Stanford Root

Schedule

Stanford Root

Schedule

EDUC 234

Curiosity in Artificial Intelligence (PSYCH 240A)

UNITS:3
GRADING:Letter or Credit/No Credit
LEVEL:Graduate
GER:—

How do we design artificial systems that learn as we do early in life -- as "scientists in the crib" who explore and experiment with our surroundings? How do we make AI "curious" so that it explores without explicit external feedback? Topics draw from cognitive science (intuitive physics and psychology, developmental differences), computational theory (active learning, optimal experiment design), and AI practice (self-supervised learning, deep reinforcement learning). Students present readings and complete both an introductory computational project (e.g. train a neural network on a self-supervised task) and a deeper-dive project in either cognitive science (e.g. design a novel human subject experiment) or AI (e.g. implement and test a curiosity variant in an RL environment). Prerequisites: python familiarity and practical data science (e.g. sklearn or R).

Syllabus for selected term:
View Winter 2027 Syllabus

Sections

1 Term
Seminar 1Open
ID: 26279
0 / 20 enrolled
DAYS:Monday
TIME:11:30 AM – 2:20 PM
LOCATION:ANKO 108
INSTRUCTOR:
Haber, Nick
3units

EDUC 234: Curiosity in Artificial Intelligence (PSYCH 240A)

3 units · Letter or Credit/No Credit

How do we design artificial systems that learn as we do early in life -- as "scientists in the crib" who explore and experiment with our surroundings? How do we make AI "curious" so that it explores without explicit external feedback? Topics draw from cognitive science (intuitive physics and psychology, developmental differences), computational theory (active learning, optimal experiment design), and AI practice (self-supervised learning, deep reinforcement learning). Students present readings and complete both an introductory computational project (e.g. train a neural network on a self-supervised task) and a deeper-dive project in either cognitive science (e.g. design a novel human subject experiment) or AI (e.g. implement and test a curiosity variant in an RL environment). Prerequisites: python familiarity and practical data science (e.g. sklearn or R).

Offered in Winter 2027 at Stanford University.

Winter 2027 sections

  • Seminar — Monday 11:30 AM – 2:20 PM — ANKO 108 — Haber, Nick (Graduate)

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