EDBT 2026 Demo / reviewers in the wild / expert
Yingjun Xia
dblp:222/6966
· DBLP profile ↗
4ranked-venue papers
1as first author
4since 2021 · last 2026
0000-0002-3443-4013ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 3 · 1 first-author · 3 since 2021Artificial intelligence and machine learning · 1 · 1 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Self-training framework based on multi-granularity local cores for class-imbalanced semi-supervised classification in business applications
Junnan Li 0004, Xiaosheng Su, Leo Wang, Jicheng Ma, Yingjun Xia, Yuqing Gu, Shun Fu, Wenli Xu, Ziqiang He |
Neural Networks | 5 |
| 2024 | Theory and Low-Power Design of Moving Accumulative Sign FilterabstractA novel down-sampling filter named moving accumulative sign filter (MASF) is proposed for low-power down-sampling of large-scale binary and ternary data. Besides, the MASF has greatly circuit realization advantages than state-of-the-art cascaded-integrator-comb (CIC) filter, especially in the area of low-power design. The theory of MASF is proposed and introduced comprehensively, including the algorithm model, transfer function, and frequency response characteristics. The pipeline voting architecture is applied to the implementation of the MASF to improve the speed of data processing, which simplifies the circuit structure and reduce the power consumption. The MASF circuits of general application based on pipeline voting are designed for binary and ternary signals only using D flip-flop and logic gates. The area and power consumption of MASF are reduced by 86% and 88% compared with CIC filter under the same conditions on FPGA. What’s more, a hardware-friendly pooling algorithm named polar-pooling is proposed based on MASF for binary and ternary feature maps, which greatly reduces the time and space complexity of pooling. Compared with max-pooling and average-pooling, the processing time of polar-pooling is reduced by more than 75% for a$200\times 200$binary image. The two-stage MASF circuit for ternary signal processing is implemented at 40-nm CMOS process, compared with state-of-the-arts cascade-of-integrators filter which cascading two integrators, the normalized power consumption of proposed two-stage MASF circuit has 67% reduction and the area has 75% reduction. Yingjun Xia, Jianjiang Luo, Peng Yin 0004, Dengwei Yan, Xichuan Zhou, Amine Bermak, Fang Tang |
IEEE Trans. Circuits Syst. I Regul. Pap. | 1 |
| 2024 | High Logic Density Cyclic Redundancy Check and Forward Error Correction Logic Sharing Encoding Circuit for JESD204C ControllerabstractCyclic redundancy check (CRC) and Forward error correction (FEC) encoding are widely used in high-speed information transceiver systems such as PCIe, JESD204C and fiber-optic communications to detect or correct errors in data. Traditionally, the CRC and FEC encoding circuits in JESD204C are implemented independently of each other, which consumes a significant amount of hardware resources. Therefore, a high logic density CRC and FEC logic sharing (CFLS) encoding circuit for JESD204C controller is proposed in this paper, and the logic density of the encoding circuit is improved by sharing the registers and common encoding factor (CEF). Meanwhile, a straightforward critical path delay (CPD) calculation method was proposed to assess whether the data transmission delay satisfies the requirements of CFLS circuits. This method is derived in conjunction with the manipulation of the common factor matrix, thus reducing computational complexity. The CFLS encoding circuit proposed in this paper is verified with an FPGA platform, and the results show that the circuit can realize CRC and FEC function with a 21.96% reduction in hardware resources, compared to the traditional methods. The area of the JESD204C controller with CFLS encoding circuits is 0.09 mm2, by using a 40-nm CMOS process, and the power consumption is 24.66 mW according to the post-layout simulation. Peng Yin 0004, Yingjun Xia, Jinlong Zhang, Mingguo Liu, Weizhou Hou, Amine Bermak, Fang Tang |
IEEE Trans. Circuits Syst. I Regul. Pap. | 3 |
| 2021 | A Low-Area and Low-Power Comma Detection and Word Alignment Circuits for JESD204B/C ControllerabstractIn an 8B/10B mode giga-bit-per-second serial data transactions, the de-serialized data is sent to a comma detection and word alignment (CDWA) module to identify the word boundaries, which is a prerequisite in the high-speed transceivers such as PCIe, USB and JESD204B/C. In order to ensure that the comma code (/K/-code) can be correctly detected. Ten 10-bit comma detector cells are adopted in a typical CDWA module, which require a complex circuitry and an enormous power consumption. To overcome these limitations, a low-area and low-power CDWA circuit for JESD204B/C transceiver chip in 8B/10B mode has been proposed in this paper. The bit width of the detector cells can be truncated from 10 to 6 under the condition, that CDWA module can detect a complete comma code correctly. On one hand, the proposed CDWA module is verified with a FPGA development platform with the reduction of the hardware resources and power consumption to 31.72% and 20.11% respectively as compared to the typical structure available. On the other hand, a 10-Gbps transceiver chip with the proposed CDWA module is fabricated with a 55-nm CMOS process and the word alignment function of the proposed module is proved by the measurement results. The area of this transceiver chip including 2× transmitting links and 2× receiving links is 2.89 mm2, and the power consumption is 467.8 mW, under a maximum data transmission rate of 10 Gbps. Peng Yin 0004, Yingjun Xia, Tianmei Shen, Xiao Guan, Umar Mohammad, Jiandong Zang, Dongbing Fu, Xiaoping Zeng, Fang Tang, Amine Bermak |
IEEE Trans. Circuits Syst. I Regul. Pap. | 3 |