alarm (from step 210). Furthermore, another type of problem may cause a branch to be identified in step 210 that should be addressed by step 220. Teshi Although this problem may occur, it is not PIM related and is not reduced by step 220. An example may be a failure in the receiver branch.

[0044] 2 is to disable the reduction from step 220 after a period of time (e.g., 0.1 seconds, 1 second, 10 seconds, or any suitable period of time). This embodiment of step 230 allows step 220 to reduce at least one DL carrier on the branch that needs to be focused on for a selected period of time. After that period has elapsed, an embodiment of step 210 invokes step 220 again if the problem persists.

[0045] In another embodiment of step 230, the reduction from step 220 can be disabled in coordination with the UL measurements from step 210. In this embodiment, specific time slots can be used to temporarily disable the reduction from step 220. This can correspond to one long time slot (long enough to allow step 210 to be performed) or discontinuous time slots (each allowing a single measurement in step 210). If the result from step 210 indicates that the branch no longer needs to be addressed, the reduction is disabled. The time slot can be selected when the impact on the UL is expected to be minimal / acceptable. An example could be during a period when there are no scheduled UL resources.

[0046] 3 and 4 illustrate alternative embodiments under the present disclosure for identifying and taking mitigation action against PIM.

[0047] Method 300 includes a method performed by a wireless unit to reduce interference in an uplink channel of the wireless unit. Step 310 detects an interference level in each of multiple antenna branches of the wireless unit. Step 320 selects one or more of the multiple branches based on the detection. Step 330 identifies one or more uplink channels on the selected branch affected by the interference based at least in part on the detected interference level, each of the one or more identified uplink channels being associated with one or more downlink carriers. Step 340 reduces downlink power on at least one of the one or more downlink carriers. And, step 350 (optional) terminates the downlink power reduction.

[0048] Method 400 is an embodiment of another method performed by a wireless unit, such as a base station, to identify and reduce PIM. Step 410 is to measure the amount of interference caused by DL on each antenna branch in a particular uplink channel. Step 420 combines the measurements with decision criteria and several thresholds to determine which antenna branches are experiencing interference caused by high DL. Steps 410 and 420 can be performed continuously or upon triggering an event, as described above. Step 430 is to reduce the power of the last one of the carriers / frequencies on each branch experiencing interference caused by high DL. Step 440 is to undo the reduction from step 430 (i.e., increase the power of the reduced branch / carrier / frequency).

[0049] This disclosure has discussed reducing interference problems related to PIM. However, the discussed methods and systems may also be used to address other uplink problems where the DL carrier in a particular branch is the aggressor. For example, DL leakage caused by nonlinear active electronic components on a radio printed circuit board (PCB). Another example is DL leakage due to a nonlinear power amplifier. This may be caused by some issues with DPD (digital predistortion) adaptation.

[0050] 5 and 6 are schematic configuration diagrams of a UE 700 and a network node 800 according to an embodiment of the present disclosure. Various types of UEs 700 and network nodes can utilize the embodiments of the present disclosure and can include a radio unit such as the radio unit 100 of FIG. 1. The UE 700 can include at least a processor 701 and at least a memory 702. As shown in FIG. 5, the memory 702 stores a computer program that, when executed on the processor 701, causes the processor 701 to perform any of the methods performed in the radio unit according to the present disclosure. As shown in FIG. 6, the memory 802 stores a computer program that, when executed on the processor 801, causes the processor 801 to perform any of the methods performed in the radio unit according to the present disclosure. The memory 702 / 802 can be, for example, an EEPROM (Electrically Erasable Programmable Read-Only Memory) ) , flash memory and hard drive. The processor may be a single CPU (Central Processing Unit), but may also be two or more PThe processor may comprise a processing unit. For example, the processor may include a general-purpose microprocessor, an instruction set processor, and / or an associated chipset, and / or a special-purpose microprocessor such as an application-specific integrated circuit (ASIC). The processor may also comprise on-board memory for cache purposes. The computer program may be carried by a computer program product connected to the processor. The computer program product may comprise a computer-readable medium on which the computer program is stored. For example, the computer program product may be a flash memory, a random access memory (RAM), a read-only memory (ROM), or an EEPROM; in alternative embodiments, computer program modules may be distributed over various computer program products in the form of memories within the UE or network node.

[0051] In one embodiment of the present disclosure, a computer-readable storage medium having stored thereon a computer program that, when executed on at least one processor, causes the at least one processor to perform any applicable method according to the present disclosure. Embodiments of the present disclosure may include systems and methods in which a UE, such as those described above, comprises a node in a mesh network.

[0052] FIG. 7 illustrates a communication network connected to a host computer via an intermediate network. The base stations 1012a, 1012b, and 1012c preferably comprise radio units as described with respect to FIG. 1 and have other capabilities as described herein. With reference to FIG. 7, according to one embodiment, the communication system comprises a communication network 1010, such as a 3GPP-type cellular network, comprising an access network 1011, such as a radio access network, and a core network 1014. The access network 1011 comprises a plurality of base stations 1012a, 1012b, and 1012c, such as NBs, eNBs, gNBs, or other types of wireless access points, each defining a corresponding coverage area 1013a, 1013b, and 1013c. Each base station 1012a, 1012b, and 1012c can be connected to the core network 1014 via a wired or wireless connection 1015. A first user equipment (UE) 1091 located in coverage area 1013c is configured to wirelessly connect to or be paged by a corresponding base station 1012c. A second UE 1092 within coverage area 1013a can wirelessly connect to a corresponding base station 1012a. While multiple UEs 1091, 1092 are shown in this example, the disclosed embodiments are equally applicable to situations where a single UE is present within a coverage area or connected to a corresponding base station 1012a.

[0053] The communications network 1010 is itself connected to a host computer 1030, which may be implemented in hardware and / or software as a processing resource in a standalone server, a cloud-based server, a distributed server, or a server farm. The host computer 1030 may be under the ownership or control of a service provider, or may be operated by or on behalf of the service provider. The connections 1021, 1022 between the communications network 1010 and the host computer 1030 may extend directly from the core network 1014 to the host computer 1030 or may go through an optional intermediate network 1020. The intermediate network 1020 may be one of a public network, a private network, or a hosted network, or a combination of two or more thereof; the intermediate network 1020 may be a backbone network or the Internet, if any; and in particular, the intermediate network 1020 may comprise two or more subnetworks (not shown).

[0054] Reference is made when describing several embodiments of PIM. However, the embodiments below of this disclosure can be used to reduce various types of interference. Identifying the antenna branches and channels / frequencies that are subject to interference can be performed in a manner similar to identifying PIM described herein. For example, method 800 shown in FIG. 8 may be used to identify and reduce interference in a wireless unit. Step 810 detects one or more levels of interference on multiple uplink channels comprising one or more antenna branches of a base station. Step 820 identifies one or more of multiple uplink channels affected by the interference, each of the one or more uplink channels being associated with one or more downlink carriers. Step 830 reduces downlink power on at least one of the one or more downlink carriers. Step 840 optionally terminates the downlink power reduction. Computing System of the Present Disclosure

[0055] It will be appreciated that computing systems take an increasingly wide variety of forms. In this specification and claims, the terms “controller,” “computing system,” or “computing system” are broadly defined to include any device or system, or combination thereof, that includes at least one physical, tangible processor and physical, tangible memory capable of having computer-executable instructions thereon that can be executed by the processor. By way of example and not limitation, the term “computing system” or “computing system,” as used herein, is intended to include personal computers, desktop computers, laptop computers, tablets, handheld devices (e.g., mobile phones, PDAs, pagers), microprocessor-based or programmable consumer electronics, minicomputers, mainframe computers, multiprocessor systems, network PCs, distributed computing systems, data centers, message processors, routers, switches, and even devices not traditionally considered computing systems, such as wearables (e.g., eyeglasses).

[0056] Memory may take any form and may depend on the nature and form of the computing system. Memory may be physical system memory, including volatile memory, non-volatile memory, or some combination of the two. The term "memory" may also be used herein to refer to non-volatile mass storage devices, such as physical storage media.

[0057] A computing system also has many configurations that are often referred to as "executable components"; for example, a computing system's memory may contain executable components. The term "executable component" is a name for a structure that is well understood by those skilled in the art of computing to be a structure that may be software, hardware, or a combination thereof.

[0058] For example, those skilled in the art will understand that when implemented in software, the structure of an executable structural element may include software objects, routines, methods, etc. that may be executed by one or more processors on a computing system, whether such executable structural element resides in the heap of the computing system or whether the executable structural element resides on a computer-readable storage medium. The structure of the executable structural element resides on the computer-readable medium in a form that, when executed by one or more processors of the computing system, is operable to cause the computing system to perform one or more functions, such as the functions and methods described herein. Such a structure may be directly computer-readable by the processor, such as when the executable structural element is binary. Alternatively, the structure may be structured to be interpretable and / or compilable, whether in a single step or multiple steps, to generate such a binary that is directly interpretable by the processor.

[0059] The term "executable component" will also be well understood by those skilled in the art to include structures that are implemented exclusively or nearly exclusively in hardware logic components, such as field programmable gate arrays (FPGAs), application specific integrated circuits (ASICs), program specific standard products (ASSPs), systems on a chip (SOCs), complex programmable logic devices (CPLDs), or any other specialized circuitry. Thus, the term "executable component" is a term for structures that are well understood by those skilled in the art of computing, whether implemented in software, hardware, or a combination thereof.

[0060] Terms such as "component," "service," "engine," "module," "control," "generator," and the like may also be used in this description. As used herein and in this case, these terms, whether expressed with or without a modifying clause, are also intended to be synonymous with the term "executable component," and as such, have a structure well understood by those skilled in the art of computing.

[0061] Although not all computing systems require a user interface, in some embodiments, a computing system may communicate with a user. Information The present invention also includes a user interface for use in communicating with a user. The user interface may include an output mechanism as well as an input mechanism. The principles described herein are not limited to the exact output or input mechanism, as such will depend on the nature of the device. However, output mechanisms may include, for example, a speaker, a display, a tactile output, a projection, a hologram, etc. Examples of input mechanisms may include, for example, a microphone, a touchscreen, a projection, a hologram, a camera, a keyboard, a stylus, a mouse or other pointer input, any type of sensor, etc.

[0062] Accordingly, the embodiments described herein may comprise or utilize special-purpose or general-purpose computing systems. The embodiments described herein also include physical and other computer-readable media for carrying or storing computer-executable instructions and / or data structures. Such computer-readable media may be any available media that can be accessed by a general-purpose or special-purpose computing system. Computer-readable media that store computer-executable instructions are physical storage media. Computer-readable media that carry computer-executable instructions are transmission media. Thus, by way of example, and not limitation, the embodiments disclosed or contemplated herein may include at least two distinctly different types of computer-readable media: storage media and transmission media.

[0063] Computer-readable storage media include RAM, ROM, EEPROM, solid-state drives ("SSD"), flash memory, phase-change memory ("PCM"), CD-ROM or other optical disk storage, magnetic disk storage or other magnetic storage, or any other physical and tangible storage medium that can be used to store desired program code in the form of computer-executable instructions or data structures, and that can be accessed and executed by a general-purpose or special-purpose computing system to implement the disclosed functions of the present disclosure. For example, computer-executable instructions may be embodied on one or more computer-readable storage media to form a computer program product.

[0064] Transmission media may include network and / or data links that can be used to carry desired program code in the form of computer-executable instructions or data structures that can be accessed and executed by a general-purpose or special-purpose computing system. Combinations of the above should also be included within the scope of computer-readable media.

[0065] Furthermore, upon reaching various computing system components, program code in the form of computer-executable instructions or data structures may be automatically transferred from transmission media to storage media (or vice versa). For example, computer-executable instructions or data structures received over a network or data link may be buffered in RAM within a network interface module (e.g., a "NIC") and then ultimately transferred in the computing system to computing system RAM and / or a less volatile storage medium. Thus, it should be understood that storage media may be included in computing system components that also or primarily utilize transmission media.

[0066] Those skilled in the art will further appreciate that a computing system may also include communication channels that allow the computing system to communicate with other computing systems, for example, over a network. Accordingly, the methods described herein may be implemented in networked computing environments having many types of computing systems and computing system configurations. The disclosed methods may also be implemented in distributed systems in which local and / or remote computing systems linked via a network (either by hardwired data links, wireless data links, or a combination of hardwired and wireless data links) both perform tasks. environment In a distributed system environment, processing, memory, and / or storage power may also be distributed.

[0067] Those skilled in the art will also understand that the disclosed methods can be implemented in a cloud computing environment. A cloud computing environment may be distributed, but this is not required. When distributed, a cloud computing environment can have components that are distributed internationally within an organization and / or owned across multiple organizations. For purposes of this specification and the claims that follow, "cloud computing" is defined as a model for enabling on-demand network access to a shared pool of configurable computing resources (e.g., networks, servers, storage, applications, and services). The definition of "cloud computing" is not limited to any of the many other benefits that can be obtained from such a model when properly deployed.

[0068] Cloud computing models may consist of a variety of characteristics, such as on-demand self-service, pervasive network access, resource pooling, rapid elasticity, and measured service. Cloud computing models may also take the form of various service models, such as software as a service ("SaaS"), platform as a service ("PaaS"), and infrastructure as a service ("IaaS"). Cloud computing models may also be deployed using different deployment models, such as private cloud, community cloud, public cloud, and hybrid cloud. Abbreviations and Definitions

[0069] To aid in understanding the scope and content of the specification and appended claims, certain selected terms are directly defined below. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs.

[0070] The terms "approximately," "about," and "substantially," as used herein, refer to an amount or condition that is close to a particular stated amount or condition that still performs a desired function or achieves a desired result. For example, the terms "approximately," "about," and "substantially" can refer to an amount or condition that deviates from the specifically stated amount or condition by less than 10%, or less than 5%, or less than 1%, or less than 0.1%, or less than 0.01%.

[0071] Various aspects of the present disclosure, including devices, systems, and methods, may be illustrated in connection with one or more embodiments or implementations that are exemplary in nature. As used herein, the term "exemplary" means "serving as an example, instance, or illustration" and should not necessarily be construed as preferred or advantageous over other embodiments disclosed herein. In addition, references to "implementations" of the present disclosure include specific references to one or more implementations thereof, and vice versa, and are intended to provide example implementations without limiting the scope of the disclosure, which is indicated by the appended claims rather than by the following description.

[0072] As used herein, words appearing in the singular include their plural counterparts, and words appearing in the plural include their singular counterparts unless implicitly or explicitly understood or stated otherwise. Accordingly, as used herein and in the appended claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. For example, a reference to a singular referent (e.g., "widget") includes one, two, or more referents unless implicitly or explicitly understood or stated otherwise. Similarly, a reference to a plural referent should be interpreted as including a single referent and / or multiple referents unless the content and / or context clearly dictate otherwise. For example, a reference to a plural referent (e.g., "widget") does not necessarily require a plurality of such referents. Instead, it will be understood that one or more references are contemplated herein, regardless of the number of references inferred, unless otherwise stated.

[0073] As used herein, "upper," "lower," "left," "right," "upper" Department ","under Department ","above direction ","under direction Directional terms such as "proximal," "distal," "adjacent," and the like are used herein to indicate relative directions only and are not intended to limit the scope of the disclosure and / or claims. conclusion

[0074] It is understood that for any given component or embodiment described herein, any possible candidates or alternatives listed for that component may generally be used individually or in combination with one another, unless implicitly or explicitly understood or stated otherwise. Furthermore, it will be understood that any list of such candidates or alternatives is merely exemplary and not limiting, unless implicitly or explicitly understood or stated otherwise.

[0075] Furthermore, unless otherwise indicated, numbers expressing quantities, components, distances, or other measurements used in the specification and claims should be understood to be modified by the term "about," as that term is defined herein. Accordingly, unless otherwise indicated, the numerical parameters set forth in the specification and appended claims are approximations that may vary depending upon the desired properties sought to be obtained by the subject matter presented herein. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques. Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the subject matter presented herein are approximations, the numerical values ​​set forth in the specific examples are reported as precisely as possible. However, any numerical value inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements.

[0076] Any headings and sub-headings used herein are for organizational purposes only and are not meant to be used to limit the scope of the description or the claims.

[0077] The terms and expressions used herein are used as terms of description and not of limitation, and the use of such terms and expressions is not intended to exclude the features shown and described or equivalents thereof, but it is recognized that various modifications are possible within the scope of the present disclosure. Thus, while the present disclosure has been described in part with particularity through preferred embodiments, it should be understood that exemplary embodiments of the concepts disclosed herein, as well as optional features, modifications, and variations, may be utilized by those skilled in the art, and such modifications and variations are considered to be within the scope of the present disclosure as defined by the appended claims. The specific embodiments provided herein are examples of useful embodiments of the present disclosure, and various changes and / or modifications of the inventive features shown herein will occur to those skilled in the relevant arts, and additional applications of the principles set forth herein, having the present disclosure, may be made to the embodiments shown without departing from the spirit and scope of the present disclosure as defined by the claims, and are considered to be within the scope of the present disclosure.

[0078] It will also be understood that systems, devices, articles of manufacture, kits, methods, and / or methods according to certain embodiments of the present disclosure may include, incorporate, or otherwise include properties or characteristics (e.g., components, members, elements, portions, and / or parts) described in other embodiments disclosed and / or described herein. Thus, various features of certain embodiments may be compatible with, combined with, included in, and / or incorporated into other embodiments of the present disclosure. Thus, the disclosure of a particular feature for a particular embodiment of the present disclosure should not be construed as the application or inclusion of said feature for the particular embodiment. Rather, it will be understood that other embodiments may also include said features, members, elements, portions, and / or parts without necessarily departing from the scope of the present disclosure.

[0079] Furthermore, unless a feature is described as requiring another feature in combination, any feature herein may be combined with any other feature of the same or different embodiments disclosed herein. Moreover, various well-known aspects of example systems, methods, devices, etc., have not been described in particular detail herein to avoid obscuring aspects of the example embodiments. However, such aspects are also contemplated herein.

[0080] All references cited in this application are incorporated herein by reference in their entirety to the extent that they do not contradict the disclosure in this application. It will be apparent to those skilled in the art that methods, devices, device elements, materials, procedures, and techniques other than those specifically described herein can be applied to the practice of the present disclosure, as broadly described herein, without resort to undue experimentation. All art-known functional equivalents of the methods, devices, device elements, materials, procedures, and techniques specifically described herein are intended to be encompassed by this disclosure.

[0081] When a group of materials, compositions, ingredients, or compounds is disclosed herein, it is understood that all individual members of the group and all subgroups thereof are separately disclosed. When a Markush group or other grouping is used herein, all individual members of the group, and all combinations and possible subcombinations of the group, are intended to be individually included in the disclosure. All formulations or combinations of components described or exemplified herein can be used to practice the disclosure unless otherwise specified. Whenever a range, such as a temperature range, time range, or composition range, is given in the specification, all intermediate ranges and subranges, along with all individual values ​​included in the given range, are intended to be included in the disclosure. All changes that come within the meaning and range of equivalency of the claims are intended to be embraced within their scope.

[0082] While the present disclosure and its advantages have been described in detail, it should be understood that various changes, substitutions, and alterations can be made therein without departing from the spirit and scope of the present disclosure, as defined by the appended claims. Moreover, the scope of the present application is not limited to the particular embodiments of the processes, machines, manufacture, compositions of matter, means, methods, and steps described herein. Those skilled in the art will readily recognize from the disclosure of the present disclosure other now-existing or later-developed processes, machines, manufacture, compositions of matter, means, methods, or steps that perform substantially the same function or achieve substantially the same results as the corresponding embodiments described herein may be utilized in accordance with the present disclosure. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, or steps.

Claims

1. 1. A method performed by a wireless unit for reducing interference in an uplink channel of the wireless unit, the method comprising: detecting an interference level at each of a plurality of antenna branches of the wireless unit; selecting one or more of the plurality of antenna branches based on the detection; identifying one or more uplink channels on the selected branch affected by interference based at least in part on the detected interference level, wherein each of the identified one or more uplink channels is associated with one or more downlink carriers; reducing downlink power for at least one of the one or more downlink carriers; A method comprising:

2. 10. The method of claim 1, wherein the detected interference level at each of a plurality of antenna branches includes passive intermodulation (PIM) distortion.

3. 3. The method of claim 1, wherein the detecting comprises measuring an uplink power in at least one uplink channel on the plurality of antenna branches.

4. 4. The method of claim 1, wherein the selecting comprises detecting a difference between a power level in a highest power branch and an average of power levels in the plurality of antenna branches, and selecting the highest power branch if the detected difference is greater than a threshold.

5. 4. The method of claim 1, wherein the selecting comprises detecting a difference between a power level in a first highest power branch and a power level in a second highest power branch, and selecting the first highest power branch if the detected difference is greater than a threshold.

6. 4. The method of claim 1, wherein the selecting comprises detecting a difference between a power level in a first highest power branch and a power level in a third highest power branch, and selecting the first highest power branch if the detected difference is greater than a threshold.

7. 7. The method of claim 6, further comprising: detecting a second difference between a power level in a second-highest power branch and a power level in a third-highest power branch; and selecting the second-highest power branch if the detected second difference is greater than the threshold.

8. 8. The method of claim 1, wherein detecting the interference level comprises measuring at least one of an uplink received signal strength indicator, an uplink interference, and noise.

9. 4. The method of claim 3, wherein measuring uplink power includes taking multiple measurements.

10. 10. The method of claim 9, wherein selecting one or more of the plurality of antenna branches comprises selecting the antenna branch if a predetermined percentage of a plurality of measurements for the antenna branch exceeds a preselected value.

11. 11. The method of claim 10, wherein the predetermined percentage is one half.

12. 12. The method according to any one of claims 1 to 11, wherein if the number of selected antenna branches is greater than a preset value, at least one of the selected antenna branches is deselected.

13. 13. The method of claim 1, wherein the reducing comprises reducing the downlink power of at least one downlink carrier in one or more selected antenna branches.

14. 13. The method of claim 1, wherein the reducing comprises blocking data from being transmitted in at least one downlink carrier.

15. 13. The method of claim 1, wherein the reducing comprises reducing downlink power on a subset of the one or more downlink carriers.

16. The method of any one of claims 1 to 12, wherein the reduction is enabled by a scheduler only if high pathloss users are scheduled in the uplink.

17. 13. The method of claim 1, wherein the reducing comprises preventing a reduction in power on any of the one or more downlink carriers associated with a particular one of the one or more uplink channels.

18. 18. The method of any one of claims 1 to 17, further comprising subsequently terminating the reduction of downlink power.

19. 20. The method of claim 18, wherein the terminating is performed temporarily to allow repeated detection of the interference level at each of multiple antenna branches of the wireless unit, and terminating the reduction of downlink power if the detected interference level is below a threshold.

20. A processor (801); a storage device (802) storing a computer program that, when executed on said processor, causes said processor to perform the method of any one of claims 1 to 19; A first network node (800) comprising:

21. A computer program which, when executed on at least one processor, causes said at least one processor to carry out the method of any one of claims 1 to 19.

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