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Ivan on Containers, Kubernetes, and Server-Side

A grounded take on agentic coding for production environments Server-Side Playgrounds Reimagined: Build, Boot, and Network Your Own Virtual Labs [not a] Kubernetes 101 - Pods, Deployments, and Services As an Attempt To Automate Age-Old Infra Patterns JavaScript or TypeScript? How To Benefit From the Dichotomy On Software Design... and Good Writing Building a Firecracker-Powered Course Platform To Learn Docker and Kubernetes How To Publish a Port of a Running Container What Actually Happens When You Publish a Container Port A Visual Guide to SSH Tunnels: Local and Remote Port Forwarding Debugging Containers Like a Pro Docker: How To Debug Distroless And Slim Containers How To Extract Container Image Filesystem Using Docker | iximiuz Labs In Pursuit of Better Container Images: Alpine, Distroless, Apko, Chisel, DockerSlim, oh my! How To Start Programming In Go: Advice For Fellow DevOps Engineers Kubernetes Ephemeral Containers and kubectl debug Command How To Develop Kubernetes CLIs Like a Pro Docker Container Commands Explained: Understand, Don't Memorize | iximiuz Labs Learning Docker with Docker - Toying With DinD For Fun And Profit How To Extend Kubernetes API - Kubernetes vs. Django The Influence of Plumbing on Programming How To Call Kubernetes API from Go - Types and Common Machinery How To Call Kubernetes API using Simple HTTP Client Kubernetes API Basics - Resources, Kinds, and Objects OpenFaaS - Run Containerized Functions On Your Own Terms Learning Containers From The Bottom Up Docker Containers vs. Kubernetes Pods - Taking a Deeper Look | iximiuz Labs Learn-by-Doing Platforms for Dev, DevOps, and SRE Folks How HTTP Keep-Alive can cause TCP race condition How to Work with Container Images Using ctr | iximiuz Labs Multiple Containers, Same Port, no Reverse Proxy...
From LAN to VXLAN: Networking Basics for Non-Network Engi...
Ivan Velichko · 2021-03-21 · via Ivan on Containers, Kubernetes, and Server-Side

VXLAN - another network virtualization technology, somewhat similar to VLAN but much more powerful.

To some extent, VLAN can be considered as an overlay network. I.e. VLAN allows one to create multiple virtual segments on top of an existing network segment. However, there are some significant limitations. VLAN assumes that there is already a broadcast domain underneath, so it'll split it into multiple sub-domains by tagging frames. Additionally, there cannot be more than 4096 VLANs sharing the same underlying L2 segment. There is simply 12 spare bits to encode the VLAN ID field in the Ethernet frame format.

VXLAN technology also creates virtual broadcast domains out of an existing network. So, it's also sort of an overlay networking. However, it does so in a completely different fashion. Instead of relying on the underlying L2 segment capabilities, VXLAN requires that all participating nodes already have an L3 (i.e. IP) connectivity. On every VXLAN node, outgoing Ethernet frames are captured, then wrapped into UDP datagrams (encapsulated), and sent over an L3 network to the destination VXLAN node. On arrival, Ethernet frames are extracted from UDP packets (decapsulated) and injected into the destination's network interface. This technique is called tunneling. As a result, VXLAN nodes create a virtual L2 segment, hence an L2 broadcast domain.

VXLAN frame encapsulated in UDP packet

Of course, nothing prevents us from putting all the VXLAN nodes in a single L3/L2 segment. So, then VXLAN would be just a way to overcome the limitation of VLAN on the number of networks per segment. However, usually, VXLAN is used over multiple interconnected L3 segments.

VXLAN example

🤯  Most of the real-world VXLANs probably reside in one or few tightly connected data centers. However, since VXLAN requires only IP to IP connectivity of the participating nodes, it essentially allows one to turn arbitrary internetwork nodes into a virtualized L2 segment. While impractical, such a virtual L2 segment can be spanning multiple WANs or even a part of the Internet. This is rather mind-blowing.

🤯  From some perspective, VXLAN can be even seen as inverse to VLAN. VLAN splits a single L2 segment (and broadcast domain) into multiple non-intersecting segments that can be used to set up multiple L3 segments. VXLAN, on the contrary, can combine multiple L3 segments back into one virtual L2 segment. This is also rather mind-blowing.