Centralized Event Orchestrator Dynamic Endpoint Engine
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Solution Overview
Problem
Computer systems face challenges in ensuring the security and optimizing the operations while handling sensitive information, particularly in multicomputer processing environments where efficient and effective technical performance is crucial.
Innovation Solution
Implementing a centralized event orchestrator and a dynamic endpoint engine to process client device request data, enabling the creation of on-demand endpoints for recipients in cross-border and cross-currency payments, enhancing security and performance by orchestrating events and managing user-selectable options for delivery selections.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Reliability
If a centralized event orchestrator and dynamic endpoint engine are implemented to enhance security and performance, then information security and technical performance are improved, but device complexity increases
Solution Approach 1:
The system is divided into distinct functional modules: event orchestrator, dynamic endpoint engine, and multicomputer processing system. Each module handles specific tasks independently, allowing the complex security and processing functions to be distributed across multiple components rather than concentrated in a single monolithic system, thus managing complexity while maintaining security improvements
Solution Approach 2:
The event orchestrator acts as an intermediary component that coordinates between client devices, recipient devices, and the dynamic endpoint engine. This mediator layer manages the complexity of secure communications and endpoint management by providing a standardized interface, allowing the system to enhance security without proportionally increasing overall system complexity
2Adaptability or versatility
If dynamic endpoints are created on-demand for recipients, then adaptability and user control are improved, but device complexity and processing overhead increase
Solution Approach 1:
The system implements dynamic endpoint creation where endpoints are generated on-demand based on event requirements rather than being static pre-configured entities. The dynamic endpoint engine creates, manages, and destroys endpoints as needed for cross-border payments and events, allowing the system to adapt to varying requirements without maintaining a permanent complex infrastructure
Solution Approach 2:
The system performs preliminary actions by pre-establishing the dynamic endpoint engine and event orchestrator infrastructure before actual events occur. Endpoint templates and security protocols are prepared in advance, allowing rapid on-demand endpoint creation without ad-hoc complexity during event execution
3Productivity
If multicomputer processing is used to process client device request data, then productivity and processing efficiency are improved, but information security risks increase
Solution Approach 1:
The multicomputer processing system is segmented into isolated processing nodes that handle specific aspects of event data processing. Each computer in the multicomputer system processes discrete portions of client device request data according to the event definition, limiting the security exposure of any single node while maintaining collective processing efficiency
Solution Approach 2:
The event orchestrator serves as a secure intermediary that manages communications between the multicomputer processing system and external devices. It validates and coordinates data flow between multiple computers and client/recipient devices, ensuring information security protocols are maintained across the distributed processing architecture while enabling efficient parallel processing
Data Source
AI summary
Aspects of the disclosure relate to multicomputer processing of client device request data using a centralized event orchestrator and a dynamic endpoint engine. A computing platform may receive, from a client computing device, event definition information defining an event. Subsequently, the computing platform may receive, from a recipient computing device associated with the event, a request for a recipient-selection user interface, and may determine that a dynamic endpoint option is available for a user of the recipient computing device. Thereafter, the computing platform may send, to the recipient computing device, a delivery selection user interface that includes a user-selectable option that, when invoked, causes the computing platform to create a new endpoint. The computing platform may receive delivery selection information from the recipient computing device, and may generate and send one or more event orchestration commands directing an event processor to execute one or more actions associated with the event.


