EDBT 2026 Demo / reviewers in the wild / expert
Abbas Khalili
dblp:45/8019
· DBLP profile ↗
11ranked-venue papers
9as first author
5since 2021 · last 2023
0000-0001-6782-8935ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 7 · 6 first-author · 2 since 2021Computer networks · 3 · 2 first-author · 3 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 first-author
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Computer networks
2 papers |
Physical-layer communications · 95% Wireless networking · 5% |
Topics — the 7 heaviest of 7, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Physical-layer communications
MIMO |
1.2 | 2 | 2023 | Capacity Bounds and Spectral Constraints for Transceivers With Finite Resolution Quantizers · IEEE Trans. Commun. 2023 MIMO Networks With One-Bit ADCs: Receiver Design and Communication Strategies · IEEE Trans. Commun. 2022 |
Physical-layer communications › MIMO
massive MIMO |
0.7 | 1 | 2023 | Capacity Bounds and Spectral Constraints for Transceivers With Finite Resolution Quantizers · IEEE Trans. Commun. 2023 |
Physical-layer communications › signal processing for communications
quantization |
0.7 | 1 | 2023 | Capacity Bounds and Spectral Constraints for Transceivers With Finite Resolution Quantizers · IEEE Trans. Commun. 2023 |
Physical-layer communications › information theory
achievable rate |
0.6 | 1 | 2022 | MIMO Networks With One-Bit ADCs: Receiver Design and Communication Strategies · IEEE Trans. Commun. 2022 |
Physical-layer communications › signal distortion
out-of-band emission |
0.2 | 1 | 2023 | Capacity Bounds and Spectral Constraints for Transceivers With Finite Resolution Quantizers · IEEE Trans. Commun. 2023 |
Wireless networking › cognitive radio
spectrum management |
0.2 | 1 | 2023 | Capacity Bounds and Spectral Constraints for Transceivers With Finite Resolution Quantizers · IEEE Trans. Commun. 2023 |
Physical-layer communications › digital signal processing
analog-to-digital conversion |
0.2 | 1 | 2022 | MIMO Networks With One-Bit ADCs: Receiver Design and Communication Strategies · IEEE Trans. Commun. 2022 |
Methods — techniques the papers use, named apart from their topics
random matrix theory · 0.7information-theoretic capacity analysis · 0.7convex optimization · 0.6
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2023 | Capacity Bounds and Spectral Constraints for Transceivers With Finite Resolution QuantizersabstractLow-resolution digital-to-analog and analog-to-digital converters (DACs and ADCs) have attracted considerable attention in efforts to reduce power consumption in millimeter wave (mmWave) and massive MIMO systems. This paper presents an information-theoretic analysis with capacity bounds for classes of linear transceivers with finite quantization. The transmitter modulates symbols via a unitary transform followed by a DAC and the receiver employs an ADC followed by the inverse unitary transform. If the unitary transform is set to a discrete Fourier transform (DFT) matrix, the model naturally captures filtering and spectral constraints. In particular, this model allows studying the impact of quantization on out-of-band (OOB) emission constraints. The out-of-band emission constraints are defined using a “spectrum mask” in practical wireless systems. All transmissions need to meet the OOB constraint to allow other services and technologies to operate in adjacent bands.In the limit of a large random unitary transform, it is shown that the effect of quantization can be precisely described via an additive Gaussian noise model. This model in turn leads to simple and intuitive expressions for the power spectrum of the transmitted signal and a lower bound to the capacity with quantization. Comparison with non-quantized capacity and a capacity upper bound that does not make linearity assumptions suggests that while low resolution quantization has minimal impact on the achievable rate at typical parameters in 5G systems, satisfying OOB emissions is potentially much more of a challenge. Sourjya Dutta, Abbas Khalili, Elza Erkip, Sundeep Rangan |
IEEE Trans. Commun. | 2 |
| 2022 | Cell-Free Massive MIMO with Low-Complexity Hybrid BeamformingabstractCell-Free Massive Multiple-input Multiple-output (mMIMO) consists of many access points (APs) in a coverage area that jointly serve the users. These systems can significantly reduce the interference among the users compared to conventional MIMO networks and so enable higher data rates and a larger coverage area. However, Cell-Free mMIMO systems face multiple practical challenges such as the high complexity and power consumption of the APs’ analog front-ends. Motivated by prior works, we address these issues by considering a low complexity hybrid beamforming framework at the APs in which each AP has a limited number of RF-chains to reduce power consumption, and the analog combiner is designed only using the large-scale statistics of the channel to reduce the system’s complexity. We provide closed-form expressions for the signal to interference and noise ratio (SINR) of both uplink and downlink data transmission with accurate random matrix approximations. Also, based on the existing literature, we provide a power optimization algorithm that maximizes the minimum SINR of the users for uplink scenario. Through several simulations, we investigate the accuracy of the derived random matrix approximations, tradeoff between the 95% outage data rate and the number of RF-chains, and the impact of power optimization. We observe that the derived approximations accurately follow the exact simulations and that in uplink scenario while using MMSE combiner, power optimization does not improve the performance much. Abbas Khalili, Alexei E. Ashikhmin, Hong Yang 0001 |
ICC | 1 |
| 2022 | Quantized MIMO: Channel Capacity and Spectrospatial Power DistributionabstractMillimeter wave systems suffer from high power consumption and are constrained to use low resolution quantizers —digital to analog and analog to digital converters (DACs and ADCs). However, low resolution quantization leads to reduced data rate and increased out-of-band emission noise. In this paper, a multiple-input multiple-output (MIMO) system with linear transceivers using low resolution DACs and ADCs is considered. An information-theoretic analysis of the system to model the effect of quantization on spectrospatial power distribution and capacity of the system is provided. It is shown that the impact of quantization can be accurately described via a linear model with additive independent Gaussian noise. This model in turn leads to simple and intuitive expressions for spectrospatial power distribution of the transmitter and a lower bound on the achievable rate of the system. The derived model is validated through simulations and numerical evaluations, where it is shown to accurately predict both spectral and spatial power distributions. Abbas Khalili, Elza Erkip, Sundeep Rangan |
ISIT | 1 |
| 2022 | MIMO Networks With One-Bit ADCs: Receiver Design and Communication StrategiesabstractHigh resolution analog to digital converters (ADCs) are conventionally used at the receiver terminals to store an accurate digital representation of the received signal, thereby allowing for reliable decoding of transmitted messages. However, in a wide range of applications, such as communication over millimeter wave and massive multiple-input multiple-output (MIMO) systems, the use of high resolution ADCs is not feasible due to power budget limitations. In the conventional fully digital receiver design, where each receiver antenna is connected to a distinct ADC, reducing the ADC resolution leads to performance loss in terms of achievable rates. One proposed method to mitigate the rate-loss is to use analog linear combiners leading to design of hybrid receivers. Here, the hybrid framework is augmented by the addition of delay elements to allow for temporal analog processing. Two new classes of receivers consisting of delay elements, analog linear combiners, and one-bit ADCs are proposed. The fundamental limits of communication in single and multi-user (uplink and downlink) MIMO systems employing the proposed receivers are investigated. In the high signal to noise ratio regime, it is shown that the proposed receivers achieve the maximum achievable rates among all receivers with the same number of one-bit ADCs. Abbas Khalili, Farhad Shirani Chaharsooghi, Elza Erkip, Yonina C. Eldar |
IEEE Trans. Commun. | 1 |
| 2021 | On Single-User Interactive Beam Alignment in Millimeter Wave Systems: Impact of Feedback DelayabstractNarrow beams are key to wireless communications in millimeter wave frequency bands. Beam alignment (BA) allows the base station (BS) to adjust the direction and width of the beam used for communication. During BA, the BS transmits a number of scanning beams covering different angular regions. The goal is to minimize the expected width of the uncertainty region (UR) that includes the angle of departure of the user. Conventionally, in interactive BA, it is assumed that the feedback corresponding to each scanning packet is received prior to transmission of the next one. However, in practice, the feedback delay could be larger because of propagation or system constraints. This paper investigates BA strategies that operate under arbitrary fixed feedback delays. This problem is analyzed through a source coding perspective where the feedback sequences are viewed as source codewords. It is shown that these codewords form a codebook with a particular characteristic which is used to define a new class of codes called d—unimodal codes. By analyzing the properties of these codes, a lower bound on the minimum achievable expected beamwidth is provided. The results reveal potential performance improvements in terms of the BA duration it takes to achieve a fixed expected width of the UR over the state-of-the-art BA methods which do not consider the effect of delay. Abbas Khalili, Shahram Shahsavari, Mohammad Ali Amir Khojastepour, Elza Erkip |
ISIT | 1 |
| 2020 | On Throughput of Millimeter Wave MIMO Systems with Low Resolution ADCsabstractUse of low resolution analog to digital converters (ADCs) is an effective way to reduce the high power consumption of millimeter wave (mmWave) receivers. In this paper, a receiver with low resolution ADCs based on adaptive thresholds is considered in downlink mmWave communications in which the channel state information is not known a-priori and acquired through channel estimation. A performance comparison of low-complexity algorithms for power and ADC allocation among transmit and receive terminals, respectively, is provided. Through simulation of practical mmWave cellular networks, it is shown that the use of low resolution ADCs does not significantly degrade the system throughput (as compared to a conventional fully digital high resolution receiver) when using the adaptive threshold receiver in conjunction with simple power and ADC allocation strategies. Abbas Khalili, Shahram Shahsavari, Farhad Shirani Chaharsooghi, Elza Erkip, Yonina C. Eldar |
ICASSP | 1 |
| 2020 | Capacity Bounds for Communication Systems with Quantization and Spectral ConstraintsabstractLow-resolution digital-to-analog and analog-to-digital converters (DACs and ADCs) have attracted considerable attention in efforts to reduce power consumption in millimeter wave (mmWave) and massive MIMO systems. This paper presents an information-theoretic analysis with capacity bounds for classes of linear transceivers with quantization. The transmitter modulates symbols via a unitary transform followed by a DAC and the receiver employs an ADC followed by the inverse unitary transform. If the unitary transform is set to an FFT matrix, the model naturally captures filtering and spectral constraints which are essential to model in any practical transceiver. In particular, this model allows studying the impact of quantization on out-of-band emission constraints. In the limit of a large random unitary transform, it is shown that the effect of quantization can be precisely described via an additive Gaussian noise model. This model in turn leads to simple and intuitive expressions for the power spectrum of the transmitted signal and a lower bound to the capacity with quantization. Comparison with non-quantized capacity and a capacity upper bound that does not make linearity assumptions suggests that while low resolution quantization has minimal impact on the achievable rate at typical parameters in 5G systems today, satisfying out-of-band emissions are potentially much more of a challenge. Sourjya Dutta, Abbas Khalili, Elza Erkip, Sundeep Rangan |
ISIT | 2 |
| 2020 | On Optimal Multi-user Beam Alignment in Millimeter Wave Wireless SystemsabstractDirectional transmission patterns (a.k.a. narrow beams) are the key to wireless communications in millimeter wave (mmWave) frequency bands which suffer from high path loss and severe shadowing. In addition, the propagation channel in mmWave frequencies incorporates only a few number of spatial clusters requiring a procedure to align the corresponding narrow beams with the angle of departure (AoD) of the channel clusters. The objective of this procedure, called beam alignment (BA) is to increase the beamforming gain for subsequent data communication. Several prior studies consider optimizing BA procedure to achieve various objectives such as reducing the BA overhead, increasing throughput, and reducing power consumption. While these studies mostly provide optimized BA schemes for scenarios with a single active user, there are often multiple active users in practical networks. Consequently, it is more efficient in terms of BA overhead and delay to design multi-user BA schemes which can perform beam management for multiple users collectively. This paper considers a class of multi-user BA schemes where the base station performs a one shot scan of the angular domain to simultaneously localize multiple users. The objective is to minimize the average of expected width of remaining uncertainty regions (UR) on the AoDs after receiving users' feedbacks. Fundamental bounds on the optimal performance are analyzed using information theoretic tools. Furthermore, a BA optimization problem is formulated and a practical BA scheme, which provides significant gains compared to the beam sweeping used in 5G standard, is proposed. Abbas Khalili, Shahram Shahsavari, Mohammad Ali Amir Khojastepour, Elza Erkip |
ISIT | 1 |
| 2019 | Tradeoff Between Delay and High SNR Capacity in Quantized MIMO SystemsabstractAnalog-to-digital converters (ADCs) are a major contributor to the power consumption of multiple-input multiple-output (MIMO) communication systems with large number of antennas. Use of low resolution ADCs has been proposed as a means to decrease power consumption in MIMO receivers. However, reducing the ADC resolution leads to performance loss in terms of achievable transmission rates. In order to mitigate the rate-loss, the receiver can perform analog processing of the received signals before quantization. Prior works consider one-shot analog processing where at each channel-use, analog linear combinations of the received signals are fed to a set of one-bit threshold ADCs. In this paper, a receiver architecture is proposed which uses a sequence of delay elements to allow for blockwise linear combining of the received analog signals. In the high signal to noise ratio regime, it is shown that the proposed architecture achieves the maximum achievable transmission rate given a fixed number of one-bit ADCs. Furthermore, a tradeoff between transmission rate and the number of delay elements is identified which quantifies the increase in maximum achievable rate as the number of delay elements is increased. Abbas Khalili, Farhad Shirani Chaharsooghi, Elza Erkip, Yonina C. Eldar |
ISIT | 1 |
| 2019 | On Multiterminal Communication over MIMO Channels with One-bit ADCs at the ReceiversabstractThe fundamental limits of communication over multiple-input multiple-output (MIMO) networks are considered when a limited number of one-bit analog to digital converters (ADC) are used at the receiver terminals. Prior works have mainly focused on point-to-point communications, where receiver architectures consisting of a concatenation of an analog processing module, a limited number of one-bit ADCs with non-adaptive thresholds, and a digital processing module are considered. In this work, a new receiver architecture is proposed which utilizes adaptive threshold one-bit ADCs - where the ADC thresholds at each channel-use are dependent on the channel outputs in the previous channel-uses - to mitigate the quantization rate-loss. Coding schemes are proposed for communication over the point-to-point and broadcast channels, and achievable rate regions are derived. In the high SNR regime, it is shown that using the proposed architectures and coding schemes leads to the largest achievable rate regions among all receiver architectures with the same number of one-bit ADCs. Abbas Khalili, Farhad Shirani Chaharsooghi, Elza Erkip, Yonina C. Eldar |
ISIT | 1 |
| 2018 | On MIMO Channel Capacity with Output Quantization ConstraintsabstractThe capacity of a Multiple-Input Multiple-Output (MIMO) channel in which the antenna outputs are processed by an analog linear combining network and quantized by a set of threshold quantizers is studied. The linear combining weights and quantization thresholds are selected from a set of possible configurations as a function of the channel matrix. The possible configurations of the combining network model specific analog receiver architectures, such as single antenna selection, sign quantization of the antenna outputs or linear processing of the outputs. An interesting connection between the capacity of this channel and a constrained sphere packing problem in which unit spheres are packed in a hyperplane arrangement is shown. From a high-level perspective, this follows from the fact that each threshold quantizer can be viewed as a hyperplane partitioning the transmitter signal space. Accordingly, the output of the set of quantizers corresponds to the possible regions induced by the hyperplane arrangement corresponding to the channel realization and receiver configuration. This connection provides a number of important insights into the design of quantization architectures for MIMO receivers; for instance, it shows that for a given number of quantizers, choosing configurations which induce a larger number of partitions can lead to higher rates1. Abbas Khalili, Stefano Rini, Luca Barletta, Elza Erkip, Yonina C. Eldar |
ISIT | 1 |