340 lines
8.7 KiB
Markdown
340 lines
8.7 KiB
Markdown
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# Brainy Validation System
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## Zero-Config Philosophy
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Brainy's validation system automatically adapts to your system resources without any configuration. It enforces universal truths while dynamically adjusting limits based on available memory and observed performance.
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## Core Principles
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### 1. Universal Truths Only
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We only validate things that are mathematically or logically impossible:
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- Negative pagination values (there's no page -1)
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- Probabilities outside 0-1 range
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- Self-referential relationships
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- Invalid enum values
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### 2. Auto-Configuration
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The system automatically configures based on:
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- **Available Memory**: More RAM = higher limits
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- **System Performance**: Adjusts based on query response times
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- **Usage Patterns**: Learns from your actual workload
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### 3. Performance Monitoring
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Every query is monitored to tune future limits:
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```typescript
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// Automatic adjustment based on performance
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if (avgQueryTime < 100ms && resultCount > 80% of limit) {
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// Increase limits - system can handle more
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maxLimit *= 1.5
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} else if (avgQueryTime > 1000ms) {
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// Reduce limits - system is struggling
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maxLimit *= 0.8
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}
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```
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## Validation Rules by Method
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### `add(params: AddParams)`
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**Required:**
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- Either `data` or `vector` must be provided
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- `type` must be a valid NounType enum
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**Constraints:**
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- `vector` must have exactly 384 dimensions (for all-MiniLM-L6-v2)
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- Custom `id` must be unique
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**Example:**
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```typescript
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// ✅ Valid
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await brain.add({
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data: "Hello world",
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type: NounType.Document
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})
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// ✅ Valid - pre-computed vector
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await brain.add({
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vector: new Array(384).fill(0),
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type: NounType.Document
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})
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// ❌ Invalid - missing both data and vector
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await brain.add({
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type: NounType.Document
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})
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// Error: "must provide either data or vector"
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// ❌ Invalid - wrong vector dimensions
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await brain.add({
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vector: new Array(100).fill(0),
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type: NounType.Document
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})
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// Error: "vector must have exactly 384 dimensions"
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```
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### `update(params: UpdateParams)`
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**Required:**
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- `id` must be provided
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- At least one field must be updated
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**Important Metadata Behavior:**
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- `metadata: null` with `merge: false` → **Keeps existing metadata** (does nothing)
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- `metadata: {}` with `merge: false` → **Clears metadata** ✅
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- `metadata: undefined` → No change to metadata
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**Example:**
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```typescript
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// ✅ Valid - update metadata
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await brain.update({
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id: "xyz",
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metadata: { status: "published" }
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})
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// ✅ Valid - clear metadata properly
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await brain.update({
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id: "xyz",
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metadata: {},
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merge: false
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})
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// ❌ Invalid - null doesn't clear metadata
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await brain.update({
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id: "xyz",
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metadata: null,
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merge: false
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})
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// Error: "must specify at least one field to update"
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// (because null metadata doesn't actually update anything)
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// ❌ Invalid - no fields to update
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await brain.update({
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id: "xyz"
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})
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// Error: "must specify at least one field to update"
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```
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### `relate(params: RelateParams)`
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**Required:**
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- `from` entity ID
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- `to` entity ID
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- `type` must be valid VerbType enum
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**Constraints:**
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- `from` and `to` must be different (no self-loops)
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- `weight` must be between 0 and 1
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**Example:**
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```typescript
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// ✅ Valid
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await brain.relate({
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from: "entity1",
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to: "entity2",
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type: VerbType.RelatedTo
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})
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// ❌ Invalid - self-referential
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await brain.relate({
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from: "entity1",
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to: "entity1",
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type: VerbType.RelatedTo
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})
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// Error: "cannot create self-referential relationship"
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// ❌ Invalid - weight out of range
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await brain.relate({
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from: "entity1",
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to: "entity2",
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type: VerbType.RelatedTo,
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weight: 1.5
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})
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// Error: "weight must be between 0 and 1"
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```
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### `find(params: FindParams)`
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**Constraints:**
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- `limit` must be non-negative and below auto-configured maximum
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- `offset` must be non-negative
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- Cannot specify both `query` and `vector` (mutually exclusive)
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- Cannot use both `cursor` and `offset` pagination
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- `threshold` must be between 0 and 1
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**Auto-Configured Limits:**
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```typescript
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// Based on available memory
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// 1GB RAM → max limit: 10,000
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// 8GB RAM → max limit: 80,000
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// 16GB RAM → max limit: 100,000 (capped)
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// Query length also scales with memory
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// 1GB RAM → max query: 5,000 characters
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// 8GB RAM → max query: 40,000 characters
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```
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**Example:**
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```typescript
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// ✅ Valid
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await brain.find({
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query: "machine learning",
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limit: 50
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})
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// ❌ Invalid - negative limit
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await brain.find({
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query: "test",
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limit: -1
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})
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// Error: "limit must be non-negative"
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// ❌ Invalid - both query and vector
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await brain.find({
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query: "test",
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vector: new Array(384).fill(0)
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})
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// Error: "cannot specify both query and vector - they are mutually exclusive"
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// ❌ Invalid - exceeds auto-configured limit
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await brain.find({
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limit: 1000000
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})
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// Error: "limit exceeds auto-configured maximum of 80000 (based on available memory)"
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```
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## Auto-Configuration Details
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### Memory-Based Scaling
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The validation system checks available memory on initialization:
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```typescript
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const availableMemory = os.freemem()
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// Scale limits based on available memory
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maxLimit = Math.min(
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100000, // Absolute maximum for safety
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Math.floor(availableMemory / (1024 * 1024 * 100)) * 1000
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)
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// Scale query length similarly
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maxQueryLength = Math.min(
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50000,
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Math.floor(availableMemory / (1024 * 1024 * 10)) * 1000
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)
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```
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### Performance-Based Tuning
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The system continuously monitors and adjusts:
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1. **After each query**, performance is recorded
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2. **Limits adjust** based on response times
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3. **Gradual optimization** towards optimal throughput
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### Checking Current Configuration
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You can inspect the current validation configuration:
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```typescript
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import { getValidationConfig } from '@soulcraft/brainy/validation'
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const config = getValidationConfig()
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console.log(config)
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// {
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// maxLimit: 80000,
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// maxQueryLength: 40000,
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// maxVectorDimensions: 384,
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// systemMemory: 17179869184,
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// availableMemory: 8589934592
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// }
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```
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## Best Practices
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### 1. Clearing Metadata
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```typescript
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// ❌ Wrong - doesn't clear
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await brain.update({ id, metadata: null, merge: false })
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// ✅ Correct - actually clears
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await brain.update({ id, metadata: {}, merge: false })
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```
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### 2. Type Safety
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```typescript
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// ❌ Wrong - string type
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await brain.add({ data: "test", type: "document" })
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// ✅ Correct - enum type
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import { NounType } from '@soulcraft/brainy'
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await brain.add({ data: "test", type: NounType.Document })
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```
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### 3. Pagination
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```typescript
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// ✅ Let the system auto-configure limits
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const results = await brain.find({
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query: "test",
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limit: 100 // Will be capped at system maximum
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})
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// ✅ For large datasets, use pagination
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let offset = 0
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const pageSize = 1000
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while (true) {
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const results = await brain.find({
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query: "test",
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limit: pageSize,
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offset
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})
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if (results.length === 0) break
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offset += pageSize
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}
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```
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## Error Messages
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All validation errors are descriptive and actionable:
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| Error | Cause | Solution |
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|-------|-------|----------|
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| `"must provide either data or vector"` | Missing content in add() | Provide either data to embed or pre-computed vector |
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| `"limit must be non-negative"` | Negative pagination | Use positive limit value |
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| `"invalid NounType: xyz"` | Invalid enum value | Use valid NounType enum |
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| `"cannot create self-referential relationship"` | from === to | Use different entity IDs |
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| `"must specify at least one field to update"` | Empty update | Provide at least one field to change |
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| `"vector must have exactly 384 dimensions"` | Wrong vector size | Use 384-dimensional vectors |
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## Performance Impact
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The validation system adds minimal overhead:
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- **Validation time**: <1ms per operation
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- **Memory usage**: ~1KB for configuration tracking
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- **Auto-tuning**: Happens asynchronously, no blocking
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## FAQ
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**Q: Why can't I set metadata to null?**
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A: Setting metadata to `null` with `merge: false` doesn't actually clear it - it falls back to existing metadata. Use `{}` to clear.
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**Q: Why are my limits being reduced?**
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A: If queries are taking >1 second, the system automatically reduces limits to maintain performance.
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**Q: Can I override the auto-configured limits?**
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A: No, this is by design. The system knows better than static configuration what your hardware can handle.
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**Q: Why exactly 384 dimensions for vectors?**
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A: Brainy uses the all-MiniLM-L6-v2 model which produces 384-dimensional embeddings. This ensures consistency.
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## Summary
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Brainy's validation system:
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- ✅ **Zero configuration** - adapts to your system
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- ✅ **Universal truths** - only prevents impossible operations
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- ✅ **Performance aware** - adjusts based on actual performance
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- ✅ **Type safe** - enforces enum types
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- ✅ **Minimal overhead** - <1ms validation time
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- ✅ **Clear errors** - actionable error messages
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The philosophy is simple: prevent impossible operations, adapt to reality, and get out of the way.
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