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Alauda Container Platform
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Creating an On-Premise Cluster
etcd Encryption
Automated Rotate Kuberentes Certificates

How to

Add External Address for Built-in Registry
Choosing a Container Runtime
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Networking

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Architecture

Understanding Kube-OVN
Understanding ALB
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Comparison Among Different Ingress Method
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GatewayAPI
OTel

Guides

Creating Services
Creating Ingresses
Configure Gateway
Create Ingress-Nginx
Creating a Domain Name
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Creating External IP Address Pool
Creating BGP Peers
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How To

Deploy High Available VIP for ALB
Soft Data Center LB Solution (Alpha)
Preparing Kube-OVN Underlay Physical Network
Automatic Interconnection of Underlay and Overlay Subnets
Use OAuth Proxy with ALB
Creating GatewayAPI Gateway
Configure a Load Balancer
How to properly allocate CPU and memory resources
Forwarding IPv6 Traffic to IPv4 Addresses within the Cluster
Calico Network Supports WireGuard Encryption
Kube-OVN Overlay Network Supports IPsec Encryption
ALB Monitoring
Load Balancing Session Affinity Policy in Application Load Balancer (ALB)

Trouble Shooting

How to Solve Inter-node Communication Issues in ARM Environments?
Find Who Cause the Error

Machine Configuration

Overview
Managing Node Configuration with MachineConfig
Node Disruption Policies

Storage

Introduction

Concepts

Core Concepts
Persistent Volume
Access Modes and Volume Modes

Guides

Creating CephFS File Storage Type Storage Class
Creating CephRBD Block Storage Class
Create TopoLVM Local Storage Class
Creating an NFS Shared Storage Class
Deploy Volume Snapshot Component
Creating a PV
Creating PVCs
Using Volume Snapshots

How To

Setting the naming rules for subdirectories in the NFS Shared Storage Class
Generic ephemeral volumes
Using an emptyDir
Third‑Party Storage Capability Annotation Guide

Troubleshooting

Recover From PVC Expansion Failure

Storage

Ceph Distributed Storage

Introduction

Install

Create Standard Type Cluster
Create Stretch Type Cluster
Architecture

Concepts

Core Concepts

Guides

Accessing Storage Services
Managing Storage Pools
Node-specific Component Deployment
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How To

Configure a Dedicated Cluster for Distributed Storage
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Disaster Recovery

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Object Storagge Disaster Recovery
Update the optimization parameters
Create ceph object store user

MinIO Object Storage

Introduction
Install
Architecture

Concepts

Core Concepts

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Monitoring & Alerts

How To

Data Disaster Recovery

TopoLVM Local Storage

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Install

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Device Management
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How To

Backup and Restore TopoLVM Filesystem PVCs with Velero

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Alauda Container Security

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Compliance

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Installation

HowTo

Private Registry Access Configuration
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API Refiner

Introduction
Install

Users and Roles

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Install

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How To

Creating Windows Images Based on ISO using KubeVirt
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Configure Network

How To

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Using Snapshots

Developer

Overview

Quick Start

Creating a simple application via image

Building Applications

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Resource Unit Description

Namespaces

Creating Namespaces
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Creating Applications

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Application Rollout

Installing Alauda Container Platform Argo Rollouts
Application Blue Green Deployment
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KEDA(Kubernetes Event-driven Autoscaling)

KEDA Overview
Installing KEDA

How To

Integrating ACP Monitoring with Prometheus Plugin
Pausing Autoscaling in KEDA
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How To

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Registry

Introduction

Install

Install Via YAML
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How To

Common CLI Command Operations
Using Alauda Container Platform Registry in Kubernetes Clusters

Source to Image

Introduction

Install

Installing Alauda Container Platform Builds

Upgrading

Upgrading Alauda Container Platform Builds
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How To

Creating an application from Code

Node Isolation Strategy

Introduction
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Create Node Isolation Strategy
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GitOps

Introduction

Install

Installing Alauda Build of Argo CD
Installing Alauda Container Platform GitOps

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Argo CD Concept

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Alauda Container Platform GitOps Concepts

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Alauda Container Platform GitOps Sync and Health Status

Guides

Creating GitOps Application

Creating GitOps Application
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How To

Integrating Code Repositories via Argo CD dashboard
Creating an Argo CD Application via Argo CD dashboard
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How to Obtain Argo CD Access Information
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Extend

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Cluster Plugin

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Overview

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Introduction
Install

Architecture

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Monitoring Component Selection Guide
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How To

Backup and Restore of Prometheus Monitoring Data
VictoriaMetrics Backup and Recovery of Monitoring Data
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Introduction
Install
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Query Tracing
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How To

Non-Intrusive Integration of Tracing in Java Applications
Business Log Associated with the TraceID

Troubleshooting

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Install

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How To

How to Archive Logs to Third-Party Storage
How to Interface with External ES Storage Clusters

Events

Introduction
Events

Inspection

Introduction
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Guides

Inspection
Component Health Status

Hardware accelerators

Overview

Introduction
Features
Install

Application Development

Introduction

Guides

CUDA Driver and Runtime Compatibility
Add Custom Devices Using ConfigMap

Troubleshooting

Troubleshooting float16 is only supported on GPUs with compute capability at least xx Error in vLLM
Paddle Autogrow Memory Allocation Crash on GPU-Manager

Configuration Management

Introduction

Guides

Configure Hardware accelerator on GPU nodes

Resource Monitoring

Introduction

Guides

GPU Resource Monitoring

Alauda Service Mesh

About Alauda Service Mesh

Alauda AI

About Alauda AI

Alauda DevOps

About Alauda DevOps

Alauda Cost Management

About Alauda Cost Management

Alauda Application Services

Overview

Introduction
Architecture
Install
Upgrade

Alauda Database Service for MySQL

About Alauda Database Service for MySQL-MGR
About Alauda Database Service for MySQL-PXC

Alauda Cache Service for Redis OSS

About Alauda Cache Service for Redis OSS

Alauda Streaming Service for Kafka

About Alauda Streaming Service for Kafka

Alauda Streaming Service for RabbitMQ

About Alauda Streaming Service for RabbitMQ

Alauda support for PostgreSQL

About Alauda support for PostgreSQL

Operations Management

Introduction

Parameter Template Management

Introduction

Guides

Parameter Template Management

Backup Management

Introduction

Guides

External S3 Storage
Backup Management

Inspection Management

Introduction

Guides

Create Inspection Task
Exec Inspection Task
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How To

How to set Inspection scheduling?

Inspection Optimization Recommendations

MySQL

MySQL IO Load Optimization
MySQL Memory Usage Optimization
MySQL Storage Space Optimization
MySQL Active Thread Count Optimization
MySQL Row Lock Optimization

Redis

Redis BigKey
High CPU Usage in Redis
High Memory Usage in Redis

Kafka

High CPU Utilization in Kafka
Kafka Rebalance Optimization
Kafka Memory Usage Optimization
Kafka Storage Space Optimization

RabbitMQ

RabbitMQ Mnesia Database Exception Handling

Alert Management

Introduction

Guides

Relationship with Platform Capabilities

Upgrade Management

Introduction

Guides

Instance Upgrade

API Reference

Overview

Introduction
Kubernetes API Usage Guide

Advanced APIs

Alert APIs

AlertHistories [v1]
AlertHistoryMessages [v1]
AlertStatus [v2]
SilenceStatus [v2]

Event APIs

Search

Log APIs

Aggregation
Archive
Context
Search

Monitoring APIs

Indicators [monitoring.alauda.io/v1beta1]
Metrics [monitoring.alauda.io/v1beta1]
Variables [monitoring.alauda.io/v1beta1]

Kubernetes APIs

Alert APIs

AlertTemplate [alerttemplates.aiops.alauda.io/v1beta1]
PrometheusRule [prometheusrules.monitoring.coreos.com/v1]

Inspection APIs

Inspection [inspections.ait.alauda.io/v1alpha1]

Notification APIs

Notification [notifications.ait.alauda.io/v1beta1]
NotificationGroup [notificationgroups.ait.alauda.io/v1beta1]
NotificationTemplate [notificationtemplates.ait.alauda.io/v1beta1]
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#Health Checks

#TOC

#Understanding Health Checks

Refer to the official Kubernetes documentation:

  • Liveness, Readiness, and Startup Probes
  • Configure Liveness, Readiness and Startup Probes

In Kubernetes, health checks, also known as probes, are a critical mechanism to ensure the high availability and resilience of your applications. Kubernetes uses these probes to determine the health and readiness of your Pods, allowing the system to take appropriate actions, such as restarting containers or routing traffic. Without proper health checks, Kubernetes cannot reliably manage your application's lifecycle, potentially leading to service degradation or outages.

Kubernetes offers three types of probes:

  • livenessProbe: Detects if the container is still running. If a liveness probe fails, Kubernetes will terminate the Pod and restart it according to its restart policy.
  • readinessProbe: Detects if the container is ready to serve traffic. If a readiness probe fails, the Endpoint Controller removes the Pod from the Service's Endpoint list until the probe succeeds.
  • startupProbe: Specifically checks if the application has successfully started. Liveness and readiness probes will not execute until the startup probe succeeds. This is very useful for applications with long startup times.

Properly configuring these probes is essential for building robust and self-healing applications on Kubernetes.

#Probe Types

Kubernetes supports three mechanisms for implementing probes:

#HTTP GET Action

Executes an HTTP GET request against the Pod's IP address on a specified port and path. The probe is considered successful if the response code is between 200 and 399.

  • Use Cases: Web servers, REST APIs, or any application exposing an HTTP endpoint.

  • Example:

    livenessProbe:
      httpGet:
        path: /healthz
        port: 8080
      initialDelaySeconds: 15
      periodSeconds: 20

#exec Action

Executes a specified command inside the container. The probe is successful if the command exits with status code 0.

  • Use Cases: Applications without HTTP endpoints, checking internal application state, or performing complex health checks that require specific tools.

  • Example:

    readinessProbe:
      exec:
        command:
          - cat
          - /tmp/healthy
      initialDelaySeconds: 5
      periodSeconds: 5

#TCP Socket Action

Attempts to open a TCP socket on the container's IP address and a specified port. The probe is successful if the TCP connection can be established.

  • Use Cases: Databases, message queues, or any application that communicates over a TCP port but might not have an HTTP endpoint.

  • Example:

    startupProbe:
      tcpSocket:
        port: 3306
      initialDelaySeconds: 5
      periodSeconds: 10
      failureThreshold: 30

#Best Practices

  • Liveness vs. Readiness:
    • Liveness: If your application is unresponsive, it's better to restart it. If it fails, Kubernetes will restart it.
    • Readiness: If your application is temporarily unable to serve traffic (e.g., connecting to a database), but might recover without a restart, use a Readiness Probe. This prevents traffic from being routed to an unhealthy instance.
  • Startup Probes for Slow Applications: Use Startup Probes for applications that take a significant amount of time to initialize. This prevents premature restarts due to Liveness Probe failures or traffic routing issues due to Readiness Probe failures during startup.
  • Lightweight Probes: Ensure your probe endpoints are lightweight and perform quickly. They should not involve heavy computation or external dependencies (like database calls) that could make the probe itself unreliable.
  • Meaningful Checks: Probe checks should genuinely reflect the health and readiness of your application, not just whether the process is running. For example, for a web server, check if it can serve a basic page, not just if the port is open.
  • Adjust initialDelaySeconds: Set initialDelaySeconds appropriately to give your application enough time to start before the first probe.
  • Tune periodSeconds and failureThreshold: Balance the need for quick detection of failures with avoiding false positives. Too frequent probes or too low a failureThreshold can lead to unnecessary restarts or unready states.
  • Logs for Debugging: Ensure your application logs clear messages related to health check endpoint calls and internal state to aid in debugging probe failures.
  • Combine Probes: Often, all three probes (Liveness, Readiness, Startup) are used together to manage application lifecycle effectively.

#YAML file example

spec:
  template:
    spec:
      containers:
        - name: nginx
          image: nginx:1.14.2 # Container image
          ports:
            - containerPort: 80 # Container exposed port
          startupProbe:
            httpGet:
              path: /startup-check
              port: 8080
            initialDelaySeconds: 0 # Usually 0 for startup probes, or very small
            periodSeconds: 5
            failureThreshold: 60 # Allows 60 * 5 = 300 seconds (5 minutes) for startup
          livenessProbe:
            httpGet:
              path: /healthz
              port: 8080
            initialDelaySeconds: 5 # Delay 5 seconds after Pod starts before checking
            periodSeconds: 10 # Check every 10 seconds
            timeoutSeconds: 5 # Timeout after 5 seconds
            failureThreshold: 3 # Consider unhealthy after 3 consecutive failures
          readinessProbe:
            httpGet:
              path: /ready
              port: 8080
            initialDelaySeconds: 5
            periodSeconds: 10
            timeoutSeconds: 5
            failureThreshold: 3

#Health Checks configuration parameters by using web console

#Common parameters

ParametersDescription
Initial DelayinitialDelaySeconds: Grace period (seconds) before starting probes. Default: 300.
PeriodperiodSeconds: Probe interval (1-120s). Default: 60.
TimeouttimeoutSeconds: Probe timeout duration (1-300s). Default: 30.
Success ThresholdsuccessThreshold: Minimum consecutive successes to mark healthy. Default: 0.
Failure ThresholdfailureThreshold: Maximum consecutive failures to trigger action:
- 0: Disables failure-based actions
- Default: 5 failures → container restart.

#Protocol specific parameters

ParameterApplicable ProtocolsDescription
ProtocolHTTP/HTTPSHealth check protocol
PortHTTP/HTTPS/TCPTarget container port for probing.
PathHTTP/HTTPSEndpoint path (e.g., /healthz).
HTTP HeadersHTTP/HTTPSCustom headers (Add key-value pairs).
CommandEXECContainer-executable check command (e.g., sh -c "curl -I localhost:8080 | grep OK").
Note: Escape special characters and test command viability.

#Troubleshooting probe failures

When a Pod's status indicates issues related to probes, here's how to troubleshoot:

#Check pod events

kubectl describe pod <pod-name>

Look for events related to LivenessProbe failed, ReadinessProbe failed, or StartupProbe failed. These events often provide specific error messages (e.g., connection refused, HTTP 500 error, command exit code).

#View container logs

kubectl logs <pod-name> -c <container-name>

Examine application logs to see if there are errors or warnings around the time the probe failed. Your application might be logging why its health endpoint isn't responding correctly.

#Test probe endpoint manually

  • HTTP: If possible, kubectl exec -it <pod-name> -- curl <probe-path>:<probe-port> or wget from within the container to see the actual response.
  • Exec: Run the probe command manually: kubectl exec -it <pod-name> -- <command-from-probe> and check its exit code and output.
  • TCP: Use nc (netcat) or telnet from another Pod in the same network or from the host if allowed, to test TCP connectivity: kubectl exec -it <another-pod> -- nc -vz <pod-ip> <probe-port>.

#Review probe configuration

  • Double-check the probe parameters (path, port, command, delays, thresholds) in your Deployment/Pod YAML. A common mistake is an incorrect port or path.

#Check application code

  • Ensure your application's health check endpoint is correctly implemented and truly reflects the application's readiness/liveness. Sometimes, the endpoint might return success even when the application itself is broken.

#Resource constraints

  • Insufficient CPU or memory resources could cause your application to become unresponsive, leading to probe failures. Check Pod resource usage (kubectl top pod <pod-name>) and consider adjusting resources limits/requests.

#Network issues

  • In rare cases, network policies or CNI issues might prevent probes from reaching the container. Verify network connectivity within the cluster.