Explore the most serious prevalent ethical issues in data science
with this insightful new resource The increasing popularity of data
science has resulted in numerous well-publicized cases of bias,
injustice, and discrimination. The widespread deployment of "Black
box" algorithms that are difficult or impossible to understand and
explain, even for their developers, is a primary source of these
unanticipated harms, making modern techniques and methods for
manipulating large data sets seem sinister, even dangerous. When
put in the hands of authoritarian governments, these algorithms
have enabled suppression of political dissent and persecution of
minorities. To prevent these harms, data scientists everywhere must
come to understand how the algorithms that they build and deploy
may harm certain groups or be unfair. Responsible Data Science
delivers a comprehensive, practical treatment of how to implement
data science solutions in an even-handed and ethical manner that
minimizes the risk of undue harm to vulnerable members of society.
Both data science practitioners and managers of analytics teams
will learn how to: Improve model transparency, even for black box
models Diagnose bias and unfairness within models using multiple
metrics Audit projects to ensure fairness and minimize the
possibility of unintended harm Perfect for data science
practitioners, Responsible Data Science will also earn a spot on
the bookshelves of technically inclined managers, software
developers, and statisticians.
General
Imprint: |
John Wiley & Sons
|
Country of origin: |
United States |
Release date: |
June 2021 |
First published: |
2021 |
Authors: |
G. Fleming
|
Dimensions: |
240 x 185 x 15mm (L x W x T) |
Format: |
Paperback
|
Pages: |
304 |
ISBN-13: |
978-1-119-74175-6 |
Categories: |
Books >
Computing & IT >
Computer software packages >
General
|
LSN: |
1-119-74175-0 |
Barcode: |
9781119741756 |
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