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DASC: Data Science

120-01
Introduction to Computational Statistics
 
Online
S. Berg
LAIBEdTrnCore 
05/27 - 07/09
30/29/0
Lecture
CRN 30077
4 Cr.
Size: 30
Enrolled: 29
Waitlisted: 0
05/27 - 07/09
M T W Th F Sa Su
             
+ asynchronous coursework

Subject: Data Science (DASC)

CRN: 30077

Online: Asynchronous | Lecture

Online

Core Requirements Met:
     [Core] Quant Analysis

Other Requirements Met:
     Liberal Arts Bus Minor Appr
     School of Ed Transfer Course

  Sergey Berg

**You must register inked Lecture, DASC 120-1 (30077) and Lab 120-51 (30078) together.** This course is composed of an in-depth study of the processes through which statistics can be used to learn about environments and events. There will be an intensive focus on the application, analysis, interpretation, and presentation of both descriptive and inferential statistics in a variety of real world contexts. Topics include data collection, research design, data visualization, sampling distributions, confidence intervals and hypothesis testing, inference for one and two samples, chi-square tests for goodness of fit and association, analysis of variance, and simple and multiple linear regression. Extensive data analysis using modern statistical software is an essential component of this course. Prerequisites: Math placement at level of MATH 108 or above; or completion of MATH 006, 007, 100, 101, 103, 104, 105, 107, 108, 111, or 113. NOTE1: Students who receive credit for DASC 120 may not receive credit for DASC 111 or DASC 112.

4 Credits

120-02
Introduction to Computational Statistics
 
Online
S. Berg
LAIBEdTrnCore 
05/27 - 07/09
30/27/0
Lecture
CRN 30491
4 Cr.
Size: 30
Enrolled: 27
Waitlisted: 0
05/27 - 07/09
M T W Th F Sa Su
             
+ asynchronous coursework

Subject: Data Science (DASC)

CRN: 30491

Online: Asynchronous | Lecture

Online

Core Requirements Met:
     [Core] Quant Analysis

Other Requirements Met:
     Liberal Arts Bus Minor Appr
     School of Ed Transfer Course

  Sergey Berg

**You must register inked Lecture, DASC 120-2 (30491) and Lab 120-52 (30492) together.** This course is composed of an in-depth study of the processes through which statistics can be used to learn about environments and events. There will be an intensive focus on the application, analysis, interpretation, and presentation of both descriptive and inferential statistics in a variety of real world contexts. Topics include data collection, research design, data visualization, sampling distributions, confidence intervals and hypothesis testing, inference for one and two samples, chi-square tests for goodness of fit and association, analysis of variance, and simple and multiple linear regression. Extensive data analysis using modern statistical software is an essential component of this course. Prerequisites: Math placement at level of MATH 108 or above; or completion of MATH 006, 007, 100, 101, 103, 104, 105, 107, 108, 111, or 113. NOTE1: Students who receive credit for DASC 120 may not receive credit for DASC 111 or DASC 112.

4 Credits

120-51
Intro. to Comp. Stat. / Lab
 
Online
S. Berg
LAIBEdTrnCore 
05/27 - 07/09
30/29/0
Lab
CRN 30078
0 Cr.
Size: 30
Enrolled: 29
Waitlisted: 0
05/27 - 07/09
M T W Th F Sa Su
             
+ asynchronous coursework

Subject: Data Science (DASC)

CRN: 30078

Online: Asynchronous | Lab

Online

Core Requirements Met:
     [Core] Quant Analysis

Other Requirements Met:
     Liberal Arts Bus Minor Appr
     School of Ed Transfer Course

  Sergey Berg

This course is composed of an in-depth study of the processes through which statistics can be used to learn about environments and events. There will be an intensive focus on the application, analysis, interpretation, and presentation of both descriptive and inferential statistics in a variety of real world contexts. Topics include data collection, research design, data visualization, sampling distributions, confidence intervals and hypothesis testing, inference for one and two samples, chi-square tests for goodness of fit and association, analysis of variance, and simple and multiple linear regression. Extensive data analysis using modern statistical software is an essential component of this course. Prerequisites: Math placement at level of MATH 108 or above; or completion of MATH 006, 007, 100, 101, 103, 104, 105, 107, 108, 111, or 113. NOTE: Students who receive credit for DASC 120 may not receive credit for DASC 111 or DASC 112.

0 Credits

120-52
Intro. to Comp. Stat. / Lab
 
Online
S. Berg
LAIBEdTrnCore 
05/27 - 07/09
30/27/0
Lab
CRN 30492
0 Cr.
Size: 30
Enrolled: 27
Waitlisted: 0
05/27 - 07/09
M T W Th F Sa Su
             
+ asynchronous coursework

Subject: Data Science (DASC)

CRN: 30492

Online: Asynchronous | Lab

Online

Core Requirements Met:
     [Core] Quant Analysis

Other Requirements Met:
     Liberal Arts Bus Minor Appr
     School of Ed Transfer Course

  Sergey Berg

**You must register inked Lecture, DASC 120-2 (30491) and Lab 120-52 (30492) together.** This course is composed of an in-depth study of the processes through which statistics can be used to learn about environments and events. There will be an intensive focus on the application, analysis, interpretation, and presentation of both descriptive and inferential statistics in a variety of real world contexts. Topics include data collection, research design, data visualization, sampling distributions, confidence intervals and hypothesis testing, inference for one and two samples, chi-square tests for goodness of fit and association, analysis of variance, and simple and multiple linear regression. Extensive data analysis using modern statistical software is an essential component of this course. Prerequisites: Math placement at level of MATH 108 or above; or completion of MATH 006, 007, 100, 101, 103, 104, 105, 107, 108, 111, or 113. NOTE1: Students who receive credit for DASC 120 may not receive credit for DASC 111 or DASC 112.

0 Credits

MATH: Mathematics

101-01
Finite Mathematics
 
MTWR 9:00 am - 11:00 am
N. Harding
Core 
05/27 - 07/09
28/12/0
Lecture
CRN 30189
4 Cr.
Size: 28
Enrolled: 12
Waitlisted: 0
05/27 - 07/09
M T W Th F Sa Su

9:00 am
11:00 am
OSS 127

9:00 am
11:00 am
OSS 127

9:00 am
11:00 am
OSS 127

9:00 am
11:00 am
OSS 127

     

Subject: Mathematics (MATH)

CRN: 30189

In Person | Lecture

St Paul: O'Shaughnessy Science Hall 127

Core Requirements Met:
     [Core] Quant Analysis

  Nathan Harding

Elementary set theory, linear equations and matrices, linear programming (optional), finite probability, applications primarily in business and the social sciences. Offered Fall, J-Term, Spring and Summer. 

4 Credits

109-01
Calculus with Review II
 
MTWR 9:00 am - 11:00 am
J. Gleason
ESCICore 
07/13 - 08/20
20/5/0
Lecture
CRN 30191
4 Cr.
Size: 20
Enrolled: 5
Waitlisted: 0
07/13 - 08/20
M T W Th F Sa Su

9:00 am
11:00 am
OSS 226

9:00 am
11:00 am
OSS 226

9:00 am
11:00 am
OSS 226

9:00 am
11:00 am
OSS 226

     

Subject: Mathematics (MATH)

CRN: 30191

In Person | Lecture

St Paul: O'Shaughnessy Science Hall 226

Core Requirements Met:
     [Core] Quant Analysis

Other Requirements Met:
     Environmental Sci. Major Appr

  Jolene Gleason

The second course of a two-course sequence designed to integrate introductory calculus material with the algebraic and trigonometric topics necessary to support that study. Review topics include: exponential and logarithmic functions, trigonometric functions and their inverses and associated graphs. Calculus topics include: derivatives of the transcendental functions, applications of those derivatives and an introduction to integration. Prerequisite: a grade of C- or better in MATH 108. NOTE: Students who receive credit for MATH 109 may not receive credit for MATH 103, 104, 105, 111, or 113.

4 Credits

109-02
Calculus with Review II
 
MTWR 9:00 am - 11:00 am
A. Dass
ESCICore 
07/13 - 08/20
20/17/0
Lecture
CRN 30520
4 Cr.
Size: 20
Enrolled: 17
Waitlisted: 0
07/13 - 08/20
M T W Th F Sa Su

9:00 am
11:00 am
OSS 227

9:00 am
11:00 am
OSS 227

9:00 am
11:00 am
OSS 227

9:00 am
11:00 am
OSS 227

     

Subject: Mathematics (MATH)

CRN: 30520

In Person | Lecture

St Paul: O'Shaughnessy Science Hall 227

Core Requirements Met:
     [Core] Quant Analysis

Other Requirements Met:
     Environmental Sci. Major Appr

  Andy Dass

The second course of a two-course sequence designed to integrate introductory calculus material with the algebraic and trigonometric topics necessary to support that study. Review topics include: exponential and logarithmic functions, trigonometric functions and their inverses and associated graphs. Calculus topics include: derivatives of the transcendental functions, applications of those derivatives and an introduction to integration. Prerequisite: a grade of C- or better in MATH 108. NOTE: Students who receive credit for MATH 109 may not receive credit for MATH 103, 104, 105, 111, or 113.

4 Credits


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