The invention is in the field of computer networks and more specifically to a method, system and apparatus of an orchestrating SDN/NFV/cloud solutions on public/private cloud infrastructure for development/validation/deployment.
Recent years have seen the disaggregation of network infrastructure and virtual network functions replacing physical network functions. Furthermore, lines between public and private cloud infrastructure are being blurred. According, methods to provide quick and easy ways for network operators to adopt solutions based on multi-vendor products (some of them cloud based) are desired to enable transformation of said networks.
In one aspect, a computerized method comprising: providing a SaaS-based Platform that provides a DevOPS enabled framework to implement an end to end orchestration of a complex multi-vendor network solution on cloud-computing infrastructure, wherein the SaaS-based platform comprises an orchestrator engine and a deployer module, and wherein the deployer module provides a means to do a one touch deployment of a set of virtual test-beds in a computer network and the cloud-computing infrastructure; installing and configuring a database and queue in each of a plurality of nodes of the computer network; installing and configuring a backend server in each of another plurality of nodes of the computer network; installing and configuring a frontend server in each the other plurality of nodes of the computer network; and installing a service load balancer and configuring each of the set of frontend servers as a backend server.
The present application can be best understood by reference to the following description taken in conjunction with the accompanying figures, in which like parts may be referred to by like numerals.
The Figures described above are a representative set, and are not an exhaustive with respect to embodying the invention.
Disclosed are a system, method, and article of manufacture of orchestrating SDN/NFV/cloud solutions on public/private cloud infrastructure for development/validation/deployment. The following description is presented to enable a person of ordinary skill in the art to make and use the various embodiments. Descriptions of specific devices, techniques, and applications are provided only as examples. Various modifications to the examples described herein can be readily apparent to those of ordinary skill in the art, and the general principles defined herein may be applied to other examples and applications without departing from the spirit and scope of the various embodiments.
Reference throughout this specification to “one embodiment,” “an embodiment,” “one example,” or similar language means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, appearances of the phrases “in one embodiment,” “in an embodiment,” and similar language throughout this specification may, but do not necessarily, all refer to the same embodiment.
Furthermore, the described features, structures, or characteristics of the invention may be combined in any suitable manner in one or more embodiments. In the following description, numerous specific details are provided, such as examples of programming, software modules, user selections, network transactions, database queries, database structures, hardware modules, hardware circuits, hardware chips, etc., to provide a thorough understanding of embodiments of the invention. One skilled in the relevant art can recognize, however, that the invention may be practiced without one or more of the specific details, or with other methods, components, materials, and so forth. In other instances, well-known structures, materials, or operations are not shown or described in detail to avoid obscuring aspects of the invention.
The schematic flow chart diagrams included herein are generally set forth as logical flow chart diagrams. As such, the depicted order and labeled steps are indicative of one embodiment of the presented method. Other steps and methods may be conceived that are equivalent in function, logic, or effect to one or more steps, or portions thereof, of the illustrated method. Additionally, the format and symbols employed are provided to explain the logical steps of the method and are understood not to limit the scope of the method. Although various arrow types and line types may be employed in the flow chart diagrams, and they are understood not to limit the scope of the corresponding method. Indeed, some arrows or other connectors may be used to indicate only the logical flow of the method. For instance, an arrow may indicate a waiting or monitoring period of unspecified duration between enumerated steps of the depicted method. Additionally, the order in which a particular method occurs may or may not strictly adhere to the order of the corresponding steps shown.
Hypervisor is computer software, firmware or hardware that creates and runs virtual machines.
Input-output memory management unit (IOMMU) is a memory management unit (MMU) that connects a direct-memory-access-capable (DMA-capable) I/O bus to the main memory.
Internet Protocol (IP) address can be a computer's address under the Internet Protocol.
Network functions virtualization (NFV) is a network architecture concept that uses the technologies of IT virtualization to virtualize entire classes of network node functions into building blocks that may connect, or chain together, to create communication services.
Network Multi-Master Deployer (NMMD) includes the following components: Node Discovery Engine; Deployment Model Repository; Cluster Manager; Service Discovery Engine; and/or Central Manager.
Sandbox can be an online environment in which code or content changes can be tested without affecting the original system.
Software-defined networking (SDN) technology is an approach to cloud computing that facilitates network management and enables programmatically efficient network configuration in order to improve network performance and monitoring.
Single root input/output virtualization (SR-IOV) can be a specification that allows the isolation of the PCI Express resources for manageability and performance reasons. A single physical PCI Express can be shared on a virtual environment using the SR-IOV specification. The SR-IOV offers different virtual functions (e.g. a SR-IOV Virtual Function) to different virtual components (e.g. network adapter) on a physical server machine. The SR-IOV allows different virtual machines (VMs) in a virtual environment to share a single PCI Express hardware interface.
Software as a service (SaaS) is a software licensing and delivery model in which software is licensed on a subscription basis and is centrally hosted.
Top-of-rack (TOR) switch can be a network architecture design in which computing equipment like servers, appliances and other switches located within the same or adjacent rack are connected to an in-rack network switch.
Virtual machine (VM) can be an emulation of a computer system. Virtual machines are based on computer architectures and provide functionality of a physical computer. Their implementations may involve specialized hardware, software, or a combination.
Virtual LAN (VLAN) is any broadcast domain that is partitioned and isolated in a computer network at the data link layer.
Virtual Extensible LAN (VXLAN) is a network virtualization technology that attempts to address the scalability problems associated with large cloud computing deployments. It uses a VLAN-like encapsulation technique to encapsulate MAC-based OSI layer 2 Ethernet frames within layer 4 UDP packets.
YANG (Yet Another Next Generation) is a data modeling language for the definition of data sent over the NETCONF network configuration protocol.
Example Systems and Methods
A SaaS-based Platform is provided that enables operators to learn, develop, test, evaluate and/or deploy multi-vendor network and information technology (IT) solutions. The SaaS-based Platform provides a framework to model the solutions on public and/or private cloud infrastructures. The SaaS-based Platform provides a practical means to test the assumptions around deployment. The SaaS-based Platform utilizes advanced software defined networking and virtualization concepts as an integral part of the platform.
SaaS-based Platform 100 can suspend/resume features to save and recover deployed solutions. Accordingly, SaaS-based Platform 100 also provides a mechanism to test hardware acceleration capabilities on cloud infrastructure. SaaS-based Platform 100 provides a one touch deployment of solutions. SaaS-based Platform 100 provides a framework to extend the cloud-based test-beds into customer lab environments. SaaS-based Platform 100 can enable various secure deployments. In this way, SaaS-based Platform can enable various software defined networking, network function virtualization and cloud-based network solutions. Many of the functionalities can be implemented by orchestrator 110. Orchestrator 110 can be accessed via monitor interface/APIs 106. Orchestrator 110 can be a solution orchestrator.
Model generation 104 enables, for every topology in terms of a custom design of a solution, the generation of topology models (e.g. based on YANG). Monitor/heal 108 can implement active monitoring of the components of SaaS-based Platform 100. Monitor/heal 108 can provide a monitoring and healing capacity for a virtual network solution. Deployer 112 deploy the solution provided by orchestrator 110 to a public cloud 118, private cloud 114, etc. Deployer 112 can monitory network devices 116. Cloud-controllers 120 A-C can be any cloud controller used to manage public cloud 118, private cloud 114, etc.
If process 300 is implemented using a master and slave mode, the following steps can be implemented. A Master can send a message to Agent in Node 4 208 and Node 5 210 to deploy DB 228 and Queue 226. The Agent deploys and sends information regarding the state to Master. The Master then instructs the Agent in Node 2 204 and Node 3 206 to deploy a backend service 220. The Agent deploys and sends information of the same. The Master instructs the Agent in Node 1 202 to deploy service load balancer 212. The Agent deploys and informs the state to Master. If there is an issue during the previous steps, the Agent communicates to the Master and again the Master messages back.
An example method to provide instant application sandboxes without blocking resources in a cloud environment is now discussed. It is noted that Cloud Environments are generally used for two types of use-cases. In a first use case, Cloud Environments be used to run production workloads. In a second use case, Cloud Environments can be used to run virtual machines (VMs) for development and test environments (e.g. sandboxes). One issue faced by organizations when providing cloud infrastructure for such sandboxes is the associated processing costs as developers may have sandboxes continuously running. This can be due to the time costs of resetting a sandbox at a later time. As applications become more complex, the processing costs have also increase. Accordingly, as developers and testers keep the VMs continuously running, they increase the IT spending for the organization.
Additional Systems and Architecture
Although the present embodiments have been described with reference to specific example embodiments, various modifications and changes can be made to these embodiments without departing from the broader spirit and scope of the various embodiments. For example, the various devices, modules, etc. described herein can be enabled and operated using hardware circuitry, firmware, software or any combination of hardware, firmware, and software (e.g., embodied in a machine-readable medium).
In addition, it will be appreciated that the various operations, processes, and methods disclosed herein can be embodied in a machine-readable medium and/or a machine accessible medium compatible with a data processing system (e.g., a computer system), and can be performed in any order (e.g., including using means for achieving the various operations). Accordingly, the specification and drawings are to be regarded in an illustrative rather than a restrictive sense. In some embodiments, the machine-readable medium can be a non-transitory form of machine-readable medium.
This application claims priority from U.S. Provisional Application No. 62/572,661, title ORCHESTRATING SDN/NFV/CLOUD SOLUTIONS ON PUBLIC/PRIVATE CLOUD INFRASTRUCTURE FOR DEVELOPMENT/VALIDATION/DEPLOYMENT and filed 16 Oct. 2017. This application is hereby incorporated by reference in its entirety for all purposes.
| Number | Date | Country | |
|---|---|---|---|
| 62572661 | Oct 2017 | US |