New York, NY, United States of America

Lauren Capelluto


Average Co-Inventor Count = 4.0

ph-index = 1


Company Filing History:


Years Active: 2025

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1 patent (USPTO):Explore Patents

Title: Lauren Capelluto: Innovator in Quantum Programming

Introduction

Lauren Capelluto is a prominent inventor based in New York, NY (US). She has made significant contributions to the field of quantum programming, particularly in error mitigation techniques. Her innovative work is paving the way for advancements in quantum computing.

Latest Patents

Lauren holds a patent titled "Error mitigation in a quantum program." This patent focuses on embodiments for error mitigation in quantum programs. In her invention, a system includes a processor that executes computer-executable components stored in memory. These components consist of a noise assessment component that identifies a noise condition of a qubit device based on a noise property of quantum hardware. The qubit device is represented in a quantum program executable on the noisy quantum hardware. Additionally, the components include a compilation component that modifies the quantum program by inserting a defined sequence of error-mitigating operations based on the identified noise condition. This innovative approach enhances the reliability of quantum computations.

Career Highlights

Lauren is currently employed at International Business Machines Corporation, commonly known as IBM. Her role at IBM allows her to work on cutting-edge technologies in quantum computing. With her expertise, she is contributing to the development of more robust quantum systems.

Collaborations

Lauren collaborates with talented individuals in her field, including Daniel Josef Egger and Naoki Kanazawa. These collaborations foster a creative environment that drives innovation in quantum programming.

Conclusion

Lauren Capelluto's work in error mitigation for quantum programs exemplifies her commitment to advancing technology in the quantum computing realm. Her contributions are vital for the future of reliable quantum systems.

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