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Guy Barash
Guy Barash
Quai.MD , israel
Verified email at Quai.MD
Title
Cited by
Cited by
Year
Bridging the gap between ML solutions and their business requirements using feature interactions
G Barash, E Farchi, I Jayaraman, O Raz, R Tzoref-Brill, M Zalmanovici
Proceedings of the 2019 27th ACM Joint Meeting on European Software ¡K, 2019
262019
The association for the advancement of artificial intelligence 2020 workshop program
G Bang, G Barash, R Bea, J Cali, M Castillo-Effen, X Chen, N Chhaya, ...
Ai Magazine 41 (4), 100-114, 2020
52020
Defending via strategic ML selection
E Farchi, O Shehory, G Barash
arXiv preprint arXiv:1904.00737, 2019
52019
Learner-Independent Targeted Data Omission Attacks
G Barash, O Shehory, S Kraus, E Farchi
International Workshop on Engineering Dependable and Secure Machine Learning ¡K, 2020
22020
Theory and Practice of Quality Assurance for Machine Learning Systems: An Experiment-Driven Approach
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Springer Nature, 2024
12024
Theory and Practice of Quality Assurance for Machine Learning Systems
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
arXiv preprint arXiv:2201.00355, 2022
12022
Optimal Integration of the ML Solution in the Business Decision Process
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Sequential Drift Detection
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Scientific Analysis of ML Systems
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Testing Solutions Based on Large Language Models
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Drift Detection by Measuring Distribution Differences
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
A Detailed Chatbot Example
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
A Framework Analysis for Alternating Components and Drift
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Unit Test vs. System Test of ML-Based Systems
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
ML Testing
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Principles of Drift Detection and ML Solution Retraining
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Motivation and Best Practices for Machine Learning Designers and Testers
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Drift in Characterizations of Data
S Ackerman, G Barash, E Farchi, O Raz, O Shehory
Theory and Practice of Quality Assurance for Machine Learning Systems: An ¡K, 2024
2024
Software testing in the machine learning era: Special issue of the empirical Software Engineering (EMSE) journal
A Stocco, O Shehory, G Jahangirova, V Riccio, G Barash, E Farchi, ...
Empirical Software Engineering 28 (3), 74, 2023
2023
Broadly Applicable Targeted Data Sample Omission Attacks
G Barash, E Farchi, S Kraus, O Shehory
arXiv preprint arXiv:2105.01560, 2021
2021
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