TY - JOUR
T1 - PlainDrop
T2 - Practical Asynchronous Proactive Secret Sharing With Silent Setup
AU - Yang, Yang
AU - Li, Bingyu
AU - Liu, Qi
AU - Wang, Qin
AU - Wu, Qianhong
AU - Qin, Bo
AU - Susilo, Willy
N1 - Publisher Copyright:
© 2014 IEEE.
PY - 2026
Y1 - 2026
N2 - Dynamic proactive secret sharing (DPSS) is essential for distributed systems, enabling long-term key escrow, BFT protocol reconfiguration, and confidential state machine replication. Yet existing asynchronous schemes, while crucial for realistic settings, suffer from high communication overhead and poor practicality, limiting real-world deployment. We propose PlainDrop, a concise and efficient DPSS protocol designed specifically for asynchronous networks. PlainDrop achieves optimized communication complexity of O(n2) via commitment-share decoupling combined with homomorphic threshold encryption techniques. PlainDrop also eliminates the need for expensive distributed key generation (DKG) and complex bivariate polynomial structures by introducing a lightweight silent setup framework and employing direct share processing based on univariate polynomials. We formally prove that PlainDrop provides secrecy, integrity, and termination in asynchronous networks against a mobile adversary corrupting up to one third of the parties. We implement PlainDrop and evaluate it on Amazon EC2 with up to 100 nodes. Our experimental results demonstrate average reductions of 37% and 67% in completion time, and 61% and 89% in communication volume, compared to DyCAPS and LongLive, respectively.
AB - Dynamic proactive secret sharing (DPSS) is essential for distributed systems, enabling long-term key escrow, BFT protocol reconfiguration, and confidential state machine replication. Yet existing asynchronous schemes, while crucial for realistic settings, suffer from high communication overhead and poor practicality, limiting real-world deployment. We propose PlainDrop, a concise and efficient DPSS protocol designed specifically for asynchronous networks. PlainDrop achieves optimized communication complexity of O(n2) via commitment-share decoupling combined with homomorphic threshold encryption techniques. PlainDrop also eliminates the need for expensive distributed key generation (DKG) and complex bivariate polynomial structures by introducing a lightweight silent setup framework and employing direct share processing based on univariate polynomials. We formally prove that PlainDrop provides secrecy, integrity, and termination in asynchronous networks against a mobile adversary corrupting up to one third of the parties. We implement PlainDrop and evaluate it on Amazon EC2 with up to 100 nodes. Our experimental results demonstrate average reductions of 37% and 67% in completion time, and 61% and 89% in communication volume, compared to DyCAPS and LongLive, respectively.
KW - Asynchronous
KW - dynamic committee
KW - proactive secret sharing (PSS)
KW - threshold encryption
UR - https://www.scopus.com/pages/publications/105024451790
U2 - 10.1109/JIOT.2025.3641700
DO - 10.1109/JIOT.2025.3641700
M3 - 文章
AN - SCOPUS:105024451790
SN - 2327-4662
VL - 13
SP - 8853
EP - 8867
JO - IEEE Internet of Things Journal
JF - IEEE Internet of Things Journal
IS - 5
ER -