G04F10/00

Smart display system

An apparatus including: one or more weighing elements; a processor in communication with the one or more weighing elements; memory in communication with the processor and containing processor executable instructions; a proximity sensor in communication with the processor; and a wireless communications device in communication with the processor. The instructions provide for monitoring of removal of units of a product on the weighing elements.

Smart display system

An apparatus including: one or more weighing elements; a processor in communication with the one or more weighing elements; memory in communication with the processor and containing processor executable instructions; a proximity sensor in communication with the processor; and a wireless communications device in communication with the processor. The instructions provide for monitoring of removal of units of a product on the weighing elements.

Loop gain auto calibration using loop gain detector

A device includes a phase detector circuit, a charge pump circuit, a sample and hold circuit, a comparator, and a controller. The phase detector circuit detects a clock skew between a reference signal and an input signal. The charge pump circuit translates the clock skew into a voltage. A sample and hold circuit samples the voltage, at a first time, and maintain the sampled voltage until a second time. The comparator (i) detects a loop gain associated with the input signal based on the sampled voltage and the voltage at the second time and (ii) outputs a loop gain signal for adjustment of the input signal. The controller is coupled to the phase detector, the comparator, and the sample and hold circuit. The controller generates a plurality of control signals for automatically controlling operation of the phase detector, the comparator, and the sample and hold circuit.

Controlling A Reference Voltage For A Clock And Data Recovery Circuit

In one aspect, a method includes: determining a power mode of a device; setting a first reference voltage level and a second reference voltage level based at least in part on the power mode; and using at least one of the first reference voltage level and the second reference voltage level for comparison against incoming data.

Methods and apparatus for a multi-cycle time-based ADC

Various embodiments of the present technology may comprise methods and apparatus for a multi-cycle time-based ADC configured to convert an analog signal to a digital value. Methods and apparatus a multi-cycle time-based ADC according to various aspects of the present invention may comprise a plurality of VTCs configured to perform multiple voltage-to-time conversions out-of-phase from each other. The integration times for each VTC may be summed to provide a total integration time, which may then be converted to the digital value.

PORTABLE ELECTRONIC DEVICES

A variety of improvements to portable electronic devices are disclosed, particularly electronic devices designed for use in and around water. The improvements include a more secure interface jack, improved waterproofing techniques, improved battery stability, and improved device functionality. One or more of the disclosed improvements may be incorporated into a variety of portable electronic devices.

METHOD FOR DIGITALIZING SCINTILLATION PULSE
20170357012 · 2017-12-14 ·

A method for digitalizing a scintillation pulse may include: S1, acquiring a pulse database outputted by a detector irradiated by rays of different energy; S2, sampling and 5 quantizing each of pulses in the pulse database obtained in S1 to acquire complete energy information comprised in the pulse; S3, undersampling and quantizing each of the pulses in the pulse database obtained in step S1, and estimating or fitting energy information by using pulse prior information; S4, with the energy information obtained in S2 as a standard, determining a mapping relationship between 10 the energy information obtained by a prior information-based undersampling pulse energy acquisition method and the energy information obtained by the method of S2; and S5 correcting the energy information obtained by the prior information-based undersampling pulse energy acquisition method by using the energy mapping relationship obtained in S4.

DIGITAL-TO-TIME CONVERTER (DTC) NON-LINEARITY PREDISTORTION

A method for compensating signal nonlinearities includes generating a local oscillator (LO) signal and performing phase modulation of the LO signal to generate a phase-modulated LO signal. The phase modulation is based on applying at least one digital-to-time converter (DTC) code of a plurality of DTC codes to a rising edge signal portion and a falling edge signal portion associated with the LO signal. Nonlinearities associated with the rising edge signal portion and the falling edge signal portion are determined. The at least one DTC code is adjusted based on the nonlinearities.

Smart Display System

A display system is disclosed. The display system includes a merchandise display and a platform. The platform has the merchandise display mounted upon it. The platform includes: a processor; a weighing element in communication with the processor; and a wireless communications device in communication with the processor, wherein the platform is operable to communicate information about the weight change of the merchandise display with an external system.

Smart Display System

A display system is disclosed. The display system includes a merchandise display and a platform. The platform has the merchandise display mounted upon it. The platform includes: a processor; a weighing element in communication with the processor; and a wireless communications device in communication with the processor, wherein the platform is operable to communicate information about the weight change of the merchandise display with an external system.