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You searched for subject:(dynamic element matching). Showing records 1 – 7 of 7 total matches.

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Delft University of Technology

1. Bellamkonda, R. (author). Combined Capacitance and Temperature to Digital Converter.

Degree: 2015, Delft University of Technology

This thesis describes the design and measurement of an IC which can digitize both capacitance and temperature. Capacitance sensing functionality is added to an existing… (more)

Subjects/Keywords: DAC; baseline capacitance; ADC; dynamic element matching; FOM

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APA (6th Edition):

Bellamkonda, R. (. (2015). Combined Capacitance and Temperature to Digital Converter. (Masters Thesis). Delft University of Technology. Retrieved from http://resolver.tudelft.nl/uuid:0d6d9b8d-6091-4379-b950-aeb4c73a9817

Chicago Manual of Style (16th Edition):

Bellamkonda, R (author). “Combined Capacitance and Temperature to Digital Converter.” 2015. Masters Thesis, Delft University of Technology. Accessed October 20, 2020. http://resolver.tudelft.nl/uuid:0d6d9b8d-6091-4379-b950-aeb4c73a9817.

MLA Handbook (7th Edition):

Bellamkonda, R (author). “Combined Capacitance and Temperature to Digital Converter.” 2015. Web. 20 Oct 2020.

Vancouver:

Bellamkonda R(. Combined Capacitance and Temperature to Digital Converter. [Internet] [Masters thesis]. Delft University of Technology; 2015. [cited 2020 Oct 20]. Available from: http://resolver.tudelft.nl/uuid:0d6d9b8d-6091-4379-b950-aeb4c73a9817.

Council of Science Editors:

Bellamkonda R(. Combined Capacitance and Temperature to Digital Converter. [Masters Thesis]. Delft University of Technology; 2015. Available from: http://resolver.tudelft.nl/uuid:0d6d9b8d-6091-4379-b950-aeb4c73a9817

2. Gupta, Amit Kumar. Design techniques for low noise and high speed A/D converters.

Degree: MS, Electrical Engineering, 2009, Texas A&M University

 Analog-to-digital (A/D) conversion is a process that bridges the real analog world to digital signal processing. It takes a continuous-time, continuous amplitude signal as its… (more)

Subjects/Keywords: A/D converter; dynamic element matching; drivers

…46 V SECOND ORDER DYNAMIC ELEMENT MATCHING TECHNIQUES FOR LOW OSR SIGMA-DELTA ADC… …58 Second order dynamic element matching… …69 6.2.1 Dynamic element matching… …67 Fig. 6.1. Dynamic element matching… …driver, the sampling network and the dynamic element-matching algorithm. We also studied… 

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APA (6th Edition):

Gupta, A. K. (2009). Design techniques for low noise and high speed A/D converters. (Masters Thesis). Texas A&M University. Retrieved from http://hdl.handle.net/1969.1/ETD-TAMU-1666

Chicago Manual of Style (16th Edition):

Gupta, Amit Kumar. “Design techniques for low noise and high speed A/D converters.” 2009. Masters Thesis, Texas A&M University. Accessed October 20, 2020. http://hdl.handle.net/1969.1/ETD-TAMU-1666.

MLA Handbook (7th Edition):

Gupta, Amit Kumar. “Design techniques for low noise and high speed A/D converters.” 2009. Web. 20 Oct 2020.

Vancouver:

Gupta AK. Design techniques for low noise and high speed A/D converters. [Internet] [Masters thesis]. Texas A&M University; 2009. [cited 2020 Oct 20]. Available from: http://hdl.handle.net/1969.1/ETD-TAMU-1666.

Council of Science Editors:

Gupta AK. Design techniques for low noise and high speed A/D converters. [Masters Thesis]. Texas A&M University; 2009. Available from: http://hdl.handle.net/1969.1/ETD-TAMU-1666


Iowa State University

3. Xing, Hanqing. Fully digital-compatible built-in self-test solutions to linearity testing of embedded mixed-signal functions.

Degree: 2008, Iowa State University

 Mixed-signal circuits, especially analog-to-digital and digital-to-analog converters, are the most widely used circuitry in electronic systems. In the most of the cases, mixed-signal circuits form… (more)

Subjects/Keywords: Built-in self-test; Data converters; Deterministic dynamic element matching; Integral nonlinearity; reduced-code testing; Electrical and Computer Engineering

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APA (6th Edition):

Xing, H. (2008). Fully digital-compatible built-in self-test solutions to linearity testing of embedded mixed-signal functions. (Thesis). Iowa State University. Retrieved from https://lib.dr.iastate.edu/etd/11192

Note: this citation may be lacking information needed for this citation format:
Not specified: Masters Thesis or Doctoral Dissertation

Chicago Manual of Style (16th Edition):

Xing, Hanqing. “Fully digital-compatible built-in self-test solutions to linearity testing of embedded mixed-signal functions.” 2008. Thesis, Iowa State University. Accessed October 20, 2020. https://lib.dr.iastate.edu/etd/11192.

Note: this citation may be lacking information needed for this citation format:
Not specified: Masters Thesis or Doctoral Dissertation

MLA Handbook (7th Edition):

Xing, Hanqing. “Fully digital-compatible built-in self-test solutions to linearity testing of embedded mixed-signal functions.” 2008. Web. 20 Oct 2020.

Vancouver:

Xing H. Fully digital-compatible built-in self-test solutions to linearity testing of embedded mixed-signal functions. [Internet] [Thesis]. Iowa State University; 2008. [cited 2020 Oct 20]. Available from: https://lib.dr.iastate.edu/etd/11192.

Note: this citation may be lacking information needed for this citation format:
Not specified: Masters Thesis or Doctoral Dissertation

Council of Science Editors:

Xing H. Fully digital-compatible built-in self-test solutions to linearity testing of embedded mixed-signal functions. [Thesis]. Iowa State University; 2008. Available from: https://lib.dr.iastate.edu/etd/11192

Note: this citation may be lacking information needed for this citation format:
Not specified: Masters Thesis or Doctoral Dissertation

4. Wang, G. CMOS bandgap references and temperature sensors and their applications.

Degree: 2005, Optima Grafische Communicatie

 Two main parts have been presented in this thesis: device characterization and circuit. In integrated bandgap references and temperature sensors, the IC(VBE, characteristics of bipolar… (more)

Subjects/Keywords: CMOS technology; substrate bipolar transistors; temperature sensor; bandgap reference; voltage-to-period converter; three signal auto-calibration; dynamic element matching

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APA (6th Edition):

Wang, G. (2005). CMOS bandgap references and temperature sensors and their applications. (Doctoral Dissertation). Optima Grafische Communicatie. Retrieved from http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0

Chicago Manual of Style (16th Edition):

Wang, G. “CMOS bandgap references and temperature sensors and their applications.” 2005. Doctoral Dissertation, Optima Grafische Communicatie. Accessed October 20, 2020. http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0.

MLA Handbook (7th Edition):

Wang, G. “CMOS bandgap references and temperature sensors and their applications.” 2005. Web. 20 Oct 2020.

Vancouver:

Wang G. CMOS bandgap references and temperature sensors and their applications. [Internet] [Doctoral dissertation]. Optima Grafische Communicatie; 2005. [cited 2020 Oct 20]. Available from: http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0.

Council of Science Editors:

Wang G. CMOS bandgap references and temperature sensors and their applications. [Doctoral Dissertation]. Optima Grafische Communicatie; 2005. Available from: http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; urn:NBN:nl:ui:24-uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0 ; http://resolver.tudelft.nl/uuid:cc957424-7611-4dd5-b84c-91ee9b1283d0


Texas A&M University

5. Padyana, Aravind 1983-. Design Considerations for Wide Bandwidth Continuous-Time Low-Pass Delta-Sigma Analog-to-Digital Converters.

Degree: MS, Electrical Engineering, 2010, Texas A&M University

 Continuous-time (CT) delta-sigma (ΔΣ) analog-to-digital converters (ADC) have emerged as the popular choice to achieve high resolution and large bandwidth due to their low cost,… (more)

Subjects/Keywords: self-calibration; dynamic element matching; multi-bit dac; digital-to-analog converter; clock jitter tolerance; delta-sigma adc; analog-to-digital converter

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APA (6th Edition):

Padyana, A. 1. (2010). Design Considerations for Wide Bandwidth Continuous-Time Low-Pass Delta-Sigma Analog-to-Digital Converters. (Masters Thesis). Texas A&M University. Retrieved from http://hdl.handle.net/1969.1/148453

Chicago Manual of Style (16th Edition):

Padyana, Aravind 1983-. “Design Considerations for Wide Bandwidth Continuous-Time Low-Pass Delta-Sigma Analog-to-Digital Converters.” 2010. Masters Thesis, Texas A&M University. Accessed October 20, 2020. http://hdl.handle.net/1969.1/148453.

MLA Handbook (7th Edition):

Padyana, Aravind 1983-. “Design Considerations for Wide Bandwidth Continuous-Time Low-Pass Delta-Sigma Analog-to-Digital Converters.” 2010. Web. 20 Oct 2020.

Vancouver:

Padyana A1. Design Considerations for Wide Bandwidth Continuous-Time Low-Pass Delta-Sigma Analog-to-Digital Converters. [Internet] [Masters thesis]. Texas A&M University; 2010. [cited 2020 Oct 20]. Available from: http://hdl.handle.net/1969.1/148453.

Council of Science Editors:

Padyana A1. Design Considerations for Wide Bandwidth Continuous-Time Low-Pass Delta-Sigma Analog-to-Digital Converters. [Masters Thesis]. Texas A&M University; 2010. Available from: http://hdl.handle.net/1969.1/148453


Brigham Young University

6. Nordick, Brent C. Dynamic Element Matching Techniques For Delta-Sigma ADCs With Large Internal Quantizers.

Degree: MS, 2004, Brigham Young University

  This thesis presents two methods that enable high internal quantizer resolution in delta-sigma analog-to-digital converters. Increasing the quantizer resolution in a delta-sigma modulator can… (more)

Subjects/Keywords: delta-sigma; delta; sigma; dynamic element matching; DEM; ADC; analog to digital converter; large internal quantization; requantization; calibration; Electrical and Computer Engineering

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APA (6th Edition):

Nordick, B. C. (2004). Dynamic Element Matching Techniques For Delta-Sigma ADCs With Large Internal Quantizers. (Masters Thesis). Brigham Young University. Retrieved from https://scholarsarchive.byu.edu/cgi/viewcontent.cgi?article=1133&context=etd

Chicago Manual of Style (16th Edition):

Nordick, Brent C. “Dynamic Element Matching Techniques For Delta-Sigma ADCs With Large Internal Quantizers.” 2004. Masters Thesis, Brigham Young University. Accessed October 20, 2020. https://scholarsarchive.byu.edu/cgi/viewcontent.cgi?article=1133&context=etd.

MLA Handbook (7th Edition):

Nordick, Brent C. “Dynamic Element Matching Techniques For Delta-Sigma ADCs With Large Internal Quantizers.” 2004. Web. 20 Oct 2020.

Vancouver:

Nordick BC. Dynamic Element Matching Techniques For Delta-Sigma ADCs With Large Internal Quantizers. [Internet] [Masters thesis]. Brigham Young University; 2004. [cited 2020 Oct 20]. Available from: https://scholarsarchive.byu.edu/cgi/viewcontent.cgi?article=1133&context=etd.

Council of Science Editors:

Nordick BC. Dynamic Element Matching Techniques For Delta-Sigma ADCs With Large Internal Quantizers. [Masters Thesis]. Brigham Young University; 2004. Available from: https://scholarsarchive.byu.edu/cgi/viewcontent.cgi?article=1133&context=etd

7. Gencturk, Bora. Multi-objective optimal seismic design of buildings using advanced engineering materials.

Degree: PhD, 0106, 2011, University of Illinois – Urbana-Champaign

 Although seismic safety remains a major concern of society – and unfortunately this observation has been underpinned by recent earthquakes – economy and sustainability in seismic design… (more)

Subjects/Keywords: Engineered Cementitious Composites (ECC); Reinforced Concrete; Sustainability; Small-Scale Testing; Life-Cycle Cost Analysis; Optimization; Taboo Search; Dynamic Analysis; Finite Element Analysis; Constitutive Model; Performance-Based Seismic Design; Probabilistic Seismic Hazard Analysis; Spectrum Matching; Ground Motion Selection

…37 3.1.2. Pseudo-Dynamic Testing and Hybrid Simulation… …119 5.1.3. Selection and Spectrum Matching of Earthquake Ground Motion Time Histories… …31 Figure 2.14. Illustration of fiber-based finite element analysis… …33 Figure 3.1. Illustration of sub-structure technique for pseudo-dynamic testing… …configuration obtained from finite element analysis .........................58 Figure 3.17… 

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APA (6th Edition):

Gencturk, B. (2011). Multi-objective optimal seismic design of buildings using advanced engineering materials. (Doctoral Dissertation). University of Illinois – Urbana-Champaign. Retrieved from http://hdl.handle.net/2142/26252

Chicago Manual of Style (16th Edition):

Gencturk, Bora. “Multi-objective optimal seismic design of buildings using advanced engineering materials.” 2011. Doctoral Dissertation, University of Illinois – Urbana-Champaign. Accessed October 20, 2020. http://hdl.handle.net/2142/26252.

MLA Handbook (7th Edition):

Gencturk, Bora. “Multi-objective optimal seismic design of buildings using advanced engineering materials.” 2011. Web. 20 Oct 2020.

Vancouver:

Gencturk B. Multi-objective optimal seismic design of buildings using advanced engineering materials. [Internet] [Doctoral dissertation]. University of Illinois – Urbana-Champaign; 2011. [cited 2020 Oct 20]. Available from: http://hdl.handle.net/2142/26252.

Council of Science Editors:

Gencturk B. Multi-objective optimal seismic design of buildings using advanced engineering materials. [Doctoral Dissertation]. University of Illinois – Urbana-Champaign; 2011. Available from: http://hdl.handle.net/2142/26252

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