scholarly journals A comparative analysis of two gain- and offset-compensated switched-capacitor integrators

2002 ◽  
Vol 15 (2) ◽  
pp. 295-305
Author(s):  
Nikolay Radev ◽  
Kantcho Ivanov

Two high-performance switched-capacitor (SC) integrators which use different approaches for the compensation of the operational amplifier finite dc gain and offset voltage are considered. Analytical expressions for the gain, phase and offset voltage errors of the Baschirotto-90 integrator are derived and compared with the corresponding errors of the Shafeeu-91 integrator. Both the integrators are used as building blocks of a high-Q band pass SC biquad. The resultant filters are compared in terms of the percent deviations from the ideal case of the central frequency and the quality factor. Subsequently, the slight shift in the frequency response of the biquad with Shafeeu-91 integrator is eliminated by modifying the values of two capacitors .

2004 ◽  
Vol 1 (2) ◽  
pp. 227-236
Author(s):  
Nikolay Radev ◽  
Kantcho Ivanov

Gain-and offset-compensated (GOC) modifications of four-phase inverting and no inverting switched-capacitor integrators based on the second-order Adams-Bashworth?s integration method are presented. Analytical expressions for the gain, phase and offset voltage errors are derived and compared with the corresponding errors of the earlier ones compensated integrators. The two pairs of GOC integrators are used as building blocks of a band pass biquad. The performances of the resulting filters are also compared.


2008 ◽  
Vol 21 (2) ◽  
pp. 233-241
Author(s):  
Nikolay Radev ◽  
Kantcho Ivanov ◽  
Kalin Stanchev

In this paper gain- and offset-compensated (GOC) modification of a sixth-order right-direct (BI) type wide bandpass switched-capacitor (SC) ladder filter is proposed. It is based on the use of simple and fast operational amplifiers (op amps) with low but precisely known and stable dc gain A. At first, the conventional integrators in the filter are replaced with GOC integrators and the unswitched capacitors in the capacitive loops are split into two capacitors. Subsequently, the nominal op amps gain value A0 is taking into account in the capacitance sizing of some appropriately chosen capacitors. .


2020 ◽  
Author(s):  
Lucas Silva ◽  
Michael Canesche ◽  
Ricardo Ferreira ◽  
José Augusto Nacif

Recently, the increasing adoption of domain-specific architectures to execute kernels with high computing density and the exploration of sparse architectures using Systolic Arrays created the ideal scenario for using Coarsegrained reconfigurable architectures (CGRAs) to accelerate applications. Unlike Systolic Array, CGRA can run different kernel sets and keep a good balance between energy consumption and performance. In this work, we present the HPCGRA, an orthogonal designed CGRA generator for high-performance spatial accelerators. Our tool does not require any expertise in Verilog design. In our approach, the CGRA is designed and implemented in an orthogonal fashion, through wrapping the main building blocks: functional units, interconnection patterns, routing, and elastic buffer capabilities, configuration words, and memories. It optimizes and simplifies the process of creating CGRAs architectures using a portable description (JSON file) and generating a generic, scalable, and efficient Verilog RTL code with Veriloggen. The tool automatically generates CGRA with up to 46x66 functional units, reaching 1.2 Tera ops/s.


2013 ◽  
Vol 22 (03) ◽  
pp. 1350014 ◽  
Author(s):  
V. STORNELLI ◽  
L. PANTOLI ◽  
G. LEUZZI

In this letter, a tunable high-Q active inductor with high dynamic range is presented. The equivalent inductance and resistance values can be tunable in a wide frequency range by changing the compensating network components values; outside the operating frequency band, the equivalent resistance increases, improving signal rejection for band-pass filter applications. A second-order active band-pass filter with a central frequency of 2100 MHz using the high-Q active inductance has been fabricated and tested.


2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Esteban Gonzalez-Valencia ◽  
Ignacio Del Villar ◽  
Pedro Torres

AbstractWith the goal of ultimate control over the light propagation, photonic crystals currently represent the primary building blocks for novel nanophotonic devices. Bloch surface waves (BSWs) in periodic dielectric multilayer structures with a surface defect is a well-known phenomenon, which implies new opportunities for controlling the light propagation and has many applications in the physical and biological science. However, most of the reported structures based on BSWs require depositing a large number of alternating layers or exploiting a large refractive index (RI) contrast between the materials constituting the multilayer structure, thereby increasing the complexity and costs of manufacturing. The combination of fiber–optic-based platforms with nanotechnology is opening the opportunity for the development of high-performance photonic devices that enhance the light-matter interaction in a strong way compared to other optical platforms. Here, we report a BSW-supporting platform that uses geometrically modified commercial optical fibers such as D-shaped optical fibers, where a few-layer structure is deposited on its flat surface using metal oxides with a moderate difference in RI. In this novel fiber optic platform, BSWs are excited through the evanescent field of the core-guided fundamental mode, which indicates that the structure proposed here can be used as a sensing probe, along with other intrinsic properties of fiber optic sensors, as lightness, multiplexing capacity and easiness of integration in an optical network. As a demonstration, fiber optic BSW excitation is shown to be suitable for measuring RI variations. The designed structure is easy to manufacture and could be adapted to a wide range of applications in the fields of telecommunications, environment, health, and material characterization.


Nano Letters ◽  
2014 ◽  
Vol 14 (11) ◽  
pp. 6547-6553 ◽  
Author(s):  
Zhaoyang Lin ◽  
Yu Chen ◽  
Anxiang Yin ◽  
Qiyuan He ◽  
Xiaoqing Huang ◽  
...  

1965 ◽  
Vol 87 (2) ◽  
pp. 251-257 ◽  
Author(s):  
T. C. Austin ◽  
J. Denavit ◽  
R. S. Hartenberg

A double Hooke joint consists of two properly connected single Hooke joints for the purpose of transmitting rotation with a uniform angular velocity ratio. Previous kinematic analyses [1, 2, 3] have dealt with Hooke joints of perfect or ideal configuration, viz., in which pertinent axes intersect and are perpendicular. With real Hooke joints the manufacturing errors (which include tolerances) produce axes that do not intersect and are not perpendicular. The present analysis [4] investigates the effects of such departures from the ideal for the case of the double Hooke joint. It considers their effect on the mechanism’s movability, and studies their influence on the displacement, velocity, and acceleration relations between input and output shafts. The problem is solved by matrix methods: displacement relations are derived for the ideal double Hooke joint, after which the effects of small dimensional errors are considered as perturbations from the ideal values. The analytical expressions allow the variations in velocities and accelerations to be obtained by differentiation.


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