- **Core**: - Added `check-database.js` to verify database status and validate search functionality. - Created `fix-dimension-mismatch.js` to handle re-embedding of existing data to resolve dimension mismatch from 3 to 512. - Improved test cases by updating vector operations to support 512 dimensions, replacing previously hardcoded dimensions. - **Migration**: - Developed `DIMENSION_MISMATCH_SUMMARY.md`, detailing the root cause, solution, and preventive strategies for dimension mismatch issues. - Added `production-migration-guide.md` for structured production migration with detailed steps on re-embedding strategies, batching, and error handling. - **Tests**: - Enhanced test coverage with 512-dimensional vector validation. - Introduced helper functions for consistent vector testing behavior and streamlined search test cases. - **Documentation**: - Updated project documentation to highlight the resolution process for dimension mismatches, emphasizing preventive mechanisms such as auto-migration and version tracking. **Purpose**: Address critical dimension mismatch issues caused by embedding changes, restore functionality, and provide a roadmap for robust prevention strategies and migration processes.
91 lines
2.8 KiB
TypeScript
91 lines
2.8 KiB
TypeScript
import { describe, it, expect } from 'vitest'
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import { euclideanDistance } from '../src/utils/distance.js'
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/**
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* Helper function to create a 512-dimensional vector for testing
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* @param primaryIndex The index to set to 1.0, all other indices will be 0.0
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* @returns A 512-dimensional vector with a single 1.0 value at the specified index
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*/
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function createTestVector(primaryIndex: number = 0): number[] {
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const vector = new Array(512).fill(0)
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vector[primaryIndex % 512] = 1.0
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return vector
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}
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describe('Vector Operations', () => {
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it('should load brainy library successfully', async () => {
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const brainy = await import('../dist/unified.js')
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expect(brainy).toBeDefined()
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expect(typeof brainy.BrainyData).toBe('function')
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expect(brainy.environment).toBeDefined()
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})
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it('should create and initialize BrainyData instance', async () => {
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const brainy = await import('../dist/unified.js')
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const db = new brainy.BrainyData({
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distanceFunction: euclideanDistance
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})
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expect(db).toBeDefined()
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expect(db.dimensions).toBe(512)
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await db.init()
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// If we get here without throwing, initialization was successful
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expect(true).toBe(true)
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})
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it('should handle simple vector operations', async () => {
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const brainy = await import('../dist/unified.js')
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const db = new brainy.BrainyData({
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distanceFunction: euclideanDistance
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})
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await db.init()
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await db.clear() // Clear any existing data
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// Add a simple vector
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const testVector = createTestVector(1)
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await db.add(testVector, { id: 'test' })
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// Search for the same vector
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const results = await db.search(testVector, 1)
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expect(results).toBeDefined()
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expect(results.length).toBeGreaterThan(0)
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expect(results[0].metadata.id).toBe('test')
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})
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it('should handle multiple vector searches correctly', async () => {
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const brainy = await import('../dist/unified.js')
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const db = new brainy.BrainyData({
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distanceFunction: euclideanDistance
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})
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await db.init()
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await db.clear() // Clear any existing data
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// Add multiple vectors
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await db.add(createTestVector(0), { id: 'vec1', type: 'unit' })
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await db.add(createTestVector(1), { id: 'vec2', type: 'unit' })
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await db.add(createTestVector(2), { id: 'vec3', type: 'unit' })
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// Create a mixed vector with two non-zero elements
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const mixedVector = createTestVector(3)
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mixedVector[4] = 0.5
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await db.add(mixedVector, { id: 'vec4', type: 'mixed' })
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// Search for multiple results
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const results = await db.search(createTestVector(0), 3)
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expect(results).toBeDefined()
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expect(results.length).toBeGreaterThanOrEqual(1)
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expect(results.length).toBeLessThanOrEqual(3)
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// The closest should be the exact match
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expect(results[0].metadata.id).toBe('vec1')
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})
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})
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