pub struct QuantumReasoningModule { /* private fields */ }
Expand description
Quantum reasoning module
Implementations§
Source§impl QuantumReasoningModule
impl QuantumReasoningModule
Sourcepub fn new(config: QuantumReasoningConfig) -> Result<Self>
pub fn new(config: QuantumReasoningConfig) -> Result<Self>
Create new quantum reasoning module
Examples found in repository?
examples/quantum_llm.rs (line 218)
206fn quantum_reasoning_demo() -> Result<()> {
207 println!(" Testing quantum reasoning modules...");
208
209 let reasoning_configs = vec![
210 ("Basic Logical", QuantumReasoningConfig::default()),
211 ("Enhanced Causal", QuantumReasoningConfig::enhanced()),
212 ("Advanced Analogical", QuantumReasoningConfig::advanced()),
213 ];
214
215 for (name, config) in reasoning_configs {
216 println!("\n --- {} Reasoning ---", name);
217
218 let mut reasoning_module = QuantumReasoningModule::new(config.clone())?;
219
220 println!(" Reasoning capabilities:");
221 println!(" - Logical reasoning: {}", config.logical_reasoning);
222 println!(" - Causal reasoning: {}", config.causal_reasoning);
223 println!(" - Analogical reasoning: {}", config.analogical_reasoning);
224 println!(" - Reasoning steps: {}", config.reasoning_steps);
225 println!(" - Circuit depth: {}", config.circuit_depth);
226 println!(
227 " - Entanglement strength: {:.2}",
228 config.entanglement_strength
229 );
230
231 // Test reasoning on sample hidden states
232 let hidden_states = Array3::from_shape_fn((2, 8, 256), |(b, s, d)| {
233 // Create patterns that require reasoning
234 let logical_pattern = if s % 2 == 0 { 0.8 } else { 0.2 };
235 let causal_pattern = s as f64 * 0.1;
236 let base_value = logical_pattern + causal_pattern;
237
238 base_value + 0.05 * (b as f64 + d as f64 * 0.001)
239 });
240
241 println!(" Input hidden states shape: {:?}", hidden_states.dim());
242
243 // Apply quantum reasoning
244 let reasoned_output = reasoning_module.apply_reasoning(&hidden_states)?;
245 println!(" Reasoned output shape: {:?}", reasoned_output.dim());
246
247 // Analyze reasoning effects
248 let reasoning_enhancement =
249 analyze_reasoning_enhancement(&hidden_states, &reasoned_output)?;
250 println!(" Reasoning enhancement metrics:");
251 println!(
252 " - Pattern amplification: {:.3}",
253 reasoning_enhancement.pattern_amplification
254 );
255 println!(
256 " - Logical consistency: {:.3}",
257 reasoning_enhancement.logical_consistency
258 );
259 println!(
260 " - Causal coherence: {:.3}",
261 reasoning_enhancement.causal_coherence
262 );
263
264 // Test quantum coherence during reasoning
265 let coherence = reasoning_module.measure_coherence()?;
266 println!(" Quantum coherence: {:.3}", coherence);
267
268 // Test token selection enhancement
269 let sample_logits = Array1::from_shape_fn(1000, |i| {
270 0.01 * (i as f64 * 0.1).sin() + 0.001 * fastrand::f64()
271 });
272
273 let enhanced_logits = reasoning_module.enhance_token_selection(&sample_logits)?;
274 let enhancement_effect = (&enhanced_logits - &sample_logits)
275 .mapv(|x| x.abs())
276 .mean()
277 .unwrap_or(0.0);
278 println!(" Token selection enhancement: {:.4}", enhancement_effect);
279 }
280
281 Ok(())
282}
Sourcepub fn apply_reasoning(
&mut self,
hidden_states: &Array3<f64>,
) -> Result<Array3<f64>>
pub fn apply_reasoning( &mut self, hidden_states: &Array3<f64>, ) -> Result<Array3<f64>>
Apply quantum reasoning to transformer output
Examples found in repository?
examples/quantum_llm.rs (line 244)
206fn quantum_reasoning_demo() -> Result<()> {
207 println!(" Testing quantum reasoning modules...");
208
209 let reasoning_configs = vec![
210 ("Basic Logical", QuantumReasoningConfig::default()),
211 ("Enhanced Causal", QuantumReasoningConfig::enhanced()),
212 ("Advanced Analogical", QuantumReasoningConfig::advanced()),
213 ];
214
215 for (name, config) in reasoning_configs {
216 println!("\n --- {} Reasoning ---", name);
217
218 let mut reasoning_module = QuantumReasoningModule::new(config.clone())?;
219
220 println!(" Reasoning capabilities:");
221 println!(" - Logical reasoning: {}", config.logical_reasoning);
222 println!(" - Causal reasoning: {}", config.causal_reasoning);
223 println!(" - Analogical reasoning: {}", config.analogical_reasoning);
224 println!(" - Reasoning steps: {}", config.reasoning_steps);
225 println!(" - Circuit depth: {}", config.circuit_depth);
226 println!(
227 " - Entanglement strength: {:.2}",
228 config.entanglement_strength
229 );
230
231 // Test reasoning on sample hidden states
232 let hidden_states = Array3::from_shape_fn((2, 8, 256), |(b, s, d)| {
233 // Create patterns that require reasoning
234 let logical_pattern = if s % 2 == 0 { 0.8 } else { 0.2 };
235 let causal_pattern = s as f64 * 0.1;
236 let base_value = logical_pattern + causal_pattern;
237
238 base_value + 0.05 * (b as f64 + d as f64 * 0.001)
239 });
240
241 println!(" Input hidden states shape: {:?}", hidden_states.dim());
242
243 // Apply quantum reasoning
244 let reasoned_output = reasoning_module.apply_reasoning(&hidden_states)?;
245 println!(" Reasoned output shape: {:?}", reasoned_output.dim());
246
247 // Analyze reasoning effects
248 let reasoning_enhancement =
249 analyze_reasoning_enhancement(&hidden_states, &reasoned_output)?;
250 println!(" Reasoning enhancement metrics:");
251 println!(
252 " - Pattern amplification: {:.3}",
253 reasoning_enhancement.pattern_amplification
254 );
255 println!(
256 " - Logical consistency: {:.3}",
257 reasoning_enhancement.logical_consistency
258 );
259 println!(
260 " - Causal coherence: {:.3}",
261 reasoning_enhancement.causal_coherence
262 );
263
264 // Test quantum coherence during reasoning
265 let coherence = reasoning_module.measure_coherence()?;
266 println!(" Quantum coherence: {:.3}", coherence);
267
268 // Test token selection enhancement
269 let sample_logits = Array1::from_shape_fn(1000, |i| {
270 0.01 * (i as f64 * 0.1).sin() + 0.001 * fastrand::f64()
271 });
272
273 let enhanced_logits = reasoning_module.enhance_token_selection(&sample_logits)?;
274 let enhancement_effect = (&enhanced_logits - &sample_logits)
275 .mapv(|x| x.abs())
276 .mean()
277 .unwrap_or(0.0);
278 println!(" Token selection enhancement: {:.4}", enhancement_effect);
279 }
280
281 Ok(())
282}
Sourcepub fn enhance_token_selection(
&self,
logits: &Array1<f64>,
) -> Result<Array1<f64>>
pub fn enhance_token_selection( &self, logits: &Array1<f64>, ) -> Result<Array1<f64>>
Enhance token selection with quantum reasoning
Examples found in repository?
examples/quantum_llm.rs (line 273)
206fn quantum_reasoning_demo() -> Result<()> {
207 println!(" Testing quantum reasoning modules...");
208
209 let reasoning_configs = vec![
210 ("Basic Logical", QuantumReasoningConfig::default()),
211 ("Enhanced Causal", QuantumReasoningConfig::enhanced()),
212 ("Advanced Analogical", QuantumReasoningConfig::advanced()),
213 ];
214
215 for (name, config) in reasoning_configs {
216 println!("\n --- {} Reasoning ---", name);
217
218 let mut reasoning_module = QuantumReasoningModule::new(config.clone())?;
219
220 println!(" Reasoning capabilities:");
221 println!(" - Logical reasoning: {}", config.logical_reasoning);
222 println!(" - Causal reasoning: {}", config.causal_reasoning);
223 println!(" - Analogical reasoning: {}", config.analogical_reasoning);
224 println!(" - Reasoning steps: {}", config.reasoning_steps);
225 println!(" - Circuit depth: {}", config.circuit_depth);
226 println!(
227 " - Entanglement strength: {:.2}",
228 config.entanglement_strength
229 );
230
231 // Test reasoning on sample hidden states
232 let hidden_states = Array3::from_shape_fn((2, 8, 256), |(b, s, d)| {
233 // Create patterns that require reasoning
234 let logical_pattern = if s % 2 == 0 { 0.8 } else { 0.2 };
235 let causal_pattern = s as f64 * 0.1;
236 let base_value = logical_pattern + causal_pattern;
237
238 base_value + 0.05 * (b as f64 + d as f64 * 0.001)
239 });
240
241 println!(" Input hidden states shape: {:?}", hidden_states.dim());
242
243 // Apply quantum reasoning
244 let reasoned_output = reasoning_module.apply_reasoning(&hidden_states)?;
245 println!(" Reasoned output shape: {:?}", reasoned_output.dim());
246
247 // Analyze reasoning effects
248 let reasoning_enhancement =
249 analyze_reasoning_enhancement(&hidden_states, &reasoned_output)?;
250 println!(" Reasoning enhancement metrics:");
251 println!(
252 " - Pattern amplification: {:.3}",
253 reasoning_enhancement.pattern_amplification
254 );
255 println!(
256 " - Logical consistency: {:.3}",
257 reasoning_enhancement.logical_consistency
258 );
259 println!(
260 " - Causal coherence: {:.3}",
261 reasoning_enhancement.causal_coherence
262 );
263
264 // Test quantum coherence during reasoning
265 let coherence = reasoning_module.measure_coherence()?;
266 println!(" Quantum coherence: {:.3}", coherence);
267
268 // Test token selection enhancement
269 let sample_logits = Array1::from_shape_fn(1000, |i| {
270 0.01 * (i as f64 * 0.1).sin() + 0.001 * fastrand::f64()
271 });
272
273 let enhanced_logits = reasoning_module.enhance_token_selection(&sample_logits)?;
274 let enhancement_effect = (&enhanced_logits - &sample_logits)
275 .mapv(|x| x.abs())
276 .mean()
277 .unwrap_or(0.0);
278 println!(" Token selection enhancement: {:.4}", enhancement_effect);
279 }
280
281 Ok(())
282}
Sourcepub fn measure_coherence(&self) -> Result<f64>
pub fn measure_coherence(&self) -> Result<f64>
Measure quantum coherence in reasoning
Examples found in repository?
examples/quantum_llm.rs (line 265)
206fn quantum_reasoning_demo() -> Result<()> {
207 println!(" Testing quantum reasoning modules...");
208
209 let reasoning_configs = vec![
210 ("Basic Logical", QuantumReasoningConfig::default()),
211 ("Enhanced Causal", QuantumReasoningConfig::enhanced()),
212 ("Advanced Analogical", QuantumReasoningConfig::advanced()),
213 ];
214
215 for (name, config) in reasoning_configs {
216 println!("\n --- {} Reasoning ---", name);
217
218 let mut reasoning_module = QuantumReasoningModule::new(config.clone())?;
219
220 println!(" Reasoning capabilities:");
221 println!(" - Logical reasoning: {}", config.logical_reasoning);
222 println!(" - Causal reasoning: {}", config.causal_reasoning);
223 println!(" - Analogical reasoning: {}", config.analogical_reasoning);
224 println!(" - Reasoning steps: {}", config.reasoning_steps);
225 println!(" - Circuit depth: {}", config.circuit_depth);
226 println!(
227 " - Entanglement strength: {:.2}",
228 config.entanglement_strength
229 );
230
231 // Test reasoning on sample hidden states
232 let hidden_states = Array3::from_shape_fn((2, 8, 256), |(b, s, d)| {
233 // Create patterns that require reasoning
234 let logical_pattern = if s % 2 == 0 { 0.8 } else { 0.2 };
235 let causal_pattern = s as f64 * 0.1;
236 let base_value = logical_pattern + causal_pattern;
237
238 base_value + 0.05 * (b as f64 + d as f64 * 0.001)
239 });
240
241 println!(" Input hidden states shape: {:?}", hidden_states.dim());
242
243 // Apply quantum reasoning
244 let reasoned_output = reasoning_module.apply_reasoning(&hidden_states)?;
245 println!(" Reasoned output shape: {:?}", reasoned_output.dim());
246
247 // Analyze reasoning effects
248 let reasoning_enhancement =
249 analyze_reasoning_enhancement(&hidden_states, &reasoned_output)?;
250 println!(" Reasoning enhancement metrics:");
251 println!(
252 " - Pattern amplification: {:.3}",
253 reasoning_enhancement.pattern_amplification
254 );
255 println!(
256 " - Logical consistency: {:.3}",
257 reasoning_enhancement.logical_consistency
258 );
259 println!(
260 " - Causal coherence: {:.3}",
261 reasoning_enhancement.causal_coherence
262 );
263
264 // Test quantum coherence during reasoning
265 let coherence = reasoning_module.measure_coherence()?;
266 println!(" Quantum coherence: {:.3}", coherence);
267
268 // Test token selection enhancement
269 let sample_logits = Array1::from_shape_fn(1000, |i| {
270 0.01 * (i as f64 * 0.1).sin() + 0.001 * fastrand::f64()
271 });
272
273 let enhanced_logits = reasoning_module.enhance_token_selection(&sample_logits)?;
274 let enhancement_effect = (&enhanced_logits - &sample_logits)
275 .mapv(|x| x.abs())
276 .mean()
277 .unwrap_or(0.0);
278 println!(" Token selection enhancement: {:.4}", enhancement_effect);
279 }
280
281 Ok(())
282}
Sourcepub fn num_parameters(&self) -> usize
pub fn num_parameters(&self) -> usize
Get number of parameters
Trait Implementations§
Source§impl Clone for QuantumReasoningModule
impl Clone for QuantumReasoningModule
Source§fn clone(&self) -> QuantumReasoningModule
fn clone(&self) -> QuantumReasoningModule
Returns a duplicate of the value. Read more
1.0.0 · Source§fn clone_from(&mut self, source: &Self)
fn clone_from(&mut self, source: &Self)
Performs copy-assignment from
source
. Read moreAuto Trait Implementations§
impl Freeze for QuantumReasoningModule
impl !RefUnwindSafe for QuantumReasoningModule
impl Send for QuantumReasoningModule
impl Sync for QuantumReasoningModule
impl Unpin for QuantumReasoningModule
impl !UnwindSafe for QuantumReasoningModule
Blanket Implementations§
Source§impl<T> BorrowMut<T> for Twhere
T: ?Sized,
impl<T> BorrowMut<T> for Twhere
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Mutably borrows from an owned value. Read more
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T: Clone,
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Converts
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into a Left
variant of Either<Self, Self>
if into_left
is true
.
Converts self
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fn into_either_with<F>(self, into_left: F) -> Either<Self, Self>
Converts
self
into a Left
variant of Either<Self, Self>
if into_left(&self)
returns true
.
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Source§impl<SS, SP> SupersetOf<SS> for SPwhere
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Checks if
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fn from_subset(element: &SS) -> SP
The inclusion map: converts
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