Carleton University · SYSC 4415

Introduction to Machine Learning

Credits : 0.5 creditReference year : 2026-27

Description

Introduction to supervised and unsupervised machine learning (ML), including deeper knowledge of several algorithms of each type. Evaluation and quantification of predictive performance of ML systems. Use of one or more ML development environments.

Prerequisites

  • Prerequisite(s): ( ECOR 2050 or STAT 3502 or STAT 2605 or SYSC 2510 ), ( SYSC 1006 or SYSC 2006 ) and third year standing.

Conditions and arrangements

  • Precludes additional credit for Precludes additional credit for COMP 3105 , COMP 4105 (no longer offered).
  • Prerequisite(s): ( ECOR 2050 or STAT 3502 or STAT 2605 or SYSC 2510 ), ( SYSC 1006 or SYSC 2006 ) and third year standing.
  • Lectures three hours a week, problem analysis one hour a week.
Reference text in its original language

Introduction to supervised and unsupervised machine learning (ML), including deeper knowledge of several algorithms of each type. Evaluation and quantification of predictive performance of ML systems. Use of one or more ML development environments.

  • Prerequisite(s): ( ECOR 2050 or STAT 3502 or STAT 2605 or SYSC 2510 ), ( SYSC 1006 or SYSC 2006 ) and third year standing.
  • Precludes additional credit for Precludes additional credit for COMP 3105 , COMP 4105 (no longer offered).
  • Lectures three hours a week, problem analysis one hour a week.

Sources and references

Dates and sources are retained to help you verify the information. Translations are provided to facilitate reading; the official source governs conditions and requirements.

Source reference : https://calendar.carleton.ca/undergrad/courses/SYSC/

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