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ai-agent-book 精选快照(<2MB 代码与文档,来自 github.com/bojieli/ai-agent-book)
2026-08-20 13:12:50 +00:00

193 lines
6.2 KiB
Python

"""
Test script for structured indexing with sample Intel x86 instruction documentation.
"""
import asyncio
from pathlib import Path
from loguru import logger
from config import get_raptor_config, get_graphrag_config
from raptor_indexer import RaptorIndexer
from graphrag_indexer import GraphRAGIndexer
from document_processor import DocumentProcessor
# Sample Intel x86/x64 instruction documentation text
SAMPLE_INTEL_DOC = """
Chapter 3: Basic Execution Environment
The Intel 64 and IA-32 architectures provide a comprehensive execution environment for running applications.
This chapter describes the basic elements of this environment including registers, memory organization, and instruction formats.
3.1 General-Purpose Registers
The general-purpose registers are used for arithmetic, logic, and memory operations. In 64-bit mode, there are 16 general-purpose registers:
- RAX, RBX, RCX, RDX: Traditional registers extended to 64 bits
- RSI, RDI, RBP, RSP: Index and pointer registers
- R8-R15: Additional registers available in 64-bit mode
Each register can be accessed as:
- 64-bit (RAX, RBX, etc.)
- 32-bit (EAX, EBX, etc.)
- 16-bit (AX, BX, etc.)
- 8-bit (AL/AH, BL/BH, etc.)
3.2 Instruction Format
Intel 64 and IA-32 instruction formats consist of:
1. Instruction prefixes (optional)
2. Primary opcode (1-3 bytes)
3. ModR/M byte (if required)
4. SIB byte (if required)
5. Displacement (if required)
6. Immediate data (if required)
MOV Instruction:
MOV - Move data between registers or between register and memory
The MOV instruction copies the source operand to the destination operand without affecting the source.
Syntax:
MOV destination, source
Examples:
MOV RAX, RBX ; Move RBX to RAX
MOV [RDI], RSI ; Move RSI to memory location pointed by RDI
MOV ECX, 42 ; Move immediate value 42 to ECX
ADD Instruction:
ADD - Add two operands
The ADD instruction adds the source operand to the destination operand and stores the result in the destination.
Syntax:
ADD destination, source
The instruction updates the following flags: OF, SF, ZF, AF, PF, CF
JMP Instruction:
JMP - Unconditional jump
The JMP instruction transfers program control to a different point in the code unconditionally.
Syntax:
JMP target
Chapter 4: SIMD Instructions
4.1 SSE Instructions
SSE (Streaming SIMD Extensions) provides 128-bit registers (XMM0-XMM15) for parallel operations on packed data.
MOVAPS - Move Aligned Packed Single-Precision Floating-Point Values
MOVAPS moves 128 bits of packed single-precision floating-point values from source to destination.
ADDPS - Add Packed Single-Precision Floating-Point Values
ADDPS performs parallel addition of four single-precision floating-point values.
4.2 AVX Instructions
AVX (Advanced Vector Extensions) extends SIMD capabilities with 256-bit registers (YMM0-YMM15).
VMOVAPS - Move Aligned Packed Single-Precision Floating-Point Values (AVX)
VMOVAPS moves 256 bits of packed single-precision floating-point values.
VADDPS - Add Packed Single-Precision Floating-Point Values (AVX)
VADDPS performs parallel addition of eight single-precision floating-point values.
Chapter 5: System Instructions
5.1 Control Registers
Control registers (CR0, CR2, CR3, CR4) control the operation mode and state of the processor:
- CR0: System control flags including protection enable and paging
- CR2: Page fault linear address
- CR3: Page directory base address
- CR4: Architecture extensions control
CPUID Instruction:
CPUID - CPU Identification
Returns processor identification and feature information in EAX, EBX, ECX, and EDX registers.
RDTSC Instruction:
RDTSC - Read Time-Stamp Counter
Reads the processor's time-stamp counter into EDX:EAX.
"""
async def test_indexing():
"""Test both RAPTOR and GraphRAG indexing with sample documentation."""
logger.info("Starting structured indexing test...")
# Test RAPTOR indexing
logger.info("\n" + "="*60)
logger.info("Testing RAPTOR Tree-Based Indexing")
logger.info("="*60)
raptor_config = get_raptor_config()
raptor = RaptorIndexer(raptor_config)
# Build index
raptor.build_index(SAMPLE_INTEL_DOC)
stats = raptor.get_tree_statistics()
logger.info(f"RAPTOR Statistics: {stats}")
# Test queries
test_queries = [
"What are the general-purpose registers?",
"How does the MOV instruction work?",
"What are SIMD instructions?",
"Explain control registers"
]
for query in test_queries:
logger.info(f"\nQuery: {query}")
results = raptor.search(query, top_k=3)
for i, result in enumerate(results, 1):
logger.info(f"{i}. Level {result['level']} (Score: {result['score']:.3f})")
logger.info(f" Summary: {result['summary'][:150]}...")
# Save index
raptor.save_index()
# Test GraphRAG indexing
logger.info("\n" + "="*60)
logger.info("Testing GraphRAG Knowledge Graph Indexing")
logger.info("="*60)
graphrag_config = get_graphrag_config()
graphrag = GraphRAGIndexer(graphrag_config)
# Build knowledge graph
graphrag.build_knowledge_graph(SAMPLE_INTEL_DOC)
graphrag.detect_communities()
graphrag.hierarchical_summarization()
stats = graphrag.get_graph_statistics()
logger.info(f"GraphRAG Statistics: {stats}")
# Test queries
for query in test_queries:
logger.info(f"\nQuery: {query}")
results = graphrag.search(query, top_k=3, search_type="hybrid")
for i, result in enumerate(results, 1):
if result['type'] == 'entity':
logger.info(f"{i}. Entity: {result['name']} ({result['entity_type']}) - Score: {result['score']:.3f}")
logger.info(f" Description: {result['description'][:150]}...")
else:
logger.info(f"{i}. Community (Level {result['level']}) - Score: {result['score']:.3f}")
logger.info(f" Summary: {result['summary'][:150]}...")
# Save index
graphrag.save_index()
logger.info("\n" + "="*60)
logger.info("Test completed successfully!")
logger.info("="*60)
if __name__ == "__main__":
# Set up logging
logger.add("test_indexing.log", rotation="10 MB")
# Run the test
asyncio.run(test_indexing())