Apparatus and method for providing inter-floor noise notification service

By installing noise and vibration detection terminals on the ceilings of apartment buildings, noise data can be processed and filtered in real time, and warnings can be issued to households directly above. This solves the problem of the accuracy of noise detection and notification between floors, reduces disputes and complaints, and improves the efficiency of noise management.

CN121366474APending Publication Date: 2026-01-20最佳点株式会社
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Patent Information

Application Number
CN202411047454.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2024-07-17
Filing Date
2024-08-01
Publication Date
2026-01-20

AI Technical Summary

Technical Problem

Existing technologies are insufficient to accurately detect and effectively notify noise between floors, leading to frequent disputes and civil complaints, and noise management measures are inadequate.

Method used

By installing noise and vibration detection terminals on the ceiling of the apartment building, noise and vibration data are generated and processed in real time. Based on preset thresholds, a warning signal is issued. The impact of neighboring households is filtered through normalization and distance weighting algorithms to ensure that notifications are only sent to households directly above the floor.

Benefits of technology

It enables accurate detection and timely notification of noise between floors, reducing disputes and improving the effectiveness of noise management and residents' experience of a quiet environment.

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Abstract

The present invention relates to an apparatus and a method for providing an inter-floor noise notification service. The electronic equipment comprises a memory and a processor connected to the memory, and the processor receives first noise data and first vibration data generated by a first noise vibration detection terminal installed on a ceiling of a specific target resident of a comprehensive building in real time. Measuring a target A value according to the first noise data and the first vibration data to obtain the first noise data, the first vibration data and a target measurement value, and sending the first noise data, the first vibration data and the target measurement value to a first user terminal of a first user living in the target family, if so, a warning signal may be transmitted to a second user terminal of a second user in a home residing above the target home.
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Description

TECHNICAL FIELD

[0001] The present application relates to an apparatus and method for providing a floor-to-floor noise notification service. BACKGROUND

[0002] The material described in this section is not prior art to the claims of the present application and is not admitted to be prior art by inclusion in this section.

[0003] Floor-to-floor noise refers to noise generated by impact on the floors of an apartment building. Disputes over floor-to-floor noise occurring in an apartment building are often caused by floor impact noise, especially ball transmission noise caused by heavy object excitation.

[0004] This floor-to-floor noise problem, combined with the increasing demand for a quiet indoor environment by residents, has become a major cause of intergenerational disputes and civil complaints, and personal injury incidents have also occurred frequently. Therefore, the government has decided to improve the floor-to-floor sound insulation performance of newly built houses. To solve the problem of floor-to-floor noise, not only should the standard be strengthened, but also the punishment provisions for floor-to-floor noise damage should be strengthened, and various technologies have been proposed.

[0005] An object of the present application is to provide a technology capable of accurately detecting floor-to-floor noise occurring in a specific household and effectively warning the resident of the unit that generated the floor-to-floor noise.

[0006] PRIOR ART DOCUMENTS

[0007] PATENT DOCUMENTS

[0008] Patent Document 1: Korean Patent No. 10-1647704 (2016.08.05.) SUMMARY

[0009] PROBLEMS TO BE SOLVED BY THE INVENTION

[0010] One embodiment of the present application provides an apparatus and method for providing a floor-to-floor noise notification service.

[0011] The technical problems to be solved by the present application are not limited to the above-mentioned technical problems, and those skilled in the art will be able to clearly understand other technical problems not mentioned by the following description.

[0012] MEANS FOR SOLVING THE PROBLEMS

[0013] The above object, according to an embodiment of the present application, an electronic device includes a memory and a processor connected to the memory, the processor receives first noise data and first vibration data generated in real time from a first noise and vibration detection terminal installed on a ceiling of a specific target home of a complex building, and based on the first noise data and the first vibration data, derives a target measurement value, and transmits the first noise data, the first vibration data, and the target measurement value to a first user terminal of a first user who resides in the target home, and the target measurement value is a preset threshold value measurement value, and if the threshold value measurement value is exceeded, an alarm signal can be transmitted to a second user terminal of a second user who resides in a home above the target home.

[0014] At this time, when the alarm signal is transmitted to the second user terminal, the processor can transmit identification information about the target home and notification information indicating that noise and / or vibration has occurred in the target home of the complex building to the second user terminal. The administrator terminal is set to an administrator.

[0015] At this time, the processor derives a basic measurement value based on the first noise data and the first vibration data, and detects a second noise and vibration of a neighboring home installed on a ceiling within a preset influence distance from the target home. The second noise data and the second vibration data generated in real time from the second noise data and the second vibration data of each neighboring home, and the proximity measurement value of each neighboring home is derived from the second noise data and the second vibration data of each neighboring home, and the neighboring measurement value can be derived from the measurement value.

[0016] At this time, the processor converts the first noise data into a preset value, normalizes the first normalized data generated in a normalization range, and adjusts the first vibration data in the normalization range. Normalization can be performed to generate second normalized data, and the basic measurement value can be generated by merging the first normalized data and the second normalized data.

[0017] At this time, the basic measurement value is derived by the following equation:

[0018]

[0019] bm(t) refers to a basic measurement value according to time, nd_1(t) refers to first normalized data according to time, and nd_2(t) refers to second normalized data according to time.

[0020] At this time, the processor adjusts the second noise data in the normalization range of each neighboring generation. The third normalized data is generated by normalization, and the second vibration data is adjusted in the normalization range. The fourth normalized data is generated by normalization, and the value of the third normalized data and the fourth normalized data can be derived according to the distance weight set according to the distance between the target home and the neighboring home, and the proximity to the neighboring home.

[0021] At this time, the neighboring measurement value is derived by the following equation:

[0022]

[0023] is a neighboring measurement value that varies over time, dw is a distance weight derived from a distance between the target generation and the neighboring generation, nd_3(t) is a neighboring generation that varies over time, and refers to the third generation. The normalized data of nd_4(t) can refer to the fourth normalized data of the corresponding neighboring generation over time.

[0024] At this time, the distance weight is derived by the following equation:

[0025]

[0026] dw is a distance weight of the corresponding neighboring household, vd is a vertical difference index indicating a vertical difference between the target household and the neighboring household, and hd is a distance between the target household and the neighboring household. The horizontal difference index indicates a horizontal difference.

[0027] At this time, the processor can derive the target measurement value by removing the neighboring measurement value of the neighboring generation from the basic measurement value as noise.

[0028] At this time, the target measurement value is derived by the following equation:

[0029]

[0030] indicates a target measurement value that varies over time, bm(t) indicates a basic measurement value of the target generation that varies over time, n indicates a number of neighboring generations, nm_i(t) indicates an i-th neighboring measurement value that varies over time, i-th neighboring household, vd_i indicates a vertical difference index, indicates a vertical layer difference between the target household and the i-th neighboring household, fh is a comprehensive floor, indicates a floor height of the generation, and wv can indicate a preset vibration movement speed.

[0031] Inventive Effects

[0032] When the start-up business simulation management platform operating server and method based on artificial intelligence learning according to the present application as described above are used, the start-up business project, business model, business feasibility, marketing strategy, and simulated investment are linked with artificial intelligence. The intelligence can accurately and quickly model.

[0033] The effects that can be obtained by the present application are not limited to the above-described effects, and other effects not mentioned will be clearly understood by those skilled in the art from the following description. BRIEF DESCRIPTION OF DRAWINGS

[0034] The above and other aspects, features, and advantages of certain preferred embodiments of the present application will become more apparent.

[0035] Figure 1An apparatus for providing a floor-to-floor noise notification service according to an embodiment of the present application is shown. This is a conceptual diagram.

[0036] Figure 2 is a diagram illustrating transmission of a warning signal according to an embodiment of the present application.

[0037] Figure 3 is a diagram illustrating generation of a target measurement value according to an embodiment of the present application.

[0038] Figure 4 is a diagram illustrating neighboring households and an influence distance according to an embodiment of the present application.

[0039] Figure 5 is a diagram illustrating vibration influence of a neighboring household according to an embodiment of the present application.

[0040] Throughout the drawings, the same drawing reference numerals will be employed to designate the same elements, features, and structures. DETAILED DESCRIPTION

[0041] Embodiments of the present application will be described in detail below with reference to the accompanying drawings.

[0042] In the following description, well-known functions or constructions are not described in detail because they would obscure the application in unnecessary detail. This is to convey the gist of the present application and its principles to the expert in the art.

[0043] For the same reasons, some components are exaggerated, omitted, or schematically shown in the drawings. Also, the size of each component does not completely reflect its actual size. In the drawings, the same or corresponding components are given the same reference numerals.

[0044] The advantages and features of the present application and methods of achieving them will become apparent by reference to the embodiments described below in detail. However, the present application is not limited to the embodiments disclosed below and can be implemented in various different forms, and the present embodiments are provided only to ensure the present application is complete and to provide common knowledge in the art. The present application is provided to fully convey those skilled in the art and is limited only by the scope of the claims. Throughout the specification, the same reference numerals refer to the same elements.

[0045] At this time, it should be understood that each block of the flowchart illustrations and combinations of blocks in the flowchart illustrations can be performed by computer program instructions. These computer program instructions can be installed on a processor of a general purpose computer, special purpose computer, or other programmable data processing apparatus to cause the instructions executed by the processor of the computer or other programmable data processing apparatus to be described in the method that creates the functions. These computer program instructions can also be stored in a computer usable or computer readable memory that can direct the computer or other programmable data processing apparatus to function in a specific manner, so that the computer usable or computer readable memory storing the instructions can also produce an article of manufacture containing the instruction means to execute the functions described in the flowchart blocks. Computer program instructions can also be installed on a computer or other programmable data processing apparatus to perform a series of operational steps on the computer or other programmable data processing apparatus to create a process execution data processing apparatus executed by the computer or other programmable data processing apparatus. The instructions of the computer or other programmable data processing apparatus can also provide steps for performing the functions described in the flowchart blocks.

[0046] In addition, each block can represent a module, segment, or portion of code which includes one or more executable instructions for implementing the specified logical function(s). In addition, in some alternative implementation examples: it should be noted that the functions mentioned in the blocks can occur out of order. For example, two blocks shown in succession can in fact be executed substantially concurrently or the blocks can sometimes be executed in reverse order, depending on the functionality involved.

[0047] At this time, the term "unit" used in the present embodiment refers to a software or hardware component such as an FPGA (Field Programmable Gate Array) or an ASIC (Application Specific Integrated Circuit), and the "unit" refers to the role of executing them. However, the "part" is not limited to software or hardware. The "part" can be configured to reside in an addressable storage medium and can be configured to reproduce one or more processors. Therefore, as an example, the "part" refers to components such as software components, object-oriented software components, class components and task components, processes, functions, attributes and procedures, sub-routines, program code segments, drivers, and the like. Firmware, microcode, circuits, data, databases, data structures, tables, arrays, and variables. The functions provided within the components and "parts" can be combined into a smaller number of components and "parts", or can be further divided into additional components and "parts". In addition, the components and "parts" can be implemented as one or more CPUs in a reconfigurable device or a secure multimedia card.

[0048] In the embodiments of the present invention, the main focus is on examples of specific systems, but the gist of the present specification is that the scope disclosed in the present specification is applicable to other communication systems and services having a similar technical background can be applied within a range that does not significantly deviate, and this can be done by a person skilled in the relevant technical field.

[0049] Figure 1 An apparatus for providing a floor noise notification service according to an embodiment of the present application is illustrated. This is a conceptual diagram.

[0050] Referring to Figure 1 , the floor noise notification service providing apparatus according to an embodiment of the present application receives data about noise and vibration from a noise and vibration detection terminal installed on the ceiling of each family of an apartment building, and vibration is measured as floor noise, if a level exceeding a level that can be considered as a level is transmitted to an upper floor, informing them of the occurrence of floor noise, and a management office can also record which unit. Floor noise is often generated, and the next generation is informed of floor noise as evidence, and information about floor noise can be recorded.

[0051] Meanwhile, in the present application, the apparatus for providing a floor noise notification service can also be referred to as an "electronic device 100".

[0052] At this time, the first user terminal, the second user terminal, and the administrator terminal are a desktop computer, a notebook computer, a notebook computer, a smart phone, a tablet computer, a mobile phone, a smart watch, smart glasses, an e-book reader, a PMP (portable multimedia player), a portable game machine, a navigation device, a digital camera, a DMB (digital multimedia broadcasting) player, a digital recorder, a digital audio player, a digital video recorder, a digital video player, a PDA (personal digital assistant), etc. having a communication function.

[0053] The electronic device 100 according to one embodiment includes a processor 110 and a memory 120. The processor 110 can execute at least one of the above-described methods. The memory 120 can store information related to the above-described methods or store a program that implements the above-described methods. The memory 120 can be a volatile memory or a non-volatile memory. The memory 120 can be referred to as a "database", a "storage unit", etc.

[0054] The processor 110 can execute a program and control the electronic device 100. The code of the program executed by the processor 110 can be stored in the memory 120. The device 100 is connected to an external device (e.g., a personal computer or a network) through an input / output device (not shown) and can exchange data.

[0055] At this time, the processor 110 can receive first noise data and first vibration data generated in real time from a first noise and vibration detection terminal installed on the ceiling of a specific target family of an apartment building.

[0056] A target measurement value can be derived based on the first noise data and the first vibration data. This will be described in more detail later.

[0057] The first noise data, the first vibration data, and the target measurement value can be transmitted to a first user terminal of a first user who resides in the target household. This is to record the inter-floor noise experienced by the first resident user in the target household so that it can be used as evidence in the event of a dispute in the future.

[0058] In addition, the processor can determine that the target measurement value is a preset threshold measurement value, and if the threshold measurement value is exceeded, an alert signal can be transmitted to a second user terminal of a second user who resides in a household above the target household.

[0059] This is to make the previous generation aware that their behavior is causing inter-floor noise and to prevent inter-floor noise-related disputes in advance.

[0060] In addition, the threshold measurement value is arbitrarily set by the administrator of the present application, but when it is identified that inter-floor noise has occurred, it can be set by the administrator based on the target measurement value.

[0061] Figure 2 is a diagram showing the transmission of an alert signal according to an embodiment of the present application.

[0062] Referring to Figure 2 When the alert signal is transmitted to the second user terminal, the processor can provide the administrator with identification information of the target household and notification information indicating that noise and / or vibration has occurred in the target household. The terminal is set to the building administrator.

[0063] By doing so, the management office can check which households are frequently affected by inter-floor noise and collect data for future dispute resolution.

[0064] A diagram showing the generation of a target measurement value according to an embodiment of the present application, Figure 4 is a diagram showing neighboring households and an influence distance according to an embodiment of the present application.

[0065] In general, inter-floor noise does not occur only on higher floors. In some cases, inter-floor noise from the next unit or floor above can be transmitted through the walls. Therefore, in order to prevent misunderstandings when inter-floor noise disputes occur, the noise or vibration generated by neighboring households other than the upper household is eliminated, and only the target household is alerted, and only the noise and vibration occurring in the upper household are informed. It is desirable for the household to do so.

[0066] To this end, referring to Figure 3 and Figure 4 The processor can derive a basic measurement value based on the first noise data and the first vibration data, and determine neighboring households located within a preset influence distance from the target household. The second noise data and the second vibration data generated in real time by the second noise and vibration detection terminal installed on the ceiling are received.

[0067] At this time, the influence distance can be arbitrarily set by the administrator of the present application, and if the noise can be well propagated between floors due to the aging or structure of the building, the influence distance can be set to be wide. For example, the influence distance can be set to the difference of two generations horizontally and vertically from the target generation, or the influence distance can be set within a circle centered on the target generation.

[0068] The proximity measure value of each neighboring household is derived based on the second noise data and the second vibration data of each neighboring household, and the target value is measured based on the base measure value and the proximity measure value.

[0069] More specifically, the processor normalizes the first noise data to generate first normalized data by converting the first noise data to a preset value within a normalized range, and adjusts the first vibration data within the normalized range. Normalization can be performed to generate second normalized data, and the base measure value can be generated by merging the first normalized data and the second normalized data.

[0070] At this time, the normalized range can be arbitrarily set by the administrator of the present application in order to unify data of different measurement units into the same range.

[0071] In more detail, the base measure value can be derived by Equation 1 below.

[0072] [Equation 1]

[0073]

[0074] At this time, bm(t) denotes the base measure value according to time, nd_1(t) denotes the first normalized data according to time, and nd_2(t) denotes the second normalized data according to time.

[0075] At this time, the processor adjusts the second noise data within the normalized range of each neighboring generation. Normalization generates third normalized data, and the second vibration data is adjusted within the normalized range. Normalization generates fourth normalized data, and the proximity to the neighboring households can be measured according to the distance weight set according to the distance between the target household and the neighboring households, and the values of the third normalized data and the fourth normalized data can be derived.

[0076] More specifically, the neighboring measure value can be derived by Equation 2 below.

[0077] [Equation 2]

[0078]

[0079] is a neighborhood measurement value that varies with time, dw is a distance weight derived from a distance between the target generation and the adjacent generation, and nd_3(t) is a measurement value that varies with time. Refers to the third normalized data of the corresponding adjacent generation, nd_4(t) can refer to the fourth normalized data of the corresponding adjacent generation that varies with time.

[0080] At this time, the distance weighting aims to remove the sound and vibration occurring in the adjacent household as noise, but reflects the amount of attenuation depending on the distance.

[0081] In more detail, the distance weight can be derived by the following Equation 3.

[0082] [Equation 3]

[0083]

[0084] At this time, dw refers to the distance weight of the corresponding adjacent household, vd refers to the vertical difference index indicating the vertical floor difference between the target household and the adjacent household, and hd refers to the horizontal difference index indicating the horizontal difference between the households.

[0085] For example, if the target household is house 505 and the adjacent household is house 507, vd can be 0 and hd can be 2. In addition, if the adjacent household is 708, vd can be 2 and hd can be 3.

[0086] Figure 5 is a graph showing the vibration influence of the adjacent household according to an embodiment of the present application.

[0087] Referring to Figure 5 , the processor can derive the target measurement value by removing the adjacent measurement value of the adjacent generation from the basic measurement value as noise.

[0088] At this time, the target measurement value can be derived by the following Equation 4.

[0089] [Equation 4]

[0090]

[0091] At this time, td(t) indicates the target measurement value that varies with time, bm(t) indicates the target power generation basic measurement value that varies with time, n indicates the number of adjacent households, nm_i(t) indicates the adjacent measurement value that varies with time for the i-th adjacent generation, vd_i refers to the vertical difference index indicating the vertical floor difference between the target generation and the i-th adjacent generation, and fh refers to the height of each unit of the integrated building, and wv can indicate a preset vibration moving speed.

[0092] At this time, the vibration motion speed can be derived from the vibration motion speed of the concrete, reinforcing bars, etc. that constitute the building, and is generally 3000 m / s to 5000 m / s, and can be set to about 4000 m / s.

[0093] The presence of floor noise is determined only from the noise and vibration generated by the previous generation of the target family, and disputes due to misunderstanding are prevented.

[0094] The method for providing a floor noise notification service according to an embodiment of the present application receives first noise data and first vibration data generated in real time from a first noise and vibration detection terminal installed on the ceiling of a specific target family in a complex S101.

[0095] A target measurement value can be derived based on the first noise data and the first vibration data S103.

[0096] The first noise data, the first vibration data, and the target measurement value are transmitted to a first user terminal of a first user who resides in the target family S105.

[0097] In addition, the method for providing a floor noise notification service according to an embodiment of the present application is such that, if the target measurement value exceeds a threshold measurement value, a warning signal can be transmitted to a second user terminal of a second user who resides in a family above the target family S107.

[0098] Also, the method for providing a floor noise notification service according to an embodiment of the present application can be configured in the same manner as the floor noise notification service providing apparatus disclosed in Figures 1 to 5

[0099] The above-described embodiments can be implemented using hardware components, software components, and / or combinations of hardware components and software components. For example, the apparatuses, methods, and components described in the embodiments can include processors, controllers, arithmetic logic units (ALUs), digital signal processors, microcomputers, and field programmable gate arrays (FPGAs), for example. They can be implemented using one or more general purpose or special purpose computers such as arrays, programmable logic units (PLUs), microprocessors, or any other devices capable of executing and responding to instructions. The processing device can execute an operating system (OS) and one or more software applications running on the operating system. In addition, the processing device can access, store, manipulate, process, and generate data in response to the execution of software. For ease of understanding, it can be described as using a single processing device; however, those skilled in the art will understand that the processing device can include multiple processing elements and / or multiple types of processing elements. For example, the processing device can include multiple processors or one processor and one controller. In addition, other processing configurations, such as parallel processors, are also possible.

[0100] ​The method of the embodiments can be implemented in the form of program instructions capable of being executed through various computer means and recorded on a computer-readable medium. The computer-readable medium can include program instructions, data files, data structures, etc. individually or in combination. The program instructions recorded on the medium can be specifically designed and configured for the embodiments, or can be known and available to those skilled in the computer software field. Examples of computer-readable recording media include magnetic media such as hard disks, floppy disks, and magnetic tapes, optical media such as CD-ROMs and DVDs, and magneto-optical media such as floptical disks. Particularly, magneto-optical media and hardware devices are included. Memories such as ROMs, RAMs, flash memories, etc. for storing and executing program instructions. Examples of program instructions include machine language codes such as codes generated by compilers, and high-level language codes that can be executed by computers using interpreters, etc. The above hardware devices can be configured to operate as one or more software modules to perform the operations of the embodiments, and vice versa.

[0101] The software can include a computer program, code, instructions, or a combination of one or more thereof, which can configure the processing unit to operate as needed, or can independently or collectively command the device. The software and / or data can be used on any type of machine, component, physical device, virtual device, computer storage medium, or can be permanently or temporarily embodied in a device or a transmitted signal wave. The software can be distributed on a networked computer system and stored or executed in a distributed manner. The software and data can be stored on one or more computer-readable recording media.

[0102] The embodiments have been described with limited drawings as described above, but those skilled in the art can modify and vary the above-described application based on various techniques. For example, the described techniques are performed in a different order from the described method, and / or the components of the described system, structure, device, circuit, etc. are combined or combined in a different form from the described method, or other components or, even if replaced or replaced with equivalents, appropriate results can be obtained.

[0103] Therefore, other implementations, other embodiments, and equivalents of the claims also fall within the scope of the claims described below.

Claims

1. An electronic device, characterized in that, The electronic device includes: Memory; and The processor connected to the memory, In the processor, The first noise and vibration data are generated in real time by the first noise and vibration detection terminal installed on the ceiling of a specific target household in the building. The target measurement value is derived based on the first noise data and the first vibration data. The first noise data, the first vibration data, and the target measurement value are sent to the first user terminal of the first user residing in the target household. The target measurement value is a preset value. If it exceeds the threshold measurement value, Send a warning signal to the second user terminal of the second user in the household above the target household.

2. The electronic device according to claim 1, characterized in that, When the processor sends a warning signal to the second user terminal, it sends identification information about the target household and notification information indicating that noise and / or vibration has occurred in the target household to the manager terminal of the building manager.

3. The electronic device according to claim 2, characterized in that, The processor derives basic measurement values ​​based on the first noise data and the first vibration data. The target household's noise and vibration data are generated in real time by a second noise and vibration detection terminal on the ceiling of an adjacent household within a preset influence distance. Based on the second noise data and second vibration data of each neighboring household, the adjacent measurement values ​​of each neighboring household are derived. The target measurement value is derived based on the basic measurement value and the neighboring measurement values.

Citation Information

Patent Citations

  • Real time monitoring system and monitoring method for floor impact sound of apartment houses

    KR101647704B1