Growing community of inventors

Campbell, CA, United States of America

Changsha Ma

Average Co-Inventor Count = 7.67

ph-index = 1

The patent ph-index is calculated by counting the number of publications for which an author has been cited by other authors at least that same number of times.

Forward Citations = 5

Changsha MaHowie Xu (9 patents)Changsha MaRex Shang (9 patents)Changsha MaDianhuan Lin (7 patents)Changsha MaNarinder Paul (6 patents)Changsha MaShashank Gupta (6 patents)Changsha MaParnit Sainion (5 patents)Changsha MaDouglas A Koch (5 patents)Changsha MaDeepen Desai (4 patents)Changsha MaTarun Dewan (2 patents)Changsha MaVisvanathan Thothathri (2 patents)Changsha MaKevin Guo (2 patents)Changsha MaBharath Kumar (2 patents)Changsha MaBharath Meesala (2 patents)Changsha MaUday Pratap Singh (2 patents)Changsha MaNaveen Selvan (2 patents)Changsha MaNirmal Singh (2 patents)Changsha MaRakshitha Hedge (2 patents)Changsha MaDong Guo (1 patent)Changsha MaChangsha Ma (9 patents)Howie XuHowie Xu (10 patents)Rex ShangRex Shang (10 patents)Dianhuan LinDianhuan Lin (9 patents)Narinder PaulNarinder Paul (33 patents)Shashank GuptaShashank Gupta (12 patents)Parnit SainionParnit Sainion (7 patents)Douglas A KochDouglas A Koch (5 patents)Deepen DesaiDeepen Desai (17 patents)Tarun DewanTarun Dewan (3 patents)Visvanathan ThothathriVisvanathan Thothathri (2 patents)Kevin GuoKevin Guo (2 patents)Bharath KumarBharath Kumar (2 patents)Bharath MeesalaBharath Meesala (2 patents)Uday Pratap SinghUday Pratap Singh (2 patents)Naveen SelvanNaveen Selvan (2 patents)Nirmal SinghNirmal Singh (2 patents)Rakshitha HedgeRakshitha Hedge (2 patents)Dong GuoDong Guo (5 patents)
..
Inventor’s number of patents
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Strength of working relationships

Company Filing History:

1. Zscaler, Inc. (9 from 321 patents)


9 patents:

1. 12493691 - Utilizing machine learning for smart quarantining of potentially malicious files

2. 12174956 - Pattern similarity measures to quantify uncertainty in malware classification

3. 12111928 - Utilizing machine learning to detect malicious executable files efficiently and effectively

4. 11861472 - Machine learning model abstraction layer for runtime efficiency

5. 11803641 - Utilizing Machine Learning to detect malicious executable files efficiently and effectively

6. 11785022 - Building a Machine Learning model without compromising data privacy

7. 11755726 - Utilizing machine learning for smart quarantining of potentially malicious files

8. 11669779 - Prudent ensemble models in machine learning with high precision for use in network security

9. 11475368 - Machine learning model abstraction layer for runtime efficiency

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as of
12/24/2025
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