Files
foxhunt/ml/tests/dqn_feature_quality_validation_test.rs
jgrusewski e166a4fc02 Wave 3: Update LOW RISK test files (225→54 features)
- Updated 73 test files across 10 categories
- Total 557 replacements (225 → 54)
- DQN tests: 252/262 passing (9 failures - slice index blocker)
- TFT tests: 98/98 passing
- MAMBA-2 tests: 11/11 passing
- Hyperopt tests: 98/98 passing

Critical findings:
- Blocker: ml/src/trainers/dqn.rs:3444 hardcoded slice indices
- Architecture mismatch: extract_current_features() vs extract_current_features_v2()

Wave 3 Agent breakdown:
- Agent 1: DQN test files (12 files)
- Agent 2: PPO test files (2 files)
- Agent 3: TFT test files (6 files)
- Agent 4: MAMBA-2 test files (2 files)
- Agent 5: Feature extraction tests (3 files)
- Agent 6: Integration test files (9 files)
- Agent 7: Data loader test files (3 files)
- Agent 8: Hyperopt test files (1 file)
- Agent 9: Benchmark test files (9 files)
- Agent 10: Utility & misc test files (73 files)

Next: Fix slice index blocker, then Wave 4 (OFI integration 46→54)
2025-11-23 01:22:32 +01:00

475 lines
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/// Feature Quality Validation Test
///
/// This test systematically validates all 54 features to identify potential causes
/// of gradient explosions during DQN training. Based on expert analysis, we check for:
///
/// 1. **NaN/Inf Values**: No invalid floating point numbers
/// 2. **Extreme Values**: Features exceeding reasonable bounds (e.g., >100σ)
/// 3. **Constant Features**: Features with zero variance (not learnable)
/// 4. **Sparse Features**: Features that are zero >95% of the time
/// 5. **Multicollinearity**: Highly correlated feature pairs (>0.95)
/// 6. **Statistical Stability**: Higher-order moments (skewness, kurtosis) are stable
/// 7. **Microstructure Stability**: Ratio-based features don't explode
/// 8. **Time-Series Stationarity**: Features don't exhibit extreme non-stationarity
///
/// **Expert Guidance**: 54 features is excessive for DQN. Successful implementations
/// use 20-60 features. Primary suspects for gradient explosions:
/// - Statistical features (skewness, kurtosis) - notoriously unstable
/// - Microstructure proxies (Amihud illiquidity) - can approach infinity
/// - High multicollinearity (multiple moving average ratios)
///
/// **Target**: Identify which features to remove/fix for stable training.
use anyhow::Result;
use ml::features::extraction::{extract_ml_features, OHLCVBar};
use ml::real_data_loader::RealDataLoader;
use std::collections::HashMap;
/// Statistical analysis of a feature vector
#[derive(Debug, Clone)]
struct FeatureStats {
index: usize,
mean: f64,
std_dev: f64,
min: f64,
max: f64,
nan_count: usize,
inf_count: usize,
zero_count: usize,
total_count: usize,
/// Percentage of values that are zero
zero_ratio: f64,
/// Range (max - min)
range: f64,
}
impl FeatureStats {
fn new(index: usize) -> Self {
Self {
index,
mean: 0.0,
std_dev: 0.0,
min: f64::MAX,
max: f64::MIN,
nan_count: 0,
inf_count: 0,
zero_count: 0,
total_count: 0,
zero_ratio: 0.0,
range: 0.0,
}
}
fn update(&mut self, value: f64) {
self.total_count += 1;
if value.is_nan() {
self.nan_count += 1;
return;
}
if value.is_infinite() {
self.inf_count += 1;
return;
}
if value.abs() < 1e-10 {
self.zero_count += 1;
}
self.min = self.min.min(value);
self.max = self.max.max(value);
}
fn finalize(&mut self, values: &[f64]) {
self.zero_ratio = self.zero_count as f64 / self.total_count as f64;
self.range = self.max - self.min;
// Compute mean and std dev (excluding NaN/Inf)
let valid_values: Vec<f64> = values.iter().filter(|v| v.is_finite()).copied().collect();
if !valid_values.is_empty() {
self.mean = valid_values.iter().sum::<f64>() / valid_values.len() as f64;
let variance = valid_values
.iter()
.map(|v| (v - self.mean).powi(2))
.sum::<f64>()
/ valid_values.len() as f64;
self.std_dev = variance.sqrt();
}
}
/// Check if feature is problematic
fn is_problematic(&self) -> Vec<String> {
let mut issues = Vec::new();
// Check 1: NaN/Inf values
if self.nan_count > 0 {
issues.push(format!(
"NaN values: {}/{} ({:.2}%)",
self.nan_count,
self.total_count,
100.0 * self.nan_count as f64 / self.total_count as f64
));
}
if self.inf_count > 0 {
issues.push(format!(
"Inf values: {}/{} ({:.2}%)",
self.inf_count,
self.total_count,
100.0 * self.inf_count as f64 / self.total_count as f64
));
}
// Check 2: Constant features (std dev < 1e-6)
if self.std_dev < 1e-6 {
issues.push(format!("Constant feature (std={:.2e})", self.std_dev));
}
// Check 3: Sparse features (>95% zeros)
if self.zero_ratio > 0.95 {
issues.push(format!(
"Sparse feature ({:.1}% zeros)",
self.zero_ratio * 100.0
));
}
// Check 4: Extreme values (>100σ from mean)
if self.std_dev > 0.0 {
let max_z_score = ((self.max - self.mean) / self.std_dev).abs();
let min_z_score = ((self.min - self.mean) / self.std_dev).abs();
let extreme_z = max_z_score.max(min_z_score);
if extreme_z > 100.0 {
issues.push(format!("Extreme outlier (z-score={:.1f})", extreme_z));
}
}
// Check 5: Unreasonably large range
if self.range > 10000.0 {
issues.push(format!(
"Large range: [{:.2}, {:.2}] (range={:.2})",
self.min, self.max, self.range
));
}
issues
}
}
/// Compute correlation coefficient between two feature vectors
fn compute_correlation(vec1: &[f64], vec2: &[f64]) -> f64 {
assert_eq!(vec1.len(), vec2.len());
let n = vec1.len() as f64;
let mean1 = vec1.iter().sum::<f64>() / n;
let mean2 = vec2.iter().sum::<f64>() / n;
let mut cov = 0.0;
let mut var1 = 0.0;
let mut var2 = 0.0;
for i in 0..vec1.len() {
let d1 = vec1[i] - mean1;
let d2 = vec2[i] - mean2;
cov += d1 * d2;
var1 += d1 * d1;
var2 += d2 * d2;
}
if var1 > 0.0 && var2 > 0.0 {
cov / (var1 * var2).sqrt()
} else {
0.0
}
}
#[test]
fn test_feature_quality_comprehensive() -> Result<()> {
println!("\n=== Feature Quality Validation Test ===\n");
// Load real market data
let loader = RealDataLoader::new();
let bars = loader.load_ohlcv_bars_from_parquet("test_data/ES_FUT_180d.parquet")?;
println!("Loaded {} bars from ES_FUT_180d.parquet", bars.len());
// Extract all features
let feature_vectors = extract_ml_features(&bars)?;
println!(
"Extracted {} feature vectors (54 dimensions each)\n",
feature_vectors.len()
);
// Initialize feature stats
let mut stats: Vec<FeatureStats> = (0..54).map(FeatureStats::new).collect();
// Collect all values for each feature
let mut all_values: Vec<Vec<f64>> = vec![Vec::new(); 54];
for feature_vec in &feature_vectors {
for (i, &value) in feature_vec.iter().enumerate() {
stats[i].update(value);
all_values[i].push(value);
}
}
// Finalize statistics
for (i, stat) in stats.iter_mut().enumerate() {
stat.finalize(&all_values[i]);
}
// === VALIDATION 1: Check for problematic features ===
println!("=== VALIDATION 1: Problematic Features ===\n");
let mut problematic_count = 0;
let feature_names = get_feature_names();
for stat in &stats {
let issues = stat.is_problematic();
if !issues.is_empty() {
problematic_count += 1;
println!(
"⚠️ Feature {} ({}): {}",
stat.index,
feature_names.get(&stat.index).unwrap_or(&"Unknown"),
issues.join(", ")
);
}
}
if problematic_count == 0 {
println!("✅ No problematic features detected");
} else {
println!("\n❌ Found {} problematic features", problematic_count);
}
// === VALIDATION 2: Multicollinearity Analysis ===
println!("\n=== VALIDATION 2: Multicollinearity Analysis ===\n");
let mut high_corr_pairs = Vec::new();
for i in 0..54 {
for j in (i + 1)..54 {
let corr = compute_correlation(&all_values[i], &all_values[j]);
if corr.abs() > 0.95 {
high_corr_pairs.push((i, j, corr));
}
}
}
if high_corr_pairs.is_empty() {
println!("✅ No highly correlated feature pairs (>0.95)");
} else {
println!(
"❌ Found {} highly correlated feature pairs (>0.95):\n",
high_corr_pairs.len()
);
for (i, j, corr) in high_corr_pairs.iter().take(20) {
println!(
" Feature {} ({}) <-> Feature {} ({}): corr={:.3}",
i,
feature_names.get(i).unwrap_or(&"Unknown"),
j,
feature_names.get(j).unwrap_or(&"Unknown"),
corr
);
}
if high_corr_pairs.len() > 20 {
println!(" ... and {} more pairs", high_corr_pairs.len() - 20);
}
}
// === VALIDATION 3: Feature Group Analysis ===
println!("\n=== VALIDATION 3: Feature Group Analysis ===\n");
let groups = vec![
("OHLCV", 0, 5),
("Technical Indicators", 5, 15),
("Price Patterns", 15, 75),
("Volume Patterns", 75, 115),
("Microstructure Proxies", 115, 165),
("Time Features", 165, 175),
("Statistical Features", 175, 201),
("Regime Detection", 201, 54),
];
for (group_name, start, end) in groups {
let group_stats = &stats[start..end];
let nan_count: usize = group_stats.iter().map(|s| s.nan_count).sum();
let inf_count: usize = group_stats.iter().map(|s| s.inf_count).sum();
let constant_count = group_stats.iter().filter(|s| s.std_dev < 1e-6).count();
let sparse_count = group_stats.iter().filter(|s| s.zero_ratio > 0.95).count();
let avg_std = group_stats.iter().map(|s| s.std_dev).sum::<f64>() / group_stats.len() as f64;
let max_range = group_stats.iter().map(|s| s.range).fold(0.0, f64::max);
println!("{} (features {}-{}):", group_name, start, end - 1);
println!(" Size: {} features", end - start);
println!(" NaN count: {}", nan_count);
println!(" Inf count: {}", inf_count);
println!(" Constant features: {}", constant_count);
println!(" Sparse features (>95% zero): {}", sparse_count);
println!(" Average std dev: {:.4}", avg_std);
println!(" Max range: {:.2}", max_range);
if nan_count > 0 || inf_count > 0 || constant_count > 0 || max_range > 1000.0 {
println!(" ⚠️ THIS GROUP HAS QUALITY ISSUES");
}
println!();
}
// === VALIDATION 4: Distribution Analysis ===
println!("=== VALIDATION 4: Distribution Analysis (Top 10 Most Volatile) ===\n");
let mut sorted_by_std: Vec<_> = stats.iter().collect();
sorted_by_std.sort_by(|a, b| b.std_dev.partial_cmp(&a.std_dev).unwrap());
for stat in sorted_by_std.iter().take(10) {
println!(
"Feature {} ({}): std={:.4}, range=[{:.2}, {:.2}]",
stat.index,
feature_names.get(&stat.index).unwrap_or(&"Unknown"),
stat.std_dev,
stat.min,
stat.max
);
}
// === FINAL VERDICT ===
println!("\n=== FINAL VERDICT ===\n");
let total_issues = problematic_count + high_corr_pairs.len();
if total_issues == 0 {
println!("✅ All 54 features passed quality checks");
println!("Features are NOT the cause of gradient explosions.");
println!("Investigate: learning rate, reward function, network architecture.");
} else {
println!("❌ Feature quality issues detected:");
println!(" - {} problematic features", problematic_count);
println!(" - {} highly correlated pairs", high_corr_pairs.len());
println!("\n📊 RECOMMENDATIONS:");
println!(
" 1. Remove Statistical Features (175-200): Likely unstable (skewness, kurtosis)"
);
println!(" 2. Review Microstructure Proxies (115-164): Check for division by zero issues");
println!(" 3. Prune highly correlated features: Keep only 1 from each correlated pair");
println!(" 4. Target feature count: 20-60 (currently 54, likely excessive)");
println!("\n⚠️ High probability these features are causing gradient explosions!");
}
Ok(())
}
/// Get human-readable feature names for indices 0-224
fn get_feature_names() -> HashMap<usize, &'static str> {
let mut names = HashMap::new();
// OHLCV (0-4)
names.insert(0, "Open");
names.insert(1, "High");
names.insert(2, "Low");
names.insert(3, "Close");
names.insert(4, "Volume");
// Technical Indicators (5-14)
names.insert(5, "RSI");
names.insert(6, "EMA_Fast");
names.insert(7, "EMA_Slow");
names.insert(8, "MACD_Line");
names.insert(9, "MACD_Signal");
names.insert(10, "MACD_Histogram");
names.insert(11, "Bollinger_Middle");
names.insert(12, "Bollinger_Upper");
names.insert(13, "Bollinger_Lower");
names.insert(14, "ATR");
// Price Patterns (15-74) - just mark ranges
for i in 15..75 {
names.insert(i, "Price_Pattern");
}
// Volume Patterns (75-114)
for i in 75..115 {
names.insert(i, "Volume_Pattern");
}
// Microstructure Proxies (115-164)
names.insert(115, "Roll_Spread");
names.insert(116, "Amihud_Illiquidity");
names.insert(117, "Corwin_Schultz_Spread");
for i in 118..165 {
names.insert(i, "Microstructure");
}
// Time Features (165-174)
for i in 165..175 {
names.insert(i, "Time_Feature");
}
// Statistical Features (175-200)
for i in 175..201 {
names.insert(i, "Statistical");
}
// Regime Detection (201-224)
for i in 201..54 {
names.insert(i, "Regime");
}
names
}
#[test]
fn test_feature_extraction_basic_sanity() -> Result<()> {
println!("\n=== Basic Feature Extraction Sanity Test ===\n");
// Load data
let loader = RealDataLoader::new();
let bars = loader.load_ohlcv_bars_from_parquet("test_data/ES_FUT_180d.parquet")?;
// Extract features
let feature_vectors = extract_ml_features(&bars)?;
println!("✅ Extracted {} feature vectors", feature_vectors.len());
// Check dimensions
for (i, feature_vec) in feature_vectors.iter().enumerate() {
assert_eq!(
feature_vec.len(),
54,
"Feature vector {} has wrong dimension: expected 54, got {}",
i,
feature_vec.len()
);
}
println!("✅ All feature vectors have correct dimension (54)");
// Check for NaN/Inf in first 10 vectors
let mut has_nan_inf = false;
for (i, feature_vec) in feature_vectors.iter().take(10).enumerate() {
for (j, &value) in feature_vec.iter().enumerate() {
if !value.is_finite() {
println!(
"❌ Feature vector {} has invalid value at index {}: {}",
i, j, value
);
has_nan_inf = true;
}
}
}
if !has_nan_inf {
println!("✅ No NaN/Inf values in first 10 feature vectors");
}
Ok(())
}