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metadata
license: cc-by-4.0
language:
  - fr
  - en
tags:
  - cybersecurity
  - anomaly-detection
  - network-logs
  - intrusion-detection
  - synthetic
  - nids
  - siem
size_categories:
  - 10K<n<100K
task_categories:
  - text-classification
  - token-classification
pretty_name: Network Anomaly Logs  French Industrial Infrastructure

🔐 Network Anomaly Logs — French Industrial Infrastructure

Description

50,000 synthetic network logs from French industrial infrastructure environments, with expert anomaly annotations.

Built by a cybersecurity practitioner with real-world experience in VLAN segmentation, pfSense, and Zabbix monitoring environments. Data is realistic, structured, and ready to use for ML training.


📊 Statistics

Split Examples Normal Anomalies
Train 40,000 34,000 6,000
Val 5,000 4,250 750
Test 5,000 4,250 750
Total 50,000 42,500 7,500
  • Anomaly rate: 15%
  • Format: JSONL (one example per line)

🚨 Anomaly Types

Type Description Severity
port_scan Sequential port scanning Medium
data_exfiltration Large outbound transfer to unknown IP Critical
brute_force_ssh Repeated failed SSH login attempts High
ddos_flood Volumetric UDP/ICMP flood Critical
c2_communication Periodic C2 server beaconing Critical
lateral_movement Internal machine-to-machine movement High
dns_tunneling Data exfiltration via DNS queries High
credential_dump Access to authentication resources Critical

📋 Schema

Each example contains the following fields:

{
  "id": "log_00000001",
  "timestamp": "2025-01-01T00:29:52.311Z",
  "src_ip": "10.10.30.229",
  "src_port": 64132,
  "src_vlan": "CLI",
  "dst_ip": "194.165.84.245",
  "dst_port": 443,
  "dst_vlan": "EXTERNAL",
  "protocol": "TCP",
  "bytes_sent": 1240,
  "bytes_received": 8430,
  "packets_sent": 3,
  "packets_received": 12,
  "duration_ms": 234,
  "ttl": 128,
  "tcp_flags": "ACK",
  "user_agent": null,
  "is_anomaly": false,
  "anomaly_type": null,
  "severity": null,
  "description": null,
  "label": "normal_https_browse"
}

🏗️ Infrastructure Context

Logs simulate a segmented French industrial network with 4 VLANs:

VLAN Subnet Role
ADM 10.10.10.0/24 Administration
SRV 10.10.20.0/24 Servers
CLI 10.10.30.0/24 Clients
EXTERNAL Internet

🎯 Use Cases

  • Network Intrusion Detection Systems (NIDS)
  • Anomaly detection model training & fine-tuning
  • Cybersecurity benchmark evaluation
  • SIEM rule validation & testing
  • ML research on network security

📦 Access

This dataset is gated — request access using the button above.

Access is free. Once approved, you will receive a download link with:

  • ✅ Full 50,000 examples (train / val / test splits)
  • ✅ Python generation script
  • ✅ Commercial use license (CC BY 4.0)

📜 License

Creative Commons Attribution 4.0 International (CC BY 4.0)

Commercial use allowed with attribution.


📬 Contact & Custom Datasets

Need a custom dataset with specific anomaly types, volume, or format?

📧 Contact: soon mail incoming