How to use from
Unsloth Studio
Install Unsloth Studio (macOS, Linux, WSL)
curl -fsSL https://unsloth.ai/install.sh | sh
# Run unsloth studio
unsloth studio -H 0.0.0.0 -p 8888
# Then open http://localhost:8888 in your browser
# Search for HashW/gemma4-fishcom-detector to start chatting
Install Unsloth Studio (Windows)
irm https://unsloth.ai/install.ps1 | iex
# Run unsloth studio
unsloth studio -H 0.0.0.0 -p 8888
# Then open http://localhost:8888 in your browser
# Search for HashW/gemma4-fishcom-detector to start chatting
Using HuggingFace Spaces for Unsloth
# No setup required
# Open https://huggingface.co/spaces/unsloth/studio in your browser
# Search for HashW/gemma4-fishcom-detector to start chatting
Load model with FastModel
pip install unsloth
from unsloth import FastModel
model, tokenizer = FastModel.from_pretrained(
    model_name="HashW/gemma4-fishcom-detector",
    max_seq_length=2048,
)
Quick Links

Fishcom AI - Gemma 4 Social Engineering Detector

這是一個專門為 Fishcom 社交工程演練平台 開發的資安分析模型,旨在自動辨別演練中的互動 Log 究竟是來自「真人點擊」還是「資安掃描設備」。

🚀 核心能力

  • **行為序列分析 (Sequence Analysis)**:能夠辨識連續行為中的「時間節奏」。例如:精確的間隔秒數、重複的 UA 模式。
  • **特徵提取 (Feature Extraction)**:針對 IP 段、User-Agent 長度、ISP 組織名稱進行深度推理。
  • 多模態基底:基於最新 Gemma 4 架構,具備優異的邏輯推理與中文處理能力。

🛠️ 如何載入與使用

本模型為 LoRA Adapter,必須掛載於基礎模型上執行。建議使用 unsloth 以獲得最佳效能:

from unsloth import FastLanguageModel
import torch

model, tokenizer = FastLanguageModel.from_pretrained(
    model_name = "HashW/gemma4-fishcom-detector", # 指向此倉庫
    max_seq_length = 2048,
    load_in_4bit = True,
)
FastLanguageModel.for_inference(model)

# 測試 Log 序列
test_input = "行為 1: 事件: click, 延遲: 20s, IP: 52.x.x.x, UA: MS Safe Links..."
# ... (後續執行推理)

## 訓練細節 (Training Details)
- **基礎模型 (Base Model)**: `unsloth/gemma-4-E4B-it-bnb-4bit`
- **訓練樣本 (Dataset)**: 27.2 萬筆 (包含 9483 筆長文本序列行為教材)
- **精度 (Precision)**: Bfloat16 (採用 4-bit LoRA 訓練)
- **安全處理 (Privacy)**: 已完成 IP 去識別化與敏感資訊遮蔽。
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