METHOD AND APPARATUS FOR PROCESSING MEASUREMENT TUPLES
20170184649 · 2017-06-29
Inventors
Cpc classification
G01R13/408
PHYSICS
International classification
G09G3/20
PHYSICS
Abstract
A measurement apparatus comprising a detection unit configured to provide measurement tuples, each measurement tuple (T) including a high frequency signal amplitude (a) of a high frequency signal (S); and a coding unit configured to encode the high frequency signal amplitude (a) of each provided measurement tuple.
Claims
1. A measurement apparatus comprising: a detection unit configured to provide measurement tuples, each measurement tuple including a high frequency signal amplitude of a high frequency signal; and a coding unit configured to encode the high frequency signal amplitude of each provided measurement tuple.
2. The measurement apparatus according to claim 1 further comprising an output unit adapted to output the measurement tuples with the encoded high frequency signal amplitudes.
3. The measurement apparatus according to claim 1, wherein said coding unit is configured to encode the high frequency signal amplitude of each provided measurement tuple by a corresponding image point density.
4. The measurement apparatus according to claim 3, wherein said output unit comprises a display configured to display measurement tuples with the encoded high frequency signal amplitude on a high resolution screen comprising a plurality of image pixels, wherein distances between active illuminating image pixels of said high resolution screen are controlled by a display control unit in response to the encoded image point densities provided by said coding unit.
5. The measurement apparatus according to claim 1, wherein each measurement tuple provided by said detection unit is formed by a measurement triple including a high frequency signal amplitude of a high frequency signal, at a frequency of said high frequency signal at a point in time.
6. The measurement apparatus according to claim 1, wherein each measurement tuple provided by said detection unit is formed by a measurement triple including a high frequency signal amplitude of a high frequency signal at two-dimensional space coordinates.
7. The measurement apparatus according to claim 1, wherein said coding unit is configured to encode the high frequency signal amplitude of said high frequency signal as a number of active illuminating image pixels per display area of said high resolution screen of said display.
8. The measurement apparatus according to claim 7, wherein said coding unit is configured to encode the high frequency signal amplitude of said high frequency signal in a normal display operation mode by increasing proportionally or logarithmically the number of active illuminating image pixels per display area of said high resolution screen of said display with an increasing value of said high frequency signal amplitude.
9. The measurement apparatus according to claim 8, wherein said coding unit is configured to encode the signal amplitude of said high frequency signal in an inverted display operation mode by reducing proportionally or logarithmically the number of active illuminating image pixels per display area of said high resolution screen of said display with an increasing value of said high frequency signal amplitude.
10. The measurement apparatus according to claim 1, wherein said measurement apparatus further comprises a selection unit adapted to select display regions of said high resolution screen and/or display lines comprising the same encoded image point density.
11. The measurement apparatus according to claim 1, wherein said coding unit is further configured to perform a colour-coding of the measurement tuples provided by said detection unit, and/or wherein the measurement apparatus is integrated in a signal analyzer, an object detection device or in a digital oscilloscope.
12. The measurement apparatus according to claim 4, wherein said display is configured to output display lines comprising the same image point density as contour lines.
13. The measurement apparatus according to claim 9, wherein in the normal display operation mode a display region comprising a maximum image point density is marked as a maximum high frequency signal amplitude and wherein in the inverted display operation mode a display region comprising a maximum image point density is marked as a minimum high frequency signal amplitude.
14. The measurement apparatus according to claim 4, wherein a resolution of said high resolution screen as a whole or a display region selected by a selection unit of said measurement apparatus is adjustable.
15. A method for processing measurement tuples, comprising the steps of: providing measurement tuples, each measurement tuple comprising a high frequency signal amplitude of a high frequency signal at a frequency of said high frequency signal at a point in time; and encoding the high frequency signal amplitude of each measurement tuple.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] In the following, possible embodiments of the different aspects of the present invention are described with reference to the following figures in an elucidative and unlimitative way as follows:
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF EMBODIMENTS
[0033]
[0034] The measurement apparatus 1 as shown in
[0035] In the embodiment illustrated in
[0036] In a possible embodiment, the coding unit 3 of the measurement apparatus 1 can operate in two different operation modes. In a first normal display mode, the coding unit 3 is configured to encode the high frequency signal amplitude of the high frequency signal S by increasing proportionally or logarithmically the number of active illuminating image pixels per display area of the high resolution screen of the display 4B with increasing values of the high frequency signal amplitude.
[0037] In the second inverted display operation mode, the coding unit 3 is configured to encode the signal amplitude of the high frequency signal S by reducing proportionally or logarithmically the number of active illuminating image pixels per display area of the high resolution screen of the display 4B with increasing values of the high frequency signal amplitude. In a possible embodiment, the measurement apparatus 1 comprises a user interface having a keypad. In a possible embodiment of the measurement apparatus 1, keys are provided for switching between the normal display operation mode and the inverted display operation mode.
[0038] In a further possible embodiment, the measurement apparatus 1 comprises a selection unit adapted to select display regions of the high resolution screen comprising the same encoded image point density. In a further possible embodiment, the selection unit is further adapted to select display lines comprising the same encoded image point density.
[0039] In a further possible embodiment of the measurement apparatus 1 according to the first aspect of the present invention, the coding unit 3 is further configured to perform also a colour-coding of the received measurement tuples T provided by the detection unit 2. In a possible embodiment, in the normal display mode, a display region comprising a maximum image point density can be marked by a user via the user interface of the measurement apparatus 1 as a maximum high frequency signal amplitude. Further, in the inverted display operation mode, a display region comprising a maximum image point density can be marked by the user as a minimum high frequency signal amplitude.
[0040] A resolution of the high resolution screen of the display 4B as a whole or the resolution of a display region selected by the selection unit can be adjusted by the user or by a control unit. The set operation mode M or markings and the adjusted resolution can be memorized for the next measurement session. The selected display areas can be zoomed for more detailed analysis. Further, numerical signal values of selected display areas can be displayed on the screen of the display 4B.
[0041] The measurement apparatus 1 as illustrated in
[0042] The measurement apparatus 1 as illustrated in
[0043] The measurement apparatus 1 as illustrated in
[0044] In a further possible embodiment, the measurement apparatus 1 can be implemented in an object detection device or a direction finding device. The direction finding device comprising the measurement apparatus 1 can be provided for determining a location of a mobile device as transmitted. The detection unit 2 of the direction finding device can receive high frequency signals reflected or transmitted by the object to be located. The detection unit 2 of the direction finding device is configured to provide measurement tuples T of the respective object, wherein each measurement tuple includes a signal amplitude of the reflected or transmitted high frequency signal S and at least two-dimensional coordinates x, y of the respective object. In a possible implementation, a distance between the measurement apparatus 1 and the object is measured on the basis of the difference in the signal power of the received signal compared to an originating signal strength or a transmitted signal reflected by the respective object. Alternatively, the time of arrival TOA can be used if the time of transmission and speed of signal propagation are known. By combining the time of arrival TOA data from several measurement apparatus 1 at different known locations it is possible to provide an estimate of the position of the object even in the absence of knowledge of the time of transmission. An angle of arrival AOA at the measurement apparatus 1 can be determined in a further embodiment by the use of a directional antenna or on the basis of the differential time of arrival at an array of antennas with known location. Further, the angle of arrival AOA data can be combined by a processing unit of the measurement apparatus 1 with displayed distances estimates to establish a location of the object.
[0045]
[0046] In a further step S2, the high frequency signal amplitude of each measurement tuple T is encoded. In a possible embodiment, the measurement tuple T is a measurement triple comprising three signal parameters. In an alternative embodiment, each tuple T can comprise more than three signal parameters, for instance a signal amplitude of a high frequency signal S along with three-dimensional coordinates x, y, z of a detected object. In a possible embodiment, the high frequency signal amplitude of each tuple T is encoded in step S2 by a corresponding image point density. The encoded high frequency signal S can then be displayed on a high resolution screen of a display. The measurement tuples T are displayed with the encoded high frequency signal amplitude on the high resolution screen comprising a plurality of image pixels, wherein distances between active illuminating image pixels of the high resolution screen are controlled in response to the encoded image point densities.
[0047]
[0048] The diagram as illustrated in