The present disclosure relates to a method and a device for assessing signals. More particularly, the signals being assessed may be, for example, measurement signals as the result of a measurement previously carried out or may be a calculated value, for instance in the form of simulation results.
The statements in this section merely provide background information related to the present disclosure and may not constitute prior art.
In various system checks for software and/or hardware systems (e.g., systems for implementing a software function or measurement systems), signals are generated and recorded, and then a check is carried out in order to determine whether the recorded signals correspond to an expected signal within the scope of a predefined specification.
In particular, it is known practice to carry out the assessment based on a tolerance range. For example, if the recorded signal is within the tolerance range around a respectively predefined reference signal, the test is successful. Otherwise, an unsuccessful test or a defective system is determined.
US 2008/0249731 A1 discloses, inter alia, an evaluation method for evaluating measured data points with respect to geometric tolerance ranges with uncertainty ranges being assigned to the measured data points. The geometric tolerance ranges are then modified based on the uncertainty ranges of the measured data points in order to define local acceptance zones for the measured data points. The measured data points are then collectively moved relative to the local acceptance zones. The measured data points are evaluated with respect to the local acceptance zones in the case of different relative positions between the measured data points and the local acceptance zones for a solution in which the measured data points are together within the local acceptance zones.
U.S. Pat. No. 6,665,080 B1 discloses, inter alia, a method for determining the deviations of measured geometric dimensions and/or the position of an object from predefinable desired values of the geometric dimensions and/or the position of the object. The measured values of the geometric dimensions and/or the position of the object are adapted to the desired values, before determining the deviations, while taking into account the predefinable tolerance values of the desired values of the geometric dimensions and/or the position of the object.
In one aspect, the present disclosure provides a method and a device for assessing signals which enable a higher degree of flexibility during signal assessment with respect to the predefinition of the respective framework conditions or specifications and, in particular, the predefinition of tolerance ranges which vary over time.
In a method for assessing signals, the assessment is performed based on a check as to whether the signals are in a determined tolerance range over a predefined period. The tolerance range is determined using at least one predefined geometric figure that is shifted along a desired curve, which describes the time-dependent profile of a desired value for the relevant signals, for the purpose of at least partially determining the tolerance range.
The present disclosure is based, in particular, on the concept of determining a tolerance range based on the geometric objects or figures (e.g., circles) when assessing signals (e.g., in the form of measurement or simulation results) and during the check for determining whether the relevant results are within this tolerance range. In this case, the tolerance range is calculated using geometric objects or figures on a desired curve in the execution period. The dimensions of the relevant geometric objects or figures may be changed over time, which in turn corresponds to a temporal change in the respectively applicable tolerances. Between said tolerance changes, the respective tolerance range can be determined based on an interpolation, with the result that a continuous tolerance range is obtained overall over time.
According to one aspect, the tolerance range is determined in such a manner that that range of values which is covered by the at least one geometric figure when shifting this figure is assigned to the tolerance range in a graph describing the dependence of a signal value on the time.
According to another aspect, the tolerance range is determined using at least two geometric figures which differ from one another.
According to yet another aspect, the tolerance range is determined by means of interpolation in a region of the desired curve which remains between these geometric figures.
According to one aspect, these geometric figures differ from one another in terms of their size.
According to another aspect, each of these geometric figures is shifted along the desired curve for the purpose of at least partially determining the tolerance range.
According to yet another aspect, the at least one predefined geometric figure comprises a circle.
According to one aspect, the at least one predefined geometric figure comprises an ellipse.
According to another aspect, the at least one predefined geometric figure comprises a rectangle.
According to yet another aspect, the at least one predefined geometric figure is a multidimensional figure.
According to one aspect, the multidimensional figure comprises a sphere.
According to another aspect, the multidimensional figure comprises an ellipsoid.
According to yet another aspect, the signals are measurement signals.
According to one aspect, the signals are simulation results.
The present disclosure also relates to a device for assessing signals. The assessment is carried out based on a check to determine whether the signals are in a predefined tolerance range. A device is configured to carry out a method having the features described above. With respect to advantages and advantageous configurations of the device, reference is made to the statements above in connection with the method according to the present disclosure.
Further areas of applicability will become apparent from the description provided herein. It should be understood that the description and specific examples are intended for purposes of illustration only and are not intended to limit the scope of the present disclosure.
In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
In one aspect of the present disclosure, the determination of a tolerance range (
A tolerance range is calculated or determined using geometric objects or figures (e.g., circles) which, on a desired curve (designated “21” in
Based on the tolerance range 22, recorded signals (e.g., measured or simulated signals) are then assessed. Specifically, a successful test or a positive assessment result is determined if the recorded signal is within the tolerance range 22 throughout the execution period. Conversely, if the recorded signal is outside of the tolerance range (i.e., “leaves” the tolerance range) at any point (i.e., at least temporarily), an unsuccessful test or a negative assessment result is determined. In the example of
It should be pointed out that the use of circles as geometric objects or figures for determining the tolerance range according to the present disclosure is only exemplary and any desired geometric figures, such as rectangles, can also be used in principle. In the case of a circle, the tolerance value respectively used to generate the tolerance range corresponds to the Euclidean distance from the reference signal, which in turn corresponds to the circle radius.
As described below with reference to
In one aspect, referring to
The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.
Number | Date | Country | Kind |
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102016219546.8 | Oct 2016 | DE | national |
This application claims priority to and the benefit of DE 1020162195468 filed on Oct. 7, 2016. The disclosure of the above application is incorporated herein by reference.