<演講公告>Design Techniques for Low-Power Successive-Approximation-Register Analog-to-Digital Converters,歡迎自由到場聽講^^
講者 : Professor Shiuh-hua Wood Chiang(江旭樺教授), Brigham Young University
時間:107年8月14日(二) 上午10:00-11:30, 8月15日(三) 上午10:00-11:30
地點:交通大學工程四館四樓 AaPaTo Space(四樓中庭電梯旁)
【Title】
Design Techniques for Low-Power Successive-Approximation-Register Analog-to-Digital Converters
【Abstract】
This two-part course consists of recent lessons on analog/mixed-signal techniques for successive-approximation-register (SAR) analog-to-digital converters (ADC). In the first part, I will share two recent works on the building blocks for low-power ADCs. Specifically, I will discuss the design considerations and results of low-power charge-steering amplifiers and high-precision capacitor mismatch measurement. In the second part, I will discuss the fundamentals of the SAR ADC and present recent design examples from my group. The discussions will cover several innovative circuit and architectural-level techniques to achieve high power efficiencies in SAR.
【Bio】
Shiuh-hua Wood Chiang received the B.S. degree in computer engineering from the University of Waterloo in 2007, the M.S. degree in electrical engineering from the University of California, Irvine in 2009, and the Ph.D. degree in electrical engineering from the University of California, Los Angeles in 2013. He was a postdoctoral scholar in the Communication Circuits Laboratory at the University of California, Los Angeles, in 2013. He was a Senior Engineer at Qualcomm from 2013 to 2014. He joined Brigham Young University in 2014 as an Assistant Professor. He is currently the director of the Micropower Circuits Laboratory. His research interests include RF/analog/mixed-signal integrated circuits. He is currently serving as the Vice-Chair of the IEEE Solid-State Circuits Society (SSCS) Utah Chapter and he is a member of the Editorial Review Board for IEEE Solid-State Circuits Letters (SSCL).
同時也有2部Youtube影片,追蹤數超過2萬的網紅Hi Fi 發燒台,也在其Youtube影片中提到,T2 SPECIFICATION: DSD SUPPORT: Up to DSD512 22.6MHz, 1-bit PCM SUPPORT: Up to 384kHz, 16–32-bit, Stereo ANALOG OUTPUT STAGE: Dual ESS SABRE32 ES9028Pr...
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ขายคอมเล่นเกม+ทำงานกราฟิก ราคาถูก สเปคแรงๆ
CPU: i7-3770 ตัวลองท็อป Generation 3 แรงๆ
VGA : ASUS STRIX GTX750TI OC 2G DDR5 เล่นเกมลื่นๆพร้อมระบายความร้อนโครตดี
RAM : 6 G Kingston Hyperx Fury bus 1600 ddr3 มีซิงก์ระบายความร้อนเย็นเจี๊ยบบ
HDD : Western Digital Blue 500G
Mainboard : Biostar Th61a สามารถอัพ ram ได้สุงสุด 16G Solid Capacitor 100% ภาคจ่ายไฟทนๆใช้งานได้ยาวๆ
ซิงก์ CPU : DEEPCOOL ICE EDGE MINI FS V2 อย่างหล่อเลยตัวนี้ ระบายความร้อนได้โครตดี
เคส : NEOLUTION E-SPORTE GM8005 มีไฟ LED ปรับสีได้ สามารถปรับรูปแบบไฟได้ 4 โหมด
PSU : NEOLUTION E-SPORTE POWER ETERNITY 850W
ราคา 16,900 บาท
ติดต่อ ป๊อก 082-749-8688
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【Talk】(2014.5.30)Memristor Crossbar Sneak Path Problem:Challenges and Solutions
Welcome all to join it !!!
Speaker : Dr. Khaled N. Salama
Associate Professor and Founding Program Chair, EE Department, KAUST
Time : May 30, 2014(Friday) pm: 13:30- 15:00
Venue : 交通大學(光復校區)工程四館Room 528(NCTU Eng. Building 4)
Organizer: IEEE EDS NCTU Student Branch Chapter 交大學生分會
Co-Sponsor: IEEE EDS Taipei Chapter台北分會
Dr. Khaled N. Salama
Associate Professor and Founding Program Chair of Electrical Engineering,
King Abdullah University of Science and Technology (KAUST)
Kingdom of Saudi Arabia
Dr. Salama received his Bachelor's degree with honors from the Electronics and Communications Department at Cairo University in Egypt in 1997, and his Master's and Doctorate degrees from the Electrical Engineering Department at Stanford University in the United States, in 2000 and 2005 respectively. He was an assistant Professor at RPI between 2005 and 2009. He joined KAUST in January 2009 and was the founding program chair till August 2011. His work on CMOS sensors for molecular detection has been funded by the National Institutes of Health (NIH) and the Defense Advanced Research Projects Agency (DARPA), awarded the Stanford-Berkeley Innovators Challenge Award in biological sciences and was acquired by Lumina Inc. He is the author of 90 papers and 8 patents on low-power mixed-signal circuits for intelligent fully integrated sensors and nonlinear electronics specially memristor devices. He is a senior member of IEEE.
Memristor Crossbar Sneak Path Problem:Challenges and Solutions
Abstracts
The memristor (M) is considered to be the fourth two-terminal passive element in electronics, alongside the resistor (R), the capacitor (C), and the inductor (L). Its existence was postulated in 1971, but its first implementation was reported in 2008. Where was it hiding all that time and what can we do with it? Come and learn how the memristor completes the roster of electronic devices much like a missing particle that physicists seek to complete their tableaus. The memristor (memory resistor) is a promising candidate in replacing CMOS based memories and solid-state drives. Memristor-based memories are retainable and fabricated in much higher density than conventional CMOS memories. In addition, they do not need the energy-consuming refresh cycles required by the current CMOS memories. However, there are numerous challenges that need to be addressed before the memristor genuinely replaces current memory technologies, which is the motivation behind this research effort.
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T2 SPECIFICATION:
DSD SUPPORT:
Up to DSD512 22.6MHz, 1-bit
PCM SUPPORT:
Up to 384kHz, 16–32-bit, Stereo
ANALOG OUTPUT STAGE:
Dual ESS SABRE32 ES9028Pro DAC chips
Fully balanced layout with high-quality components
Completely redesigned analogue buffer includes audiograde output capacitor and ultra-low-noise and high dynamic range
Discreet clock system for precision timing
Precision 32-bit internal digital volume
UPSAMPLING RATES & BIT DEPTHS:
DSD128 upsampling option for all files
PCM 384kHz upsampling option for all files
DIGITAL OUTPUT STAGE:
USB:
Native DSD512 support
PCM 44.1–384kHz, 16–32-bit, Stereo
BNC SPDIF:
PCM 44.1kHz–192kHz, 16–24-bit
DSD (DoP, DSD over PCM) 2.8MHz, 1-bit
POWER SUPPLY:
Internal 100–240V AC auto-ranging
Low-noise
Shielded power supply compartment for reduced interference with delicate electronics
PHYSICAL:
FINISH:
Black anodised brushed aluminium
Raw brushed aluminium
LUMIN (SOLID ALUMINIUM CHASSIS):
350mm (W), 345mm (D), 60mm (H), 6kg
LUMIN AMP SPECIFICATION
OPERATING MODE: (selectable)
Stereo, Dual Mono or Bridged mode
INPUT: (selectable)
1 x XLR pair (pin 2 hot), 1 x RCA pair
POWER:
160W per channel into 8Ω
320W per channel into 4Ω
640W into 8Ω (Bridged)
POWER SUPPLY:
Available in 220–240V AC and 110–120V AC versions ~ 50/60Hz
POWER CONSUMPTION:
Standby 0.5W
Idle 40W
Max 700W
FREQUENCY RESPONSE:
20hz - 40000hz ± 0.1db
SIGNAL TO NOISE RATIO:
103db, unweighted
INPUT IMPEDANCE:
200kΩ Balanced (XLR)
100kΩ Unbalanced (RCA)
OUTPUT IMPEDANCE:
0.1Ω
INPUT SENSITIVITY:
1.16Vrms
GAIN:
+26dB (Stereo, Dual Mono)
+32dB (Bridged)
PROTECTION:
DC, overload and overheating protection
FINISHES:
Black anodized brushed aluminium or Raw brushed aluminium
CONSTRUCTION:
CNC-machined from a single billet for front, top and sides. Thick 8mm walls, rear panel and base plate
DIMENSIONS:
350mm (W), 374mm (D), 104mm (H)
WEIGHT:
19kg
Hi Fi 發燒台另設Facebook群組Hi Fi 發燒圈,歡迎加入:
https://www.facebook.com/groups/454356881290493/
#音響技術 #發燒圈 #Lee388 #音響 #LUMIN #T2 #AMP #Audio
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by OverclockzoneTV#2 EP.143
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solid capacitor 在 What are Aluminum Polymer Capacitors? - YouTube 的美食出口停車場
Choosing the right capacitors can make a big difference in the reliability, longevity, cost, and board size of your design. ... <看更多>