H03M1/001

CAPACITOR CIRCUIT, CIRCUIT DEVICE, PHYSICAL QUANTITY DETECTING DEVICE, ELECTRONIC APPARATUS, AND MOVING OBJECT
20170365414 · 2017-12-21 ·

A capacitor circuit includes: a capacitor array including a plurality of capacitors; a switch array including a plurality of switch circuits, the switch circuits being respectively connected to the capacitors of the capacitor array; a plurality of switch control signal lines supplied with a plurality of switch control signals; and a substrate having a major surface on which the switch circuits are formed. At least part of the capacitors of the capacitor array is formed of a first conductive layer. The switch control signal lines are formed of a second conductive layer provided between the major surface and the first conductive layer. The capacitor array and the switch array are disposed so as to overlap each other at least in part in a plan view when viewed in a normal direction of the major surface.

Method and apparatus for the decomposition of signals with varying envelope into offset components

A method and apparatus for decomposition of signals with varying envelope into offset components are disclosed here, that sample the time variant envelope of a single carrier (SC) or a multi-carrier (MC) band limited signal, quantizes the sampled value using N.sub.b quantization bits and decomposes the sample into N.sub.b in-phase and quadrature components that are combined in pairs and modulated to generate a set of N.sub.b offset signals. The pulse shape applied in each offset signal is selected according to the spectral mask needed for the signal and to minimize envelope fluctuations in each offset signal from the set of N.sub.b components.

RECEIVER CIRCUITS
20170317860 · 2017-11-02 ·

A receiver circuit comprising: an input terminal configured to receive an input-signal; a feedforward-ADC configured to provide a feedforward-digital-signal based on the input-signal; a feedforward-DAC configured to provide a feedforward-analogue-signal based on the feedforward-digital-signal; a feedforward-subtractor configured to provide an error-signal based on the difference between the feedforward-analogue-signal and the input-signal; an error-LNA configured to provide an amplified-error-signal based on the error-signal; an error-ADC configured to provide a digital-amplified-error-signal based on the amplified-error-signal; a mixer configured to down-convert a signal in a signal path between the input terminal and the error-ADC; and an error-cancellation-block configured to provide an error-cancelled-signal based on a difference between the digital-amplified-error-signal and the feedforward-digital-signal.

Amplifier circuit

An amplifier circuit includes a sampling circuit and an amplifier connected to an output of the sampling circuit. A feedback capacitor is between an output terminal of the amplifier and an output terminal of the sampling circuit. A quantizer that includes a comparator is configured to quantize a voltage at the output terminal of the sampling circuit according to a comparison of a voltage at the output terminal of the sampling circuit to a voltage at the reference potential terminal of the comparator. The quantizer outputs a digital code according to the voltage comparison. A control circuit receives the digital code from the quantizer and stores the digital code in a register as a cancellation digital code. A digital-analog (D/A) converter outputs an analog signal in accordance with digital codes from the control circuit.

AUTOMATED LOUDSPEAKER DETECTION AND IMPLEMENTATION OF A SPECIFIC LOUDSPEAKER EQUALIZATION PROFILE TO IMPROVE LOUDSPEAKER AUDIO OUTPUT
20230179935 · 2023-06-08 · ·

An audio distribution system and method is described herein that optimizes audio equalization settings based on a specific make and model of loudspeaker being used in an audio distribution system. The system and method comprises: generating a loudspeaker test signal; transmitting the loudspeaker test signal to a loudspeaker unit under test (LUUT); receiving an acoustic signal from the LUUT by a microphone located at a test location, the microphone generating an electrical loudspeaker test signal response (loudspeaker test signal response); converting the loudspeaker test signal response to a digitized loudspeaker test signal response; generating a spectral plot of the digitized loudspeaker test signal response for the LUUT; comparing the spectral plot of the LUUT to spectral plots of known loudspeakers, and matching the spectral plot of the LUUT to a spectral plot of a first make and model of a known loudspeaker; and obtaining a set of equalizer settings for the first make and model of the known loudspeaker.

Kickback compensation for a capacitively driven comparator

An analog-to-digital converter (ADC) includes a comparator, a voltage reference circuit, a first capacitive digital-to-analog converter (CDAC), and a second CDAC. The first CDAC includes a plurality of capacitors. Each of the capacitors of the first CDAC includes a top plate coupled to a first input of the comparator, and a bottom plate switchably coupled to an output of the voltage reference circuit. The second CDAC includes a plurality of capacitors. Each of the capacitors of the second CDAC includes a top plate coupled to a second input of the comparator, and a bottom plate switchably coupled to a ground reference.

Automatically controlled bandgap reference circuit
11256281 · 2022-02-22 · ·

Circuits, systems, and methods to automatically switch modes to provide constant reference voltages are discussed herein. For example, a bandgap reference system may include a first bandgap reference circuit configured to provide a first bandgap reference voltage, a low dropout regulator coupled to the first bandgap reference circuit, a temperature circuit coupled to the low dropout regulator, and a second bandgap reference circuit coupled to the low dropout regulator and the temperature circuit. The second bandgap reference circuit may be configured to configure one or more impedance elements based at least in part on a temperature signal and provide a second bandgap reference voltage based on one or more currents that pass through the one or more impedance elements.

MICROCOMPUTER FOR MICROPHONE
20170288689 · 2017-10-05 ·

The objective of the present invention is to make it possible to execute each of a plurality of application programs without taking into account the addresses of the programs. A microcomputer (100) is provided with: a program memory (108) which stores a plurality of microphone programs executed by a digital signal processing circuit (104); an address control circuit (109) which controls addresses in the program memory; a program address register (110) which stores the addresses of the microphone programs; and a program size register (111) which stores the sizes of the microphone programs. The address control circuit (109) calculates the addresses in the program memory on the basis of the program address register (110) and the program size register (111).

CONTINUOUS TIME DELTA-SIGMA MODULATOR WITH A TIME INTERLEAVED QUANTIZATION FUNCTION

A wide band continuous time delta-sigma modulator implements a time interleaved quantization processing operation. The modulator may provide for an inherent finite impulse response filtering in the feedback loop. Additionally, further finite impulse response filtering in each time interleaved feedback path may be provided.

Digital modulator entropy source

An electronic circuit system with an input for receiving an analog signal having a frequency and comprising noise, that noise including input referred noise, and the noise fluctuates in a range. The system also comprises a signal path with: (i) an analog to digital converter for providing a digital output value in response to a clock period; (ii) a feedback node; and (iii) circuitry for limiting a signal swing at the feedback node, during a period of the clock period, to be no greater than an RMS value of the noise. The analog to digital converter is further for providing the digital output value in response to the analog signal and the signal swing at the feedback node.