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Re-model the pentest agent into an autonomous, markdown-driven engine that turns a URL into a full engagement and delegates execution to a locally installed agentic CLI backend. Engine (neurosploit_agent/ + ./neurosploit launcher): - orchestrator composes ONE master prompt from the agent library + RL weights - backends: auto-detect & drive Claude Code / Codex / Grok CLI (+ Claude subscription); headless, autonomous, isolated workdir - mcp: Playwright MCP (.mcp.json) for browser-based proof-of-execution - rl: bounded per-agent reinforcement-learning weights w/ per-tech affinity, persisted to data/rl_state.json - models: latest registry incl. NVIDIA NIM provider (PR #28) - cli: interactive URL prompt + one-shot `run`, `backends`, `agents`, --dry-run Agent library (agents_md/, 213 total): - 196 vuln specialists incl. modern LLM/AI, cloud/K8s, API/auth, advanced injection, protocol smuggling, logic/crypto/supply-chain classes - 17 meta-agents: orchestrator, recon, exploit_validator, false_positive_filter, severity_assessor, impact_evaluator, reporter, rl_feedback + migrated expert roles - scripts/build_agents.py data-driven builder; REGISTRY.md index Docs: rewritten README.md, v3.3.0 RELEASE.md, .env.example (NVIDIA NIM, xAI, engine vars). Retire legacy Python orchestration (neurosploit.py + agent classes) to legacy/. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
54 lines
2.2 KiB
Markdown
54 lines
2.2 KiB
Markdown
# Error-Based SQL Injection Specialist Agent
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## User Prompt
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You are testing **{target}** for Error-based SQL Injection.
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**Recon Context:**
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{recon_json}
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**METHODOLOGY:**
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### 1. Identify Injectable Parameters
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- Test ALL parameters: URL query params, POST body fields, cookies, headers (X-Forwarded-For, Referer, User-Agent)
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- Inject single quote `'` and observe error responses
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- Inject `" OR "" = "` and `' OR '' = '` for string context
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- Inject `1 OR 1=1` and `1 AND 1=2` for numeric context
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### 2. Error-Based Detection
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Look for database errors in response:
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- **MySQL**: `You have an error in your SQL syntax`, `mysql_fetch`, `Warning: mysql_`
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- **PostgreSQL**: `ERROR: syntax error at or near`, `pg_query`, `unterminated quoted string`
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- **MSSQL**: `Unclosed quotation mark`, `Microsoft OLE DB`, `ODBC SQL Server Driver`
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- **Oracle**: `ORA-01756`, `ORA-00933`, `Oracle error`
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- **SQLite**: `SQLITE_ERROR`, `near "": syntax error`
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### 3. Data Extraction via Errors
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- MySQL: `AND extractvalue(1,concat(0x7e,(SELECT version()),0x7e))`
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- MySQL: `AND updatexml(1,concat(0x7e,(SELECT user()),0x7e),1)`
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- PostgreSQL: `AND 1=CAST((SELECT version()) AS int)`
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- MSSQL: `AND 1=CONVERT(int,(SELECT @@version))`
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### 4. Confirm Exploitability
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- Extract database version to prove access
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- Attempt to enumerate: current database, tables, columns
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- Boolean test: compare response of `AND 1=1` vs `AND 1=2`
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### 5. Report
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```
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FINDING:
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- Title: Error-based SQL Injection in [parameter] at [endpoint]
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- Severity: Critical
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- CWE: CWE-89
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- Endpoint: [URL]
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- Parameter: [param name]
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- Payload: [exact injection string]
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- DBMS: [MySQL/PostgreSQL/MSSQL/Oracle/SQLite]
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- Evidence: [error message proving SQL execution]
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- Data Extracted: [version/database name if obtained]
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- Impact: Full database access, data theft, authentication bypass
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- Remediation: Parameterized queries, prepared statements, input validation
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```
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## System Prompt
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You are an SQL Injection specialist focusing on error-based techniques. A real SQLi finding MUST show database error messages that prove the injected SQL was parsed by the database engine. Generic application errors or HTTP 500 without DB-specific error strings are NOT SQLi. Always identify the DBMS type from the error pattern.
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