How to adjust settings for analysis methods
The method enhances analytical measurement accuracy and adaptability on mobile devices by performing multiple trials, analyzing rejection criteria, and adjusting settings to user-specific handling, reducing failed measurements and improving efficiency.
Patent Information
- Application Number
- JP2022538693
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-23
- Filing Date
- 2020-12-22
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2040-12-22
AI Technical Summary
Existing analytical measurement methods using mobile devices face challenges in reducing failed user measurements, shortening the time to achieve meaningful results, enhancing reliability and accuracy, and adapting to user-specific preferences and handling variations.
A method and apparatus that utilizes a mobile device with a camera, processor, and memory to perform multiple analyte measurement trials, analyze rejection criteria, and adjust settings to either a reduced or enhanced measurement mode based on user-specific handling, providing corrective feedback.
This approach reduces failed measurements, shortens the time to obtain accurate results, and adapts to user-specific preferences, improving measurement reliability and efficiency.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an adjustment method for adjusting settings for an analytical method for determining the concentration of an analyte in a body fluid based on a color reaction in an optical test. The present invention further relates to a mobile device configured to perform the adjustment method, a computer program and a computer-readable storage medium for performing the adjustment method, and a kit comprising a test strip or a dummy test strip and at least one of the mobile device, the computer program, and the computer-readable storage medium. The method, device, computer program, storage medium, and kit can be used in medical diagnostics, particularly for qualitatively or quantitatively detecting one or more analytes in one or more body fluids, such as for detecting glucose in blood and / or interstitial fluid. However, other fields of application of the present invention are possible. [Background technology]
[0002] In the field of medical diagnostics, it is often necessary to detect one or more analytes from a sample of bodily fluid, such as blood, interstitial fluid, urine, saliva, or other types of bodily fluid. Examples of analytes to be detected are glucose, triglycerides, lactate, cholesterol, or other types of analytes typically present in these bodily fluids. Depending on the concentration and / or presence of the analyte, appropriate processing can be selected as needed. Without narrowing the scope, the present invention can be specifically described with respect to blood glucose measurement. However, it should be noted that the present invention can also be used for other types of analytical measurements using test elements.
[0003] Generally, devices and methods known to those skilled in the art utilize test elements containing one or more test chemicals that can perform one or more detectable detection reactions, such as optically detectable detection reactions, in the presence of an analyte to be detected. For example, European Patent Application Publication No. 0 821 234 describes a diagnostic test carrier for determining an analyte from whole blood using a reagent system contained in the carrier, and a method for determining an analyte from whole blood using the diagnostic test carrier. The diagnostic test carrier contains a color-developing reagent. The test field has a sample application side to which a blood sample is delivered and a detection side where an optically detectable change occurs as a result of a reaction between the analyte and the reagent system. Furthermore, the test field is designed to prevent red blood cells contained in the sample from reaching the detection side. Furthermore, the test field includes a transparent film and first and second overlapping film layers applied to the transparent film, with the first layer on the transparent film scattering light in a wet state substantially less than the second layer above it.
[0004] Regarding the test chemicals contained in the test elements, reference can be made, for example, to J. Hoenes et al.: The Technology Behind Glucose Meters: Test Strips, Diabetes Technology & Therapeutics, Volume 10, Supplement 1, 2008, S-10 to S-26. Other types of test chemicals are possible and can be used to practice the present invention.
[0005] In analytical measurements, particularly those based on colorimetric reactions, one technical challenge lies in evaluating the color change resulting from the detection reaction. In addition to using dedicated analytical devices such as handheld blood glucose meters, the use of commonly available electronic devices such as smartphones and portable computers has become increasingly common in recent years. WO 2012 / 131386 discloses a test device for performing an assay, the test device comprising: a container containing a reagent that reacts to an applied test sample by exhibiting a color or pattern change; and a portable device, such as a mobile phone or laptop, equipped with a processor and an image capture device, the processor configured to process data captured by the image capture device and output a test result for the applied test sample.
[0006] When using a mobile computing device such as a smartphone, various influences must be considered. Many product care activities, such as improving measurement flow, improving customer guidance, or optimizing user-handling measurement performance, are often based on user training sessions and provided feedback or observations, extensive market research, or complaints from the market or training. However, extensive market research is expensive and may not be available on an ongoing basis. Furthermore, it may be preferable to proactively optimize measurement algorithms and settings before receiving customer complaints.
[0007] In recent years, various techniques have been developed to improve user experience in the field of medical devices.
[0008] U.S. Patent No. 9,238,100 discloses a device and method for training users of an ambulatory medical device. The method relates to improving user interaction with the device's touchscreen. In one embodiment, there is an operational mode that records all user interactions along with various device parameters, allowing a clinician to review the patient's performance during the initial period of use. Automated analysis software can be used to analyze the data generated by the device. The results of the analysis can be used by the clinician to improve the patient's interaction with the device.
[0009] U.S. Patent Application Publication No. 2014 / 0205981 discloses a dialysis treatment simulation system and method including a treatment simulator, a computing module, and a user interface. The treatment simulator generates simulated event notifications related to patient interactions with a dialysis treatment device. The computing module generates requests for user action in response to the simulated event notifications. The user interface outputs the simulated event notifications and requests for user action to an output device and provides received user responses to the computing module.
[0010] U.S. Patent Application Publication No. 2015 / 194066 relates to a smart peripheral (defibrillator) for use in a medical training system. The medical training system has a processor, software that emulates aspects of a medical device, and a display in communication therewith. The processor, software, and display provide an interactive interface that emulates portions of the medical device. The smart peripheral includes a physical structure adapted to mimic functional components of the medical device and at least one sensor adapted to measure aspects of user performance, such as position, pressure, or other physical variables.
[0011] European Patent Application Publication No. 3138091 discloses various systems and methods for injection training by collecting, processing, analyzing, and displaying measurement information related to injection delivery. Sensor-based measurements of the syringe's position and orientation in three-dimensional space are acquired and processed to provide metrics of a trainee's injection performance. The measurements can be combined with a digital model of the training device to provide a computer-generated graphical depiction of the training injection, enabling visualization of the injection from perspectives unavailable in the physical world. As reflected in the measured sensor-based data, the execution of a training injection can be reviewed and analyzed at different times and locations following the time and location of the training injection. Furthermore, injection training data related to multiple training injections can be aggregated and analyzed for performance trends, among other things.
[0012] U.S. Patent Application Publication No. 2018 / 092595 discloses a system and method for training and monitoring the administration of inhaled medications. The system includes a mobile computing device configured to provide an augmented reality training and monitoring aid for asthma patients. In particular, the mobile device is programmed to capture video using a camera and audio recordings using a microphone to measure the patient's head position from the video and inhalation and exhalation events from the microphone recordings. This real-time data is used to provide real-time testing and monitoring of the patient's technique for using the inhaler and augmented reality training aids to inform the patient's training.
[0013] WO 2017 / 210311 relates to a system and method for interactive training via data analysis, for example for training dental personnel in the use of an automatic syringe filling system. The interactive training system includes a personal digital device programmably configured to train an individual using audiovisual training content viewable by the individual on the personal digital device, the audiovisual training content being integrated with corresponding success-conditional progression tests on the personal digital device of the individual's learning of the training content viewed by the individual on the personal digital device as necessary for training progression. The tests include input of responses by the individual into the personal digital device as the individual's training data, and the personal digital device is programmably configured for input of performance data by the individual upon subsequent contemporaneous performance of the trained behavior by the individual. The input performance data of the personal digital device can be used by the device to generate an assessment of the individual's proficiency and / or to generate other feedback to the individual in the trained behavior, and / or the input performance data can be downloadable from the personal digital device to generate and assess the individual's proficiency and / or to generate other feedback to the individual in the trained behavior.
[0014] U.S. Patent No. 5,791,907 relates to an interactive medical training device including a computer system having a display, the computer system being programmed to provide education and training in medical procedures, including laparoscopic surgical procedures. This aspect is achieved by configuring the system to display a video window on a portion of the display. The video window displays a pre-recorded video segment illustrating a portion of the laparoscopic surgical procedure. The system prompts the user to input information regarding the next step in the surgical procedure, thereby advantageously keeping the user involved in the training session. This "next step" information may include, for example, selecting an appropriate medical instrument or selecting a surgical location. The system then receives and interprets the user's input and notifies the user whether the input is correct. Preferably, if the input is correct, the system displays a pre-recorded video segment illustrating the next step in the surgical procedure.
[0015] EP 3581921 relates to a method for assessing the suitability of lighting conditions for detecting an analyte in a sample using a camera of a mobile device, and a detection method for detecting an analyte in a sample using a camera of a mobile device. If the lighting conditions are not suitable, the mobile device can be adapted, for example, to stop and / or prevent detection of the analyte in the sample.
[0016] US Patent Application Publication No. 2015 / 233898 relates to the measurement of physical and biochemical parameters using a mobile device, and suggests shielding the test strip module by moving the mobile phone or displaying a message on the screen when ambient light effects are high.
[0017] U.S. Patent Application Publication No. 2013 / 330831 discloses a system for water and food safety testing that uses test strips and generates and analyzes digital images of the test strips. The system can also capture user-specific data such as the number of tests performed, a summary of the test results, and the number of errors associated with that user's activities.
[0018] Despite the advantages realized by these known methods and devices, various technical challenges remain. Specifically, for example, the number of failed user measurements needs to be reduced, the time required to achieve meaningful measurement results needs to be shortened, and the reliability and / or accuracy of measurements needs to be enhanced and guaranteed, in order to avoid user frustration and reduce the consumption of disposable items, especially test strips, that do not provide meaningful measurement results. Furthermore, a major challenge remains due to the fact that user-specific preferences and user-specific handling of measurement devices and measurement processes vary widely. This challenge primarily stems from the fact that a wide variety of users are intended to apply algorithms and measurement settings with different physical or mental abilities and preferences.
[0019] Issues to be resolved It is therefore desirable to provide a method and apparatus that addresses the above technical challenges of analytical measurements using mobile devices, such as mobile devices in consumer electronics, and in particular multipurpose mobile devices that are not dedicated to analytical measurements, such as smartphones and tablet computers. In particular, a method and apparatus is proposed that takes into account the specific preferences and capabilities of the user and can therefore automatically adapt to the specific circumstances of the measurement by still using a standard mobile device without the need to manually adapt the device settings. Summary of the Invention
[0020] This problem is addressed by a method, an apparatus, a computer program and a computer-readable storage medium having the features of the independent claims. Advantageous embodiments, which can be realized alone or in any combination, are set forth in the dependent claims.
[0021] When used below, the terms "have," "comprise," or "include," or any grammatical variations thereof, are used in a non-exclusive manner. Thus, these terms can refer both to a situation in which no further features are present in the entity described in connection therewith, other than the features introduced by these terms, and to a situation in which one or more further features are present. For example, the expressions "A has B," "A comprises B," and "A includes B" can refer both to a situation in which no other elements are present in A other than B (i.e., A consists solely and exclusively of B), and to a situation in which one or more further elements are present in entity A other than B, such as element C, elements C and D, or further elements.
[0022] Furthermore, it should be noted that the terms "at least one," "one or more," or similar expressions indicating that a feature or element may be present one or more times are typically used only once when introducing each feature or element. In the following, in most cases, when referring to each feature or element, the expressions "at least one" or "one or more" will not be repeated, despite the fact that each feature or element may be present one or more times.
[0023] Furthermore, when used hereinafter, the terms "preferably," "more preferably," "particularly," "more particularly," "particularly," "more particularly," or similar terms are used in conjunction with optional features without limiting alternative possibilities. Features introduced by these terms are therefore optional features and are not intended to limit the scope of the claims in any way. The present invention can be practiced by using alternative features, as will be recognized by those skilled in the art. Similarly, features introduced by "in an embodiment of the present invention" or similar phrases are intended to be optional features without limitations regarding alternative embodiments of the invention, without limitations regarding the scope of the invention, and without limitations regarding the possibility of combining the feature introduced in such a way with other optional or non-optional features of the invention.
[0024] In a first aspect, the present invention provides a method for producing a medicament for the treatment of a pulmonary arthritis, comprising: The present invention relates to a method for adjusting settings for an analytical method for determining the concentration of an analyte in a body fluid based on a color reaction in an optical test strip, the analytical method including using a mobile device having a camera, a processor, and a memory. The method specifically includes the following steps, which can be performed in a predetermined order. However, it should be noted that different orders are also possible. Furthermore, one or more of the method steps can be performed only once or repeatedly. Furthermore, two or more of the method steps can be performed simultaneously or with overlapping times. The method can include additional method steps not described. The method includes: a) performing a plurality of analyte measurement trials with the mobile device set in a standard measurement mode, each of the plurality of analyte measurement trials comprising: i) capturing, by using a camera, one or more images of at least a portion of an optical test strip having a test field before and / or after sample application; ii) performing a plurality of analyte measurement attempts, including checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in memory, and rejecting, by the processor, the measurement attempt if the one or more measurement rejection criteria are satisfied and recording one or more rejection events in memory; b) analyzing, by the processor, one or more of the rejection events recorded in the error analysis, and based on the results of the error analysis, adjusting settings by placing the device in a reduced measurement mode, in which one or more of the measurement rejection criteria are deactivated, and / or an enhanced measurement mode, in which corrective feedback is provided to the user during measurement attempts.
[0025] As used herein, the term "analytical method for determining the concentration of an analyte in a bodily fluid," sometimes referred to simply as "analytical method," "analytical measurement," or "analyte measurement," is a broad term that should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. This term can specifically, but is not limited to, the quantitative and / or qualitative determination of at least one analyte in any sample or aliquot of bodily fluid. For example, the bodily fluid can include one or more of blood, interstitial fluid, urine, saliva, or other types of bodily fluid. The result of the concentration determination can, by way of example, be the concentration of the analyte and / or the presence or absence of the determined analyte. In particular, the analyte can be glucose. Specifically, by way of example, the analytical measurement can be a blood glucose measurement, and thus the result of the analytical measurement can be, for example, a blood glucose concentration. In particular, an analytical measurement value can be determined by the analytical measurement. As used herein, the term "analytical measurement value" is a broad term that should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. The term can specifically refer, but is not limited to, to a numerical representation of the concentration of an analyte in a sample.
[0026] For example, the at least one analyte can be or include one or more specific chemical compounds and / or other parameters. For example, one or more analytes involved in metabolism, such as blood glucose, can be determined. Additionally or alternatively, other types of analytes or parameters can be determined, such as pH values. The at least one sample can specifically be or include at least one bodily fluid, such as blood, interstitial fluid, urine, saliva, etc. However, additionally or alternatively, other types of samples, such as water, can also be used.
[0027] The term "sample" as used herein is a broad term and is intended to have its ordinary and customary meaning to those skilled in the art, without being limited to any special or customized meaning. The term can specifically refer to, but is not limited to, any quantity of fluid for use in an analytical measurement. In particular, the sample can be a sample of a bodily fluid, such as one or more of blood, interstitial fluid, urine, saliva, and other bodily fluids, and can be or include at least 2 microliters (μl) of bodily fluid, and in one embodiment, at least 5 microliters (μl) of bodily fluid. Specifically, a sample of a bodily fluid includes at least the minimum amount of bodily fluid necessary to perform an analytical measurement, specifically the minimum amount of bodily fluid necessary to typically determine an analyte concentration in the bodily fluid.
[0028] The analytical measurement may specifically be an analytical measurement involving a change in at least one optical property of the optical test strip, which may be visually measured or determined using a camera. Specifically, the analytical measurement may be or may include a color reaction in the presence of at least one analyte to be determined. The term "color reaction" as used herein is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to a special or customized meaning. This term may specifically refer to, but is not limited to, a chemical, biological, or physical reaction in which the color, specifically the reflectance, of at least one component involved in the reaction changes as the reaction progresses.
[0029] The terms "measurement run" or "analytical measurement run" as used herein are broad terms and should be given their ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. The terms can specifically refer to, but are not limited to, any component of an object. In particular, the terms can refer to a portion of an analytical measurement based on which an analytical measurement result value is not provided to a user.
[0030] As used herein, the term "setting for an analytical method for determining the concentration of an analyte in a body fluid" is a broad term and should be given its ordinary and customary meaning to those skilled in the art and is not limited to any special or customized meaning. This term may specifically refer to, but is not limited to, one or more of a system, device, system configuration, or device configuration for performing an analytical method. Specifically, this term may refer to a combination of at least one device, such as a mobile device, and at least one software configured to run at least one application on the device, such as at least one software for performing analytical measurements. Exemplary settings may refer, by way of example, to one or more of a standard measurement mode, a reduced measurement mode, and an enhanced measurement mode. Thus, in general, the term setting may refer to a method for performing an analytical method as determined by a software configuration. In one exemplary setting, the standard measurement mode is used. The setting may be specifically adjusted or changed from the standard measurement mode to the reduced measurement mode or the enhanced measurement mode.
[0031] As used herein, the term "adjustment method for adjusting settings for an analytical method for determining the concentration of an analyte in a body fluid," sometimes simply referred to as "adjustment method," is a broad term and should be given its ordinary and customary meaning by those skilled in the art, and is not limited to any special or customized meaning. This term can specifically refer to, but is not limited to, one or more methods for changing or adjusting measurement settings as defined above. Specifically, in an adjustment method, a measurement rejection criterion may be activated or deactivated, or a corrective feedback (mechanism or function) may be activated. Further exemplary embodiments are provided below.
[0032] The term "optical test strip" as used herein is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. This term can specifically, but not exclusively, refer to any element or device including at least one strip-shaped carrier having at least one test strip applied thereto or incorporated therein, the element configured to perform a color change detection reaction. Optical test strips may also be referred to as test strips or test elements. Optical test strips can have a test field containing at least one test chemical, such as at least one reagent element for detecting at least one analyte. For example, an optical test strip can include at least one substrate, such as at least one carrier, having at least one test field applied thereto or incorporated therein. In particular, an optical test strip can further include at least one white area, such as a white field, particularly adjacent to the test field, e.g., surrounding or encircling the test field. The white area can be a separate field independently disposed on the substrate or carrier. Additionally or alternatively, however, the substrate or carrier itself can be or include a white area. These test strips are widely available and in common use. A test strip can carry a single test field or multiple test fields with the same or different test chemicals contained therein.
[0033] As further used herein, the term "test field" is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. This term can specifically refer to, but is not limited to, a coherent amount of test chemical relative to a field, such as a circular, polygonal, or rectangular shaped field, having one or more layers of material, with at least one layer of the test field containing the test chemical.
[0034] The analytical method outlined above involves the use of a mobile device having a camera. As used herein, the term "mobile device" is a broad term and should be given its ordinary and customary meaning to those skilled in the art, and should not be limited to any special or customized meaning. This term may specifically refer to, but is not limited to, a portable electronic device, more specifically a portable communication device such as a mobile phone or smartphone. Additionally or alternatively, as outlined in more detail below, a mobile device may also refer to a tablet computer or another type of portable computer having at least one camera.
[0035] Specifically, the mobile device may include at least one processor, as described above. The term "processor" as used herein is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. The term may specifically, but not exclusively, refer to any logic circuit configured to perform the basic operations of a computer or system, and / or generally to a device configured to perform calculations or logical operations. In particular, a processor may be configured to process the basic instructions that drive a computer or system. By way of example, a processor may include at least one arithmetic logic unit (ALU), at least one floating-point unit (FPU), such as a math coprocessor or numeric coprocessor, multiple registers, specifically registers configured to supply operands to the ALU and store calculation results, and memory, such as L1 and L2 cache memories. In particular, the processor may be a multi-core processor. In particular, the processor may be or include a central processing unit (CPU). Additionally or alternatively, the processor may be or include a microprocessor, and thus, in particular, the elements of the processor may be included on one single integrated circuit (IC) chip. Additionally or alternatively, the processor may be or include one or more application specific integrated circuits (ASICs) and / or one or more field programmable gate arrays (FPGAs), etc. The processor may be specifically configured, such as by software programming, to perform one or more evaluation operations.
[0036] Specifically, the processor may be configured, such as by software programming, to perform one or more of the following: capture one or more images of at least a portion of an optical test strip having a test field before and / or after sample application by using a camera; check for fulfillment of one or more measurement rejection criteria stored in memory; reject the measurement attempt (based on at least one captured image) (without providing an analytical measurement result value to a user) if one or more measurement rejection criteria are fulfilled (based on analysis of at least one captured image inspection); record one or more rejection events in memory; analyze one or more of the recorded rejection events (from one or more past measurement attempts) in an error analysis; and (automatically) adjust settings by placing the device in a reduced measurement mode and / or an enhanced measurement mode (instead of the standard measurement mode).
[0037] The term "memory" as used herein is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. Specifically, the term may refer to any type of memory capable of storing data and retrieving that data for transfer to one or more other components of the device, such as a processor, without limitation. The memory may comprise one or more of flash memory, SRAM, ROM, DRAM, RAM, EPROM, and dynamic storage. The memory may be coupled to the processor and configured to receive and store one or more device parameters, including, for example, measurement rejection criteria, activation or deactivation of measurement rejection criteria, user input data from a touchscreen, user input from a button or switch, time, date, sensor readings, device operating status, device messages to the user, user templates, or predetermined fluid delivery patterns. The device parameters may be stored as a discrete data set at a specific point in time, multiple consecutive discrete data sets separated by a period of time, or what is effectively referred to as "real time," or a continuous record of the device parameters at a rate the system allows. Other methods of recording device parameters, such as initiating recording based on a trigger event, will be readily apparent and known to those skilled in the art.
[0038] The term "camera," as used herein, is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. The term may specifically, but is not limited to, refer to a device having at least one imaging element configured to record or capture spatially resolved one-, two-, or three-dimensional optical data or information. By way of example, a camera may include at least one camera chip, such as at least one CCD chip and / or at least one CMOS chip, configured to record an image. As used herein, but is not limited to, the term "image" may specifically relate to data recorded by using a camera, such as multiple electronic readings from an imaging element, such as pixels of a camera chip.
[0039] In addition to at least one camera or imaging chip, the camera may include one or more optical elements, such as one or more lenses. For example, the camera may be a fixed-focus camera with at least one lens that is fixedly adjusted relative to the camera. Alternatively, however, the camera may also include one or more variable lenses that can be adjusted automatically or manually. The present invention should be particularly applicable to cameras typically used in mobile applications, such as notebook computers, tablets, or mobile phones, particularly smartphones. Thus, in particular, the camera may be part of a mobile device that includes, in addition to at least one camera, one or more data processing devices, such as one or more data processors. However, other cameras may also be used.
[0040] The camera may be specifically a color camera. Therefore, color information such as three color values (R, G, B) can be provided or generated for each pixel. Four color values for each pixel, e.g., R, G, G, B, are also possible. These techniques are generally known to those skilled in the art. Thus, for example, a camera chip may be configured with three or more different color sensors, e.g., color recording pixels, such as one pixel for red (R), one pixel for green (G), and one pixel for blue (B). For each pixel, e.g., R, G, B, a value can be recorded by the pixel, e.g., a digital value ranging from 0 to 255, depending on the intensity of each color. For example, instead of using a triple color, e.g., R, G, B, a quadruple color, e.g., R, G, G, B, may be used. The color sensitivity of a pixel may be generated by a color filter or by the appropriate inherent sensitivity of the sensor element used in the camera pixel. These techniques are generally known to those skilled in the art.
[0041] As used herein, the term “capturing one or more images,” sometimes referred to herein as “capturing at least one image,” is a broad term and should be given its ordinary and customary meaning to those skilled in the art and is not limited to any special or customized meaning. This term may specifically refer to, but is not limited to, one or more of imaging, image recording, image acquisition, and image capture. The term “capturing at least one image” may include capturing a single image and / or multiple images, such as a series of images. For example, capturing images may include continuously recording a series of images, such as a video or motion picture. Capturing at least one image may be initiated by a user action or may be initiated automatically, for example, upon automatically detecting the presence of at least one object within the camera's field of view and / or within a predetermined sector of the field of view. These automatic image capture techniques are known, for example, in the field of automated barcode readers, such as automated barcode reading apps. Capturing images may be performed, for example, by a camera capturing a stream or “lifestream” of images, with one or more of the images being stored and used as at least one first image or at least one second image, respectively, automatically or through user interaction, such as pressing a button. Image capture may be supported by a processor in the mobile device, and image storage may occur within a data storage device in the mobile device.
[0042] The at least one image of at least a portion of the optical test strip may specifically include an image of at least a portion of a test field. Additionally, the image may include images of other portions of the optical test strip, such as a white reference portion of the test strip. As another example, the image may include at least a portion of a reference card. Thus, a color reference card may also be visible in the image and used for evaluation purposes, such as a white field. The at least one optional reference field may be part of a test element, for example, a reference card or a reference element. A reference card or a reference element having at least one optional reference field, such as at least one color reference field, may be positioned within the field of view of the camera during image capture in step a)i).
[0043] Capturing one or more images can include capturing one or more images before and / or after applying a sample of bodily fluid to the test strip. For example, capturing one or more images can include capturing at least one image without applying a sample of bodily fluid to the test strip and capturing at least one image after applying a sample to the test strip. The latter image can be specifically used for comparison purposes and can also be referred to as a "blank image" or a "dry image." Sample application can generally be performed directly or indirectly, for example, via at least one capillary element. The at least one image captured after sample application can also typically be referred to as a "wet image," even if the sample may be dry when the image is actually captured. For example, at least one drop of sample, e.g., at least 2 to 5 μl of bodily fluid, can be applied to the test field. For example, the sample can be dripped and / or spread on the test field. Various application techniques can be possible, such as applying the sample to the test field from the back side of the test field and capturing the first and second images from the front side. The wet image may typically be captured after waiting at least a predetermined waiting time, e.g., 5 seconds or more, to allow the detection reaction to occur. Thus, by way of example, the method may include waiting at least a predetermined minimum amount of time between capturing at least one optional dry image and at least one wet image. This predetermined minimum amount of time may be sufficient for the detection reaction to occur within the test strip. By way of example, the minimum waiting time may be at least 5 seconds.
[0044] The device can be operated in different modes, including a standard measurement mode and at least one of a reduced measurement mode and an enhanced measurement mode. The term "standard measurement mode," as used herein, is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. The term may specifically, but not exclusively, refer to the configuration of the device for performing an analytical method. Specifically, the term may refer to settings specific to ensure valid measurement results are obtained. However, such settings may also include rejecting a measurement attempt if a condition that may jeopardize obtaining valid measurement results is detected. In particular, this may include rejecting a measurement attempt without providing an analytical measurement result value to the user. Furthermore, the measurement may be aborted and the user may be required to launch the measurement program anew. Thus, in general, the term standard measurement mode may refer to a method of performing an analytical method that includes setting or activating one or more measurement rejection criteria and deactivating one or more corrective feedback functions.
[0045] As a result, the terms "placing the device in a standard measurement mode" or "setting the device in a standard measurement mode," as used herein, are also broad terms and should be given their ordinary and customary meaning to those skilled in the art, without being limited to any special or customized meaning. Specifically, the terms can refer to, but are not limited to, one or more methods of changing or adjusting the measurement settings as defined above. Specifically, the terms can refer to changing or adjusting at least one parameter affecting the measurement, including measurement rejection, without providing the user with an analytical measurement result value. Exemplary embodiments are provided below.
[0046] The term "measurement rejection criteria" as used herein is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. This term may specifically, but not exclusively, refer to a characterization of measurement conditions, where a measurement attempt is rejected to avoid obtaining invalid or at least questionable measurement results. Thus, by way of example, fulfillment of the measurement rejection criteria may be checked based on an analysis of at least one captured image in step ii). In another embodiment, fulfillment of the measurement rejection criteria may be checked based on an analysis of sensor data obtained from one or more sensors of a mobile device, for example, during the capture of one or more images.
[0047] In particular, measurement rejection criteria can refer to conditions under which an analytical measurement result value cannot be determined. Thus, measurement rejection criteria can also be thought of as items of unacceptability information, which can be Boolean or digital, such as indicating "met" or "not met," by way of example.
[0048] The measurement rejection criteria may specifically determine a boundary condition when one or more captured images are determined to be unacceptable for purposes of determining an analytical measurement result value.
[0049] As a simple example, one or more parameters determined by analysis of one or more captured images or one or more sensor data obtained from one or more sensors of the mobile device may be compared to one or more comparison, reference, or standard values, and the comparison may result in a binary result, such as "met" or "not met." At least one comparison and / or standard value may include at least one threshold, such as minimum uniformity in a region of interest (ROI). In one embodiment, the comparison and / or standard value may include, for example, a maximum tilt angle of the mobile device relative to the test strip or other comparison and / or standard value related to the positioning of the test strip (or test field) relative to the mobile device when capturing one or more images. The comparison, reference, and / or standard values may, for example, be derived from experiments or from boundary conditions determined, for example, by the accuracy to be achieved in the analytical measurement.
[0050] As another example, the measurement rejection criteria can define an exposure threshold stored in memory, the exceeding of which leads to the rejection of a measurement attempt based on at least one captured image. Thus, if, based on an analysis of at least one captured image, it is determined during a measurement attempt that the lighting conditions under which the at least one image was taken are not suitable for determining a measurement result value, for example due to overexposure, the measurement attempt based on the at least one captured image is rejected. Thus, the rejection of the measurement attempt prevents the provision of an analyzed measurement result value to a user.
[0051] As used herein, the term “examining satisfaction of one or more measurement rejection criteria” is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. The term may specifically, but is not limited to, refer to analyzing whether one or more measurement rejection criteria, which may be stored in a memory, are satisfied. The measurement rejection criteria may be considered satisfied, for example, if an image analysis result value (based on analysis of one or more captured images) or a sensor data analysis result value (based on analysis of acquired sensor data) falls below a predetermined acceptable threshold and / or exceeds a predetermined acceptable threshold.
[0052] If the measurement rejection criteria in b) are met, the measurement attempt based on at least one captured image is rejected. As used herein, the term "rejecting a measurement attempt" is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. This term may specifically, but is not limited to, not providing a user with a measurement result value based on one or more captured images. For example, rejecting a measurement attempt may refer to rejecting a measurement attempt based on one or more captured images, and may require capturing one or more second images of at least a portion of an optical test strip having a test field before and / or after sample application on which to base the determination of an analytical measurement result value. This term may specifically refer to ignoring one or more captured images for determining an analytical measurement result value.
[0053] If the measurement attempt is rejected, a note may be shown to the user on the display informing them of the error or the need to capture one or more new images. Thus, step a) of the method may include displaying an (error) message on the display of the device if one or more measurement rejection criteria are met. In another embodiment, if the measurement attempt is rejected, the analyte measurement program may need to be manually restarted by the user, or the continuation of the program may need to be manually confirmed by the user before a new measurement attempt is made.
[0054] As used herein, the term "recording one or more rejection events in memory" is a broad term and should be given its ordinary and customary meaning to those skilled in the art, and is not limited to any special or customized meaning. The term may specifically refer to writing to memory the occurrence of one or more rejection events, including, but not limited to, the date and time of occurrence. Further details, such as specific error analysis values and accompanying conditions, may also be recorded. Measurement rejection criteria may be stored in memory according to a first-in, first-out principle.
[0055] Thus, multiple measurement attempts can be performed, and if a measurement rejection event occurs, it can be recorded in memory. For example, the term "multiple measurement attempts" can specifically refer to, but is not limited to, at least two, at least three, at least five, at least 10, or at least 25 measurement attempts. The measurement attempts for multiple analytes may specifically be performed by the same user.
[0056] As used herein, the term "analyzing one or more of the recorded reject events in the error analysis" is a broad term and should be given its ordinary and customary meaning to those skilled in the art, and is not limited to any special or customized meaning. This term may specifically refer to, but is not limited to, a process for deriving statistics and / or information from the recorded reject events. Thus, specifically, the error analysis may include, for example, using statistical analysis to determine the most frequently recorded reject events or those recorded more frequently than a predetermined threshold as a result of the error analysis. However, other statistical analyses may be performed. The error analysis may further determine whether one or more predetermined reject events have been recorded. The analysis of one or more recorded reject events in the error analysis may include determining whether one or more predetermined reject events have been recorded based on a predetermined number N of the most recent measurement attempts. A Analysis of, or a predetermined number N of the most recent recorded denial events R The analysis can be limited to a specific period or a predetermined time period.
[0057] Based on the results of the error analysis, the settings of the device are adjusted by placing the device in a reduced measurement mode and / or an enhanced measurement mode. For example, placing the device in a reduced measurement mode with one or more specific measurement rejection criteria deactivated may be in response to a predetermined rejection event that occurs anyway, a rejection event that occurs more frequently than a predetermined threshold, or a rejection event that occurs most frequently across all rejection events or over a specific period of time, or the most recently occurring rejection event.
[0058] Thus, placing the device in the reduced measurement mode and / or the enhanced measurement mode can depend on the results of the error analysis and, optionally, can occur automatically upon a predetermined result from the error analysis. The term "reduced measurement mode and enhanced measurement mode" refers to a combination of reduced and enhanced measurement modes in which one or more of the measurement rejection criteria are deactivated and corrective feedback is provided to the user during a measurement attempt.
[0059] The term "reduced measurement mode" can specifically, but not exclusively, refer to a configuration of an apparatus for performing an analytical method. Specifically, the term can refer to a specific setting for training a user on a particular aspect of analytical measurement. In the reduced measurement mode, at least one measurement rejection criterion activated in the standard mode is deactivated. Thus, the reduced measurement mode can correspond to the standard measurement mode, but one or more measurement rejection criteria activated in the standard measurement mode are deactivated. Deactivation can mean, for example, that fulfillment of one or more deactivated measurement rejection criteria is not checked in the reduced measurement mode, or, if checked, fulfillment does not result in rejection of the measurement attempt. Thus, in general, the term "reduced measurement mode" can refer to a training mode. Thus, the method of the present invention can be a method for training a user in performing an analytical method for determining the concentration of an analyte in a body fluid, or a part (or step) of such an analytical method. It can also be a method for performing an analytical method for determining the concentration of an analyte in a body fluid, or a part (or step) of such an analytical method. By focusing training or practice on one or more specific portions (or steps) of an analytical method that have previously resulted in rejection events, a user can focus on improving their skills in such one or more specific portions (or steps) (instead of attempting to perform the entire analytical method under "real-world conditions" in standard measurement mode). Thus, in reduced mode, a user can, for example, learn a portion (or step) of an analytical method without wasting a new test strip with every measurement attempt. This can ultimately reduce failed measurement attempts when the mobile device is set (or returned) to standard measurement mode.
[0060] Thus, the term "placing the device in reduced measurement mode" can specifically refer to one or more of, but not limited to, changing or adjusting measurement or device settings as defined above. Specifically, the term can refer to deactivating at least one measurement rejection criterion. Thus, training results can be provided to the user despite the fact that certain requirements required in standard measurement mode have not been met or checked. For example, the user can train to position a test strip within the camera's field of view to capture at least one image without having to worry about the uniformity of the region of interest. This can be done, for example, with "old" test strips (i.e., test strips with dried samples). The rejection criterion for insufficient ROI uniformity can be deactivated, for example. When using old test strips, insufficient ROI uniformity could otherwise result in a rejection event (when the mobile device is set to standard measurement mode). Thus, the user can perform the analysis method, particularly the step of positioning the test strip within the camera's field of view to capture at least one image, without having to worry about ROI uniformity. If any of the remaining rejection criteria that were not deactivated in the reduced measurement mode are not met, the user can still obtain training results in this reduced measurement mode, thereby allowing the user to gradually increase their skills in performing analytical methods for determining the concentration of an analyte in a body fluid.
[0061] The term "enhanced measurement mode" can specifically, but not exclusively, refer to a configuration of an apparatus for performing an analytical method. Specifically, the term can, for example, refer to a setting specific to support an aspect of an analytical measurement by a user. In the enhanced measurement mode, corrective feedback is provided to the user (e.g., to avoid one or more errors previously made when the apparatus was set to the standard measurement mode).
[0062] Thus, the augmented measurement mode may correspond to the standard measurement mode, but additionally provides corrective feedback to avoid the occurrence of a rejection event. The corrective feedback may refer, for example, to an alert, message, invitation, or call, or request to the user. The purpose is to avoid the occurrence of one or more rejection events. Thus, in general, the term "augmented measurement mode" may refer to a method of performing an analytical measurement method with additional support for the user. Specifically, the corrective feedback may be provided to the user via the display of the device.
[0063] Thus, the term "placing the device in the enhanced measurement mode" may specifically refer to, but is not limited to, one or more of changing or adjusting measurement or device settings as defined above. Specifically, the term may refer to activating at least one corrective feedback function that was not active in the standard measurement mode. Thus, the success of the analytical measurement may be facilitated. In one embodiment, the corrective feedback provided to the user avoids the occurrence of a rejection event and supports the capture of one or more images of at least a portion of the optical test strip having a test field that is not ignored in determining the analytical measurement result value. By way of example, before capturing one or more images in the enhanced measurement mode, a message may be displayed on the device to the user to pay attention to the correct positioning of the test strip relative to the mobile device or camera for capturing one or more images of at least a portion of the optical test strip having a test field.
[0064] The adjustment method may include, in step a)ii), checking by the processor for fulfillment of one or more measurement rejection criteria stored in memory based on an analysis of the one or more images captured in step a)i). From the image analysis, one or more image analysis result values (also called parameters) may be determined. The image analysis result values may be compared with comparative, reference, or standard values stored in the memory function. Such comparative, reference, or standard values may thus function as thresholds. Thus, acquired image analysis result values below and / or above a predetermined acceptable threshold may indicate fulfillment of the measurement rejection criteria.
[0065] The preparation method of the present invention comprises: In step a)i), acquiring sensor data by using at least one sensor of a mobile device; In step a)ii), checking for fulfillment of one or more measurement rejection criteria stored in memory based on one or more of the acquired sensor data.
[0066] Sensor data obtained by using at least one sensor of the user's mobile phone, in particular an angle sensor, a light sensor, a motion sensor, an acceleration sensor, a gyro sensor, a magnetic sensor, in particular a Hall sensor, a GPS sensor, a pressure sensor, in particular a barometer, a temperature sensor, a biometric sensor, in particular a fingerprint sensor and / or an iris scanning sensor; in one embodiment, the term sensor data may refer to data received from a color sensor of a camera.
[0067] One or more of the sensor data obtained from one or more sensors of the mobile device (or further processed data derived from the sensor data) can be compared to one or more comparison, reference, or standard values stored in memory. Such comparison, reference, or standard values can thus function as thresholds. Thus, sensor data that is below and / or above a corresponding predetermined acceptable threshold can indicate fulfillment of a measurement rejection criterion.
[0068] The measurement rejection criteria of the present invention are specifically as follows: poor image clarity, Insufficient ROI saturation, Insufficient ROI size, Poor ROI uniformity, insufficient stability, and Insufficient orientation.
[0069] A clarity check can ensure that the recorded image is not overly blurred. In the case of a blurred image, the region of interest (ROI) may not be properly distinguishable.
[0070] The term "region of interest" as used herein is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. Specifically, the term can refer to, but is not limited to, a section, segment, or partition of an object, where the section, segment, or partition is identified for a specific purpose. Thus, a region of interest can be, for example, a delimited surface area of an object. Alternatively, a region of interest can refer to a subset of data in an image, where the subset represents a section, segment, or partition of the object. For example, a region of interest can contain specific information, or information can be inferred therefrom. A region of interest (ROI) can define, for example, pixels in an image that belong to a corresponding test field or at least a predetermined portion of a corresponding test field. Other regions of interest (on a test strip) can also be determined, for example, to obtain reference values. Thus, a region of interest can also include at least one element of the group consisting of a white field and a black field.
[0071] Image sharpness can specifically be determined by the pixel-level distance from lower (x, e.g., 10 or 15%) to higher (y, e.g., 85 or 90%) of its final value (also called the xy rise distance). In one embodiment, the gradient of the black-to-white transition from the black field of a strip to the adjacent white field can be determined. Thus, insufficient image sharpness can be sharpness below or above a predetermined sharpness threshold, e.g., xy distances above a predetermined corresponding threshold.
[0072] A saturation check tests whether the minimum pixel value in the ROI is below a certain limit and / or whether the maximum pixel value in the ROI is above a certain limit. Thus, insufficient ROI saturation can refer to a situation where the minimum pixel value in the ROI is below a first predetermined saturation threshold and / or the maximum pixel value in the ROI is above a second predetermined saturation threshold, for example, above 250 (for R, G, and / or B).
[0073] The uniformity test tests whether the ROI is uniform. A non-uniform region of interest can be an indication of, for example, a contaminated test field, a light shadow, or an insufficient sample size applied to the test field. Therefore, ROI uniformity can be specifically determined by comparing the mean or median intensity values (or one or more other statistical parameters) of subregions of the region of interest. A difference between one or more statistical values exceeding a predetermined uniformity threshold can indicate insufficient ROI uniformity.
[0074] The ROI size test checks whether the number of pixels in the determined region of interest is below a certain limit and / or above a certain limit. Therefore, an insufficient ROI size can refer to a situation where the number of pixels in the determined region of interest is below a first predetermined ROI size threshold and / or above a second predetermined ROI size threshold, which can ensure an appropriate distance between the test strip and the mobile device or camera. It can also ensure representative image analysis. ROI size analysis can be performed before and / or after outlier removal using the same or different thresholds.
[0075] The stability check tests whether the mobile device was kept stable while capturing one or more images. Insufficient stability may refer, for example, to a situation where the mobile phone is still moving when capturing one or more images and the motion sensor data indicates movement above a predetermined motion threshold.
[0076] The orientation check is to ensure proper orientation of the camera relative to the test strip. Insufficient orientation can include a maximum tilt angle of the mobile device that exceeds an orientation threshold angle (e.g., relative to the test strip or other comparison and / or reference value for positioning the test strip (or test field) on the mobile device when capturing one or more images).
[0077] The method comprises: a)iii) may further include determining and providing, by the processor, an analytical measurement result value if the measurement attempt is not rejected in step a)ii).
[0078] The adjustment method is a)iii) determining and providing, by the processor, if the measurement attempt is not rejected in step a)ii), an analytical measurement result value by using the one or more images captured in step a)i).
[0079] The analytical measurement value can be, for example, a numerical indicator of the result of the analytical measurement, such as indicating the concentration of at least one analyte in the sample, such as a blood glucose concentration. To determine the analytical measurement value from the at least one image, for example, a correlation or a predetermined or determinable relationship between information derived from the at least one image, such as color information or color change information, and the at least one analytical measurement value can be used. This predetermined or determinable relationship can, for example, be stored in the data storage device of the mobile device and / or in the processor of the mobile device. For example, the processor can be configured by software programming to derive at least one information (also called a parameter) from one or more captured images, such as at least one color coordinate, and apply the predetermined or determinable relationship to the at least one information. The correlation can, for example, be determined empirically, for example, as a conversion function, conversion table, or look-up table, and can, for example, be stored in at least one memory of the mobile device, for example, by software, particularly an app downloaded from an app store. As an example of deriving the information for the at least one item, the processor may be programmed to automatically recognize the test field or at least a portion of the test field in the image, for example, by pattern recognition and / or other algorithms. Consequently, the processor may be programmed to determine the information for the at least one item, such as one or more color coordinates. The information for each at least one item derived from the blank image may be used for normalization, for example, by dividing the information for the at least one item derived from the wet image by the information for the at least one item derived from the corresponding blank image, or by subtracting the information for the at least one item derived from the wet image from the information for the at least one item derived from the blank image, or vice versa. Other normalization methods are also possible.The correlation, which may be, for example, a conversion function, a conversion table, or a look-up table, may be determined, for example, empirically, and may be stored in at least one data storage device of the mobile device, for example, by software, in particular an app downloaded from an app store or the like.
[0080] The method may further include displaying the analytical measurement value on, for example, a display of the mobile device. One or more numerical values indicative of the analytical measurement value may be displayed, for example, on the display. Additionally or alternatively, a range indication for the analytical measurement value may be provided, such as by indicating whether the analytical measurement value falls within one or more predetermined ranges. For example, a range indication such as a high range, a target range, or a low range may be provided without necessarily displaying the numerical value of the analytical measurement value. Thus, the display need not necessarily be a numerical indication. Other means for displaying the analytical measurement value are feasible, and the display may be one or more of a visual display, an audible display, or a tactile display. Additionally or alternatively, the method may include storing the analytical measurement value in at least one data storage device of the mobile device. Additionally and alternatively, the method may further include transmitting the analytical measurement value to, for example, another computer via at least one interface and / or via at least one data transmission network, for further evaluation.
[0081] The method is: In step a)i), using a camera to capture at least one image of at least a portion of the optical test strip having a test field before sample application and at least one image of at least a portion of the optical test strip after sample application; In step a)ii), checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in the memory based on analysis of the at least two captured images, and if the one or more measurement rejection criteria are satisfied, rejecting the measurement attempt by the processor and recording one or more rejection events in the memory; and determining, by the processor, in step a)iii), an analytical measurement result value by using at least one of the at least two images, and providing the analytical measurement result value to a user if the measurement attempt is not rejected based on the analysis of the at least two images; may include:
[0082] The method also includes a step of prompting a user to confirm that a sample of bodily fluid has been applied to the test field, and receipt of this confirmation can be considered the initiation of the reaction. The at least one image captured after sample application should then be captured within a predetermined period of time after the initiation of the reaction. This can improve measurement performance by eliminating reaction times with the reagent system that are too short or too long, as reaction times that are too short or too long can lead to erroneous analytical measurement results.
[0083] The time at which at least one image captured after sample application is compared to the start of the reaction can be considered the reaction time. Each captured image may be associated with a timestamp indicating the date and time the image was captured (and, optionally, may be at least temporarily stored). This allows for easy determination of the reaction time based on the timestamp of the captured image and the start of the reaction time, which can be determined as described above.
[0084] Alternatively, multiple images of at least a portion of the optical test strip can be captured in step a)i) to determine the wetting-induced change in optical property that occurs upon sample application. The occurrence of the wetting-induced change can be considered the initiation of the reaction. In particular, multiple second images can be captured, and the analytical measurement can be determined based on at least one of the multiple second images captured at a predetermined time interval (e.g., 3 to 8 seconds or 5 to 8 seconds) from the one or more captured images that indicate the onset of the wetting-induced change.
[0085] Thus, the measurement rejection criterion can be insufficient reaction time: a reaction time is insufficient if it is below or above a predetermined lower or upper reaction time threshold, respectively.
[0086] Another measurement rejection criterion can be poor lighting consistency.
[0087] The lighting consistency test examines whether the absolute difference between pixel values of corresponding regions of interest in two images (or one or more other statistical parameters derived from the pixel values of corresponding regions of interest) is below and / or above a certain limit. Thus, insufficient lighting consistency may refer to a situation where the absolute difference between pixel values of corresponding regions of interest in two images (or one or more other statistical parameters derived from the pixel values of corresponding regions of interest) is below a first predetermined lighting consistency threshold or above a second predetermined lighting consistency threshold, respectively.
[0088] Thus, for example, step a)ii) may include checking, by the processor, for sufficiency of insufficient lighting consistency stored in memory based on analysis of the at least two captured images, and rejecting, by the processor, the measurement attempt and recording the rejection event in memory if one or more measurement rejection criteria are met.
[0089] The method of the present invention comprises: In step a)i), capturing at least two images of at least a portion of the optical test strip having the test field after sample application using a camera; In step a)ii), checking, by the processor, for sufficiency of the insufficient illumination consistency stored in the memory based on analysis of at least two captured images of at least a portion of the optical test strip having the test field after sample application, and rejecting, by the processor, the measurement attempt if one or more measurement rejection criteria are met and recording one or more rejection events in the memory; It may further include:
[0090] To compare two images captured before sample application, a corresponding procedure can be followed.
[0091] The method may include, in step b), analyzing only one or more rejection events recorded from measurement attempts made when the mobile device was set to standard measurement mode.
[0092] This prevents bias to the error analysis due to the user potentially experimenting when the instrument is set to reduced and / or enhanced measurement mode.
[0093] The method of the present invention also determines whether the analyzed recorded rejection event(s) are: N A The latest measurement attempt of N R The most recent recorded denial event of period T, The method may relate to one or more recorded rejection events from one or more of:
[0094] This ensures that the user benefits from the most recent analysis when using the device in reduced or enhanced measurement mode, so that the user can, for example, be reminded to avoid recent errors in reduced measurement mode or not repeat them in enhanced measurement mode.
[0095] The number of most recent measurement attempts, N A can be, for example, 2, 3, 5, 10 or 25. The number of most recent recorded rejection events, N R can be, for example, 2, 3, 5, 10 or 25. The period T can be, for example, the most recent 3, 5, 10, 25 or 30 days.
[0096] The term "most recent," as used herein, is a broad term and should be given its ordinary and customary meaning to those skilled in the art and should not be limited to any special or customized meaning. Specifically, the term can refer to, but is not limited to, one or more occurrences that occurred closest in time to a reference point in time. In particular, the reference point in time can be the point in time at which the error analysis began.
[0097] The method of the present invention may be one in which the error analysis includes determining the most frequently or most recently recorded rejection events.
[0098] Alternatively or additionally, one or more other statistical parameters may be determined in the error analysis. As a further example, the error analysis may include determining one or more reject events that are recorded more frequently than a predetermined threshold.
[0099] Based on the results of the error analysis, i.e., what is determined in the error analysis, the settings of the device are adjusted by placing the device in a reduced measurement mode and / or an enhanced measurement mode. If the results of the error analysis meet predetermined criteria, the settings can be adjusted, for example, automatically. In the reduced measurement mode, in particular, one or more of the measurement rejection criteria can be deactivated depending on the results of the error analysis.
[0100] Thus, the method of the present invention may relate to a method in which one or more, but not all, measurement rejection criteria of the standard measurement mode are deactivated.
[0101] The one or more deactivated measurement rejection criteria can be different, in particular, from the most frequently or most recently recorded measurement rejection event determined in the error analysis. In an example, the one or more deactivated measurement rejection criteria can be different, in particular, from the one or more measurement rejection events recorded more frequently than a predetermined threshold in the error analysis.
[0102] The adjustment method is c) performing at least one analyte measurement trial with the mobile device configured for reduced measurement, wherein the analyte measurement trial in reduced measurement mode comprises: i) capturing, by using a camera, one or more images of at least a portion of an optical test strip or a dummy test strip having a test field before and / or after sample application; ii) checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in memory that have not been deactivated; and, optionally, iii) performing at least one analyte measurement attempt, including rejecting, by the processor, the measurement attempt if one or more measurement rejection criteria that have not been deactivated are met.
[0103] What has been described with respect to steps a)i), ii) and iii) may be equally applicable with respect to steps c)i), ii) and iii), respectively, except that in the reduced measurement mode, one or more of the measurement rejection criteria activated in the standard measurement mode are deactivated. By way of example, the method may include, in step c)ii), checking, by the processor, for fulfillment of one or more measurement rejection criteria stored in memory that have not been deactivated based on analysis of the one or more images captured in step c)i) or based on sensor data.
[0104] As a further example, the method may include, in step c)iii), determining and providing, by the processor, an analytical measurement result value by using the one or more images captured in step c)i).
[0105] If the check in step c)ii) results in the finding that one or more measurement rejection criteria stored in memory that have not been deactivated are met, a note informing the user of the error may be shown on the display.
[0106] As another example of the method of the present invention, if the testing of step c)ii) results in a finding that the measurement rejection criteria stored in the non-deactivated memory are not met, the method may include displaying a positive message to the user on the display of the device, thereby allowing a user who may have experienced a particular measurement rejection event to receive positive reinforcement upon successfully performing a method step that previously caused difficulty.
[0107] The reduced measurement mode can be considered a training mode, so that in step c)i), a dummy test strip can be used to train the capture of an image therefrom, which will not be ignored in the analytical method for determining the concentration of an analyte in a body fluid due to causing a reject event based on the image analysis. The dummy test strip can specifically refer to a test strip imprint on the test strip package or a previously used test strip, i.e., a test strip with a dried sample. Therefore, for training, the user does not need to discard a new test strip.
[0108] The preparation method of the present invention also includes: c) performing at least one analyte measurement trial with the mobile device configured for enhanced measurement, wherein corrective feedback is provided to the user before using the camera to capture one or more images of at least a portion of the optical test strip or dummy test strip having the test field before and / or after sample application.
[0109] The method comprises: i) capturing, by using a camera, one or more images of at least a portion of an optical test strip or a dummy test strip having a test field before and / or after sample application; ii) checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in memory; and optionally iii) determining and providing, by the processor, an analytical measurement result value if the measurement attempt is not rejected in step c)ii); It may further include:
[0110] What has been described with respect to steps a)i), ii) and iii) may be equally applicable with respect to steps c)i), ii) and iii), except that in the enhanced measurement mode, one or more corrective feedback functions are activated that are not activated in the standard measurement mode.
[0111] By way of example, the method may include, in step c)ii), checking by the processor for satisfaction of one or more measurement rejection criteria stored in memory based on analysis of the one or more images captured in step c)i) or based on sensor data.
[0112] As a further example, the method may include, in step c)iii), determining and providing, by the processor, an analytical measurement result value by using the one or more images captured in step c)i).
[0113] Specifically, a measurement attempt can be initiated by the processor detecting user interaction with a device associated with performing an analytical measurement. For example, the start of a measurement attempt can be detected by the user opening an application of the present invention on the device, or by pressing a button or tapping the touchpad on the device (after opening the application when prompted). A measurement attempt can be terminated by its rejection. Therefore, providing corrective feedback during a measurement attempt can help the user successfully proceed with the analytical measurement method. Providing feedback during a measurement attempt also aims to prevent a rejection event just before it may actually occur, for example, instead of providing the user with feedback or a report about the rejection event when the user may not be very interested (because the user is not actually attempting to perform a measurement at that time).
[0114] The corrective feedback relates to the results of the error analysis. For example, if the error analysis includes determining the most frequently or most recently recorded rejection events, or determining one or more rejection events that are recorded more frequently than a predetermined threshold, the corrective feedback may be a message warning the user to avoid the occurrence of the corresponding one or more rejection events. The corrective feedback provided during the measurement attempt can be further limited to a maximum of three messages or only one message during the measurement attempt. This can ensure that the user is not overwhelmed with information.
[0115] The method in one or more disclosed embodiments may be fully or partially computer-implemented. Thus, in a further aspect, a computer program is proposed, comprising instructions that, when the program is executed by a mobile device having a memory and a camera, in particular by a processor of a mobile phone, cause the mobile device to perform the method described herein, more particularly at least step a)ii) and step b), and optionally one or more of step a)iii), step c)ii) and step c)iii), as described herein. Furthermore, step a) and step c) of the method may also be at least partially computer-implemented or at least computer-supported.
[0116] A computer program may be specifically designed as an application, for example, an App, which can be downloaded to a mobile device from a download server.
[0117] The computer program may further include instructions that, when the program is executed by the mobile device, further prompt the user to perform or confirm the performance of certain steps.
[0118] In a further aspect, a computer-readable storage medium, particularly a non-transitory storage medium, is disclosed that includes instructions that, when executed by a mobile device having a camera, particularly by a processor of the mobile device, cause the mobile device to perform a method according to the present invention, such as according to any one of the embodiments disclosed above and / or according to any one of the embodiments disclosed in more detail below. Furthermore, steps a) and c) of the method may also, at least in part, be computer-implemented or at least computer-supported.
[0119] The computer-readable storage medium may further include instructions that, when executed by the mobile device, prompt a user to perform or confirm the performance of one or more steps.
[0120] As used herein, the terms "computer-readable data carrier" and "computer-readable storage medium" may specifically refer to non-transitory data storage means, such as a hardware storage medium on which computer-executable instructions are stored. A computer-readable data carrier or storage medium may specifically be or include a storage medium, such as a random access memory (RAM) and / or a read-only memory (ROM).
[0121] A computer program may also be embodied as a computer program product. As used herein, a computer program product may refer to a program as a tradeable product. The product generally exists in any format, such as a paper format, or on a computer-readable data carrier and / or a computer-readable storage medium. In particular, a computer program product may be distributed over a data network.
[0122] In a further aspect, a mobile device for performing analytical measurements is disclosed. For definitions and options of the mobile device, reference may be made to the method description above or the methods further outlined below. The mobile device comprises at least one camera, at least one display, at least one processor, and at least one memory. The mobile device is configured to perform at least steps e) and f), and optionally steps b) and / or d), of the method for performing analytical measurements according to the present invention, such as according to any one of the embodiments disclosed above and / or any one of the embodiments described in more detail below. Thus, the processor of the mobile device can be software-configured to perform and / or control the execution of at least steps b), d), e), and f) of the method, and steps a) and / or c) can also be at least partially controlled and / or supported by the processor, as outlined above.
[0123] As outlined above, the mobile device may comprise at least one processor programmed to control at least one of steps a)ii) and b) of the method of the invention, and optionally at least in part, one or more of a)i), a)iii) and c)i), c)ii) and c)iii). Reference may be made to the above description for definitions and options regarding the design of the processor.
[0124] In a further aspect, the present invention provides a method for producing a pharmaceutical composition comprising: At least one of an apparatus, computer program instructions, and computer-readable storage medium as previously described herein; at least one of a test strip and a dummy test strip; The present invention relates to a kit comprising:
[0125] The term "kit," as used herein, is a broad term and should be given its ordinary and accustomed meaning to those skilled in the art and should not be limited to any special or customized meaning. The term can specifically, but is not limited to, refer to an assembly of multiple components, where the components are each capable of functioning and can be treated independently of one another, and where the components of the kit can interact to perform a common function.
[0126] The kit may further comprise at least one reference card, the reference card having at least one reference color field.
[0127] In general, the present invention can greatly aid users in performing analytical measurements and handling mobile devices for performing analytical measurements, and ultimately improve the measurement performance of analytical measurements if users are better trained to use their devices.
[0128] Further, to summarize without excluding possible embodiments, the following embodiments may be considered.
[0129] Embodiment 1: 1. A method for adjusting settings for an analytical method for determining a concentration of an analyte in a bodily fluid based on a color reaction in an optical test strip, the analytical method including using a mobile device having a camera, a processor, and a memory, the adjustment method comprising: a) performing a plurality of analyte measurement trials with the mobile device set in a standard measurement mode, each of the plurality of analyte measurement trials comprising: i) capturing, by using a camera, one or more images of at least a portion of an optical test strip having a test field before and / or after sample application; ii) performing a plurality of analyte measurement attempts, including checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in memory, and rejecting, by the processor, the measurement attempt if the one or more measurement rejection criteria are satisfied and recording one or more rejection events in memory; b) an adjustment method comprising: analyzing, by a processor, one or more of the rejection events recorded in the error analysis; and, based on the results of the error analysis, adjusting settings by placing the device in a reduced measurement mode, in which one or more of the measurement rejection criteria are deactivated, and / or an enhanced measurement mode, in which corrective feedback is provided to the user during measurement attempts.
[0130] Embodiment 2: 2. The method of embodiment 1, wherein the analyte is glucose.
[0131] Embodiment 3: The method for preparation according to embodiment 1 or 2, wherein the sample is a sample of a body fluid, in particular a blood sample.
[0132] Embodiment 4: 4. The adjustment method of any of embodiments 1 to 3, wherein step a) comprises displaying an error message on a display of the device if one or more measurement rejection criteria are met.
[0133] Embodiment 5: An adjustment method as described in any of embodiments 1 to 4, wherein step a)ii) includes checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in the memory based on analysis of one or more images captured in step a)i).
[0134] Embodiment 6: An adjustment method described in any of embodiments 1 to 5, comprising: in step a)i), acquiring sensor data by using at least one sensor of a mobile device; and in step a)ii), checking satisfaction of one or more measurement rejection criteria stored in memory based on one or more of the acquired sensor data.
[0135] Embodiment 7: The local position is poor image clarity, Insufficient ROI saturation, Insufficient ROI size, Poor ROI uniformity, insufficient stability, and poor orientation, 7. The method of any one of embodiments 1 to 6, comprising at least one of:
[0136] Embodiment 8: a)iii) determining and providing an analytical measurement result value by the processor if the measurement attempt is not rejected in step a)ii).
[0137] Embodiment 9: a)iii) determining and providing an analytical measurement result value by the processor if the measurement attempt is not rejected in step a)ii) by using one or more images captured in step a)i).
[0138] Embodiment 10: 10. The method of any one of claims 1 to 9, further comprising displaying the analytical measurement result value on a display of a mobile device.
[0139] Embodiment 11: step a)i) includes capturing, by using a camera, at least one image of at least a portion of the optical test strip having a test field before sample application and at least one image of at least a portion of the optical test strip after sample application; step a)ii) includes checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in memory based on analysis of the at least two captured images, and rejecting, by the processor, the measurement attempt and recording one or more rejection events in memory if the one or more measurement rejection criteria are satisfied; 11. An adjustment method as described in any one of embodiments 1 to 10, wherein step a)iii) includes: determining, by a processor, an analytical measurement result value by using at least one of the at least two images; and providing the analytical measurement result value to a user if the measurement attempt is not rejected based on the analysis of the at least two images.
[0140] Embodiment 12: 12. The adjustment method according to any of the preceding embodiments, wherein the measurement rejection criteria are insufficient reaction time and / or insufficient illumination consistency.
[0141] Embodiment 13: 13. The adjustment method of any of embodiments 1 to 12, wherein step b) comprises analyzing only one or more rejection events recorded from measurement attempts made when the mobile device is set to standard measurement mode.
[0142] Embodiment 14: One or more recorded denial events analyzed N A The latest measurement attempt of N R The most recent recorded denial event of period T, 14. The adjustment method according to any one of the preceding embodiments, wherein the one or more recorded rejection events are from one or more of:
[0143] Embodiment 15: 15. A method according to any preceding embodiment, wherein the error analysis comprises determining the most frequently or most recently recorded rejection events.
[0144] Embodiment 16: 16. An adjustment method according to any one of embodiments 1 to 15, wherein one or more, but not all, measurement rejection criteria of the standard measurement mode are deactivated.
[0145] Embodiment 17: An adjustment method described in any of embodiments 1 to 16, wherein one or more deactivated measurement rejection criteria are different from the most frequent or most recently recorded measurement rejection event determined in the error analysis.
[0146] Embodiment 18: c) performing at least one analyte measurement trial with the mobile device configured for reduced measurement, wherein the analyte measurement trial in reduced measurement mode comprises: i) capturing, by using a camera, one or more images of at least a portion of an optical test strip or a dummy test strip having a test field before and / or after sample application; ii) checking, by the processor, for satisfaction of one or more measurement rejection criteria stored in memory that have not been deactivated; and, optionally, 18. The adjustment method of any one of embodiments 1 to 17, comprising: iii) rejecting, by the processor, the measurement attempt if one or more measurement rejection criteria that have not been deactivated are met.
[0147] Embodiment 19: c) performing at least one analyte measurement trial with the mobile device set to enhanced measurement, wherein corrective feedback is provided to the user before using a camera to capture one or more images of at least a portion of the optical test strip or dummy test strip having a test field before and / or after sample application.
[0148] Embodiment 20: 20. A method of adjusting as described in any one of embodiments 1 to 19, wherein rejection events occurring while the device is set to reduced and / or enhanced measurement mode are not recorded in memory.
[0149] Embodiment 21: A mobile device having at least a camera, a processor, and a memory, the mobile device comprising: A mobile device configured to perform at least steps a) ii) and b), and optionally step c), of the method according to any one of embodiments 1 to 20.
[0150] Embodiment 22: 21. A computer program comprising instructions, which when executed by a mobile device having a camera, a memory, and a processor, cause the mobile device to perform at least method steps a)ii) and b), and optionally any one or more of steps a)i), a)iii), c)i), c)ii), and c)iii), of the method according to any one of embodiments 1 to 20.
[0151] Embodiment 23: 21. A computer-readable storage medium containing instructions that, when executed by a mobile device having a camera, a processor, and a memory, cause the mobile device to perform at least method steps a)ii) and b), and optionally any one or more of steps a)i), a)iii), c)i), c)ii), and c)iii), of the method according to any one of embodiments 1 to 20.
[0152] Embodiment 24: At least one of the apparatus, computer program instructions, and computer-readable storage medium according to any of the preceding respective embodiments; at least one of a test strip and a dummy test strip; A kit comprising: [Brief explanation of the drawings]
[0153] Further optional features and embodiments are disclosed in more detail in the subsequent description of the embodiments, preferably in conjunction with the dependent claims. Here, each optional feature can be realized alone as well as in any possible combination as realized by a person skilled in the art. The scope of the present invention is not limited by the preferred embodiments. The embodiments are depicted schematically in these drawings. Here, the same reference numerals in these drawings refer to the same or functionally comparable elements.
[0154] [Figure 1] 1 shows an embodiment of a kit and a mobile device. [Figure 2] 1 shows a flow chart of an embodiment of a tuning method. [Figure 3] 1 shows a flow chart of an embodiment of a tuning method. [Figure 4] 1 shows a flow chart of an embodiment of a measurement run. DETAILED DESCRIPTION OF THE INVENTION
[0155] 1 shows a perspective view of an exemplary embodiment of a kit 110 for performing analytical measurements. The kit 110 comprises a mobile device 112, such as a smartphone, and at least one optical test strip 114 in this configuration, positioned within the field of view 116 of a camera 118 of the mobile device 112.
[0156] In addition to at least one camera 118, the mobile device 112 may include at least one processor 120 and at least one data storage device 132. The mobile device 112 may further include at least one display 124, such as for displaying life images captured by the camera 118 and / or for displaying information to a user. The mobile device 112 may further include at least one illumination source 123, such as an LED.
[0157] The optical test strip 114 can include at least one substrate 126, such as a flexible strip-like substrate. The optical test strip 114 further includes at least one test field 128 applied to the substrate, the test field 128 containing at least one test chemical for performing a detection reaction with at least one analyte contained in the sample 130. The sample 130 can be applied directly or indirectly to the test field 128, for example, by applying a droplet of bodily fluid to the test field 128 and / or to a capillary element for directing the sample 130 to the test field 128.
[0158] The mobile device 112 is configured, by suitable programming of the processor 120, to perform and / or support the method according to the present invention as described with reference to the exemplary embodiment shown in the flowchart of FIG.
[0159] A flow chart of an exemplary embodiment of the adjustment method 134 is shown in FIG. 2. The adjustment method 134 specifically includes the following steps, which may be performed in a predetermined order. Nevertheless, different orders may be possible. Two or more method steps may be performed fully or partially simultaneously. Furthermore, one, more than one, or all method steps may be performed once or repeatedly. The adjustment method 134 includes: a) performing a plurality of analyte measurement trials with the mobile device (114) (designated by reference numeral 136) set in a standard measurement mode, each of the plurality of analyte measurement trials comprising: i) capturing, using a camera (118), one or more images of at least a portion of an optical test strip (114) having a test field (128) before sample application and / or after sample (130) application; ii) performing measurement attempts for a plurality of analytes, including checking, by the processor (120), for satisfaction of one or more measurement rejection criteria stored in the memory (122), and rejecting, by the processor (120), the measurement attempt if the one or more measurement rejection criteria are satisfied and recording one or more rejection events in the memory (122); b) analyzing, by the processor (120) (indicated by reference numeral 138), one or more of the rejected events recorded in the error analysis, and based on the results of the error analysis, adjusting the settings by placing the device (112) in a reduced measurement mode, in which one or more of the measurement rejection criteria are deactivated, and / or an enhanced measurement mode, in which corrective feedback is provided to the user during the measurement attempt.
[0160] The adjustment method 134 may include additional method steps not listed above. As exemplarily shown by FIG. 3, the method 134 may include the additional steps: c) performing at least one analyte measurement trial with the mobile device (indicated by reference numeral 140) set in a reduced measurement mode and / or an enhanced measurement mode.
[0161] A flow chart of an exemplary embodiment of the calibration method 142 is shown in Figure 4. Specifically, the measurement run 142 can be initiated by launching an app on a mobile device, such as a smartphone. An optical test strip (114) having a test field (128) can be provided (indicated by reference numeral 144). The measurement run can further include: i) capturing one or more images of at least a portion of the optical test strip (114) having the test field (128) before and / or after application of the sample (130) by using the camera (118) (indicated by reference numeral 146); ii) checking for satisfaction of one or more measurement rejection criteria stored in memory (122) (indicated by reference numeral 148).
[0162] Branch point 150 may indicate a condition query, such as deciding between a first branch 152 and a second branch 154. By way of example, first branch 152 may indicate satisfaction (“y”) of one or more measurement rejection criteria. Thus, first branch 152 leads to a step (indicated by reference numeral 156) of rejecting the measurement attempt and recording one or more rejection events in memory (122). Second branch 154 may indicate non-compliance (“n”) of one or more measurement rejection criteria, thus leading to a step (indicated by reference numeral 156) of recording one or more rejection events in memory (122). iii) A processor (designated by reference numeral 158) may be provided to determine and provide analytical measurement values. [Explanation of symbols]
[0163] 110 kits 112 Mobile devices 114 Optical Test Strips 116 Field of view 118 Camera 120 processors 122 memory 123 Illumination source 124 display 126 Base material 128 Test Field 130 samples 132 sensors 134 Adjustment method 136 Step a) 138 Step b) 140 Step c) 142 Measurement Trials 144 Provide optical test strips 146 Step a)i) 148 Checking for satisfaction of one or more measurement rejection criteria stored in memory 150 Junction 152 First Branch 154 Second Branch 156 Reject a measurement attempt and record one or more rejection events in memory 158 Step a)iii)
Claims
1. 1. A method (134) for adjusting settings for an analytical method for determining the concentration of an analyte in a body fluid based on a color reaction in an optical test strip, the analytical method comprising using a mobile device (112) having a camera (118), a processor (120), and a memory (122), the method comprising: a) performing a plurality of analyte measurement trials (142) with the mobile device (112) set in a standard measurement mode, each of the plurality of analyte measurement trials (142) comprising: i) capturing one or more images of at least a portion of an optical test strip having a test field (128) before and / or after sample application using said camera (118); ii) performing measurement attempts (142) of multiple analytes, including checking, by the processor (120), for satisfaction of one or more measurement rejection criteria stored in the memory (122), and rejecting, by the processor (120), the measurement attempt (142) if one or more measurement rejection criteria are met and recording one or more rejection events in the memory (122); b) analyzing, by the processor (120), one or more of the recorded reject events in an error analysis and, based on the results of the error analysis, adjusting the settings by placing the device in a reduced measurement mode in which one or more of the measurement rejection criteria are deactivated; , including, a method of adjustment.
2. 2. The adjustment method of claim 1, wherein step a) ii) includes checking, by the processor (120), for satisfaction of the one or more measurement rejection criteria stored in the memory (122) based on analysis of the one or more images captured in step a) i).
3. 3. The adjustment method according to claim 1, further comprising: in step a) i) acquiring sensor data by using at least one sensor (132) of the mobile device (112); and in step a) ii) checking for fulfillment of the one or more measurement rejection criteria stored in the memory (122) based on one or more of the acquired sensor data.
4. The one or more measurement rejection criteria: poor image clarity, Insufficient ROI saturation, Insufficient ROI size, poor ROI uniformity, insufficient stability, and poor orientation, The adjustment method according to claim 1 , further comprising at least one of:
5. a) iii) if the measurement attempt (142) is not rejected in step a) ii), determining and providing an analytical measurement result value by the processor (120) by using the one or more images captured in step a) i).
6. step a)i) includes capturing, by using said camera (118), at least one image of at least a portion of the optical test strip having a test field (128) before sample application and at least one image of at least a portion of the optical test strip (114) after sample application; step a)ii) includes: checking, by the processor (120), for fulfillment of the one or more measurement rejection criteria stored in the memory (122) based on an analysis of at least two images captured in step a)i), including at least one image of at least a portion of the optical test strip (114) before sample application and at least one image of at least a portion of the optical test strip (114) after sample application; and rejecting, by the processor (120), the measurement attempt (142) and recording the one or more rejection events in the memory (122) if one or more measurement rejection criteria are fulfilled; 6. The adjustment method of claim 1, wherein step a)iii) comprises: determining, by the processor (120), an analytical measurement result value by using at least one of the at least two images; and providing the analytical measurement result value to a user if the measurement attempt (142) is not rejected based on the analysis of the at least two images.
7. 7. The adjustment method according to claim 1, wherein step b) comprises analyzing only the one or more rejection events recorded from measurement attempts (142) performed when the mobile device (112) was set to the standard measurement mode.
8. The analyzed one or more recorded rejection events include: the number of most recent measurement attempts N A , the number of most recent recorded rejection events N R ; Period T, 8. The method of claim 1, wherein the one or more recorded rejection events are from one or more of:
9. 9. The method of any one of claims 1 to 8, wherein the error analysis comprises determining the most frequently or most recently recorded rejection event.
10. 10. The adjustment method of claim 1, wherein the one or more deactivated measurement rejection criteria are different from the most frequently or most recently recorded rejection event determined in the error analysis.
11. c) performing at least one analyte measurement trial (142) with the mobile device (112) set in the reduced measurement mode, wherein the analyte measurement trial (142) in the reduced measurement mode comprises: i) capturing one or more images of at least a portion of an optical test strip or dummy test strip having a test field (128) before and / or after sample application by using said camera (118); ii) checking, by the processor (120), for satisfaction of the one or more measurement rejection criteria stored in the memory (122) that have not been deactivated; The method of any one of claims 1 to 10, comprising:
12. In step c), the measurement attempt (142) of the analyte in the reduced measurement mode comprises: iii) rejecting, by the processor (120), the measurement attempt if one or more measurement rejection criteria that have not been deactivated are met. The method of claim 11 , comprising:
13. A mobile device (112) having at least a camera (118), a processor (120), and a memory (122), the mobile device (112) comprising: Implementing the method according to any one of claims 1 to 12 1. A mobile device configured to:
14. 13. A computer program comprising instructions that, when executed by a mobile device (112) having a camera (118), a memory (122), and a processor (120), cause the mobile device (112) to perform the method of any one of claims 1 to 12.
15. 13. A computer-readable storage medium containing instructions that, when executed by a mobile device (112) having a camera (118), a processor (120), and a memory (122), cause the mobile device (112) to perform the method of any one of claims 1 to 12.
16. At least one of the apparatus and computer-readable storage medium according to any one of claims 1 to 13 and 15, and at least one of a test strip and a dummy test strip; A kit (110) comprising:
17. 1. A method (134) for adjusting settings for an analytical method for determining the concentration of an analyte in a body fluid based on a color reaction in an optical test strip, the analytical method comprising using a mobile device (112) having a camera (118), a processor (120), and a memory (122), the method comprising: a) performing a plurality of analyte measurement trials (142) with the mobile device (112) set in a standard measurement mode, each of the plurality of analyte measurement trials (142) comprising: i) capturing one or more images of at least a portion of an optical test strip having a test field (128) before and / or after sample application using said camera (118); ii) performing measurement attempts (142) of multiple analytes, including checking, by the processor (120), for satisfaction of one or more measurement rejection criteria stored in the memory (122), and rejecting, by the processor (120), the measurement attempt (142) if one or more measurement rejection criteria are met and recording one or more rejection events in the memory (122); b) analyzing, by the processor (120), one or more of the recorded reject events in an error analysis and, based on the results of the error analysis, adjusting the settings by placing the device in a reduced measurement mode in which one or more of the measurement rejection criteria are deactivated; Including, the one or more deactivated measurement rejection criteria is different from the most frequently or most recently recorded rejection event as determined in the error analysis; Adjustment method.
18. 1. A method (134) for adjusting settings for an analytical method for determining the concentration of an analyte in a body fluid based on a color reaction in an optical test strip, the analytical method comprising using a mobile device (112) having a camera (118), a processor (120), and a memory (122), the method comprising: a) performing a plurality of analyte measurement trials (142) with the mobile device (112) set in a standard measurement mode, each of the plurality of analyte measurement trials (142) comprising: i) capturing one or more images of at least a portion of an optical test strip having a test field (128) before and / or after sample application using said camera (118); ii) performing measurement attempts (142) of multiple analytes, including checking, by the processor (120), for satisfaction of one or more measurement rejection criteria stored in the memory (122), and rejecting, by the processor (120), the measurement attempt (142) if one or more measurement rejection criteria are met and recording one or more rejection events in the memory (122); b) analyzing, by the processor (120), one or more of the recorded reject events in an error analysis and, based on the results of the error analysis, adjusting the settings by placing the device in a reduced measurement mode in which one or more of the measurement rejection criteria are deactivated; Including, c) performing at least one analyte measurement trial (142) with the mobile device (112) set in the reduced measurement mode, wherein the analyte measurement trial (142) in the reduced measurement mode comprises: i) capturing one or more images of at least a portion of an optical test strip or dummy test strip having a test field (128) before and / or after sample application by using said camera (118); ii) checking, by the processor (120), for satisfaction of the one or more measurement rejection criteria stored in the memory (122) that have not been deactivated; Including, Adjustment method.
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