TY - GEN
T1 - LSDBFT
T2 - 21st International Conference on Information Security and Cryptology, Inscrypt 2025
AU - Zhuang, Chaofeng
AU - Qian, Haifeng
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2026.
PY - 2026
Y1 - 2026
N2 - The expansion of the blockchain scale puts higher demands on the parallel performance of distributed consistency algorithms. In recent years, protocols represented by Tusk have driven the development of Byzantine fault tolerant (BFT) protocols by integrating directed acyclic graph (DAG). These protocols divide consensus into communication layer and ordering layer, enabling parallel execution of block broadcasting and agreements in the expectation of increased throughput. However, traditional DAG-based BFT protocols require nodes to deliver a sufficient number of peer broadcast blocks before broadcasting a new block, which actually limits parallel performance. In addition, they uses the leader block to commit all blocks, which is unfair to slow progressing nodes as their blocks are excluded by consensus. To address these challenges, we propose LSDBFT, a novel asynchronous BFT protocol that redefines the communication and ordering layers for improved scalability and fairness. The communication layer of LSDBFT employs a loose DAG structure where each node broadcasts blocks at its own pace through sequential provable broadcasts (PBs), eliminating the cross-node synchronization delays inherent in the traditional DAG reference mechanism. The ordering layer leverages an asynchronous binary agreement (ABA) protocol to establish a fair total ordering of blocks, ensuring equitable commitment even for slow-progressing nodes. Unlike leader-centric approaches, LSDBFT’s ABA-driven mechanism avoids favoring specific nodes, enhancing decentralization. We prove the security of the LSDBFT protocol and verify its efficiency through experimental evaluation. In conclusion, LSDBFT advances the application of distributed consensus algorithms in high-throughput environments by harmonizing parallelism with fair block ordering.
AB - The expansion of the blockchain scale puts higher demands on the parallel performance of distributed consistency algorithms. In recent years, protocols represented by Tusk have driven the development of Byzantine fault tolerant (BFT) protocols by integrating directed acyclic graph (DAG). These protocols divide consensus into communication layer and ordering layer, enabling parallel execution of block broadcasting and agreements in the expectation of increased throughput. However, traditional DAG-based BFT protocols require nodes to deliver a sufficient number of peer broadcast blocks before broadcasting a new block, which actually limits parallel performance. In addition, they uses the leader block to commit all blocks, which is unfair to slow progressing nodes as their blocks are excluded by consensus. To address these challenges, we propose LSDBFT, a novel asynchronous BFT protocol that redefines the communication and ordering layers for improved scalability and fairness. The communication layer of LSDBFT employs a loose DAG structure where each node broadcasts blocks at its own pace through sequential provable broadcasts (PBs), eliminating the cross-node synchronization delays inherent in the traditional DAG reference mechanism. The ordering layer leverages an asynchronous binary agreement (ABA) protocol to establish a fair total ordering of blocks, ensuring equitable commitment even for slow-progressing nodes. Unlike leader-centric approaches, LSDBFT’s ABA-driven mechanism avoids favoring specific nodes, enhancing decentralization. We prove the security of the LSDBFT protocol and verify its efficiency through experimental evaluation. In conclusion, LSDBFT advances the application of distributed consensus algorithms in high-throughput environments by harmonizing parallelism with fair block ordering.
KW - Asynchronous binary agreement
KW - Broadcast
KW - Byzantine fault tolerant
KW - Directed acyclic graph
KW - Fair ordering
UR - https://www.scopus.com/pages/publications/105028317690
U2 - 10.1007/978-981-95-6203-9_22
DO - 10.1007/978-981-95-6203-9_22
M3 - 会议稿件
AN - SCOPUS:105028317690
SN - 9789819562022
T3 - Lecture Notes in Computer Science
SP - 410
EP - 430
BT - Information Security and Cryptology - 21st International Conference, Inscrypt 2025, Revised Selected Papers
A2 - Chen, Rongmao
A2 - Deng, Robert H.
A2 - Yung, Moti
PB - Springer Science and Business Media Deutschland GmbH
Y2 - 19 October 2025 through 22 October 2025
ER -