Xiaodong Qi

dblp:24/4160 · DBLP profile ↗
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11ranked-venue papers in the field
4as first author
10since 2021 · last 2026
0000-0002-2899-8656ORCID · corroborated

Domains — venue-derived; a paper can count in several

Database Systems & Data Management · 10 (4 first)Other / Interdisciplinary · 1
YearPublicationVenuePosition
2026 Chubby: Robust Smart Contract Execution Against Dependency Over-Declaration
Junyu Wei, Xiaodong Qi, Qifeng Que, Zhao Zhang 0009, Yanqin Yang, Cheqing Jin
ICDE2
2026 BlockSketch: A Hybrid Tree-Based Sketch for Keyword Search in Blockchain Systems
abstract
Abstract Keyword search, which identifies transactions associated with specified keywords across historical blocks, is a critical query type in blockchain analytics. However, existing approaches, such as on-chain indexing and off-chain synchronization, may lead to significant space overhead or challenges in maintaining data freshness. To address these challenges, we propose BlockSketch, a novel probabilistic data structure (PDS) that adopts a differentiated encoding strategy, aimed at resolving the trade-off between query performance and storage overhead in blockchain indexing. BlockSketch features a hierarchical filtering architecture that combines Bloom filters and Sketches within a binary tree framework, enabling dynamic structural maintenance. Keywords are categorized as “hot” or “cold” based on their on-chain frequency and encoded into the most suitable component to achieve resource-efficient storage and accurate querying. In addition, BlockSketch integrates two distinct query rules, namely “level-down” and “jump,” to balance query accuracy and efficiency when processing keywords with varying frequencies. Furthermore, we enhance the query efficiency of BlockSketch by merging inefficient lower-level nodes into more compact ones and pruning redundant node checks during query execution. Extensive experiments on a real-world dataset demonstrate that BlockSketch delivers up to 73% faster query processing, achieves 44.56% of the average false positive rate of baselines at low multiplicity and as low as 1.52% at high multiplicity, and saves 79% in storage compared to state-of-the-art methods.
Xiaodong Qi, Yanqin Yang, Cheqing Jin, Aoying Zhou
Data Sci. Eng.2
2025 Loom: A Deterministic Execution Framework Towards Nested Contract Transactions
abstract
Smart contracts have expanded blockchain applications, but permissioned blockchain systems face severe through-put challenges, especially with the increasing complexity of nested contract transactions. These transactions, involving cross-contract interactions and deep call chains, intensify execution conflicts and rollback overhead, ultimately limiting parallelism. We propose Loom, a deterministic execution framework that enhances the efficiency of nested contract transactions. Loom employs snapshot-based concurrent pre-execution to decompose transactions into fine-grained subtransactions. To reduce rollback overhead, it introduces a two-phase rollback algorithm to minimize computational redundancy and fine-grained rescheduling to improve subtransaction-level parallelism during re-execution. Additionally, a multi-phase parallelism mechanism optimizes resource utilization across transaction blocks. Experimental results show that Loom achieves 6.1 × to$10.2\times$higher throughput while reducing rollback overhead by 89.9% to 98.4%, significantly outperforming state-of-the-art solutions.
Xiaodong Qi, Haibo Tang, Zhao Zhang 0009, Cheqing Jin, Aoying Zhou
ICDE2
2023 SChain: Scalable Concurrency over Flexible Permissioned Blockchain
abstract
Permissioned blockchains are being widely applied to solve the trust problem in enterprise collaboration. However, most of these systems suffer from low throughput and flexibility lacking issues. In this paper, we present a blockchain system SChain with scalable concurrent execution based on a flexible architecture. SChain separates the functionality of a complete "node" into three sub-functions and assigns them to different peers within every organization. Then each organization can scale each sub-function flexibly with no need for negotiation between organizations. Based on this architecture, SChain explores scalable concurrent execution from two levels. First, SChain takes the advantage of multiple peers to execute transactions collectively, while promising they make the same results as one peer does serially. Second, SChain enables concurrent transaction execution across blocks to utilize the resources of peers fully, breaking up the block-by-block process manner, based on a pipelined workflow. The extensive evaluation results demonstrate that SChain significantly outperforms the serial execution and other competing systems-level approaches.
Xiaodong Qi, Zhihao Chen 0003, Haizhen Zhuo, Quanqing Xu, Chengyu Zhu, Zhao Zhang 0002, Cheqing Jin, Aoying Zhou, Ying Yan 0002, Hui Zhang 0002
ICDE1
2022 BlockOPE: Efficient Order-Preserving Encryption for Permissioned Blockchain
abstract
Permissioned blockchain is increasingly being used as a collaborative platform for sharing data. However, current blockchain-based data sharing is unable to balance privacy pro-tection and query functionality, limiting its application scenarios. Order-preserving encryption/encoding (OPE) allows encrypting data to prevent privacy leakage while still supporting efficient order-oriented queries on ciphertexts. But existing OPE schemes are constrained by limited use cases and inherent performance limitations that make them difficult to be adopted by permissioned blockchain where performance is a major concern. In this paper, we present BlockOPE, an efficient OPE scheme designed around the first study integrating OPE into blockchain systems. By supporting parallel processing with a conflict-reducing design, we argue that BlockOPE is feasible for permissioned blockchain, achieving orders-of-magnitude performance improvement while preserving the ideal OPE security. Additionally, we improve query processing by leveraging an adaptive lightweight client cache. Extensive experiment results and theoretical analysis illustrate the practicability of our approach.
Zhihao Chen 0003, Xiaodong Qi, Zhao Zhang 0009, Cheqing Jin, Aoying Zhou
ICDE3
2022 A High Performance Concurrency Protocol for Smart Contracts of Permissioned Blockchain
abstract
Although the emergence of the programmable smart contract makes blockchain systems easily embrace a wide range of industrial services, how to execute smart contracts efficiently becomes a big challenge nowadays. Due to the existence of Byzantine nodes, existing mature concurrency control protocols in database cannot be employed directly, since the mechanism of executing smart contracts varies a lot. Furthermore, even though smart contract execution follows a two-phase style, i.e., the primary node executes a batch of smart contracts in the first phase and the validators replay them in the second phase, existing parallel solutions merely focus on the optimization for the first phase, rather than the second phase. In this paper, we propose a novel two-phase concurrency control protocol to optimize both phases for the first time. First, the primary executes transactions in parallel and generates a transaction dependency graph with high parallelism for validators. Then, a graph partition algorithm is devised to divide the original graph into several sub-graphs to preserve parallelism and reduce communication cost remarkably. Finally, we propose a deterministic replay protocol to re-execute the primary’s parallel schedule concurrently. Moreover, this two-phase protocol is further optimized by integrating with PBFT. Theoretical analysis and extensive experimental results illustrate that the proposed scheme outperforms state-of-art solutions significantly.
Cheqing Jin, Shuaifeng Pang, Xiaodong Qi, Zhao Zhang 0009, Aoying Zhou
IEEE Trans. Knowl. Data Eng.3
2021 PEEP: A Parallel Execution Engine for Permissioned Blockchain Systems
Zhihao Chen 0003, Xiaodong Qi, Xiaofan Du, Zhao Zhang 0002, Cheqing Jin
DASFAA (3)2
2021 A Byzantine Fault Tolerant Storage for Permissioned Blockchain
abstract
The full-replication data storage mechanism, as commonly utilized in existing blockchains, suffers from poor scalability, since it requires every node to preserve a complete copy of the whole block data locally to tolerant potential Byzantine failures. In a hostile environment, the malicious node may discard or tamper data deliberately. Thus, existing distributed storage method, which partitions data into multiple parts and distributes them over all nodes, cannot suit for blockchains. This demonstration showcases BFT-Store, a novel distributed storage engine for blockchains to break full-replication by integrating erasure coding with Byzantine Fault Tolerance (BFT) consensus protocol. This demonstration will (\romannumeral1) allow audience members to see how BFT-Store partitions block data over all nodes to reduce the storage occupation of system, and (\romannumeral2) allow audience members to see how BFT-Store recovers blocks under distributed scenario even with Byzantine failure.
Xiaodong Qi, Zhihao Chen 0003, Zhao Zhang 0009, Cheqing Jin, Aoying Zhou, Haizhen Zhuo, Quangqing Xu
SIGMOD Conference1
2021 SChain: A Scalable Consortium Blockchain Exploiting Intra- and Inter-Block Concurrency
abstract
We demonstrate SChain, a consortium blockchain that scales transaction processing to support large-scale enterprise applications. The unique advantage of SChain stems from the exploitation of both intra- and inter-block concurrency. The intra-block concurrency not only takes advantage of the multi-core processor on a single peer but also leverages the capacity of multiple peers. The interblock concurrency enables simultaneous processing across multiple blocks to increase the utilization of various peers. In our demonstration, we use real-time dashboards containing visualization based on the output of SChain to give the attendees interactive explorations of how SChain achieves intra- and inter-block concurrency.
Zhihao Chen 0003, Haizhen Zhuo, Quanqing Xu, Xiaodong Qi, Chengyu Zhu, Zhao Zhang 0009, Cheqing Jin, Aoying Zhou, Ying Yan 0002, Hui Zhang 0002
Proc. VLDB Endow.4
2021 A Reliable Storage Partition for Permissioned Blockchain
abstract
The full-replication data storage mechanism, as commonly utilized in existing blockchains, is the barrier to the system's scalability, since it retains a copy of entire blockchain at each node so that the overall storage consumption per block is O(n) with n participants. Yet another drawback is that this mechanism may limit the throughput in permissioned blockchain. Moreover, due to the existence of Byzantine nodes, existing partitioning methods, though widely adopted in distributed systems for decades, cannot suit for blockchain systems directly, so that it is critical to devise new storage mechanism for blockchain systems. This article proposes a novel storage engine, called BFT-Store, to enhance storage scalability by integrating erasure coding with Byzantine Fault Tolerance (BFT) consensus protocol. The first property of BFT-store is that the storage consumption per block can be reduced to O(1) for the first time, which enlarges overall storage capability when more nodes attend the blockchain. Second, we design an efficient online re-encoding protocol for storage scale-out and a hybrid replication scheme to enhance reading performance. Analysis in theory and extensive experimental results illustrate the scalability, availability and efficiency of BFT-Store via the implementation in an open-source permissioned blockchain Tendermint.
Xiaodong Qi, Zhao Zhang 0009, Cheqing Jin, Aoying Zhou
IEEE Trans. Knowl. Data Eng.1
2020 BFT-Store: Storage Partition for Permissioned Blockchain via Erasure Coding
abstract
The full-replication data storage mechanism, as commonly utilized in existing blockchain systems, is lack of sufficient storage scalability, since it reserves a copy of the whole block data in each node so that the overall storage consumption per block is O(n) with n nodes. Moreover, due to the existence of Byzantine nodes, existing partitioning methods, though widely adopted in distributed systems for decades, cannot suit for blockchain systems directly, thereby it is critical to devise a new storage mechanism. This paper proposes a novel storage engine, called BFT-Store, to enhance storage scalability by integrating erasure coding with Byzantine Fault Tolerance (BFT) consensus protocol. First, the storage consumption per block can be reduced to O(1), which enlarges overall storage capability when more nodes join blockchain. Second, an efficient online re-encoding protocol is designed for storage scale-out and a hybrid replication scheme is employed to improve reading performance. Last, extensive experimental results illustrate the scalability, availability and efficiency of BFT-Store, which is implemented on an open-source permissioned blockchain Tendermint.
Xiaodong Qi, Zhao Zhang 0009, Cheqing Jin, Aoying Zhou
ICDE1