Carbon emission knowledge dissemination method and device, electronic equipment and medium
By designing virtual card interactions and progression rounds at a virtual card table, the challenges of interactivity and integration in the dissemination of carbon emission knowledge were solved, enabling efficient knowledge dissemination and in-depth understanding.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- URBAN PLANNING & DESIGN INST OF SHENZHEN UPDIS
- Filing Date
- 2025-04-30
- Publication Date
- 2026-04-28
AI Technical Summary
Existing carbon emission knowledge dissemination technologies lack interactivity and participation, making it difficult to integrate fragmented carbon emission knowledge into an easy-to-remember knowledge system, resulting in low content conversion efficiency.
By constructing a virtual card table as an information dissemination field, acquiring virtual card decks and loading process rounds, and utilizing the virtual resources of the participants to conduct highly interactive information dissemination, including virtual card allocation, resource pool formation and advanced operations, it simulates real-world supply chain management.
It improved the efficiency and effectiveness of disseminating carbon emission knowledge, subtly integrating fragmented knowledge through interactive methods, and enhancing the understanding and application capabilities of participants.
Smart Images

Figure CN120543346B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of information dissemination technology, and in particular to a method and apparatus, electronic device, and medium for disseminating knowledge about carbon emissions. Background Technology
[0002] In the process of information dissemination, carbon emission knowledge, as a relatively fragmented and wide-ranging type of information, is difficult to integrate into an easily memorized knowledge system for the participants to absorb and master.
[0003] Current technologies for disseminating carbon emission knowledge, such as corporate training and regulatory documents, are often primarily one-way information transmissions, lacking interactivity and participation. This one-way approach makes it difficult for participants to actively engage and deeply understand the complexity and importance of supply chain carbon management. Furthermore, traditional lectures or graphic materials struggle to demonstrate the collaboration and decision-making processes of different stakeholders within the supply chain, and fail to present the dynamic game-theoretic relationships within the supply chain. Consequently, the content conversion effectiveness of carbon emission knowledge in these technologies is relatively low. Summary of the Invention
[0004] This application aims to address at least one of the technical problems existing in the prior art. To this end, this application proposes a method, apparatus, electronic device, and medium for disseminating carbon emission knowledge, which can improve the content conversion effect of carbon emission knowledge.
[0005] The carbon emission knowledge dissemination method according to the first aspect of this application includes:
[0006] Identify the participants and obtain the virtual resources held by each participant;
[0007] A virtual card table is constructed as an information dissemination field, and a carbon emission knowledge deck containing multiple virtual cards is obtained; wherein, each of the virtual cards records carbon emission knowledge of one industrial segment under an industry category;
[0008] Each participant and the virtual resources held by the participant are added to the virtual card table. An information dissemination process, including several rounds, is loaded according to the carbon emission knowledge card set and the virtual card table, so as to disseminate the carbon emission knowledge to each participant in the information dissemination field through the rounds.
[0009] According to some embodiments of this application, each round of the information propagation process includes:
[0010] A virtual card is assigned to each participant from the carbon emission knowledge deck;
[0011] After the virtual cards are allocated, in response to the initial provisioning operation of each virtual resource, an initial participation resource is obtained for each initial participant; wherein, the initial participant is the participant that provides the initial participation resource;
[0012] A round resource pool is formed based on the initial participation resources of each participating object;
[0013] After obtaining the round resource pool, draw virtual common cards from the remaining virtual cards in the carbon emission knowledge deck;
[0014] After the virtual public card is drawn, the round resource pool is allocated according to the virtual public card and the virtual cards of each of the initial participants to update the virtual resources held by each participant and start the next process round of the information propagation process.
[0015] When the virtual resources held by each of the participating objects meet the preset process termination conditions, the information dissemination process is terminated.
[0016] According to some embodiments of this application, the allocation of the round resource pool based on the virtual public card and the virtual hole cards of each of the initial participants includes:
[0017] In response to each of the virtual resources being provided with an advanced provisioning operation, advanced participation resources for each advanced participant are obtained, and each advanced participation resource is injected into the round resource pool; wherein, the advanced participant is the participant that provides the advanced participation resource;
[0018] After each advanced participation resource is injected into the round resource pool, in response to the preset round termination condition being met, the round hand type of each advanced participation object is determined according to the virtual hole card and the virtual common card of each advanced participation object.
[0019] For each advanced participant, a candidate carbon emission knowledge chain is formed based on the carbon emission knowledge recorded in each virtual card in the corresponding round card type.
[0020] The round resource pool is allocated based on the candidate carbon emission knowledge chain of each advanced participant.
[0021] According to some embodiments of this application, the step of obtaining the advanced participation resource for each of the advanced participation objects in response to the advanced provisioning operation performed on each of the virtual resources includes:
[0022] For each of the initial participating objects, in response to the initial participating object performing an advanced provisioning operation on the virtual resources it holds to obtain the advanced participating resources, the initial participating object is determined as the advanced participating object;
[0023] For each of the initial participants, in response to the initial participant folding the virtual cards it holds, it is determined that the initial participant abandons further participation in the current process round.
[0024] According to some embodiments of this application, the step of determining the initial participant as the advanced participant in response to the initial participant performing an advanced provisioning operation on the virtual resources it holds to obtain the advanced participation resources, and for each of the initial participants, including:
[0025] For each of the initial participating objects, in response to the initial participating object performing an advanced provisioning operation on the virtual resources it holds to obtain the advanced participating resources, the initial participating object is determined as the candidate advanced object;
[0026] In response to the inconsistency of advancement participation resources among the candidate advancement objects, the advancement participation resource with the highest amount is determined as the advancement participation benchmark;
[0027] Based on the aforementioned advanced participation criteria, advanced participation objects are selected from each of the candidate advanced objects.
[0028] According to some embodiments of this application, allocating the round resource pool based on the candidate carbon emission knowledge chain of each advanced participant includes:
[0029] Based on a preset integrity detection benchmark, the first target knowledge chain is selected from each of the candidate carbon emission knowledge chains.
[0030] The round resource pool is allocated to the advanced participant corresponding to the first target knowledge chain.
[0031] According to some embodiments of this application, each carbon emission knowledge in the carbon emission knowledge deck is configured with corresponding emission reduction points, and the allocation of the round resource pool to the advanced participant corresponding to the first target knowledge chain includes:
[0032] In response to the existence of at least two first target knowledge chains, the emission reduction integral of each first target knowledge chain is calculated to obtain the knowledge chain emission reduction integral of each first target knowledge chain.
[0033] The first target knowledge chain with the highest emission reduction score is determined as the second target knowledge chain;
[0034] The round resource pool is allocated to the advanced participants corresponding to the second target knowledge chain.
[0035] According to some embodiments of this application, before updating the virtual resources held by each of the participating objects, the method further includes:
[0036] In response to the fact that the virtual resources held by the participating object meet a preset resource depletion condition, the corresponding participating object is identified as a marginal participating object;
[0037] In response to the edge participant performing a card-adding operation, multiple cards are obtained; wherein, the multiple cards record carbon emission knowledge of continuous industrial links under at least one industry category;
[0038] The carbon emission knowledge deck is updated based on multiple added cards, and the virtual resources are supplemented for the participants who perform the card addition operation.
[0039] According to some embodiments of this application, determining the participating objects and obtaining the virtual resources held by each participating object includes:
[0040] Obtain multiple participation requests and determine the corresponding participation object based on each participation request;
[0041] Based on the participation request, virtual resources are initially configured for the corresponding participating object.
[0042] Secondly, embodiments of this application provide an electronic device, including: a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the carbon emission knowledge dissemination method as described in any one of the embodiments of the first aspect of this application.
[0043] Thirdly, embodiments of this application provide a computer-readable storage medium storing a program that is executed by a processor to implement the carbon emission knowledge dissemination method as described in any one of the embodiments of the first aspect of this application.
[0044] The carbon emission knowledge dissemination method, apparatus, electronic device, and medium according to the embodiments of this application have at least the following beneficial effects:
[0045] The carbon emission knowledge dissemination method of this application, through the virtual resources held by participants, the construction of a highly interactive virtual card table, the design of virtual cards carrying fragmented carbon emission knowledge, and a process-oriented information dissemination process, subtly integrates fragmented carbon emission knowledge as participants enter the information dissemination field. In this way, it can overcome the problems of high difficulty in knowledge integration, one-way dissemination, and lack of interactivity existing in related technologies, thereby improving the efficiency and effectiveness of carbon emission knowledge dissemination.
[0046] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0047] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0048] Figure 1 A schematic flowchart of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0049] Figure 2 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0050] Figure 3 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0051] Figure 4 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0052] Figure 5 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0053] Figure 6 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0054] Figure 7 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0055] Figure 8 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0056] Figure 9 Another schematic diagram of the carbon emission knowledge dissemination method provided in the embodiments of this application;
[0057] Figure 10 This is a schematic diagram of the hardware structure of the electronic device provided in the embodiments of this application. Detailed Implementation
[0058] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0059] In the description of this application, "several" means one or more, "more than" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0060] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0061] In the description of this application, the identification of specific steps in the following text does not imply a limitation on the order of steps and execution logic. The execution order and execution logic between each step should be understood and inferred from the content described in the embodiments.
[0062] In the process of information dissemination, carbon emission knowledge, as a relatively fragmented and wide-ranging type of information, is difficult to integrate into an easily memorized knowledge system for the participants to absorb and master.
[0063] Current technologies for disseminating carbon emission knowledge are insufficient to effectively verify participants' level of knowledge acquisition. For example, after learning about carbon reduction, participants often lack opportunities for practical application and cannot translate that knowledge into concrete action. This lack of behavioral verification mechanisms limits the actual effectiveness of carbon emission knowledge dissemination.
[0064] Therefore, the content conversion effect of carbon emission knowledge in related technologies is relatively low. The content conversion effect refers to the effectiveness of the audience's understanding, absorption, and comprehension of the relevant knowledge. Specifically, the higher the audience's level of understanding, absorption, and comprehension of the knowledge being disseminated, the better the content conversion effect.
[0065] This application aims to address at least one of the technical problems existing in the prior art. To this end, this application proposes a method, apparatus, electronic device, and medium for disseminating carbon emission knowledge, which can improve the content conversion effect of carbon emission knowledge.
[0066] The following description, in conjunction with the accompanying drawings, further illustrates this application.
[0067] Reference Figure 1 The carbon emission knowledge dissemination method according to the embodiments of this application may include:
[0068] Step S101: Determine the participating objects and obtain the virtual resources held by each participating object;
[0069] Step S102: Construct a virtual card table as an information dissemination field and acquire a carbon emission knowledge card set containing multiple virtual cards; wherein, each virtual card records carbon emission knowledge of one industrial link under an industry category;
[0070] Step S103: Add each participant and the virtual resources held by the participants to the virtual table, and load an information dissemination process including several rounds based on the carbon emission knowledge deck and the virtual table, so as to disseminate carbon emission knowledge to each participant in the information dissemination field through the rounds.
[0071] The carbon emission knowledge dissemination method of this application, through the virtual resources held by participants, the construction of a highly interactive virtual card table, the design of virtual cards carrying fragmented carbon emission knowledge, and a process-oriented information dissemination process, subtly integrates fragmented carbon emission knowledge as participants enter the information dissemination field. In this way, it can overcome the problems of high difficulty in knowledge integration, one-way dissemination, and lack of interactivity existing in related technologies, thereby improving the efficiency and effectiveness of carbon emission knowledge dissemination.
[0072] The carbon emission knowledge dissemination method of this application aims to improve the efficiency and effectiveness of carbon emission knowledge dissemination through interactive methods. This method achieves its goal mainly through three core steps: identifying participants and acquiring their virtual resources, constructing a virtual playing table and acquiring a carbon emission knowledge deck, and loading the information dissemination process and conducting knowledge dissemination.
[0073] In some embodiments, step S101 involves determining the participating objects and obtaining the virtual resources held by each participating object.
[0074] It should be noted that the carbon emission knowledge dissemination method in this application lays a personalized foundation for the dissemination of carbon emission knowledge by identifying participants and acquiring their virtual resources. This process not only clarifies the scope of knowledge dissemination but also provides a quantifiable and personalized carrier for subsequent knowledge dissemination activities through the configuration of virtual resources. Virtual resources can be understood as various forms of digital assets, such as virtual currency and points. The introduction of virtual resources enhances the participation and enthusiasm of participants in the knowledge dissemination process and also provides an indirect way to measure the dissemination effect, helping to promote the effective diffusion of carbon emission knowledge among different individuals.
[0075] According to some embodiments of this application, determining the participating objects and obtaining the virtual resources held by each participating object may include:
[0076] Obtain multiple participation requests and determine the corresponding participant based on each participation request;
[0077] Based on the participation request, virtual resources are initially configured for the corresponding participating object.
[0078] In some embodiments of this application, the process of identifying participants and acquiring their virtual resources is a fundamental step in the entire carbon emission knowledge dissemination method. This process ensures that participants in the information dissemination process can be accurately identified, and that each participant receives initial virtual resources, thereby preparing for subsequent interactions and knowledge dissemination.
[0079] First, this application embodiment can obtain multiple participation requests. These participation requests can come from different channels, such as through network platforms, mobile applications, or other digital interfaces. Each participation request contains necessary information for identifying and verifying the identity of the requester. This information may include a username, password, email address, or other forms of authentication credentials. In this way, this application embodiment can ensure that only authorized users can participate in the information dissemination process.
[0080] In some more specific embodiments, the corresponding participant can be determined based on each participation request. This step involves matching the information in the participation request with a pre-defined user database to find the corresponding user record. If the information in the participation request matches a record in the pre-defined user database, then that user is identified as a participant. This step ensures that only compliant users can participate in the subsequent information dissemination process, and also establishes a clear identity for each participant.
[0081] After identifying the participants, this embodiment of the application can initially configure virtual resources for the corresponding participants based on their participation requests. Virtual resources can be virtual currency, points, or other forms of virtual assets. The purpose of the initial configuration is to provide each participant with a fair starting point, enabling them to have certain resources for operation and interaction at the beginning of the information dissemination process. The quantity and type of initial resource configuration may vary depending on the specific rules and design of the information dissemination process, but its core purpose is to ensure that each participant has basic participation capabilities at the start of the information dissemination process.
[0082] In some more specific embodiments, the initial configuration of virtual resources can be optimized and enriched through a virtual-real linkage module and a dynamic specification library. This combination allows the configuration of virtual resources not only to be based on the information dissemination process but also to reflect the carbon emission management situation and regulatory changes in the real world, thereby enhancing the realism and educational significance of the information dissemination process.
[0083] First, the virtual-real linkage module allows participants to upload real supply chain data to generate customized tasks. This means participants can bring carbon emission management issues they encounter in their real-world work into the information dissemination process. For example, a participant might upload data on an orchard's irrigation system and then receive a task in the information dissemination process to optimize that system to reduce carbon emissions. Such tasks require participants to apply practical carbon emission management knowledge to solve, and upon completion, participants may receive a certain amount of virtual resources as a reward. This approach not only closely integrates the acquisition of virtual resources with real-world carbon emission management practices but also enhances participants' sense of engagement and participation in the information dissemination process.
[0084] Secondly, the built-in rules of the dynamic normative library can trigger specific events during the information dissemination process, forcing participants to adjust their strategies. This mechanism means that the virtual resources of participants are not only affected by their own behavior but also constrained by the normative environment within the information dissemination process. Participants need to adjust their strategies according to these normative changes to maintain competitiveness and effective resource utilization.
[0085] It should be understood that by obtaining participation requests, determining participants, and initially configuring virtual resources, the embodiments of this application can ensure that each participant can start the information dissemination process from a fair and personalized starting point, laying the foundation for subsequent dissemination of carbon emission knowledge.
[0086] In step S102 of some embodiments, a virtual card table is constructed as an information dissemination field, and a carbon emission knowledge card set containing multiple virtual cards is obtained; wherein, each virtual card records carbon emission knowledge of one industrial link under an industry category.
[0087] It should be noted that constructing a virtual card table as an information dissemination venue and obtaining a carbon emission knowledge deck containing multiple virtual cards greatly enhances the interactivity and practicality of carbon emission knowledge dissemination.
[0088] It's important to clarify that the step of constructing a virtual poker table provides participants with an interactive and practical platform by creating a virtual space. The virtual poker table is not only a place for information exchange but also a vehicle for disseminating carbon emission knowledge, transforming abstract and fragmented carbon emission knowledge into concrete and actionable elements. This concrete approach to dissemination helps lower the barrier to understanding carbon emission knowledge for participants, enabling those from diverse backgrounds to quickly grasp the information within this information dissemination space, thus improving the efficiency and effectiveness of carbon emission knowledge dissemination.
[0089] It should be clarified that the step of obtaining a carbon emission knowledge deck containing multiple virtual cards in this embodiment of the application modularizes carbon emission knowledge by introducing virtual cards. Each virtual card carries carbon emission information and related information for a specific industry segment.
[0090] In some embodiments, virtual cards can also reflect the depth and breadth of knowledge integration. Each virtual card can not only record carbon emission knowledge of a single link, but also, through association with other virtual cards, construct an industrial supply chain knowledge network across various industry categories. This design helps participants gradually build a systematic understanding of carbon emissions throughout the entire supply chain while learning fragmented carbon emission knowledge. For example, after collecting and studying a series of virtual cards related to the food supply chain, participants can piece together a complete picture of carbon emissions from agricultural production to food processing, transportation, and sales, thereby gaining a more comprehensive understanding of the complexity and importance of supply chain carbon management.
[0091] In some more specific embodiments, each virtual card in the carbon emission knowledge deck carries specific carbon emission knowledge. This information does not broadly cover all industries, but is meticulously categorized and organized, archived according to different industry categories and specific industry processes. Industry categories may include the food industry, construction industry, and apparel industry, among others. These categories cover several important sectors, each with its unique carbon emission characteristics and management needs. For example, the food industry focuses on carbon emissions from agricultural planting, animal husbandry, and food processing; the construction industry focuses on energy consumption and carbon emissions during building material production, construction, and building operation; and the apparel industry's carbon emissions mainly originate from fabric production, garment manufacturing, and logistics distribution.
[0092] It is worth noting that this application's embodiments not only categorize industries, but the virtual cards further detail the sub-stages within each industry category. Taking the food industry as an example, its sub-stages include agricultural production, food processing, transportation and logistics, retail sales, consumption, and food waste treatment. Each stage has different carbon emission sources and emission reduction potential. In this way, the carbon emission knowledge deck can provide comprehensive and in-depth carbon emission knowledge, helping users to deeply understand the overall picture of carbon emissions.
[0093] It is important to emphasize that the virtual card table, as a platform simulating a real-world supply chain scenario, allows abstract carbon emission knowledge to be presented in a concrete context, thereby lowering the barrier to understanding. Each virtual card carries carbon emission knowledge from a specific industry segment, breaking down the complex knowledge system into easily digestible fragments, facilitating gradual absorption by participants. This design not only improves knowledge accessibility but also makes the dissemination of carbon emission knowledge more attractive through interactive participation, thus expanding the reach of knowledge dissemination.
[0094] In step S103 of some embodiments, each participant and the virtual resources held by the participant are added to the virtual table, and an information dissemination process including several process rounds is loaded according to the carbon emission knowledge deck and the virtual table, so as to disseminate carbon emission knowledge to each participant in the information dissemination field through process rounds.
[0095] It should be noted that adding participants and their virtual resources to the virtual table and loading the information dissemination process is a key step in achieving efficient dissemination of knowledge about carbon emissions. The key innovation of this step lies in the fact that it does not simply gather participants together, but rather creates a dynamic and highly interactive knowledge dissemination environment through the integration of virtual resources and the design of process rounds.
[0096] This step begins by adding participants and their virtual resources to the virtual poker table. Virtual resources play a crucial role here; they are not only tools for participants to navigate the virtual environment but also motivators for knowledge dissemination. For example, participants can use these resources to place bets at the virtual table to gain a deeper understanding of carbon emissions. This design cleverly combines knowledge dissemination with participant motivation, promoting the proactive acquisition and sharing of carbon emissions knowledge.
[0097] Furthermore, based on the architecture of the carbon emission knowledge deck and the virtual table, an information dissemination process comprising multiple rounds is implemented. These rounds ensure that participants are exposed to carbon emission knowledge from different industry segments as they progress. Through this process-oriented information dissemination process, carbon emission knowledge is transmitted to participants within the information dissemination field of the virtual table, according to each round. Each round is designed with specific goals and challenges, prompting participants to continuously encounter and apply new carbon emission knowledge throughout the information dissemination process. This process-oriented design not only increases the frequency of knowledge exposure for participants but also enhances their memory and understanding of carbon emission knowledge through continuous practice and feedback, making knowledge dissemination more in-depth and sustainable.
[0098] In some embodiments, these process rounds are not limited to linear knowledge transfer; they can also make knowledge dissemination more dynamic and effective through various interactive mechanisms such as trading, competition, and cooperation. For example, in one round, participants may need to exchange virtual cards to build complete supply chain knowledge, or strategically place bets to demonstrate their understanding of a particular carbon emission stage.
[0099] Through these rounds of processes, knowledge about carbon emissions can be efficiently disseminated to all participants within the information dissemination sphere of the virtual poker table. This approach effectively overcomes the one-way and passive nature common in traditional knowledge dissemination methods, enabling rapid diffusion and deep internalization of knowledge among participants.
[0100] Overall, the carbon emission knowledge dissemination method of this application effectively overcomes the problems of difficult knowledge integration, one-way dissemination, and lack of interactivity in traditional carbon emission knowledge dissemination technologies by using personalized configuration of virtual resources, construction of highly interactive virtual card tables, design of virtual cards to carry fragmented carbon emission knowledge, and process-oriented information dissemination process, thus significantly improving the efficiency and effectiveness of carbon emission knowledge dissemination.
[0101] Reference Figure 2 According to step S103 of some embodiments of this application, each process round of the information propagation process may include:
[0102] Step S201: Assign virtual cards to each participant from the carbon emission knowledge deck;
[0103] Step S202: After allocating virtual cards, in response to the initial provision operation being performed on each virtual resource, the initial participation resource for each initial participant is obtained; wherein, the initial participant is the participant that provides the initial participation resource.
[0104] Step S203: Based on the initial participation resources of each participating object, a round resource pool is formed;
[0105] Step S204: After obtaining the round resource pool, draw virtual common cards from the remaining virtual cards in the carbon emission knowledge deck;
[0106] Step S205: After drawing the virtual public card, the round resource pool is allocated according to the virtual public card and the virtual cards of each initial participant to update the virtual resources held by each participant and start the next process round of the information propagation process.
[0107] Step S206: When the virtual resources held by each participating object meet the preset process termination conditions, the information propagation process is terminated.
[0108] In some embodiments, each round of the information dissemination process described in step S103 ensures the effective dissemination of carbon emission knowledge and the continuous interaction of participants through a series of steps. These steps include assigning virtual cards to participants, responding to the initial provision of virtual resources, forming a round resource pool, drawing virtual public cards, allocating resources to the pool based on the virtual public cards and virtual cards, and terminating the process when conditions are met.
[0109] In some embodiments, step S201 involves assigning a virtual card to each participant from the carbon emission knowledge deck;
[0110] It's important to note that the process round begins with assigning virtual cards to each participant. These virtual cards are derived from a carbon emissions knowledge deck, with each card representing carbon emissions knowledge specific to a particular industry segment. In this way, each participant receives core carbon emissions-related information at the start of the round, laying the foundation for subsequent interactions and knowledge application.
[0111] In step S202 of some embodiments, after allocating virtual cards, in response to the initial provisioning operation being performed on each virtual resource, the initial participation resource for each initial participant is obtained; wherein, the initial participant is the participant that provides the initial participation resource;
[0112] It should be noted that after allocating virtual resources, this embodiment of the application will respond to the initial provision operation performed on each virtual resource. This step involves collecting the initial participation resources provided by each initial participant. The initial provision operation refers to the behavior of a participant providing virtual resources to the round resource pool for the first time at the beginning of each process round, based on its own situation and strategy. This step is the basic threshold for participants to enter the current round. The initial provision operation ensures that each participant has a certain resource investment at the beginning of the round, thereby guaranteeing the basic size of the round resource pool and providing an incentive basis for subsequent knowledge dissemination and interaction. The initial provision operation reflects the participant's initial commitment to the current round and also lays the foundation for subsequent strategy selection. The provision of initial participation resources not only lays the foundation for the formation of the subsequent round resource pool but also reflects the investment of each participant in the current process round. This process helps to mobilize the enthusiasm of participants and provides assistance for the subsequent dissemination of carbon emission knowledge.
[0113] In some embodiments, step S203 involves forming a round resource pool based on the initial participation resources of each participating object.
[0114] It should be noted that a round resource pool is formed based on the initial participation resources provided by each participant. The formation of the round resource pool is a crucial step in the information dissemination process. It not only provides participants with a common goal but also, through the concentration of initial participation resources, creates an incentive mechanism that encourages participants to engage in the information dissemination process. This promotes the effective dissemination of carbon emission knowledge. The existence of the round resource pool incentivizes participants to actively utilize and demonstrate their carbon emission knowledge in subsequent steps, hoping to benefit from the allocation within the round resource pool.
[0115] In some embodiments, step S204 involves drawing virtual common cards from the remaining virtual cards in the carbon emission knowledge deck after obtaining the round resource pool.
[0116] It should be noted that after obtaining the round resource pool, this embodiment of the application draws virtual common cards from the remaining virtual cards in the carbon emission knowledge deck. These virtual common cards represent additional carbon emission knowledge, and their introduction adds new information to the current round, allowing the virtual bottom cards and virtual common cards to combine the carbon emission knowledge mentioned above. The process of drawing virtual common cards simulates the dynamic changes and uncertainties of information in the real world, prompting participants to continuously adjust their strategies and helping to deepen their understanding of various carbon emission knowledge.
[0117] In some embodiments, step S205 involves allocating the round resource pool based on the virtual public card and the virtual cards of each initial participant after drawing the virtual public card, in order to update the virtual resources held by each participant and start the next process round of the information propagation process.
[0118] It should be noted that, in the following embodiments of this application, the round resource pool is allocated based on the extracted virtual common cards and the virtual cards held by each initial participant. By observing and analyzing the combination of the virtual common cards and their own virtual cards, participants can gain a deeper understanding of different carbon emission knowledge and combine this knowledge. After obtaining a systematic carbon emission knowledge based on various combinations of carbon emission knowledge, the round resource pool is allocated according to the systematic carbon emission knowledge corresponding to different participants. Specifically, the round resource pool will be allocated to participants who have combined various carbon emission knowledge optimally. This allocation process updates the virtual resources held by each participant, and as the rounds iterate, it helps each participant to gain a deeper understanding of carbon emission knowledge under this mechanism.
[0119] Reference Figure 3 According to some embodiments of this application, step S205, which allocates the round resource pool based on the virtual common cards and the virtual bottom cards of each initial participant, may include:
[0120] Step S301: In response to the advanced provisioning operation being performed on each virtual resource, the advanced participation resource of each advanced participant object is obtained, and each advanced participation resource is injected into the round resource pool; wherein, the advanced participant object is the participant object that provides the advanced participation resource;
[0121] Step S302: After each advanced participation resource is injected into the round resource pool, in response to the preset round termination condition being met, the round hand type of each advanced participant is determined based on the virtual hole card and virtual community card of each advanced participant.
[0122] Step S303: For each advanced participant, a candidate carbon emission knowledge chain is formed based on the carbon emission knowledge recorded by each virtual card in the corresponding round card type.
[0123] Step S304: Allocate the round resource pool according to the candidate carbon emission knowledge chain of each advanced participant.
[0124] In some embodiments, step S301 involves obtaining the advanced participation resource for each advanced participant object in response to the advanced provisioning operation performed on each virtual resource, and injecting each advanced participation resource into the round resource pool; wherein, the advanced participant object is the participant object that provides the advanced participation resource.
[0125] It should be noted that in response to the advanced provisioning operation performed on each virtual resource, advanced participation resources are obtained for each advanced participant and injected into the round resource pool. The advanced provisioning operation occurs after the initial provisioning and represents the behavior of participants further providing virtual resources to the round resource pool during the round, based on the virtual community cards and their own virtual hand cards. This step reflects participants adjusting their strategies and increasing their investment according to the current situation. The advanced provisioning operation not only increases the total amount of resources in the round resource pool but also reflects participants' confidence in their own hand and community card combinations, as well as their understanding and application of carbon emission knowledge. It provides participants with opportunities to adjust their strategies during the round and also increases the interactivity and competitiveness of the knowledge dissemination process.
[0126] In the process of information dissemination, initial offering and advanced offering together constitute a dynamic mechanism for resource investment. Initial offering sets a basic participation threshold for each round, ensuring that every participant contributes. Advanced offering, on the other hand, allows participants to further increase their investment based on the unfolding community cards and adjustments to their own strategies, thereby obtaining greater potential returns from the resource pool. These two operations not only drive the formation and growth of the round's resource pool but also promote the dissemination and application of carbon emission knowledge through resource investment and allocation. Through these operations, participants simulate the investment decision-making process in real-world carbon emission management at a virtual poker table, enhancing their understanding and practical ability regarding carbon emission knowledge.
[0127] Reference Figure 4 According to some embodiments of this application, step S301, in response to each virtual resource being subjected to an advanced provisioning operation to obtain the advanced participation resource for each advanced participation object, may include:
[0128] Step S401: For each initial participant, in response to the initial participant performing an advanced provisioning operation on the virtual resources it holds to obtain advanced participation resources, and the initial participant is identified as an advanced participant.
[0129] Step S402: For each initial participant, in response to the initial participant discarding the virtual cards they hold, it is determined that the initial participant abandons further participation in the current process round.
[0130] In step S401 of some embodiments, for each initial participating object, in response to the initial participating object performing an advanced provisioning operation on the virtual resources it holds to obtain advanced participating resources, the initial participating object is determined as an advanced participating object;
[0131] It should be noted that when an initial participant performs an advanced provision operation on their held virtual resources, this embodiment of the application records this behavior and treats the virtual resources held as advanced participation resources. This operation reflects the participant's further commitment and investment in the current round, and also demonstrates their confidence in their own strategy and hand. The injection of advanced participation resources not only increases the total amount of the round's resource pool, but also provides a foundation for subsequent resource allocation. In this way, participants have the opportunity to obtain greater returns in the round, while also promoting the in-depth application and dissemination of carbon emission knowledge.
[0132] Reference Figure 5 According to some embodiments of this application, step S401, for each initial participant, in response to the initial participant performing an advanced provisioning operation on its held virtual resources to obtain advanced participation resources, and determining the initial participant as an advanced participant, may include:
[0133] Step S501: For each initial participant, in response to the initial participant performing an advanced provisioning operation on the virtual resources it holds, an advanced participation resource is obtained, and the initial participant is determined as a candidate advanced participant;
[0134] Step S502: In response to the inconsistency of advancement participation resources among the candidate advancement objects, determine the advancement participation resource with the highest amount as the advancement participation benchmark.
[0135] Step S503: Based on the advanced participation criteria, select advanced participation targets from each candidate advanced target.
[0136] In some embodiments, step S501 involves, for each initial participating object, responding to the initial participating object performing an advanced provisioning operation on the virtual resources it holds to obtain advanced participating resources, and determining the initial participating object as a candidate advanced object;
[0137] It should be noted that for each initial participant, a progressive provisioning operation is performed in response to their virtual resources. The purpose of this step is to encourage participants to further increase their resource investment in the current round beyond their initial commitment. This progressive provisioning operation reflects the participants' confidence in the current situation and their pursuit of potentially greater returns. By performing this operation, participants not only increase the total amount of resources in the round's resource pool but also demonstrate their commitment to continuing to participate in the current round. At this point, these initial participants are marked as candidate progressive participants, awaiting further screening.
[0138] In step S502 of some embodiments, in response to the inconsistency of advancement participation resources among candidate advancement objects, the advancement participation resource with the highest amount is determined as the advancement participation benchmark.
[0139] It should be noted that, in response to the inconsistency in the advanced participation resources among the candidates, the highest amount of advanced participation resources was determined as the benchmark for advanced participation. This step introduces a competitive mechanism, selecting the most competitive participants by comparing the advanced participation resources of different candidates. Setting the advanced participation benchmark provides a clear standard for subsequent selection, ensuring the fairness and rationality of resource allocation. This benchmark not only reflects the participants' level of commitment to the current round but also, through the concentration of resources, provides stronger impetus for subsequent dissemination of carbon emission knowledge.
[0140] In some embodiments, step S503 involves selecting advanced participants from among the candidate advanced participants based on the advanced participation criteria.
[0141] It should be noted that, based on the advanced participation benchmark, the final advanced participants are selected from among the candidate advanced participants. This step ensures that only those participants who demonstrate the most active and confident resource input can remain in the current round. In this way, the process rounds not only simulate real-world market competition and resource allocation processes but also incentivize participants to more actively apply and disseminate carbon emission knowledge in subsequent steps. This selection mechanism raises the benefit threshold, helping to promote high-quality and high-input participation in subsequent rounds, thereby improving the efficiency and effectiveness of the entire information dissemination process.
[0142] Through steps S501 to S503 of this embodiment, an advanced operation and screening mechanism is provided, which not only increases the strategic and competitive nature of the rounds but also promotes the in-depth dissemination and application of carbon emission knowledge through the further investment and concentration of virtual resources. This mechanism provides a clear incentive for participants to invest in understanding carbon emission knowledge and also injects more momentum and vitality into the entire information dissemination process.
[0143] In some embodiments, step S402, in response to the initial participant performing a discard operation on the virtual cards it holds, determines that the initial participant abandons further participation in the current process round.
[0144] It should be noted that when an initial participant folds their virtual hand, this embodiment of the application will recognize this behavior and determine that the participant is abandoning further participation in the current round. Folding typically occurs when participants believe that continuing to invest virtual resources will not yield the expected returns, or when their assessment of the current situation is not optimistic. This mechanism provides participants with flexible options, allowing them to avoid unnecessary losses when resources are limited, and to focus their efforts on subsequent, more promising rounds.
[0145] It should be understood that steps S401 and S402 together constitute the key decision points in the information dissemination process, requiring participants to make a decision to continue investing or withdraw in each round based on their own situation and assessment of the situation. By combining advanced action provision with folding actions, the information dissemination process not only simulates the investment decision-making process in the real world but also enhances the competition and interaction among participants. This mechanism promotes the rational allocation of virtual resources, ensures the dynamism and fairness of the information dissemination process, and also provides diverse practical scenarios for the dissemination of carbon emission knowledge. In this way, participants can learn and apply carbon emission knowledge in practice, which helps improve their decision-making abilities and understanding of carbon emission management.
[0146] Step S301 of this application not only increases the total amount of the round resource pool, but also reflects the participants' further investment and commitment to the current round through the injection of advanced participation resources, thereby increasing their attention to and participation in carbon emission knowledge.
[0147] In step S302 of some embodiments, after each advanced participation resource is injected into the round resource pool, in response to the preset round termination condition being met, the round hand type of each advanced participant is determined based on the virtual hole card and virtual community card of each advanced participant.
[0148] It should be noted that after injecting advanced participation resources into the round resource pool, this embodiment of the application waits for the preset round termination conditions to be met. Once the conditions are met, this embodiment of the application determines the round hand type based on each advanced participant's virtual hole cards and virtual community cards. This step not only involves increasing the capacity of the round resource pool, but also integrates the carbon emission knowledge carried by the virtual hole cards and virtual community cards through the determination of the round hand type. Each participant's round hand type actually represents their understanding and application ability of carbon emission knowledge in a specific industry segment.
[0149] In step S303 of some embodiments, for each advanced participant, a candidate carbon emission knowledge chain is formed based on the carbon emission knowledge recorded by each virtual card in the corresponding round card type.
[0150] It should be noted that, for each advanced participant, this embodiment of the application forms a candidate carbon emission knowledge chain based on the carbon emission knowledge recorded in each virtual card in their turn's hand. This step integrates fragmented carbon emission knowledge into a coherent knowledge system, enabling participants to grasp the carbon emission knowledge in the supply chain as a whole.
[0151] It is important to clarify that the carbon emission knowledge chain is a concept that integrates and connects knowledge related to carbon emissions. It organically combines carbon emission knowledge from different industrial sectors to form a complete knowledge system. This helps participants to comprehensively understand the sources, impacts, and reduction measures of carbon emissions, rather than viewing each sector in isolation.
[0152] In step S303, this embodiment of the application forms a candidate carbon emission knowledge chain based on the turn hand pattern of each participant (i.e., the virtual bottom cards in the participant's hand and the already determined virtual community cards). Each virtual card represents carbon emission knowledge of a specific industry segment, such as the carbon emission amount, emission reduction technology, and management measures of that industry segment. When these cards are combined, they constitute a complete knowledge chain about the carbon emissions of a specific industry supply chain.
[0153] For example, suppose that in an industry related to the food supply chain, a participant's turn card includes virtual cards representing links such as "agricultural production," "food processing," "transportation and logistics," and "retail sales." Then, the candidate carbon emission knowledge chain of this participant would cover carbon emission knowledge throughout the entire process from agricultural product cultivation to consumer purchase.
[0154] It should be understood that forming such a carbon emissions knowledge chain is crucial for understanding and managing carbon emissions. It not only helps participants identify the main sources of carbon emissions in the supply chain but also enables them to assess the potential impact of different emission reduction measures throughout the supply chain. This information dissemination mechanism helps participants understand which carbon reduction strategies are effective, thus achieving a better carbon emissions knowledge transfer effect. In this way, participants can not only understand the carbon emissions of individual links but also the interrelationships between these links and their impact on the entire supply chain.
[0155] In some embodiments, step S304 involves allocating the round resource pool based on the candidate carbon emission knowledge chain of each advanced participant.
[0156] It's important to note that allocating the round resource pool based on each participant's candidate carbon emission knowledge chain is designed to directly link resource allocation with knowledge mastery. This incentivizes participants to learn and apply carbon emission knowledge more deeply, while ensuring the rationality and fairness of resource allocation. Specifically, this allocation method effectively motivates participants to actively learn and build more complete and accurate carbon emission knowledge chains. During rounds, participants actively explore and combine different virtual cards to obtain greater resource rewards, thus forming better carbon emission knowledge chains. This mechanism not only increases participants' interest in carbon emission knowledge but also encourages them to deepen their understanding of the connections between different industry segments, thereby improving their knowledge level and application capabilities.
[0157] Based on this resource allocation mechanism, virtual resources in the round resource pool will flow to participants who have a deeper understanding and better grasp of carbon emission knowledge, further enhancing the effect of knowledge dissemination. For example, a participant who can accurately identify high-carbon emission links and propose effective emission reduction measures will receive more resource rewards due to the high quality of their carbon emission knowledge chain, which in turn will incentivize other participants to strive to improve their understanding of carbon emission knowledge.
[0158] Reference Figure 6 According to some embodiments of this application, step S304, which allocates the round resource pool based on the candidate carbon emission knowledge chain of each advanced participant, may include:
[0159] Step S601: Based on the preset integrity detection benchmark, select the first target knowledge chain from each candidate carbon emission knowledge chain;
[0160] Step S602: Allocate the round resource pool to the advanced participants corresponding to the first target knowledge chain.
[0161] In some embodiments, step S601 involves selecting a first target knowledge chain from each candidate carbon emission knowledge chain based on a preset integrity detection benchmark.
[0162] It should be noted that, based on a preset integrity testing benchmark, a first target knowledge chain is selected from various candidate carbon emission knowledge chains. The integrity testing benchmark is a crucial standard used to evaluate the completeness and quality of each candidate carbon emission knowledge chain. This benchmark can include multiple dimensions, such as whether the knowledge chain covers key links in the supply chain, whether it contains sufficient detail and depth, and whether it accurately reflects the actual situation of carbon emissions. In this way, the embodiments of this application can identify those candidate carbon emission knowledge chains that are most complete and accurate in content and structure. This step ensures the fairness of resource allocation, because only those participants who truly possess comprehensive carbon emission knowledge can receive allocations from the round resource pool.
[0163] In some embodiments, step S602 involves allocating the round resource pool to the advanced participant object corresponding to the first target knowledge chain.
[0164] It's important to note that the round resource pool is allocated to the advanced participants corresponding to the first target knowledge chain. This step, by distributing the resource pool to the holders of the best selected candidate carbon emission knowledge chains, not only rewards those participants who excel in building complete carbon emission knowledge chains but also incentivizes other participants to strive to improve the quality of their knowledge chains in subsequent rounds. This allocation mechanism not only improves the efficiency of resource allocation but also promotes in-depth learning and application of carbon emission knowledge among participants through clear incentives.
[0165] Furthermore, this allocation method simulates real-world carbon emission management scenarios. In actual supply chain management, companies with a deeper understanding of carbon emissions are often able to gain more economic benefits by optimizing emission reduction strategies. By introducing a similar resource allocation logic into the information dissemination mechanism, participants can experience these real-world decision-making processes in the virtual information dissemination arena, thereby helping to enhance their practical skills and decision-making abilities.
[0166] Reference Figure 7 According to some embodiments of this application, each carbon emission knowledge is configured with corresponding emission reduction points in the carbon emission knowledge deck. Step S602, which allocates the round resource pool to the advanced participants corresponding to the first target knowledge chain, may include:
[0167] Step S701: In response to the existence of at least two first target knowledge chains, calculate the emission reduction integral for each first target knowledge chain to obtain the knowledge chain emission reduction integral for each first target knowledge chain.
[0168] Step S702: The first target knowledge chain with the highest emission reduction score is determined as the second target knowledge chain;
[0169] Step S703: Allocate the round resource pool to the advanced participants corresponding to the second objective knowledge chain.
[0170] The design of assigning corresponding emission reduction points to each piece of carbon emission knowledge within the carbon emission knowledge deck is a crucial mechanism in the overall carbon emission knowledge dissemination methodology. It quantifies abstract carbon emission knowledge, transforming it into concrete numerical values, thus providing participants with a clear evaluation standard and incentive mechanism. Each piece of carbon emission knowledge is assigned an emission reduction point, reflecting its potential value and importance in practical carbon emission management. For example, emission reduction technologies in key areas or highly effective management measures may be assigned higher emission reduction points. This provides participants with a quantitative evaluation standard, helping them quickly identify and understand the importance of different carbon emission knowledge points, thereby enabling them to purposefully select high-value knowledge points when constructing the carbon emission knowledge chain.
[0171] In some embodiments, step S701, in response to the existence of at least two first target knowledge chains, calculates the emission reduction integral for each first target knowledge chain to obtain the knowledge chain emission reduction integral for each first target knowledge chain.
[0172] It should be noted that, in cases where at least two primary objective knowledge chains exist, emission reduction credits are calculated for each primary objective knowledge chain. This step quantitatively assesses the potential value of each knowledge chain in carbon emission management. The calculation of emission reduction credits is based on the carbon emission credits of the carbon emission knowledge involved in the primary objective knowledge chain, reflecting the depth, breadth, and practical application value of the carbon emission knowledge contained in the primary objective knowledge chain. This provides an objective quantitative standard for subsequent selection. This quantitative assessment not only improves the transparency of the selection process but also incentivizes participants to focus on the practicality and completeness of knowledge when constructing their knowledge chains.
[0173] In step S702 of some embodiments, the first target knowledge chain with the highest emission reduction score is determined as the second target knowledge chain;
[0174] It should be noted that the first target knowledge chain, with the highest emission reduction points, is designated as the second target knowledge chain. This step, by comparing the emission reduction points of different knowledge chains, selects the most valuable one. Emission reduction points, as a metric, not only reflect the potential contribution of knowledge chains to carbon emission management but also incentivize participants to continuously improve their knowledge and strategy application capabilities through a competitive mechanism. This step ensures the rationality of resource allocation, as only those participants who perform best in emission reduction points receive allocations from the round's resource pool.
[0175] In some embodiments, step S703 involves allocating the round resource pool to the advanced participant object corresponding to the second target knowledge chain.
[0176] It should be noted that the round resource pool is allocated to advanced participants corresponding to the second objective knowledge chain. This step achieves the ultimate goal of resource allocation: rewarding those participants who demonstrate the most outstanding performance in building and applying the carbon emissions knowledge chain. In this way, the information dissemination process not only ensures the fairness and rationality of resource allocation but also promotes a deeper understanding of carbon emissions knowledge among participants through clear incentives.
[0177] The embodiments of this application shown via steps S701 to S703, in the presence of at least two first target knowledge chains, not only improve the fairness and rationality of resource allocation by introducing a mechanism for calculating and comparing emission reduction credits, but also help to further incentivize participants to build higher-quality carbon emission knowledge chains, thereby gaining a deeper understanding of various carbon emission knowledge.
[0178] Through steps S601 to S602 of this embodiment, the integrity detection and resource allocation mechanism ensures the rationality and fairness of resource allocation, while incentivizing participants to build a more complete and accurate carbon emission knowledge chain. This mechanism not only improves the efficiency of the entire information dissemination process but also enhances the content transformation effect of the information dissemination process by simulating real-world carbon emission management scenarios.
[0179] In step S206 of some embodiments, when the virtual resources held by each participating object meet the preset process termination conditions, the information propagation process is terminated.
[0180] It should be noted that the information dissemination process terminates when the virtual resources held by each participant meet the preset termination conditions. This termination condition ensures the orderly progress of the dissemination process and also provides a clear objective for the participants. Reaching this condition signifies that the information dissemination process has achieved its goal, namely, encouraging all participants to fully engage in the entire information dissemination process.
[0181] According to the embodiments shown in steps S201 to S206 of this application, the entire information dissemination process, through these steps, effectively transfers carbon emission knowledge and, through the management and allocation of virtual resources, helps to deepen the participants' understanding of carbon emission knowledge. This approach makes the dissemination of carbon emission knowledge more effective.
[0182] Reference Figure 8 According to some embodiments of this application, before step S205 updates the virtual resources held by each participating object, the following may also be included:
[0183] Step S801: In response to the fact that the virtual resources held by a participating object meet the preset resource depletion condition, the corresponding participating object is identified as a marginal participating object.
[0184] Step S802: In response to the edge participating object performing a card addition operation, multiple addition cards are obtained; wherein, the multiple addition cards record carbon emission knowledge of continuous industrial links under at least one industry category;
[0185] Step S803: Update the carbon emission knowledge deck based on multiple added cards, and supplement virtual resources for the participants who performed the card addition operation.
[0186] In step S801 of some embodiments, in response to the fact that the virtual resources held by a participating object meet a preset resource exhaustion condition, the corresponding participating object is determined as an edge participating object;
[0187] It should be noted that step S801 is used to identify participants whose virtual resources meet preset resource depletion conditions and to define these participants as marginal participants. The purpose of this step is to promptly identify participants who may be unable to continue participating in the information dissemination process due to insufficient resources. Resource depletion conditions may include holding virtual resources below a certain threshold or failing to obtain sufficient resource replenishment in multiple consecutive rounds. By identifying these marginal participants, the information dissemination process can take measures to help them regain competitiveness, ensuring the fairness and continuity of the information dissemination process.
[0188] In some embodiments, step S802 is performed in response to the edge participating object performing a card adding operation to obtain multiple adding cards; wherein, the multiple adding cards record carbon emission knowledge of continuous industrial links under at least one industry category;
[0189] It should be noted that step S802 allows peripheral participants to perform card-adding operations to obtain multiple add-on cards. These add-on cards record carbon emission knowledge of continuous industrial links under at least one industry category. This step provides peripheral participants with opportunities to acquire new knowledge and also provides them with strategic options to continue participating in the information dissemination process. The design of the add-on cards allows participants to enhance their competitiveness by learning new carbon emission knowledge, while also increasing the uncertainty and interest of the information dissemination process.
[0190] In some embodiments, step S803 updates the carbon emission knowledge deck based on multiple added cards and supplements virtual resources for the participants performing the card addition operation.
[0191] It should be noted that step S803 updates the carbon emission knowledge deck based on adding multiple cards and supplements virtual resources for participants who performed the card-adding operation. This step not only expands the carbon emission knowledge in the information dissemination process but also helps marginal participants regain some competitiveness through resource supplementation. Updating the carbon emission knowledge deck means that the knowledge content in the information dissemination process is enriched and updated, providing more learning opportunities for all participants. At the same time, supplementing virtual resources for marginal participants enables them to continue participating in subsequent rounds, maintaining the activity and participation in the information dissemination process.
[0192] The embodiments of this application shown in steps S801 to S803, by identifying and assisting marginal participants, not only improve the fairness and continuity of the information dissemination process, but also enhance the richness of carbon emission knowledge involved in the information dissemination process through card addition operations and knowledge updates. This mechanism enables participants to reverse the situation by supplementing new carbon emission knowledge when resources are insufficient, further improving the content transformation effect of the information dissemination process.
[0193] Reference Figure 9 According to some embodiments of this application, after step S801, in response to a participating object holding virtual resources satisfying a preset resource exhaustion condition, determines the corresponding participating object as a marginal participating object, the process may further include:
[0194] Step S901: In response to the edge participating object performing the emission reduction scheme writing operation, several emission reduction schemes are obtained;
[0195] Step S902: Based on several emission reduction schemes, supplement virtual resources for the participants in the emission reduction scheme writing operation.
[0196] In some embodiments, step S901 involves responding to the edge participating object performing an emission reduction scheme writing operation to obtain several emission reduction schemes;
[0197] It should be noted that, in response to the edge participants performing the emission reduction scheme writing operation, several emission reduction schemes are obtained. When a participant is identified as an edge participant due to the depletion of virtual resources, this embodiment of the application provides them with an opportunity to write an emission reduction scheme. The purpose of this step is to encourage participants to think about and propose practically feasible carbon emission reduction measures.
[0198] In some more specific embodiments, emission reduction schemes can cover different industry categories and stages. For example, participants can write schemes on optimizing agricultural irrigation, improving building energy-saving design, or enhancing garment production efficiency. In this way, peripheral participants not only have the opportunity to regain resources in the information dissemination process, but also deepen their understanding and application capabilities of carbon emission management.
[0199] In step S902 of some embodiments, virtual resources are supplemented for the participants performing the emission reduction scheme writing operation based on several emission reduction schemes.
[0200] It should be noted that, based on the several emission reduction schemes obtained, virtual resources are provided to the participants who perform the writing process. This embodiment of the application evaluates the emission reduction schemes written by the participants and awards corresponding virtual resources based on factors such as the quality, innovativeness, and feasibility of the schemes. This reward mechanism not only incentivizes participants to propose high-quality emission reduction schemes but also encourages them to conduct in-depth research and learning about carbon emissions during the writing process. The supplementary virtual resources can help marginal participants regain some competitiveness, enabling them to continue participating in the information dissemination process without prematurely exiting due to resource depletion.
[0201] Furthermore, this mechanism brings additional value to the entire information dissemination process. The drafted emission reduction plans can be shared and showcased for other players to learn from and reference. This promotes knowledge exchange and dissemination, creating a positive information dissemination environment. Other participants can draw inspiration from these plans and apply them to their own strategies, thereby improving the content conversion effect of the entire information dissemination process.
[0202] It should be understood that steps S901 and S902 encourage marginal participants to develop emission reduction plans and supplement virtual resources accordingly. This mechanism enables participants to reverse the situation through proactive learning and innovation when resources are insufficient, helps them further understand carbon emission knowledge, and improves the effectiveness of content transformation of carbon emission knowledge.
[0203] Reference Figure 10 , Figure 10 This illustration shows the hardware structure of an electronic device according to another embodiment. The electronic device may include:
[0204] The processor 1001 can be implemented using a general-purpose CPU (Central Processing Unit), microprocessor, application-specific integrated circuit (ASIC), or one or more integrated circuits, and is used to execute relevant programs to implement the technical solutions provided in the embodiments of this application.
[0205] The memory 1002 can be implemented as a read-only memory (ROM), a static storage device, a dynamic storage device, or a random access memory (RAM). The memory 1002 can store the operating system and other applications. When the technical solutions provided in the embodiments of this specification are implemented through software or firmware, the relevant program code is stored in the memory 1002 and is called and executed by the processor 1001 using the carbon emission knowledge dissemination method of the embodiments of this application.
[0206] Input / output interface 1003 is used to implement information input and output;
[0207] The communication interface 1004 is used to enable communication and interaction between this device and other devices. Communication can be achieved through wired means (such as USB, network cable, etc.) or wireless means (such as mobile network, WIFI, Bluetooth, etc.).
[0208] Bus 1005 transmits information between various components of the device (e.g., processor 1001, memory 1002, input / output interface 1003, and communication interface 1004);
[0209] The processor 1001, memory 1002, input / output interface 1003 and communication interface 1004 are connected to each other within the device via bus 1005.
[0210] This application also provides a computer program product, which includes a computer program. A processor of a computer device reads and executes the computer program, causing the computer device to perform the aforementioned carbon emission knowledge dissemination method.
[0211] The terms “first,” “second,” “third,” “fourth,” etc. (if present) in this disclosure and the foregoing drawings are used to distinguish similar objects and are not necessarily used to describe a particular order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this disclosure described herein can be implemented, for example, in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “including,” and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that includes a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatuses.
[0212] It should be understood that in this disclosure, "at least one item" means one or more, and "more than one" means two or more. "And / or" is used to describe the relationship between related objects, indicating that three relationships can exist. For example, "A and / or B" can represent three cases: only A exists, only B exists, and both A and B exist simultaneously, where A and B can be singular or plural. The character " / " generally indicates that the preceding and following related objects are in an "or" relationship. "At least one of the following" or similar expressions refer to any combination of these items, including any combination of single or plural items. For example, at least one of a, b, or c can represent: a, b, c, "a and b", "a and c", "b and c", or "a and b and c", where a, b, and c can be single or multiple.
[0213] It should be understood that in the description of the embodiments of this application, "multiple" means two or more, "greater than", "less than", "exceeding" etc. are understood to exclude the number itself, and "above", "below", "within" etc. are understood to include the number itself.
[0214] In the several embodiments provided in this disclosure, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces, indirect coupling or communication connection between apparatuses or units, and may be electrical, mechanical, or other forms.
[0215] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0216] Furthermore, the functional units in the various embodiments of this disclosure can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.
[0217] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this disclosure, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods of the various embodiments of this disclosure. The aforementioned storage medium may include: a USB flash drive, a portable hard drive, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk, and other media capable of storing program code.
[0218] It should also be understood that the various implementation methods provided in this application can be combined arbitrarily to achieve different technical effects.
[0219] The above is a detailed description of the embodiments of this disclosure. However, this disclosure is not limited to the above embodiments. Those skilled in the art can make various equivalent modifications or substitutions without departing from the spirit of this disclosure. All such equivalent modifications or substitutions are included within the scope defined by the claims of this disclosure.
Claims
1. A method for disseminating knowledge about carbon emissions, characterized in that, include: Identify the participants and obtain the virtual resources held by each participant; A virtual card table is constructed as an information dissemination field, and a carbon emission knowledge deck containing multiple virtual cards is obtained; wherein, each of the virtual cards records carbon emission knowledge of one industrial segment under an industry category; Each participant and the virtual resources held by the participant are added to the virtual card table, and an information dissemination process including several rounds is loaded according to the carbon emission knowledge card set and the virtual card table, so as to disseminate the carbon emission knowledge to each participant in the information dissemination field through the rounds. Each round of the information propagation process includes: A virtual card is assigned to each participant from the carbon emission knowledge deck; After the virtual cards are allocated, in response to the initial provisioning operation of each virtual resource, an initial participation resource is obtained for each initial participant; wherein, the initial participant is the participant that provides the initial participation resource; A round resource pool is formed based on the initial participation resources of each participating object; After obtaining the round resource pool, draw virtual common cards from the remaining virtual cards in the carbon emission knowledge deck; After the virtual public cards are drawn, in response to the advanced provisioning operation of each virtual resource, advanced participation resources are obtained for each advanced participant, and each advanced participation resource is injected into the round resource pool; wherein, the advanced participant is the participant that provides the advanced participation resources; After each advanced participation resource is injected into the round resource pool, in response to the preset round termination condition being met, the round hand type of each advanced participation object is determined according to the virtual hole card and the virtual common card of each advanced participation object. For each advanced participant, a candidate carbon emission knowledge chain is formed based on the carbon emission knowledge recorded in each virtual card in the corresponding round card type; Based on the candidate carbon emission knowledge chain of each advanced participant, the round resource pool is allocated to update the virtual resources held by each participant and to start the next process round of the information dissemination process. When the virtual resources held by each of the participating objects meet the preset process termination conditions, the information propagation process is terminated.
2. The method according to claim 1, characterized in that, The step of obtaining the advanced participation resource for each of the advanced participation objects in response to the advanced provisioning operation performed on each of the virtual resources includes: For each of the initial participating objects, in response to the initial participating object performing an advanced provisioning operation on the virtual resources it holds to obtain the advanced participating resources, the initial participating object is determined as the advanced participating object; For each of the initial participants, in response to the initial participant folding the virtual cards it holds, it is determined that the initial participant abandons further participation in the current process round.
3. The method according to claim 2, characterized in that, The step of, for each of the initial participating objects, responding to the initial participating object performing an advanced provisioning operation on the virtual resources it holds to obtain the advanced participating resources, and determining the initial participating object as the advanced participating object, includes: For each of the initial participating objects, in response to the initial participating object performing an advanced provisioning operation on the virtual resources it holds, the advanced participating resources are obtained, and the initial participating object is determined as a candidate advanced object; In response to the inconsistency of advancement participation resources among the candidate advancement objects, the advancement participation resource with the highest amount is determined as the advancement participation benchmark; Based on the aforementioned advanced participation criteria, advanced participation objects are selected from each of the candidate advanced objects.
4. The method according to claim 1, characterized in that, The allocation of the round resource pool based on the candidate carbon emission knowledge chain of each advanced participant includes: Based on a preset integrity detection benchmark, the first target knowledge chain is selected from each of the candidate carbon emission knowledge chains. The round resource pool is allocated to the advanced participant corresponding to the first target knowledge chain.
5. The method according to claim 4, characterized in that, In the carbon emission knowledge deck, each piece of carbon emission knowledge is assigned a corresponding emission reduction point. Allocating the round resource pool to the advanced participants corresponding to the first target knowledge chain includes: In response to the existence of at least two first target knowledge chains, the emission reduction integral of each first target knowledge chain is calculated to obtain the knowledge chain emission reduction integral of each first target knowledge chain. The first target knowledge chain with the highest emission reduction score is determined as the second target knowledge chain; The round resource pool is allocated to the advanced participants corresponding to the second target knowledge chain.
6. The method according to claim 1, characterized in that, Before updating the virtual resources held by each of the participating objects, the method further includes: In response to the fact that the virtual resources held by the participating object meet a preset resource depletion condition, the corresponding participating object is identified as a marginal participating object; In response to the edge participant performing a card-adding operation, multiple cards are obtained; wherein, the multiple cards record carbon emission knowledge of continuous industrial links under at least one industry category; The carbon emission knowledge deck is updated based on multiple added cards, and the virtual resources are supplemented for the participants who perform the card addition operation.
7. An electronic device, characterized in that, include: The device includes a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the carbon emission knowledge dissemination method as described in any one of claims 1 to 6.
8. A computer-readable storage medium, characterized in that, The storage medium stores a program that is executed by a processor to implement the carbon emission knowledge dissemination method as described in any one of claims 1 to 6.
Citation Information
Patent Citations
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