Files
CloudRouterAdvanced/README.md
T
ayurishchevandClaude Sonnet 5 8886c1baad Fix real-deployment blockers and scope down to router-only VMs
Confirmed working against a real VK Cloud PROD deployment (3 routers,
19 resources, apply succeeded end to end). Fixes found along the way:

- provider "vkcs" was never configured (versions.tf) - username/password/
  project_id/region were declared but wired to nothing; added auth_url and
  user_domain_name to complete it.
- Nova keypairs are per-user, not per-project - added an optional
  vkcs_compute_keypair resource (var.ssh_public_key) so Terraform can
  register a keypair under the deploying service account itself.
- router_priv_port used a hand-computed fixed_ip offset that collided with
  VKCS's own auto-created service ports on each network (observed: a
  "network:dns" port) - now left unset so Neutron's IPAM auto-assigns,
  which is collision-free by construction.
- vkcs_compute_instance set image_id at the top level while also booting
  from a volume via block_device - the provider docs say not to do this;
  Nova echoes back a sentinel string for image_id on a volume-booted
  server, which Terraform read as drift on a ForceNew attribute and
  wanted to destroy+recreate every already-created instance on every
  subsequent plan.
- private_network_cidrs bumped from /29 to /28 - too tight once the
  platform's own reserved ports are accounted for.

Also removed the priv_srv_01/02/03 demo instances and the LAN network/
security group only they used - this deployment provisions router VMs
only, confirmed with the user.

Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_011hXR2ftXZZhJ4Y3XuSoR8r
2026-09-07 08:55:15 +03:00

10 KiB

Quick Start

This is a conceptual Demo Scenario that will help you to bring highly available and secured connectivity with dynamic routing between Cloud and On-Prem using regular Internet circuits.

Key idea of this scenario based on limitations coming from On-Prem side which has two Internet circuits (Main and Backup where Backup is the Radio Bridge)

See docs/QUICKSTART.md for a condensed step-by-step self-service deployment guide.

The materials from this repository will help you quickly build from the scratch the following network topology:

Target Topology

To prepare your admin workstation (desktop, laptop or maybe something else) follow these steps:

  1. Prepare your VK Cloud project (enable CLI and API access): URL
  2. Create and upload your SSH key into the cloud admin account: URL
  3. Install Terraform components depending on your OS: URL
  4. Install Ansible components depending on your OS: URL
  5. Install GIT components and copy this repo onto your admin workstation

Additional Steps:

  • Use you private SSH key within Terraform and Ansible
  • Use proper account credentials within Terraform

Under the Hood

Main part of this scenario related to the routers (a set of IaaS Virtual Machines (IaaS Routers) converted into traditional routers with advanced functionality)

Adaptive router VM count and interfaces

The number of IaaS Router VMs is controlled by the Terraform variable router_count (default 2, tested with 3-4). Each router VM's private interfaces are driven by private_network_cidrs - a list of CIDR prefixes the admin must supply explicitly (no default, no auto-carving): one entry = one shared private network = one private interface per router, in addition to the single public (WAN) interface that stays fixed at 1. So a router VM ends up with 1 + length(private_network_cidrs) network interfaces total.

Each entry in private_network_cidrs is one network shared by all routers - every router gets its own port inside every listed network, similar to how the repo's original single shared LAN network worked, just generalized to an arbitrary number of networks and routers. Each port's address is auto-assigned by Neutron's IPAM (no explicit ip_address) rather than hand-computed, since VKCS auto-creates its own service ports on each network (observed: a network:dns port) that can otherwise collide with a manually-picked address - IPAM guarantees no double-booking. There is no VRRP between router VMs in this design, a change from the previous 2-NIC/VRRP model. The prefixes must not overlap each other and should be sized /28 (not /29 - too tight once platform-reserved addresses are accounted for) - both checked by terraform/tests/.

This deployment provisions only the router VMs - the repo's earlier priv_srv_01/priv_srv_02/priv_srv_03 demo instances (and the shared LAN network/security group that only they used) have been removed as out of scope.

New Terraform variables: router_count, private_network_cidrs, router_availability_zones (see terraform/variables.tf). The post-install script is a Terraform template (terraform/scripts/network-init.sh.tpl) rendered per-router via templatefile(), matching each private interface to its expected subnet deterministically instead of guessing - it already handles any interface count, no hardcoded assumption of 2. terraform/versions.tf now pins the provider source (vk-cs/vkcs, ~> 0.17), which was previously undeclared.

Provider authentication

terraform/versions.tf now has a provider "vkcs" { ... } block wiring auth_url, username, password, project_id, region, user_domain_name (previously declared in variables.tf but never actually connected to anything). auth_url/user_domain_name/region have sane defaults for a regular account; username/password/project_id still have none, same as before.

terraform.tfvars stays a committed, anonymized template - real credentials (e.g. from an openrc.sh for a service account) go in a separate, gitignored *.auto.tfvars file instead, which Terraform loads automatically on top of terraform.tfvars. See terraform/prod.auto.tfvars.example for the field mapping from openrc.sh's OS_* variables. Never put real credentials in terraform.tfvars itself.

Default security group

Every VK Cloud project auto-creates a default security group with a UUID unique to that project. Rather than hardcoding one project's UUID, it's resolved dynamically via data.vkcs_networking_secgroup (matched by name = "default") and attached to every VM through local.default_security_group_id. default_security_group_id is a Terraform variable for the rare case that lookup doesn't fit a given project (non-standard name/SDN) - treat setting it explicitly (via terraform.tfvars or TF_VAR_default_security_group_id) as a last resort, not the normal path.

Horizontal scaling via environment variables

Terraform's variable precedence means a terraform.tfvars value always beats a TF_VAR_<name> environment variable, never the other way round - TF_VAR_* only takes effect for a variable terraform.tfvars leaves unset. This repo's terraform.tfvars currently pins real values for its actual deployment (router_count = 3, a specific private_network_cidrs), so TF_VAR_router_count/TF_VAR_private_network_cidrs have no effect while those stay set - to change scale, edit terraform.tfvars directly, or override on the command line with -var/-var-file (which does beat a tfvars file):

terraform apply -var="router_count=4" -var='private_network_cidrs=["10.90.0.0/28","10.90.0.16/28","10.90.0.32/28"]'

If you instead comment router_count/private_network_cidrs back out of terraform.tfvars (e.g. for a fresh, non-PROD deployment), TF_VAR_router_count/TF_VAR_private_network_cidrs (JSON-encoded list) start working again as described above.

Local delivery integrity tests

terraform/tests/ contains a local pytest suite that checks the delivery is internally consistent - required files present, terraform fmt clean, HCL parses, router_count/private_network_cidrs actually drive the resource/NIC count instead of being hardcoded, the example CIDRs in terraform.tfvars don't overlap and have room for router_count routers, and the post-install script template renders to valid bash. It also runs:

  • a real terraform init + terraform validate against the actual vkcs provider schema (at several router_count/private_network_cidrs values), against a project-local filesystem-mirror copy of the provider - no cloud API is ever contacted and no credentials are needed;
  • a real terraform plan against an isolated, provider-free copy of just variables.tf, to prove the validation { ... } blocks on router_count and private_network_cidrs (non-empty, valid CIDR syntax, uniqueness) are actually enforced - terraform validate alone does not enforce custom variable validations for externally-supplied values, only plan/apply do.
terraform/tests/setup-local-terraform.sh   # one-time: provisions venv/ with terraform + the vkcs provider
venv/bin/pytest terraform/tests -v

setup-local-terraform.sh builds everything inside the git-ignored venv/ directory:

  • the Python packages from terraform/tests/requirements.txt (pytest, python-hcl2, checkov);
  • the terraform CLI, downloaded (with SHA256SUMS verification) from a region-unrestricted HashiCorp releases mirror;
  • the vk-cs/vkcs provider binary, downloaded (with SHA256SUMS verification) directly from its GitHub releases - this bypasses registry.terraform.io, which blocks some regions outright, and is what makes a real terraform validate possible at all here;
  • a project-local CLI config (venv/terraform.d/cli-config.tfrc) that points terraform init at that local provider copy via a filesystem_mirror block, instead of the network registry.

Note: the diagrams below (ports.svg, topology.svg) and the Ansible layer (ansible/inventory.ini, roles base/frr_router/keepalived) still describe/assume the previous 2-router, 2-NIC, VRRP-based design and have not been updated for the new N-NIC/N-router topology yet - that's a separate follow-up.

IPv4 addressing plan for the project

Here is a card to assist with configuration planning. The card is filled out using the IP addressing from the Demo Scenario and the inventory.ini file, which will be used when running the Ansible playbook.

IPv4 Planning Card

Terraform

Provisions router_count IaaS Routers (default 2), each with 1 public and length(private_network_cidrs) private ports (2 in the shipped example). Includes supplimentary Shell script template (which is a part of Terraform manifest) to maintain configuration across reboots.

Ansible

Configure IaaS Routers using role-based playbooks controlled via the Inventory File

Additional Software Used:

  • strongSwan (to manage IPsec)
  • FRR (to manage BGP)
  • Keepalived (VRRP)

Private and Public Ports

Each IaaS Router will use two secured connections to On-Prem environment through the Internet:

  • IPsec Site-to-Site in Transport Mode (to protect GRE Tunnels)
  • GRE Tunnel (to transfer a data)

Secured Connections

GRE Tunnels topology clearly explained in the following diagram:

GRE Tunnels

High Availability Design

BGP peering eliminates single points of failure on the Cloud side through:

  • Bidirectional eBGP sessions from each IaaS Router to On-Premises
  • Optimized route metrics reflecting circuit priority (Primary/Backup)
  • Automatic failover during circuit failures (including Cloud Availability Zone failures)
  • Asymmetric routing prevention via MED and Local Preference configuration

BGP Peering