A heating data processing method based on artificial intelligence
By constructing a three-dimensional model to analyze the material passing and interference of the heating data transmission path, marking and processing unqualified paths, the interference problem in the transmission of heating data signals is solved, and the accuracy and efficiency of data transmission are improved.
Patent Information
- Application Number
- CN202510106736.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2045-01-23
AI Technical Summary
In the prior art, the heating data signal transmission path passes through various substances, causing signal interference, affecting the accuracy and transmission efficiency of received data.
By obtaining building information of the heating area, building a three-dimensional model, determining the data transmission point on the heating pipeline, analyzing the number of cross-matter travel times and the length of non-air substances in the linear transmission path of the heating data, combining the duration of the weather, marking the transmission path, and determining the processing method based on the path marking, such as adding a repeater or adjusting the signal of the signal to the signal enhancer to increase power.
It improves the accuracy and efficiency of heating data transmission, reduces the impact of interference caused by excessive substance types, and enhances data quality and control accuracy.
Smart Images

Figure CN120012233B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of heating data processing, and in particular to a heating data processing method based on artificial intelligence. Background Art
[0002] By processing heating data, such as collecting temperature, pressure, and flow data at each node in the heating pipeline, we can accurately understand the distribution of heat throughout the heating system. For example, we can rationally allocate hot water flow based on the heat demand of buildings in different areas. If a neighborhood has a low occupancy rate and data processing and analysis show that its actual heat demand is low, the hot water supply in that area can be reduced accordingly, thus avoiding energy waste. Existing technologies pre-process heating data and train it using a global heating AI model, thereby shortening data analysis and processing time. However, since the data signal transmission path must pass through various substances, it will interfere with the transmission signal, affecting the accuracy of the received data and the efficiency of data transmission.
[0003] Chinese patent application number: CN202410723555.2 discloses a heating data processing method and system based on AI technology, which relates to the field of heating data processing technology. It includes: obtaining and uploading urban heating data; preprocessing the obtained heating data; dividing the preprocessed heating data into a training set and a test set; inputting the training set into the heating AI global model, updating the model weight parameters through the loss function, and obtaining a trained heating AI global model after several trainings; setting urban heating comprehensive regulation constraint conditions, adjusting the trained heating AI global model according to the constraint conditions, and obtaining the final heating global model; inputting the test set into the final heating AI global model to evaluate the heating data. This invention greatly reduces the time for data analysis and processing, which is beneficial for the staff to make a preliminary judgment on the heating status, and realizes the automatic processing of heating data through the heating AI global model that quickly processes data.
[0004] However, the prior art still has the following problems:
[0005] Since data signals need to pass through various substances during transmission, they will interfere with the transmission signals, affecting the accuracy of received data and the efficiency of data transmission. Summary of the Invention
[0006] To this end, the present invention provides a heating data processing method based on artificial intelligence to overcome the problem in the prior art that the data signal transmission path needs to pass through various substances, which will interfere with the transmission signal and affect the accuracy of the received data and the data transmission efficiency.
[0007] To achieve the above objectives, the present invention provides a heating data processing method based on artificial intelligence, including:
[0008] Step S1: Acquire building information of the heating area, construct a three-dimensional model based on the building information, and determine the heating data transmission points on the heating pipeline in the three-dimensional model;
[0009] Step S2, connecting each of the heating data sending points with the heating data receiving points respectively to obtain a straight-line transmission path for the heating data;
[0010] Step S3: Count the number of cross-substance crossings in a single heat supply data straight line transmission path, and analyze whether the heat supply data straight line transmission path is qualified based on the number of cross-substance crossings. If it is preliminarily determined that the heat supply data straight line transmission path is unqualified,
[0011] Based on the length of the non-air material passed through in the straight line transmission path of the heating data, it is determined whether the straight line transmission path of the heating data is qualified, and the straight line transmission path of the heating data is marked.
[0012] Alternatively, the heating data linear transmission path is determined to be unqualified, and the heating data linear transmission path is marked based on the average duration of interfering weather in the heating pipeline distribution area;
[0013] The method for determining the number of cross-substance crossings is as follows: starting from the substance contacted by the heating data sending point, the number of crossings from one substance to another along the transmission path;
[0014] Determine the length of each substance traversed in the linear transmission path of the heating data, and calculate the total length of non-air substances;
[0015] Calculating the ratio of the total length of the non-air substance to the total length of the heating data linear transmission path to obtain a non-empty path ratio, and re-determining whether the heating data linear transmission path is qualified based on the non-empty path ratio;
[0016] Step S4: Count the number of marked straight-line transmission paths of various types of heating data, and determine a processing method for the heating data transmission process based on the counted number, the processing method including: adding repeaters and adjusting the signal boosting power of the signal booster;
[0017] Step S5: transmit the heating data, clean the received heating data, and store the cleaned heating data.
[0018] Furthermore, the step S3 of analyzing whether the straight-line transmission path of the heating data is qualified based on the number of cross-substance crossings includes:
[0019] When the heating data straight line transmission path is determined to be qualified, the heating data straight line transmission path is marked as a first-level transmission path;
[0020] When it is preliminarily determined that the straight-line transmission path of the heating data is unqualified, a secondary determination is made as to whether the straight-line transmission path of the heating data is qualified based on the length of the non-air material passed through the straight-line transmission path of the heating data, or, if it is determined that the straight-line transmission path of the heating data is unqualified, there is a risk of signal transmission interruption.
[0021] Furthermore, in step S3, the secondary determination of whether the heating data straight line transmission path is qualified based on the length of the non-air material passed through in the heating data straight line transmission path includes:
[0022] If the non-empty path ratio is less than or equal to the preset non-empty path ratio standard threshold, the heating data straight line transmission path is determined to be qualified, and the heating data straight line transmission path is marked as a first-level transmission path;
[0023] If the non-empty path ratio is greater than the preset non-empty path ratio standard threshold, the heating data straight line transmission path is determined to be unqualified, and the heating data straight line transmission path is marked as a secondary transmission path.
[0024] Furthermore, when it is determined in step S3 that the heating data linear transmission path is unqualified, the heating data linear transmission path is marked based on the average duration of interfering weather in the heating pipeline distribution area, including:
[0025] Obtain historical data on interfering weather within the heating pipeline distribution area,
[0026] Calculate the annual average duration of interfering weather,
[0027] The heating data linear transmission path is marked based on the proportion of the underground portion in the heating data linear transmission path determined based on the annual average duration, or the heating data linear transmission path is marked as a third-level transmission path.
[0028] Furthermore, the marking of the heating data straight line transmission path based on the proportion of the underground portion in the heating data straight line transmission path includes:
[0029] Determine the length of the underground portion of the straight-line transmission path for heating data,
[0030] Calculate the ratio of the length of the underground part to the total length of the straight-line transmission path of the heating data to obtain the proportion of the underground part.
[0031] Based on the proportion of the underground part, the heating data straight line transmission path is marked as a secondary transmission path, or the heating data straight line transmission path is marked as a tertiary transmission path.
[0032] Furthermore, the method of determining a processing method for the heating data transmission process according to the statistical quantity includes:
[0033] Calculate the ratio of the number of each type of heating data straight-line transmission path to the total number of heating data straight-line transmission paths, and obtain the proportion of each type of transmission path.
[0034] Based on the proportion of various transmission paths, it is determined whether the heating data transmission process in the current area is qualified.
[0035] When it is determined that the heating data transmission process in the current area is unqualified, a repeater is added between the heating data sending point and the heating data receiving point, or the signal boosting power of the signal enhancer is adjusted based on the annual average duration of interfering weather in the heating pipeline distribution area.
[0036] Furthermore, under the condition of determining to add a repeater, the gain of the repeater is determined based on the annual average duration of interfering weather in the heating pipeline distribution area, wherein the gain of the repeater is positively correlated with the annual average duration.
[0037] Furthermore, the signal boosting power of the signal booster is adjusted based on the annual average duration of interfering weather in the heating pipeline distribution area, wherein the increase in the signal boosting power is positively correlated with the annual average duration.
[0038] Furthermore, under the condition that a single heating data linear transmission path is determined to be marked as a third-level transmission path, the data collection frequency of the data sending point is adjusted based on the number of cross-material crossings of the heating data linear transmission path, wherein the increase in the data collection frequency is positively correlated with the number of cross-material crossings.
[0039] Furthermore, the signal enhancer is used to enhance the signal sent by the heating data sending point.
[0040] Compared with the prior art, the beneficial effect of the present invention lies in that, in the present invention, three-dimensional modeling is performed on the buildings in the area where the heating pipeline is located, and the data transmission situation of the transmission path is analyzed according to the complexity of the materials passing between the data receiving point and the data sending point. The more types of materials the data passes through in the path, and the more times the data passes from one material to another, the greater the degree of interference to the transmission process. The present invention determines the degree of interference of the path to the signal based on the number of signal crossings in the data transmission path, and then preliminarily analyzes the data transmission situation of a single data transmission path based on the degree of interference, and marks each path. After marking, the number of each type of path is counted, and the processing method for the data transmission path is determined according to the proportion of the number of each type of path, thereby improving the data transmission efficiency of each path, reducing the impact caused by too many types of materials passing through, and improving the quality of transmitted data.
[0041] Furthermore, the present invention preliminarily analyzes whether the data transmission path is qualified based on the number of times the material in the data transmission path crosses. When the number of times the material crosses is large, considering that when the signal is transmitted in the air, the interference degree of air to the signal is low, while non-air materials are mostly metals, minerals, etc., and the interference degree of non-air materials to the signal is large, a secondary judgment is made on whether the data transmission path is qualified based on the path length of the non-air materials crossed, thereby improving the analysis accuracy of the data transmission path.
[0042] Furthermore, the present invention takes into account that the weather will affect the transmitted data, such as rainy days and foggy weather. The present invention analyzes the data transmission process according to the duration of the interfering weather. The more interfering weather there is and the longer the duration, the greater the impact on the data transmission process. The transmission path is marked according to the duration of the interfering weather, thereby improving the control precision for each path and improving the analysis accuracy of the data transmission process. The present invention also takes into account that some heating pipes are set underground, and the heating data signal needs to be transmitted underground first and then transmitted in the external environment. The external environment is mostly metal buildings, and metal interferes greatly with the signal. Considering that the signal is more susceptible to interference in the external environment on the ground, the analysis is performed according to the proportion of the underground part in the path, thereby further improving the analysis accuracy of the data transmission path. BRIEF DESCRIPTION OF THE DRAWINGS
[0043] Figure 1 The present invention is a flowchart of a heating data processing method based on artificial intelligence;
[0044] Figure 2 A flow chart for analyzing whether the straight-line transmission path of heating data is qualified;
[0045] Figure 3 A flow chart for secondary determination of whether the straight-line transmission path of heating data is qualified;
[0046] Figure 4 This is a flow chart for determining the marking of the linear transmission path of heating data. DETAILED DESCRIPTION
[0047] In order to make the objects and advantages of the present invention more clearly understood, the present invention is further described below in conjunction with embodiments; it should be understood that the specific embodiments described herein are merely used to explain the present invention and are not intended to limit the present invention.
[0048] It should be noted that the data in this embodiment are obtained by comprehensive analysis and evaluation of the historical data of the six months before the current determination and the corresponding historical determination results by the system of the present invention. It can be understood by those skilled in the art that the system of the present invention can determine the above parameters for each of the above parameters by selecting the value with the highest proportion as the preset standard parameter based on the data distribution, using weighted summation to use the obtained value as the preset standard parameter, substituting each historical data into a specific formula and using the value obtained by the formula as the preset standard parameter, or other selection methods, as long as the system of the present invention can clearly define the different specific situations in the single determination process through the obtained values.
[0049] The preferred embodiments of the present invention are described below with reference to the accompanying drawings. It should be understood by those skilled in the art that these embodiments are only used to explain the technical principles of the present invention and are not intended to limit the scope of protection of the present invention.
[0050] It should be noted that, in the description of the present invention, terms such as "up", "down", "left", "right", "inside", and "outside" indicating directions or positional relationships are based on the directions or positional relationships shown in the accompanying drawings. This is only for the convenience of description and does not indicate or imply that the device or element must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it cannot be understood as a limitation on the present invention.
[0051] Furthermore, it should be noted that, in the description of the present invention, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.
[0052] See also Figure 1 As shown, it is a flow chart of the heating data processing method based on artificial intelligence.
[0053] The artificial intelligence-based heating data processing method provided in this embodiment includes:
[0054] Step S1: Acquire building information of the heating area, construct a three-dimensional model based on the building information, and determine the heating data transmission points on the heating pipeline in the three-dimensional model;
[0055] Step S2, connecting each of the heating data sending points with the heating data receiving points respectively to obtain a straight-line transmission path for the heating data;
[0056] Step S3: Count the number of cross-substance crossings in a single heat supply data straight line transmission path, and analyze whether the heat supply data straight line transmission path is qualified based on the number of cross-substance crossings. If it is preliminarily determined that the heat supply data straight line transmission path is unqualified,
[0057] Based on the length of the non-air material passed through in the straight line transmission path of the heating data, it is determined whether the straight line transmission path of the heating data is qualified, and the straight line transmission path of the heating data is marked.
[0058] Alternatively, the heating data linear transmission path is determined to be unqualified, and the heating data linear transmission path is marked based on the average duration of interfering weather in the heating pipeline distribution area;
[0059] The method for determining the number of cross-substance crossings is as follows: starting from the substance contacted by the heating data sending point, the number of crossings from one substance to another along the transmission path;
[0060] Determine the length of each substance traversed in the linear transmission path of the heating data, and calculate the total length of non-air substances;
[0061] Calculating the ratio of the total length of the non-air substance to the total length of the heating data linear transmission path to obtain a non-empty path ratio, and re-determining whether the heating data linear transmission path is qualified based on the non-empty path ratio;
[0062] Step S4: Count the number of marked straight-line transmission paths of various types of heating data, and determine a processing method for the heating data transmission process based on the counted number, the processing method including: adding repeaters and adjusting the signal boosting power of the signal booster;
[0063] Step S5: transmit the heating data, clean the received heating data, and store the cleaned heating data.
[0064] Specifically, in this embodiment, the location of the heating pipeline includes but is not limited to underground. Several sensors are installed on the heating pipeline to send heating data of corresponding points. A heating data receiving point is also provided to receive heating data from each heating data sending point.
[0065] Specifically, in this embodiment, the specific structure of the heating data receiving device is not limited. It only needs to be able to receive the heating data signal. A radio frequency receiver or a ZigBee receiver can be used, which belongs to the existing technology and will not be described in detail here.
[0066] Specifically, in this embodiment, the number of cross-substance crossings is determined by the number of crossings from one substance to another along the transmission path, starting from the substance contacted by the heating data sending point.
[0067] In the present invention, three-dimensional modeling is performed on the buildings in the area where the heating pipeline is located, and the data transmission situation of the transmission path is analyzed according to the complexity of the materials passing between the data receiving point and the data sending point. The more types of materials the data passes through in the path, and the more times the data passes from one material to another, the greater the degree of interference to the transmission process. The present invention determines the degree of interference of the path to the signal based on the number of signal crossings in the data transmission path, and then preliminarily analyzes the data transmission situation of a single data transmission path based on the degree of interference, and marks each path. After marking, the number of each type of path is counted, and the processing method for the data transmission path is determined according to the proportion of the number of each type of path, thereby improving the data transmission efficiency of each path, reducing the impact caused by too many types of materials passing through, and improving the quality of transmitted data.
[0068] See also Figure 2 As shown, it is a flow chart for analyzing whether the straight-line transmission path of heating data is qualified.
[0069] Specifically, the analysis of whether the straight-line transmission path of the heating data is qualified based on the number of cross-substance crossings in step S3 includes:
[0070] If the number of cross-substance crossings is less than or equal to the first preset number of cross-substance crossings, the heating data straight line transmission path is determined to be qualified, and the heating data straight line transmission path is marked as a first-level transmission path;
[0071] If the number of cross-substance crossings is greater than the first preset number of cross-substance crossings and less than or equal to the second preset number of cross-substance crossings, it is preliminarily determined that the heating data linear transmission path is unqualified, and a secondary determination is made as to whether the heating data linear transmission path is qualified based on the length of the non-air substance crossed in the heating data linear transmission path;
[0072] If the number of cross-substance crossings is greater than the second preset number of cross-substance crossings, it is determined that the straight-line transmission path of the heating data is unqualified and there is a risk of signal transmission interruption.
[0073] Specifically, in this embodiment, the first preset number of cross-substance crossings and the second preset number of cross-substance crossings are obtained in advance, and several straight-line transmission paths for heating data with qualified transmission are obtained. The number of cross-substance crossings of each transmission path is counted respectively, and the average number of cross-substance crossings is solved. The first preset number of cross-substance crossings is 0.9 to 1.1 times the average number of cross-substance crossings, and the second preset number of cross-substance crossings is 1.2 to 1.3 times the average number of cross-substance crossings.
[0074] In the present invention, whether the data transmission path is qualified is preliminarily analyzed based on the number of times the material in the data transmission path crosses. When the number of material crossings is large, considering that when the signal is transmitted in the air, the interference degree of air to the signal is low, while non-air substances are mostly metals, minerals, etc., and the interference degree of non-air substances to the signal is large, a secondary judgment is made on whether the data transmission path is qualified based on the path length of the non-air substance crossed, thereby improving the analysis accuracy of the data transmission path.
[0075] See also Figure 3 As shown, it is a flow chart for secondary determination of whether the linear transmission path of heating data is qualified.
[0076] Specifically, the second determination of whether the heating data straight line transmission path is qualified based on the length of the non-air material passed through by the heating data straight line transmission path in step S3 includes:
[0077] If the non-empty path ratio is less than or equal to the preset non-empty path ratio standard threshold, the heating data straight line transmission path is determined to be qualified, and the heating data straight line transmission path is marked as a first-level transmission path;
[0078] If the non-empty path ratio is greater than the preset non-empty path ratio standard threshold, the heating data straight line transmission path is determined to be unqualified, and the heating data straight line transmission path is marked as a secondary transmission path.
[0079] Specifically, in this embodiment, the preset standard threshold value of the proportion of non-empty paths is obtained by pre-measurement, and several straight-line transmission paths of heating data with qualified heating data transmission are obtained. The lengths of various substances passed through each transmission path are counted respectively, and the total length of non-air substances is solved. The length ratio of non-air substances is solved, and the average length ratio is solved to obtain the preset standard threshold value of the proportion of non-empty paths.
[0080] See also Figure 4 As shown, it is a flow chart for determining the marking of the straight transmission path of heating data.
[0081] Specifically, when it is determined in step S3 that the heating data linear transmission path is unqualified, the heating data linear transmission path is marked based on the average duration of interfering weather in the heating pipeline distribution area, including:
[0082] Obtain historical data on interfering weather within the heating pipeline distribution area,
[0083] Calculate the annual average duration of interfering weather,
[0084] If the annual average duration is less than or equal to a preset annual average duration standard threshold, determining to mark the heating data linear transmission path based on the proportion of the underground portion in the heating data linear transmission path;
[0085] If the annual average duration is greater than the preset annual average duration standard threshold, it is determined that the heating data linear transmission path is marked as a third-level transmission path.
[0086] Specifically, in this embodiment, the type of interfering weather that affects the transmission of heating data is determined based on big data.
[0087] Specifically, in this embodiment, the annual average duration of interfering weather in the heating pipeline distribution area suitable for heating data transmission is determined based on big data, and the preset annual average duration standard threshold is 1.1 to 1.2 times the determined annual average duration.
[0088] The present invention takes into account that the weather will have an impact on the transmitted data, such as rainy days and foggy weather. The present invention analyzes the data transmission process according to the duration of the interfering weather. The more interfering weather there is and the longer the duration, the greater the impact on the data transmission process. The transmission path is marked according to the duration of the interfering weather, thereby improving the control precision for each path and improving the analysis accuracy of the data transmission process. The present invention also takes into account that some heating pipelines are set underground, and the heating data signal needs to be transmitted underground first and then transmitted in the external environment. The external environment is mostly composed of metal buildings, and metal interferes greatly with the signal. Considering that the signal is more susceptible to interference in the external environment on the ground, the analysis is performed according to the proportion of the underground part in the path, thereby further improving the analysis accuracy of the data transmission path.
[0089] Specifically, the marking of the heating data straight line transmission path based on the proportion of the underground portion in the heating data straight line transmission path includes:
[0090] Determine the length of the underground portion of the straight-line transmission path for heating data,
[0091] Calculate the ratio of the length of the underground part to the total length of the straight-line transmission path of the heating data to obtain the proportion of the underground part.
[0092] If the proportion of the underground part is greater than or equal to the preset proportion of the underground part, it is determined that the heating data linear transmission path is marked as a secondary transmission path;
[0093] If the proportion of the underground part is less than the preset proportion of the underground part, it is determined that the heating data linear transmission path is marked as a third-level transmission path.
[0094] Specifically, in this embodiment, the preset underground part ratio is obtained by pre-measurement, and several straight-line transmission paths for heating data with qualified heating data transmission are obtained. The length of the underground part in each transmission path is counted respectively, and the ratio of the length of the underground part to the total length of the transmission path is solved to obtain the preset underground part ratio, wherein the underground part is the part below the ground level.
[0095] Specifically, determining a processing method for the heating data transmission process based on the statistical quantity includes:
[0096] Calculate the ratio of the number of each type of heating data straight-line transmission path to the total number of heating data straight-line transmission paths, and obtain the proportion of each type of transmission path.
[0097] If the first level accounts for the largest proportion, it is determined that the heating data transmission process in the current area is qualified;
[0098] If the second level accounts for the largest proportion, the heating data transmission process in the current area is determined to be unqualified, and a repeater is added between the heating data sending point and the heating data receiving point;
[0099] If level three accounts for the largest proportion, the heating data transmission process in the current area is determined to be unqualified, and the signal boosting power of the signal booster is adjusted based on the annual average duration of interfering weather in the heating pipeline distribution area.
[0100] Specifically, in this embodiment, the ratio of the number of first-level transmission paths to the total number of linear transmission paths for heating data is the first-level ratio, the ratio of the number of second-level transmission paths to the total number of linear transmission paths for heating data is the second-level ratio, and the ratio of the number of third-level transmission paths to the total number of linear transmission paths for heating data is the third-level ratio.
[0101] Specifically, under the condition of determining to add a repeater, the gain of the repeater is determined based on the annual average duration of interfering weather in the heating pipeline distribution area, wherein the gain of the repeater is positively correlated with the annual average duration.
[0102] In this embodiment, optionally, the annual average duration is compared with the first preset annual average duration and the second preset annual average duration.
[0103] If the annual average duration is less than or equal to the first preset annual average duration, determining the gain of the repeater to be the first gain;
[0104] If the annual average duration is greater than the first preset annual average duration and less than or equal to the second preset annual average duration, determining the gain of the repeater to be the second gain;
[0105] If the annual average duration is greater than the second preset annual average duration, determining the gain of the repeater to be a third gain;
[0106] Among them, the first gain is smaller than the second gain, the second gain is smaller than the third gain, the first preset annual average duration is 1.2 times the preset annual average duration standard threshold, and the second preset annual average duration is 1.3 times the preset annual average duration standard threshold.
[0107] Specifically, the signal boosting power of the signal booster is adjusted based on the annual average duration of interfering weather in the heating pipeline distribution area, wherein the increase in the signal boosting power is positively correlated with the annual average duration.
[0108] In this embodiment, optionally, the annual average duration is compared with the first preset annual average duration and the second preset annual average duration.
[0109] If the annual average duration is less than or equal to the first preset annual average duration, then increasing the first signal boost power, wherein the first signal boost power is 0.1 times the initial signal boost power;
[0110] If the annual average duration is greater than the first preset annual average duration and less than or equal to the second preset annual average duration, then increasing the second signal boost power, wherein the second signal boost power is 0.2 times the initial signal boost power;
[0111] If the annual average duration is greater than the second preset annual average duration, the third signal boost power is increased, wherein the third signal boost power is 0.3 times the initial signal boost power.
[0112] Specifically, under the condition that a single heating data linear transmission path is determined to be marked as a third-level transmission path, the data collection frequency of the data sending point is adjusted based on the number of cross-material crossings of the heating data linear transmission path, wherein the increase in the data collection frequency is positively correlated with the number of cross-material crossings.
[0113] In this embodiment, optionally, the number of cross-substance crossings is compared with a preset number of cross-substance crossings.
[0114] If the number of cross-substance crossings is less than or equal to the preset number of cross-substance crossings, the first data collection frequency is increased, and the first data collection frequency is 0.1 times the initial data collection frequency;
[0115] If the number of cross-substance crossings is greater than the preset number of cross-substance crossings, the second data collection frequency is increased, and the second data collection frequency is 0.2 times the initial data collection frequency;
[0116] The preset number of cross-substance crossings is 1.1 times the first preset number of cross-substance crossings.
[0117] Specifically, the signal enhancer is used to enhance the signal sent by the heating data sending point.
[0118] Thus far, the technical solutions of the present invention have been described in conjunction with the preferred embodiments shown in the accompanying drawings. However, it will be readily understood by those skilled in the art that the scope of protection of the present invention is obviously not limited to these specific embodiments. Without departing from the principles of the present invention, those skilled in the art may make equivalent changes or substitutions to the relevant technical features, and the technical solutions after such changes or substitutions will fall within the scope of protection of the present invention.
[0119] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.
Claims
1. A heating data processing method based on artificial intelligence, characterized in that: include: Step S1: Acquire building information of the heating area, construct a three-dimensional model based on the building information, and determine the heating data transmission points on the heating pipeline in the three-dimensional model; Step S2, connecting each of the heating data sending points with the heating data receiving points respectively to obtain a straight-line transmission path for the heating data; Step S3: Count the number of cross-substance crossings in a single heat supply data straight line transmission path, and analyze whether the heat supply data straight line transmission path is qualified based on the number of cross-substance crossings. If it is preliminarily determined that the heat supply data straight line transmission path is unqualified, Based on the length of the non-air material passed through in the straight line transmission path of the heating data, it is determined whether the straight line transmission path of the heating data is qualified, and the straight line transmission path of the heating data is marked. Alternatively, the heating data linear transmission path is determined to be unqualified, and the heating data linear transmission path is marked based on the average duration of interfering weather in the heating pipeline distribution area; The method for determining the number of cross-substance crossings is as follows: starting from the substance contacted by the heating data sending point, the number of crossings from one substance to another along the transmission path; Determine the length of each substance traversed in the linear transmission path of the heating data, and calculate the total length of non-air substances; Calculating the ratio of the total length of the non-air substance to the total length of the heating data linear transmission path to obtain a non-empty path ratio, and re-determining whether the heating data linear transmission path is qualified based on the non-empty path ratio; Step S4: Count the number of marked straight-line transmission paths of various types of heating data, and determine a processing method for the heating data transmission process based on the counted number, the processing method including: adding repeaters and adjusting the signal boosting power of the signal booster; Step S5: transmit the heating data, clean the received heating data, and store the cleaned heating data.
2. The artificial intelligence-based heating data processing method according to claim 1, characterized in that: The step S3 of analyzing whether the straight-line transmission path of the heating data is qualified based on the number of cross-substance crossings includes: When the heating data straight line transmission path is determined to be qualified, the heating data straight line transmission path is marked as a first-level transmission path; When it is preliminarily determined that the straight-line transmission path of the heating data is unqualified, a secondary determination is made as to whether the straight-line transmission path of the heating data is qualified based on the length of the non-air material passed through the straight-line transmission path of the heating data, or, if it is determined that the straight-line transmission path of the heating data is unqualified, there is a risk of signal transmission interruption.
3. The heating data processing method based on artificial intelligence according to claim 1 is characterized in that: The step S3 of secondary determining whether the straight line transmission path of the heating data is qualified based on the length of the non-air material passed through by the straight line transmission path of the heating data includes: If the non-empty path ratio is less than or equal to the preset non-empty path ratio standard threshold, the heating data straight line transmission path is determined to be qualified, and the heating data straight line transmission path is marked as a first-level transmission path; If the non-empty path ratio is greater than the preset non-empty path ratio standard threshold, the heating data straight line transmission path is determined to be unqualified, and the heating data straight line transmission path is marked as a secondary transmission path.
4. The artificial intelligence-based heating data processing method according to claim 1, characterized in that: In step S3, when it is determined that the heating data linear transmission path is unqualified, the heating data linear transmission path is marked based on the average duration of interfering weather in the heating pipeline distribution area, including: Obtain historical data on interfering weather within the heating pipeline distribution area, Calculate the annual average duration of interfering weather, The heating data linear transmission path is marked based on the proportion of the underground portion in the heating data linear transmission path determined based on the annual average duration, or the heating data linear transmission path is marked as a third-level transmission path.
5. The artificial intelligence-based heating data processing method according to claim 4, characterized in that: The marking of the heating data straight-line transmission path based on the proportion of the underground portion in the heating data straight-line transmission path includes: Determine the length of the underground portion of the straight-line transmission path for heating data, Calculate the ratio of the length of the underground part to the total length of the straight-line transmission path of the heating data to obtain the proportion of the underground part. Based on the proportion of the underground part, the heating data straight line transmission path is marked as a secondary transmission path, or the heating data straight line transmission path is marked as a tertiary transmission path.
6. The artificial intelligence-based heating data processing method according to claim 1, characterized in that: The method of determining a processing method for the heating data transmission process according to the statistical quantity includes: Calculate the ratio of the number of each type of heating data straight-line transmission path to the total number of heating data straight-line transmission paths, and obtain the proportion of each type of transmission path. Based on the proportion of various transmission paths, it is determined whether the heating data transmission process in the current area is qualified. When it is determined that the heating data transmission process in the current area is unqualified, a repeater is added between the heating data sending point and the heating data receiving point, or the signal boosting power of the signal enhancer is adjusted based on the annual average duration of interfering weather in the heating pipeline distribution area.
7. The artificial intelligence-based heating data processing method according to claim 6, characterized in that: Under the condition of determining to add a repeater, the gain of the repeater is determined based on the annual average duration of interfering weather in the heating pipeline distribution area, wherein the gain of the repeater is positively correlated with the annual average duration.
8. The artificial intelligence-based heating data processing method according to claim 6, characterized in that: The signal boosting power of the signal booster is adjusted based on the annual average duration of interfering weather in the heating pipeline distribution area, wherein the increase in the signal boosting power is positively correlated with the annual average duration.
9. The artificial intelligence-based heating data processing method according to claim 5, characterized in that: Under the condition that a single heating data linear transmission path is determined to be marked as a third-level transmission path, the data collection frequency of the data sending point is adjusted based on the number of cross-material crossings of the heating data linear transmission path, wherein the increase in the data collection frequency is positively correlated with the number of cross-material crossings.
10. The artificial intelligence-based heating data processing method according to claim 6, characterized in that: The signal enhancer is used to enhance the signal sent by the heating data sending point.
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