An artificial intelligence-based two-way adjustable hydraulic cultivation system for edible mushroom classification
Through the two-way regulated edible fungi classification hydraulic cultivation system based on artificial intelligence, the problem of lack of management of edible fungi cultivation is solved, the precise regulation of the edible fungi growth environment is achieved, the survival rate and taste are improved, and the safety of edible fungi in harsh environments is ensured.
Patent Information
- Application Number
- CN202211298895.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-11
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2042-10-11
AI Technical Summary
The existing edible fungi cultivation lacks a complete management system, and manpower cannot protect it in time in harsh environments, resulting in huge losses.
The two-way regulated edible fungi classification hydraulic cultivation system based on artificial intelligence is adopted, including temperature monitoring, control, spacing adjustment, wind monitoring, classified placement and timed spraying of water mist. The central control module coordinates the work of each module to achieve real-time monitoring and regulation of the edible fungi growth environment.
Accurate control of the growth environment of edible fungi, improve survival rate and taste, and ensure the safe and healthy growth of edible fungi in harsh environments.
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Figure CN115735669B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of intelligent edible mushroom cultivation, and particularly relates to a two-way adjustable hydraulic cultivation system for edible mushroom classification based on artificial intelligence. Background Technique
[0002] At present, edible mushrooms refer to fleshy and edible basidiomycetes (large fungi), commonly known as mushrooms. There are more than 350 known edible mushrooms in China, most of which belong to the Basidiomycetes subphylum. Developing the edible mushroom industry meets the needs of people's consumption growth and agricultural sustainable development, and is an effective way for farmers to get rich quickly. The artificially cultivated mycelium has accelerated the reproduction speed of edible mushrooms and the possibility of obtaining high yields.
[0003] However, the current cultivation of edible mushrooms still stays on the use of self-built devices, and there is no complete system to manage the cultivation of edible mushrooms. Manual cultivation not only has great randomness, but also in harsh environments, manpower cannot protect edible mushrooms in time, resulting in huge losses.
[0004] Through the above analysis, the problems and defects existing in the prior art are as follows:
[0005] (1) There is no complete system in the existing method to manage the cultivation of edible mushrooms.
[0006] (2) In harsh environments, manpower cannot protect edible mushrooms in time in the existing method, resulting in huge losses. Summary of the Invention
[0007] Aiming at the problems existing in the prior art, the present invention provides a two-way adjustable hydraulic cultivation system for edible mushroom classification based on artificial intelligence.
[0008] The present invention is implemented as follows. A two-way adjustable hydraulic cultivation system for edible mushroom classification based on artificial intelligence, the two-way adjustable hydraulic cultivation system for edible mushroom classification based on artificial intelligence includes:
[0009] An edible mushroom cultivation temperature monitoring module, connected to the central control module, for monitoring the real-time temperature of edible mushroom cultivation through a real-time temperature sensor. A resistance temperature sensor is used, based on the fact that the resistance value of a metal conductor increases with the increase of temperature and changes with the rise of temperature, a positive resistance coefficient is adopted, and it is made of copper material. The real-time temperature of the current cultivation environment is directly obtained through the measured resistance value, and the real-time temperature data is transmitted to the central control module in the form of digital signals;
[0010] The edible mushroom cultivation temperature control module is connected to the central control module and is used to regulate the temperature of edible mushroom cultivation through a thermostat. First, the real-time temperature of the current cultivation is used as the temperature signal of the output quantity, which is fed back to the input end in a negative feedback form and compared with the error signal to form a temperature feedback signal. The temperature feedback signal is transmitted to the central control module. The server in the central control module analyzes the feedback signal. When the signal is within the set cultivation temperature range, the central control module does not issue an instruction. Once it exceeds the set temperature range, the controller immediately issues a cooling instruction. The edible mushroom cultivation temperature control module receives the instruction, converts it into an electrical signal and transmits it to the electrical chip of the thermostat for cooling operation. When the temperature is lower than the set temperature range, a heating instruction is issued to heat the current cultivation environment;
[0011] The device connection module is connected to the central control module and is used for the connection between the device and the system. After the device and the system are connected, the status of the connection line will be displayed on the display module. If the connection is intact, the system can continue to operate. If there is an error or disconnection in the connection, the alarm will be called for alarm;
[0012] The central control module is connected to the temperature monitoring module, the temperature control module, the device connection module, the edible mushroom spacing adjustment module, the timed water mist spraying module, the wind force monitoring module, the edible mushroom classification placement module, and the display module, and is used to control the normal operation of each module. The main controller collects external signals, analyzes and processes them, and then outputs them to the output channel. When analog quantity output is required externally, the system is converted into a standard electrical signal through a D / A converter for output;
[0013] The edible mushroom spacing adjustment module is connected to the central control module and is used to adjust the spacing according to the current growth state of the edible mushrooms. A camera device is used to obtain the real-time image of the edible mushrooms, and the machine learning algorithm is used to obtain the spacing between the edible mushrooms and the surrounding objects in the image in turn. The obtained spacing data is compared with the standard spacing. If it is greater than the standard spacing, the central control module issues an instruction to reduce the spacing. After receiving the instruction, the edible mushroom spacing adjustment module reduces the overall spacing of the edible mushroom. Vice versa;
[0014] The timed water mist spraying module is connected to the central control module and is used to spray water mist on the edible mushrooms at regular intervals through a timing program. After the first water mist spraying, the timing program starts to time automatically. Every hour, the timing program will issue an instruction to spray water mist. The instruction is transmitted to the electrical chip of the water mist sprayer in the form of an electrical signal to stimulate the water mist sprayer to spray water mist;
[0015] The wind monitoring module, connected to the central control module, is used to monitor the wind force in the current edible mushroom growing environment, including a wind monitoring CPU, an alarm, and a protective cover. The wind monitoring CPU continuously monitors the wind force value in the current environment. Once the wind force value exceeds 3, it will stimulate the wind monitoring CPU to generate an electrical signal, and then immediately activate the protective cover to protect the edible mushrooms, preventing losses caused by excessive wind force. At the same time, it will activate the alarm to send out an alarm reminder;
[0016] The edible mushroom classification and placement module, connected to the central control module, is used to classify edible mushrooms according to their diameters. The edible mushroom classification and placement module measures the diameter of the current edible mushroom to obtain diameter data, determines which size category the edible mushroom to be classified belongs to based on the diameter data, and then places the edible mushroom into the corresponding growing unit according to the judgment result;
[0017] The display module, connected to the central control module, is used to display the real-time temperature, wind force data, and spraying data status during the cultivation of edible mushrooms. When displaying the data, the central control module transmits the information in the form of a digital signal to the display module, and the display module transmits the incoming digital signal to the display screen for display.
[0018] Furthermore, the alarm reminder in the device connection module includes simultaneous alarms in the forms of sound, flash, and vibration.
[0019] Furthermore, during the temperature adjustment process of the edible mushroom growing temperature control module, a multi-point and multi-fan radiator is used for heat dissipation, and a multi-point heater is used for heating the edible mushroom growing environment.
[0020] Furthermore, OpenCV is used in the edible mushroom spacing adjustment module to measure the spacing between edible mushrooms in the image.
[0021] Furthermore, the steps for activating the protective cover in the wind monitoring module are as follows:
[0022] S1: The wind monitoring CPU measures that the wind force value in the current environment exceeds 3, and the wind monitoring CPU generates an electrical signal;
[0023] S2: The electrical signal is simultaneously transmitted to the electrical chips of the protective cover and the alarm;
[0024] S3: After receiving the electrical signal stimulation, the protective cover immediately unfolds to ensure that the edible mushrooms are within the protective cover;
[0025] S4: When the wind monitor measures that the wind force value in the current environment is less than 3, it releases an electrical signal command to retract the protective cover, and the protective cover retracts after receiving the command.
[0026] Furthermore, the display interface of the display module is a DVI interface.
[0027] Further, the diameter measurement of the edible fungi in the edible fungi classification and placement module includes the following steps:
[0028] Step 1: Place the edible fungi on the micro-measurement device;
[0029] Step 2: The micro-device automatically aligns with the edible fungi;
[0030] Step 3: The micro-device measures the diameter of the edible fungi using a scale of 1mm:10mm;
[0031] Step 4: Convert the obtained result in a ratio of 10mm:1mm;
[0032] Step 5: Transmit the current edible fungi number after conversion and the corresponding result to the central control module.
[0033] Another object of the present invention is to provide an information data processing terminal for implementing the artificial intelligence-based two-way adjustable edible fungi classification hydraulic cultivation system.
[0034] Another object of the present invention is to provide a mobile device for implementing the artificial intelligence-based two-way adjustable edible fungi classification hydraulic cultivation system.
[0035] Another object of the present invention is to provide a computer-readable storage medium, including instructions, which when run on a computer, cause the computer to execute the artificial intelligence-based two-way adjustable edible fungi classification hydraulic cultivation system.
[0036] Combining all the above technical solutions, the advantages and positive effects of the present invention are as follows: This application proposes a complete management system for the cultivation of edible fungi. The edible fungi cultivation temperature monitoring module is used to monitor the current cultivation temperature in real time, and the cultivation temperature is controlled at a constant temperature through the edible fungi cultivation temperature control module, ensuring that the growth process of edible fungi is not affected by abnormal temperatures, guaranteeing the survival rate and taste. During the cultivation process, the edible fungi spacing adjustment module is used to ensure the position spacing of edible fungi, ensuring that edible fungi have sufficient space for growth. The water mist spraying module is used regularly to ensure the water supply for edible fungi during the growth process, improving the survival rate and ensuring sufficient moisture for edible fungi. The wind force monitoring module protects edible fungi under the current harsh environment, ensuring the survival rate. BRIEF DESCRIPTION OF THE DRAWINGS
[0037] Figure 1 is a schematic structural diagram of the artificial intelligence-based two-way adjustable edible fungi classification hydraulic cultivation system provided by an embodiment of the present invention;
[0038] Figure 2 is a schematic diagram of the steps for calling the protective cover in the wind force monitoring module of the artificial intelligence-based two-way adjustable edible fungi classification hydraulic cultivation system provided by an embodiment of the present invention;
[0039] Figure 3 It is a schematic diagram of the step of measuring the diameter of edible fungi in the edible fungi classification and placement module of the two-way adjustable edible fungi classification hydraulic planting system based on artificial intelligence provided by the embodiment of the present invention;
[0040] In the figure: 1. Edible fungi planting temperature monitoring module; 2. Edible fungi planting temperature control module; 3. Device connection module; 4. Central control module; 5. Edible fungi spacing adjustment module; 6. Timed water mist spraying module; 7. Wind force monitoring module; 8. Edible fungi classification and placement module; 9. Display module. Specific implementation manners
[0041] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below in conjunction with embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0042] This part is an explanatory embodiment that expands and explains the technical solutions of the claims in order to enable those skilled in the art to fully understand how the present invention is specifically implemented.
[0043] As Figure 1 shown, a two-way adjustable edible fungi classification hydraulic cultivation system based on artificial intelligence provided by an embodiment of the present invention, the two-way adjustable edible fungi classification hydraulic cultivation system based on artificial intelligence includes:
[0044] An edible fungi planting temperature monitoring module 1, connected to the central control module 4, for monitoring the real-time temperature of edible fungi planting through a real-time temperature sensor. A resistance temperature sensor is used. Based on the fact that the resistance value of a metal conductor increases with the increase of temperature and changes with the rise of temperature, a positive resistance coefficient is adopted, and it is made of copper material. The real-time temperature of the current planting environment is directly obtained through the measured resistance value, and the real-time temperature data is transmitted to the central control module 4 in the form of digital signals;
[0045] The edible mushroom cultivation temperature control module 2 is connected to the central control module 4 and is used to regulate the temperature of edible mushroom cultivation through a thermostat. First, the real-time temperature of the current cultivation is used as the temperature signal of the output quantity, which is fed back to the input end in a negative feedback form and compared with the error signal to form a temperature feedback signal. The temperature feedback signal is transmitted to the central control module 4. The server in the central control module 4 analyzes the feedback signal. When the signal is within the set cultivation temperature range, the central control module 4 does not issue an instruction. Once it exceeds the set temperature range, the controller immediately issues a cooling instruction. The edible mushroom cultivation temperature control module receives the instruction and converts it into an electrical signal to be transmitted to the electrical chip of the thermostat for cooling operation. When the temperature is lower than the set temperature range, a heating instruction is issued to heat the current cultivation environment;
[0046] The device connection module 3 is connected to the central control module 4 and is used for the connection between the device and the system. After the device and the system are connected, the state of the connection line will be displayed on the display module. If the connection is intact, the system can continue to operate. If there is an error or disconnection in the connection, the alarm is called for alarm;
[0047] The central control module 4 is connected to the edible mushroom cultivation temperature monitoring module 1, the edible mushroom cultivation temperature control module 2, the device connection module 3, the edible mushroom spacing adjustment module 5, the timed water mist spraying module 6, the wind force monitoring module 7, the edible mushroom classification placement module 8, and the display module 9, and is used to control the normal operation of each module. The main controller collects external signals, analyzes and processes them, and then outputs them to the output channel. When analog quantity output is required externally, the system is converted into a standard electrical signal through a D / A converter for output;
[0048] The edible mushroom spacing adjustment module 5 is connected to the central control module 4 and is used to adjust the spacing according to the current growth state of the edible mushrooms. A camera device is used to obtain the real-time image of the edible mushrooms, and the machine learning algorithm is used to sequentially obtain the spacing between the edible mushrooms and the surrounding objects in the image. The obtained spacing data is compared with the standard spacing. If it is greater than the standard spacing, the central control module 4 issues an instruction to reduce the spacing. After receiving the instruction, the edible mushroom spacing adjustment module 5 reduces the overall spacing of the edible mushrooms. Vice versa;
[0049] The timed water mist spraying module 6 is connected to the central control module 4 and is used to spray water mist on the edible mushrooms at regular intervals through a timing program. After the first water mist spraying, the timing program starts timing automatically. Every hour, the timing program issues an instruction to spray water mist. The instruction is transmitted to the electrical chip of the water mist sprayer in the form of an electrical signal to stimulate the water mist sprayer to spray water mist;
[0050] The wind monitoring module 7, connected to the central control module 4, is used to monitor the wind force in the current edible mushroom growing environment, including a wind monitoring CPU, an alarm, and a protective cover. The wind monitoring CPU continuously monitors the wind force value in the current environment. Once the wind force value exceeds 3, it will stimulate the wind monitoring CPU to generate an electrical signal, and then immediately activate the protective cover to protect the edible mushrooms, preventing losses caused by excessive wind force. At the same time, it will activate the alarm to send out an alarm reminder;
[0051] The edible mushroom classification and placement module 8, connected to the central control module 4, is used to classify edible mushrooms according to their diameters. The edible mushroom classification and placement module 8 measures the diameter of the current edible mushroom to obtain diameter data, determines the size level of the current edible mushroom to be classified based on the diameter data, and then places the edible mushrooms into the corresponding growing units according to the judgment result;
[0052] The display module 9, connected to the central control module 4, is used to display the real-time temperature, wind force data, and spraying data status during the cultivation of edible mushrooms. When displaying the data, the central control module 4 transmits the information to the display module 9 in the form of a digital signal, and the display module 9 transmits the incoming digital signal to the display screen for display.
[0053] Furthermore, the alarm reminder in the device connection module includes simultaneous alarms in the forms of sound, flashing light, and vibration.
[0054] Furthermore, during the temperature adjustment process of the edible mushroom growing temperature control module, a multi-point and multi-fan radiator is used for heat dissipation, and a multi-point heater is used for heating the edible mushroom growing environment.
[0055] Furthermore, OpenCV is used in the edible mushroom spacing adjustment module 5 to measure the spacing between edible mushrooms in the image.
[0056] As Figure 2 shown, the steps for activating the protective cover in the wind monitoring module 7 are as follows:
[0057] S1: The wind monitoring CPU measures that the wind force value in the current environment exceeds 3, and the wind monitoring CPU generates an electrical signal;
[0058] S2: The electrical signal is simultaneously transmitted to the electrical chips of the protective cover and the alarm;
[0059] S3: After receiving the electrical signal stimulation, the protective cover immediately unfolds to ensure that the edible mushrooms are within the protective cover;
[0060] S4: When the wind monitor measures that the wind force value in the current environment is less than 3, it releases an electrical signal command to retract the protective cover, and the protective cover retracts after receiving the command.
[0061] Further, the display connector in the display module 9 is a DVI interface.
[0062] As Figure 3 shown, the steps for measuring the diameter of the edible fungi in the edible fungi classification and placement module 8 are as follows:
[0063] Step 1: Place the edible fungi on the micro-measuring device;
[0064] Step 2: The micro-device automatically aligns with the edible fungi;
[0065] Step 3: The micro-device measures the diameter of the edible fungi using a scale of 1mm:10mm;
[0066] Step 4: Convert the obtained result by a ratio of 10mm:1mm;
[0067] Step 5: Transmit the current edible fungi number after conversion and the corresponding result to the central control module 4.
[0068] Working principle part: The edible fungi planting temperature monitoring module 1 is used to monitor the current planting temperature in real time, and the planting temperature is controlled at a constant temperature through the edible fungi planting temperature control module 2, ensuring that the growth process of the edible fungi is not affected by abnormal temperatures. During the planting process, the edible fungi spacing adjustment module 5 is used to ensure the position spacing of the edible fungi, ensuring that the edible fungi have sufficient space for growth. The timing spraying water mist module 6 is used to ensure the water supply of the edible fungi during the growth process, improving the survival rate and ensuring sufficient moisture for the edible fungi. The wind force monitoring module 7 is used to protect the edible fungi under the current harsh environment.
[0069] In the description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more; the orientation or positional relationships indicated by the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail", etc. are based on the orientation or positional relationships shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be construed as a limitation of the present invention. In addition, the terms "first", "second", "third", etc. are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0070] It should be noted that the embodiments of the present invention can be implemented by hardware, software, or a combination of software and hardware. The hardware part can be implemented using dedicated logic; the software part can be stored in a memory and executed by an appropriate instruction execution system, such as a microprocessor or dedicated designed hardware. Those of ordinary skill in the art can understand that the above-mentioned devices and methods can be implemented using computer-executable instructions and / or included in processor control code, such as provided on a carrier medium such as a disk, CD, or DVD-ROM, a programmable memory such as read-only memory (firmware), or a data carrier such as an optical or electronic signal carrier. The devices and modules of the present invention can be implemented by hardware circuits of programmable hardware devices such as very large scale integrated circuits or gate arrays, semiconductors such as logic chips, transistors, etc., or field programmable gate arrays, programmable logic devices, etc., can also be implemented by software executed by various types of processors, or can be implemented by a combination of the above hardware circuits and software such as firmware.
[0071] As described above, the above are only specific embodiments of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention should be covered within the protection scope of the present invention.
Claims
1. A two-way adjustable artificial intelligence-based hydraulic cultivation system for edible fungi, characterized in that, The artificial intelligence-based two-way adjustable edible mushroom classification hydraulic cultivation system includes: An edible mushroom planting temperature monitoring module, connected to the central control module, for monitoring the real-time temperature of edible mushroom planting through a real-time temperature sensor; An edible mushroom planting temperature control module, connected to the central control module, for regulating the edible mushroom planting temperature through a thermostat; A device connection module, connected to the central control module, for connecting the device to the system; An edible mushroom spacing adjustment module, connected to the central control module, for adjusting the spacing according to the current growth state of the edible mushrooms; A timed water mist spraying module, connected to the central control module, for spraying water mist on the edible mushrooms at regular intervals through a timing program; A wind force monitoring module, connected to the central control module, for monitoring the wind force in the current edible mushroom planting environment; An edible mushroom classification placement module, connected to the central control module, for classifying the edible mushrooms according to their diameters; A display module, connected to the central control module, for displaying the real-time temperature, wind force data, and spraying data status during the edible mushroom planting process; A central control module, connected to the edible mushroom planting temperature monitoring module, the edible mushroom planting temperature control module, the device connection module, the edible mushroom spacing adjustment module, the timed water mist spraying module, the wind force monitoring module, the edible mushroom classification placement module, and the display module, for controlling the normal operation of each module; The edible mushroom planting temperature monitoring module uses a resistance temperature sensor. Based on the fact that the resistance value of a metal conductor increases with the increase in temperature and changes with the rise in temperature, it has a positive temperature coefficient and is made of copper material. The real-time temperature of the current planting environment is directly obtained through the measured resistance value, and the real-time temperature data is transmitted to the central control module in the form of a digital signal; The edible mushroom planting temperature control module first takes the real-time temperature of the current planting as the temperature signal of the output quantity, feeds it back to the input end in a negative feedback form and compares it with the error signal to form a temperature feedback signal. The temperature feedback signal is transmitted to the central control module. The server in the central control module analyzes the feedback signal. When the signal is within the set planting temperature range, the central control module does not issue an instruction. Once it exceeds the set temperature range, the controller immediately issues a cooling instruction. The edible mushroom planting temperature control module receives the instruction, converts it into an electrical signal and transmits it to the electrical chip of the thermostat for cooling operation. When the temperature is less than the set temperature range, a heating instruction is issued to heat the current planting environment; After the device connection module is connected to the system, the status of the connection line will be displayed on the display module. If the connection is intact, the system can continue to operate. If there is an error or disconnection in the connection, the alarm will be called to give an alarm; The edible mushroom spacing adjustment module uses a camera device to obtain real-time images of edible mushrooms, and uses machine learning algorithms to sequentially obtain the spacing between the edible mushrooms and surrounding objects in the images. The obtained spacing data is compared with the standard spacing. If it is greater than the standard spacing, the central control module issues an instruction to reduce the spacing. After receiving the instruction, the edible mushroom spacing adjustment module reduces the overall spacing of the edible mushroom. Vice versa; For the timed water mist spraying module, after the first water mist spraying, the timing program automatically starts timing. Every hour, the timing program issues an instruction to spray water mist. The instruction is transmitted in the form of an electrical signal to the electrical chip of the water mist sprayer to stimulate the water mist sprayer to perform water mist spraying; The wind force monitoring module includes a wind force monitoring CPU, an alarm, and a protective cover. The wind force monitoring CPU continuously monitors the wind force value of the current environment. Once the wind force value exceeds 3, it stimulates the wind force monitoring CPU to generate an electrical signal, immediately calls the protective cover to protect the edible mushrooms, and at the same time calls the alarm to give an alarm reminder; The edible mushroom classification and placement module measures the diameter of the current edible mushroom to obtain diameter data, determines the size level of the edible mushroom to be classified according to the diameter data, and then places the edible mushroom into the corresponding planting unit according to the judgment result; For the display module, when displaying data, the central control module transmits the information in the form of a digital signal to the display module, and the display module transmits the incoming digital signal to the display screen for display; The main controller of the central control module collects external signals, analyzes and processes them, and then outputs them to the output channel. When analog output is required externally, the system is converted into a standard electrical signal through a D / A converter for output.
2. The two-way adjustable edible mushroom classification hydraulic cultivation system based on artificial intelligence according to claim 1, wherein During the temperature adjustment process of the edible mushroom planting temperature control module, a multi-point and multi-fan radiator is used for heat dissipation, and a multi-point heater is used for heating the edible mushroom planting environment.
3. The two-way adjustable edible mushroom classification hydraulic cultivation system based on artificial intelligence according to claim 1, characterized in that In the edible mushroom spacing adjustment module, OpenCV is used to measure the spacing between edible mushrooms in the image.
4. The bidirectional adjustable edible mushroom classification hydraulic cultivation system based on artificial intelligence according to claim 1, characterized in that, The display interface in the display module is a DVI interface.
5. The two-way adjustable edible mushroom classification hydraulic cultivation system based on artificial intelligence according to claim 1, characterized in that The alarm prompt in the device connection module includes simultaneous alarms in the forms of sound, flash, and vibration.
6. The two-way adjustable edible mushroom classification hydraulic cultivation system based on artificial intelligence according to claim 1, wherein The steps for calling the protective cover in the wind force monitoring module are as follows: S1: The wind force monitoring CPU measures that the wind force value of the current environment exceeds 3, and the wind force monitoring CPU generates an electrical signal; S2: The electrical signal is simultaneously transmitted to the electrical chips of the protective cover and the alarm; S3: After receiving the electrical signal stimulation, the protective cover immediately unfolds to ensure that the edible mushrooms are within the protective cover; S4: When the wind force monitor measures that the wind force value of the current environment is less than 3, it releases an electrical signal instruction to retract the protective cover, and the protective cover retracts after receiving the instruction.
7. The two-way adjustable edible mushroom classification hydraulic cultivation system based on artificial intelligence according to claim 1, characterized in that, The steps for measuring the diameter of edible mushrooms in the edible mushroom classification and placement module are as follows: Step 1: Place the edible mushroom on the micro-measuring device; Step 2: The micro-device automatically aligns with the edible mushroom; Step 3: The micro-device measures the diameter of the edible mushroom using a scale of 1mm:10mm; Step 4: Perform a ratio conversion of 10mm:1mm on the obtained result; Step 5: Transmit the current edible mushroom number and the corresponding result after conversion to the central control module.
8. An information data processing terminal for implementing the artificial intelligence-based two-way adjustable edible mushroom classification hydraulic cultivation system according to any one of claims 1 to 7.
9. A mobile device for implementing the artificial intelligence-based two-way adjustable edible mushroom classification hydraulic cultivation system according to any one of claims 1 to 7.
Citation Information
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