Age, Biography and Wiki

Shlomo Argamon was born on 1967, is a Computer scientist and forensic linguist. Discover Shlomo Argamon's Biography, Age, Height, Physical Stats, Dating/Affairs, Family and career updates. Learn How rich is he in this year and how he spends money? Also learn how he earned most of networth at the age of 57 years old?

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Occupation Artificial Intelligence, Computational linguistics
Age 57 years old
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Born 1967
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Shlomo Argamon Height, Weight & Measurements

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He is currently single. He is not dating anyone. We don't have much information about He's past relationship and any previous engaged. According to our Database, He has no children.

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Shlomo Argamon Net Worth

His net worth has been growing significantly in 2023-2024. So, how much is Shlomo Argamon worth at the age of 57 years old? Shlomo Argamon’s income source is mostly from being a successful Computer. He is from . We have estimated Shlomo Argamon's net worth, money, salary, income, and assets.

Net Worth in 2024 $1 Million - $5 Million
Salary in 2024 Under Review
Net Worth in 2023 Pending
Salary in 2023 Under Review
House Not Available
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Source of Income Computer

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Shlomo Argamon is an American/Israeli computer scientist and forensic linguist.

He is currently the

associate provost for artificial intelligence and professor of computer science at Touro University.

Shlomo Argamon received his B.S. in applied mathematics from Carnegie-Mellon University and his MPhil and Ph.D. in computer science from Yale University, supervised by Drew McDermott.

He spent two years doing postdoctoral research under a Fulbright Foundation fellowship with Sarit Kraus at Bar-Ilan University in Ramat Gan, Israel.

1990

Since the late 1990s, Argamon has worked primarily on computational linguistics and machine learning, focusing on the analysis of non-denotational meaning, including computational analysis of language stylistics, sentiment analysis, and metaphor analysis.

He has also published well-cited research on active learning (machine learning), metalearning, and robotic mapping.

Argamon is best known for his work on computational stylistics, particularly author profiling.

Together with Moshe Koppel and others, he has shown how statistical analysis of word usage can determine an author's age, sex, native language, and personality type with high accuracy in English-language texts.

His work has also shown how textual features indicating differences between male and female authorship are consistent between languages and across time.

He has also developed computational stylistic methods that provide insights into the meaning of stylistic differences.

One of Argamon's key innovations for this purpose is the development of computational stylistic analysis using systemic functional linguistics.

For example, together with Jeff Dodick and Paul Chase, he examined whether there are clear and consistent differences between scientific method in experimental sciences and historical sciences.

Their work showed how using systemic functional features in computational stylistic analysis provides evidence for multiple scientific methodologies of the sorts posited previously by philosophers of science.

Argamon has also pushed for the increased use of linguistic analysis for attribution of cybersecurity attacks.

He has pointed out how linguistic attribution techniques can often be used to good effect on natural language texts that arise in different attack scenarios, and has provided analyses for high-profile cases such as the Sony Pictures hack, the Democratic National Committee cyber attacks, and the Shadow Brokers NSA leak.

2013

In 2013, Argamon founded the Illinois Institute of Technology Master of Data Science program, which he directed until 2019.

The program seeks to teach students "to think about the real problems that need to be solved, not to simply find technical solutions."

Argamon views data scientists as "sensemakers", whose job is not merely to produce analytic results, but to help their clients make sense of a complex, uncertain, and fast-changing world through rigorous analysis and explanation of the data.