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Dive into the research topics where Jaleh Komaili is active.

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Featured researches published by Jaleh Komaili.


international solid-state circuits conference | 2009

Single-chip multiband WCDMA/HSDPA/HSUPA/EGPRS transceiver with diversity receiver and 3G DigRF interface without SAW filters in transmitter / 3G receiver paths

Tirdad Sowlati; B. Agarwal; Joshua Haeseok Cho; Thomas Obkircher; Mohamed El Said; John Vasa; Masoud Kahrizi; Elias Dagher; Wei-Hong Chen; Martin Vadkerti; Georgi Taskov; Utku Seckin; Hamid R. Amir Firouzkouhi; Behzad Saeidi; Hasan Akyol; Yunyoung Choi; Amir Mahjoob; Sandeep D'Souza; Chieh-Yu Hsieh; David Guss; Dan Shum; Dean A. Badillo; Imtiyaz Ron; Doris Ching; Feng Shi; Yong He; Jaleh Komaili; Aravind Loke; R. Pullela; Engin Pehlivanoglu

There has been an increased demand for 3G cell phones that support multiple bands of operation and are backward compatible with the 2G/2.5G standard to provide coverage where 3G networks have not yet been fully deployed. The transceiver design for such a handset becomes complicated with the need for separate transceivers for 3G and 2G/2.5G [1,2] or for multiple inter-stage receive / transmit SAW filters [3]. A single-chip transceiver that operates as a multimode multiband radio and eliminates the inter-stage receive / transmit SAW filters is presented. Figure 6.3.1 shows the block diagram of the transceiver with 7 primary and 4 diversity bands in WCDMA, and quad band in GSM. The transceiver is designed to operate in any of the UTRA bands 1 to 10, with the exception of band 7. It supports HSDPA (Cat 1–12), HSUPA (Cat 1–6), EGPRS (Classes 1–12, 30–39), and compressed mode of EGPRS / WCDMA operation. The transceiver is compliant with 3G DigRF interface 3.09.


international solid-state circuits conference | 2009

An integrated closed-loop polar transmitter with saturation prevention and low-IF receiver for quad-band GPRS/EDGE

R. Pullela; Shahrzad Tadjpour; Dmitriy Rozenblit; William J. Domino; Thomas Obkircher; Mohamed El Said; Tirdad Sowlati; Darioush Agahi; Wei-Hong Chen; Dean A. Badillo; Masoud Kahrizi; Jaleh Komaili; Stephane Richard Marie Wloczysiak; Utku Seckin; Yunyoung Choi; Hasan Akyol; Martin Vadkerti; Amir Mahjoob; Hamid R. Amir Firouzkouhi; Dan Shum; Rajendra Suhanthan; Nooshin D. Vakilian; Tom Valencia; Christophe Dantec; Aaron Paff; Mona Ahooie

This paper describes a 2.5G cellular transceiver with standard DigRF interface, implemented in a low-cost 0.13µm CMOS process. This is the first CMOS single-chip, polar closed-loop transmitter, excluding the power amplifier (PA). This transmitter achieves an efficiency of 26% in EDGE mode by linearizing a saturated PA in a closed-loop feedback system. This is much higher than the typical 15-to-18% efficiency of systems using a linear PA [1]. Typical high-band/ low-band performance of −62/−64dBc in 30kHz for 400kHz offset spectral mask and 1.4/1.7% EVM in EDGE mode are significantly better than those reported earlier [1–3]. Using a low-noise quadrature mixer topology, the receiver, including T/R switch and SAW filters, achieves a sensitivity of −110dBm. The RF solution, consisting of PAs in a multi-chip integrated antenna switch module, SAW filters with integrated matching components and the transceiver, shown in Fig. 6.1.1, is the smallest form factor available in the market today.


radio and wireless symposium | 2008

Adaptive filtering using LMS for digital TX IM2 cancellation in WCDMA receiver

Masoud Kahrizi; Jaleh Komaili; John E. Vasa; Darioush Agahi

In this paper, a digital technique for canceling second-order inter-modulation (IM2) of transmitter (TX) leakage in WCDMA direct-conversion receivers is described. Digital TX signal is used as a reference to generate a digital IM2 signal and then is passed through the auxiliary digital filter chain as in receiver chain. Adaptive least mean square (LMS) algorithm combined with a delay estimator provides a very robust technique to act as a matched filter to estimate the channel which causes leakage from TX to RX. The delay between the receive path and the reference path is estimated by peak correlation detection. This IM2 cancellation works well even though the actual IM2 components are far below the desired signal and thermal noise.


Archive | 1998

Adaptive wireless communication receiver

Earl C. La Crescenta Cox; David O. Anderton; Jaleh Komaili; Yongbing Wan; Scott Walley


Archive | 1998

Traffic channel quality estimation from a digital control channel

Yongbing Wan; Jaleh Komaili


Archive | 2002

Low noise switching voltage regulator

Chris Levesque; Jaleh Komaili; Jason D. Millard


Archive | 2010

Circuits, systems, and methods for managing automatic gain control in quadrature signal paths of a receiver

Jaleh Komaili; John E. Vasa; Thomas Obkircher


Archive | 2008

LMS Adaptive Filter for Digital Cancellation of Second Order Inter-Modulation Due to Transmitter Leakage

Masoud Kahrizi; Jaleh Komaili; John E. Vasa


Archive | 2001

Power amplifier saturation detection and compensation

Jaleh Komaili; Ricke W. Clark


Archive | 2011

Systems and methods for power control in a multiple standard mobile transmitter

Dmitriy Rozenblit; Masoud Kahrizi; Jaleh Komaili; Rajasekhar Pullela; Shahrzad Tadjpour

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R. Pullela

University of California

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John Vasa

Marvell Technology Group

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