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Interactions Between Category Learning Systems
Matthew J. Crossley
UC Berkeley
F. Gregory Ashby
UC Santa Barbara
!2
!3
Trial 1 Trial 2
Where do stimuli come from?
!4
Where do stimuli come from?
Thick & Shallow
!5
Where do stimuli come from?
Thick & SteepThin & Steep
!6
Category Structures
Respond A if bars are thin
Respond B if bars are thick
!7
Respond A if bars are steep
Respond B if bars are shallow
Category Structures
!8
Respond A if bars are thin AND steep
Respond B otherwise
Category Structures
!9
Category Structures
!10
Respond A if bars are steeper than they are thick
Respond B otherwise
Category Structures
!11
Respond A if bars are thicker than they are steep
Respond B otherwise
Category Structures
!12
Different Brain Systems
Declarative Procedural
!13
Response remapping impairs procedural more than
declarative learning
Train Transfer
!14
Declarative
Procedural
Delaying feedback impairs procedural but not
declarative
!15
Declarative
Procedural
!16
Does the procedural system learn
during declarative control?
!17
Experiment 1: Train procedural categories with
declarative strategies
!18
Experiment 1: Train II categories with RB control
Conditions to rule out innate
difficulty differences
Procedural learning during
declarative control?
!19
If procedural learning during declarative control:
!20
Results are consistent with procedural learning
during declarative control
Parsed Training All II Training
Rotated impaired
relative to congruent
No innate
difficulty difference
!21
Parsed Training All II Training
Rotated impaired
relative to congruent
No innate
difficulty difference
Results are consistent with procedural learning
during declarative control
!22
Hard to rule out rules
75% correct!
If using rule 1
75% correct!
If using rule 2
75% correct!
If using rule 1
25% correct!
If using rule 2
Rule 1 Rule 2
Rule 1 Rule 2
!23
Hard to rule out rules
~75% correct!
If using rules
~50% correct!
If using rules
Rule 1 Rule 2
Rule 1 Rule 2
!24
Hard to rule out rules
75% correct!
If using rules
50% correct!
If using rules
Hard to say if results reflect procedural learning
or perseveration with rules
!25
How to rule out rules:
Turn off procedural learning during training
See if results hold up
!26
Recall that delaying feedback impairs procedural but not
declarative learning
!27
If procedural learning during declarative control:
Experiment 2 Results
Immediate Feedback Delayed Feedback
Rotated impairment
replicates
Rotated impairment
disappears
!28
!29
Looks like procedural learning during
declarative control
!30
Category Learning Networks
!31
Category Learning Networks
!32
Category Learning Networks
!33
Category Learning Networks
!34
471.05/GGG21 - Savings in visuomotor adaptation depends on perturbation magnitude
!
J. R. MOREHEAD, S. QASIM, M. CROSSLEY, R. B. IVRY;
!
471. Voluntary Motor Control: Motor Learning II
Mon, Nov 11, 1:00 - 5:00 PM
771.17/KKK10 - A temporal-difference dopamine-dependent spiking network account of
instrumental contingency degradation
!
M. J. CROSSLEY, F. ASHBY;
!
771. Neural Mechanisms of Appetitive Behavior
Wed, Nov 13, 8:00 AM - 12:00 PM
842.19/VV19 - The difficulties of rapid switching between declarative and procedural
learning systems
!
J. L. ROEDER, M. J. CROSSLEY, G. CANTWELL, F. ASHBY;
!
842. Human Navigation and Spatial Representation
Wed, Nov 13, 1:00 - 5:00 PM
!35
Thanks
!36
Immediate Feedback Delayed Feedback
Parsed Training All II Training
!37
Appropriate Control Conditions?
The issue is that we don’t know what size interference to
expect from a rotation during transfer with pure II training.
This is a fair point. We know that pos and neg aren’t different
from each other if left in isolation, but we can not rule out the
possibility that there is an innate difference in the size of the
rotation interference. However, Experiment 2 addresses this
since we can make the difference disappear with FB delay.
!38
Appropriate Control Conditions?
!39
1) Procedural and declarative systems compete for control
of motor resources, preventing trial-by-trial switching
between procedural and declarative strategies under normal
circumstances.
!
2) This competition can be reduced, and trial-by-trial
switching facilitated, by incorporating explicit cues to signal
which strategy is appropriate for a given stimulus.
!
3) Learning in the procedural system occurs even when the
declarative system is in control of behavior.
!
4) computational cognitive neuroscience model M1 to
striatal medium spiny neurons.
My abstract promised too much
No perfect terminology
• Procedural vs declarative
• Information-Integration vs rule-based
• Habitual vs goal-directed
• Model-free vs model-based
• Implicit vs explicit
!40

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Interactions Between Category Learning Systems

  • 1. Interactions Between Category Learning Systems Matthew J. Crossley UC Berkeley F. Gregory Ashby UC Santa Barbara
  • 2. !2
  • 4. Where do stimuli come from? !4
  • 5. Where do stimuli come from? Thick & Shallow !5
  • 6. Where do stimuli come from? Thick & SteepThin & Steep !6
  • 7. Category Structures Respond A if bars are thin Respond B if bars are thick !7
  • 8. Respond A if bars are steep Respond B if bars are shallow Category Structures !8
  • 9. Respond A if bars are thin AND steep Respond B otherwise Category Structures !9
  • 11. Respond A if bars are steeper than they are thick Respond B otherwise Category Structures !11
  • 12. Respond A if bars are thicker than they are steep Respond B otherwise Category Structures !12
  • 14. Response remapping impairs procedural more than declarative learning Train Transfer !14 Declarative Procedural
  • 15. Delaying feedback impairs procedural but not declarative !15 Declarative Procedural
  • 16. !16 Does the procedural system learn during declarative control?
  • 17. !17 Experiment 1: Train procedural categories with declarative strategies
  • 18. !18 Experiment 1: Train II categories with RB control Conditions to rule out innate difficulty differences Procedural learning during declarative control?
  • 19. !19 If procedural learning during declarative control:
  • 20. !20 Results are consistent with procedural learning during declarative control Parsed Training All II Training Rotated impaired relative to congruent No innate difficulty difference
  • 21. !21 Parsed Training All II Training Rotated impaired relative to congruent No innate difficulty difference Results are consistent with procedural learning during declarative control
  • 22. !22 Hard to rule out rules 75% correct! If using rule 1 75% correct! If using rule 2 75% correct! If using rule 1 25% correct! If using rule 2 Rule 1 Rule 2 Rule 1 Rule 2
  • 23. !23 Hard to rule out rules ~75% correct! If using rules ~50% correct! If using rules Rule 1 Rule 2 Rule 1 Rule 2
  • 24. !24 Hard to rule out rules 75% correct! If using rules 50% correct! If using rules Hard to say if results reflect procedural learning or perseveration with rules
  • 25. !25 How to rule out rules: Turn off procedural learning during training See if results hold up
  • 26. !26 Recall that delaying feedback impairs procedural but not declarative learning
  • 27. !27 If procedural learning during declarative control:
  • 28. Experiment 2 Results Immediate Feedback Delayed Feedback Rotated impairment replicates Rotated impairment disappears !28
  • 29. !29 Looks like procedural learning during declarative control
  • 34. !34 471.05/GGG21 - Savings in visuomotor adaptation depends on perturbation magnitude ! J. R. MOREHEAD, S. QASIM, M. CROSSLEY, R. B. IVRY; ! 471. Voluntary Motor Control: Motor Learning II Mon, Nov 11, 1:00 - 5:00 PM 771.17/KKK10 - A temporal-difference dopamine-dependent spiking network account of instrumental contingency degradation ! M. J. CROSSLEY, F. ASHBY; ! 771. Neural Mechanisms of Appetitive Behavior Wed, Nov 13, 8:00 AM - 12:00 PM 842.19/VV19 - The difficulties of rapid switching between declarative and procedural learning systems ! J. L. ROEDER, M. J. CROSSLEY, G. CANTWELL, F. ASHBY; ! 842. Human Navigation and Spatial Representation Wed, Nov 13, 1:00 - 5:00 PM
  • 36. !36 Immediate Feedback Delayed Feedback Parsed Training All II Training
  • 37. !37 Appropriate Control Conditions? The issue is that we don’t know what size interference to expect from a rotation during transfer with pure II training. This is a fair point. We know that pos and neg aren’t different from each other if left in isolation, but we can not rule out the possibility that there is an innate difference in the size of the rotation interference. However, Experiment 2 addresses this since we can make the difference disappear with FB delay.
  • 39. !39 1) Procedural and declarative systems compete for control of motor resources, preventing trial-by-trial switching between procedural and declarative strategies under normal circumstances. ! 2) This competition can be reduced, and trial-by-trial switching facilitated, by incorporating explicit cues to signal which strategy is appropriate for a given stimulus. ! 3) Learning in the procedural system occurs even when the declarative system is in control of behavior. ! 4) computational cognitive neuroscience model M1 to striatal medium spiny neurons. My abstract promised too much
  • 40. No perfect terminology • Procedural vs declarative • Information-Integration vs rule-based • Habitual vs goal-directed • Model-free vs model-based • Implicit vs explicit !40