IP Library Granted Patent US 10,877,138
Granted Patent B2
US 10,877,138 · App. 16/043,488 · Granted Dec 29, 2020

Method for transmitting data representing ultrasonic measurement signals, in particular in a vehicle

Inventor: Egbert Spiegel (Dortmund, DE)
Assignee: Elmos Semiconductor SE
G01S7/53G01S7/003G01S7/5273G01S15/931H03M7/30G01S2015/932
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Quick Facts
Patent No.
US 10,877,138
App. No.
16/043,488
Granted
Dec 29, 2020
Kind
B2
Abstract

In the method for transmitting data representing an ultrasonic measurement signal of an ultrasonic measuring device, in particular for a vehicle, from a transmitter to a receiver a digitized analog ultrasonic measurement signal is provided in the transmitter. On the transmitter side the ultrasonic measurement signal is sampled at a multiple of its frequency and divided into individual successive blocks of sampling values. The sampling values of the sampled ultrasonic measurement signal are transformed in blocks into the frequency range. Those frequency portions of the spectrum whose amplitude is smaller than a presettable threshold value, or the frequency portions of the spectrum above an upper frequency limit value and/or below a lower frequency limit value are removed. The amplitude range covered by the remaining frequency spectrum is scaled by a scaling factor for further reduction of the data. The data of each block with the scaling factor assigned to the respective block are transmitted to the receiver. On the receiver side the scaling of the amplitude range of the frequency spectrum of each block is reversed using the respective scaling factor and the frequency spectrum is transformed back into the time range.

Claims (15)

1. A method for transmitting data representing an ultrasonic measurement signal of an ultrasonic measuring device, in particular for a vehicle, from a transmitter to a receiver, wherein in the method:

in the transmitter a digitized analog ultrasonic measurement signal is provided in reaction to an analog ultrasonic transmission signal emitted for detecting obstacles,

the ultrasonic measurement signal is sampled at a multiple of its frequency and divided into individual successive blocks of sampling values,

the sampling values of the sampled ultrasonic measurement signal are transformed in blocks into the frequency range using a segmented fast convolution,

those frequency portions of the spectrum whose amplitude is smaller than a presettable threshold value, or the frequency portions of the spectrum above an upper frequency limit value and/or below a lower frequency limit value are removed,

the amplitude range covered by the remaining frequency spectrum is scaled by a scaling factor for further reduction of the data, and

from the transmitter the data of each block with the scaling factor assigned to the respective block are transmitted to the receiver, and

in the receiver the scaling of the amplitude range of the frequency spectrum of each block is reversed using the respective scaling factor,

the thus processed frequency spectrum is filtered out of the analog ultrasonic measurement signal provided in the transmitter by multiplication by filter coefficients of an optimum filter for extracting the signal shape of the analog ultrasonic transmission signal, and

the thus filtered frequency spectrum is transformed in blocks back into the time range using an inverse segmented fast convolution.

2. The method according to claim 1 , wherein the scaling is carried out by identifying, in an amplitude bit word having L bits and describing an amplitude value, that most significant bit of these L bits which is not equal to zero, and this most significant bit as well as, starting therefrom, the M next less significant bits of the amplitude bit word are converted to a reduction bit word of the length M+1 with M+1<L, wherein the scaling factor represents the number of those bits of the amplitude bit word which are more significant than the identified most significant bit not equal to zero of the amplitude bit word.

3. The method according to claim 2 , wherein, when the identified most significant bit not equal to zero of the amplitude bit word is less significant than the (M+1)th bit, calculated as from the least significant bit of the amplitude bit word, these (M+1) bits of the amplitude bit words are the bits of the reduction bit word and the scaling factor represents the number L−(M+1).

4. The method according to claim 1 , wherein the digitized analog ultrasonic measurement signal is subjected to an I/Q demodulation, wherein the frequency at which the I/Q demodulation is carried out is equal to the frequency of the ultrasonic measurement signal.

5. The method according to claim 2 , wherein the digitized analog ultrasonic measurement signal is subjected to an I/Q demodulation, wherein the frequency at which the I/Q demodulation is carried out is equal to the frequency of the ultrasonic measurement signal.

6. The method according to claim 3 , wherein the digitized analog ultrasonic measurement signal is subjected to an I/Q demodulation, wherein the frequency at which the I/Q demodulation is carried out is equal to the frequency of the ultrasonic measurement signal.

Assignments (3)
CHANGE OF ADDRESS Recorded Jan 4, 2026
From: ELMOS SEMICONDUCTOR SE
To: ELMOS SEMICONDUCTOR SE
Reel/Frame 074853/0001 →
CHANGE OF NAME Recorded Aug 24, 2020
From: ELMOS SEMICONDUCTOR AKTIENGESELLSCHAFT
To: ELMOS SEMICONDUCTOR SE
Reel/Frame 053608/0986 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2018
From: SPIEGEL, EGBERT
To: ELMOS SEMICONDUCTOR AKTIENGESELLSCHAFT
Reel/Frame 046823/0468 →
Priority Claims (1)
EP 17183696 · Jul 28, 2017 · regional
Continuity (1)
Related Publication 20190033436A1 · Jan 31, 2019