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Shan-Chien Fang

dblp:11/10050 · DBLP profile ↗
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3ranked-venue papers
0as first author
0since 2021 · last 2013
—ORCID · none

Domains — the database's venue-derived domains; a paper can count in several

Systems, architecture and hardware · 3Software engineering, systems software and programming languages · 1

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 architecture, parallel and distributed computing, and storage systems
1 paper
Electronic design automation · 67% Energy-efficient computing · 33%

Topics — the 3 heaviest of 3, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Electronic design automation
power analysis
0.112011
PowerDepot: integrating IP-based power modeling with ESL power analysis for multi-core SoC designs · DAC 2011
Energy-efficient computing
power modeling
0.112011
PowerDepot: integrating IP-based power modeling with ESL power analysis for multi-core SoC designs · DAC 2011
Electronic design automation
system-level design
0.112011
PowerDepot: integrating IP-based power modeling with ESL power analysis for multi-core SoC designs · DAC 2011

Methods — techniques the papers use, named apart from their topics

systemc · 0.1gate-level simulation · 0.1
YearPublicationVenuePosition
2013 Process-Resilient Low-Jitter All-Digital PLL via Smooth Code-Jumping
abstract
For an all-digital phase-locked loop, the frequency range supported is often segmented, and this could cause significant jitter when the operating condition (such as the supply voltage and/or the temperature) changes. To address this issue, we present a scheme, called smooth code-jumping, that can stitch together the segmented frequency profile of a digitally controlled oscillator (DCO) into a continuous range, and thereby reduce the jitter significantly. This scheme incorporates a new mirror-DCO-based calibration scheme to take into account process variations. We validate this scheme by test chips in 0.18-μm CMOS technology. Measurement results show that, when operating at 1 GHz, the rms jitter is 4.3 ps (0.43%UI) and the peak-to-peak jitter is 35.6 ps (3.56%UI), respectively.
Pei-Ying Chao, Chao-Wen Tzeng, Shi-Yu Huang, Chia-Chien Weng, Shan-Chien Fang
IEEE Trans. Very Large Scale Integr. Syst.5
2011 PowerDepot: integrating IP-based power modeling with ESL power analysis for multi-core SoC designs
abstract
In this paper, we introduce an integrated power methodology for multi-core SoC designs. It features not only a bottom-up IP-based power modeling for all kinds of IP components ranging from hardware accelerators, processors, and memory blocks, but also a top-down system-wide ESL power estimation formulation. By linking these two methods of different levels of abstraction, one can thereby easily profile the power consumption of a multi-core SoC running a complete application while retaining high accuracy of estimation. We have realized the proposed methodology into two software tools: (1) PowerMixerIP, an IP-based power model builder that uses different strategies to build versatile power models for general IPs and processor IPs, and (2) PowerDepot, an ESL power estimation tool that can interact with the users in a simple way and then generate the needed power monitors to be embedded into the ESL design in SystemC for super-fast power estimation so as to facilitate early-stage system-wide power profiling. The application of these tools on a dual-core real-life designs executing an H. 264 shows that the average error of the ESL power estimation is less than 2%, while the speedup can be up to 2400X when comparing to gate-level simulation.
Chen-Wei Hsu, Jia-Lu Liao, Shan-Chien Fang, Chia-Chien Weng, Shi-Yu Huang, Wen-Tsan Hsieh, Jen-Chieh Yeh
DAC3
2011 Black-box leakage power modeling for cell library and SRAM compiler
abstract
In this paper, we present an automatic leakage power modeling method for standard cell library as well as SRAM compiler. For this problem, there are two major challenges - (1) the high sensitivity of leakage power to the temperature (e.g., the leakage power of an inverter can be different by 19.28X when temperature rises from 25°C to 100°C in 90nm technology), and (2) the large number of models to be built (e.g., there could be 80,835 SRAM macros supported by an SRAM compiler). Our method achieves high accuracy efficiently by two formula-based prediction techniques. First of all, we incorporate a quick segmented exponential interpolation scheme to take into account the effects of the temperature. Secondly, we use a MUX-oriented linear extrapolation scheme, which is so accurate that it allows us to build the leakage power models for all SRAM macros based on linear regression using only the simulation results of 9 small-sized SRAM macros. Experimental results show that this method is not only accurate but also highly efficient.
Chun-Kai Tseng, Shi-Yu Huang, Chia-Chien Weng, Shan-Chien Fang, Ji-Jan Chen
DATE4