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US Patent 11895264 Fraud importance system

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Contents

Is a
Patent
Patent
0

Patent attributes

Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
118952640
Patent Inventor Names
Jayaram Raghuram0
Kedar Phatak0
Date of Patent
February 6, 2024
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Patent Application Number
173659700
Date Filed
July 1, 2021
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Patent Citations
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US Patent 10045218 Anomaly detection in streaming telephone network data
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US Patent 10204374 Parallel fraud check
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US Patent 10467632 Systems and methods for a multi-tiered fraud alert review
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US Patent 10484532 System and method detecting fraud using machine-learning and recorded voice clips
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US Patent 10509890 Predictive modeling processes for healthcare fraud detection
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US Patent 10567402 Systems and methods of detecting and mitigating malicious network activity
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US Patent 10825028 Identifying fraudulent online applications
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US Patent 10958779 Machine learning dataset generation using a natural language processing technique
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Patent Primary Examiner
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Akelaw Teshale
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CPC Code
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G06Q 20/4016
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H04L 63/1433
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H04L 2463/121
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H04L 63/1416
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H04M 3/2281
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H04M 2203/556
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H04M 2203/6027
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H04M 3/5175
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Patent abstract

Embodiments described herein provide for a fraud detection engine for detecting various types of fraud at a call center and a fraud importance engine for tailoring the fraud detection operations to relative importance of fraud events. Fraud importance engine determines which fraud events are comparative more important than others. The fraud detection engine comprises machine-learning models that consume contact data and fraud importance information for various anti-fraud processes. The fraud importance engine calculates importance scores for fraud events based on user-customized attributes, such as fraud-type or fraud activity. The fraud importance scores are used in various processes, such as model training, model selection, and selecting weights or hyper-parameters for the ML models, among others. The fraud detection engine uses the importance scores to prioritize fraud alerts for review. The fraud importance engine receives detection feedback, which contacts involved false negatives, where fraud events were undetected but should have been detected.

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