VLDB 2026 Research / reviewers in the wild / expert
Aung Maw
dblp:252/0040
· DBLP profile ↗
6ranked-venue papers
1as first author
5since 2021 · last 2023
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 4 · 4 since 2021Systems, architecture and hardware · 1 · 1 since 2021Software engineering, systems software and programming languages · 1 · 1 since 2021Human-computer interaction and ubiquitous computing · 1 · 1 first-author
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2023 | Demo: PIEChain - A Practical Blockchain Interoperability FrameworkabstractA plethora of different blockchain platforms have emerged in recent years, but many of them operate in silos. As such, there is a need for reliable cross-chain communication to enable blockchain interoperability. Blockchain interoperability is challenging because transactions can typically not be reverted – as such, if one transaction is committed then the protocol must ensure that all related transactions are committed as well. Existing interoperability approaches, e.g., Cosmos and Polkadot, are limited in the sense that they only support interoperability between their own subchains, or require intrusive changes to existing blockchains. To overcome this limitation, we propose PIEChain, a general, Kafka-based cross-chain communication framework. We utilize PIEChain for a practical case study: a cross-chain auction in which users who hold tokens on multiple chains bid for a ticket sold on another chain. PIEChain is the first publicly available, practical implementation of a general framework for cross-chain communication. Daniël Reijsbergen, Aung Maw, Jingchi Zhang, Tien Tuan Anh Dinh, Anwitaman Datta |
ICDCS | 2 |
| 2023 | TAP: Transparent and Privacy-Preserving Data Services
Daniël Reijsbergen, Aung Maw, Zheng Yang 0001, Tien Tuan Anh Dinh, Jianying Zhou 0001 |
USENIX Security Symposium | 2 |
| 2022 | Securing Smart Grids Through an Incentive Mechanism for Blockchain-Based Data SharingabstractSmart grids leverage the data collected from smart meters to make important operational decisions. However, they are vulnerable to False Data Injection (FDI) attacks in which an attacker manipulates meter data to disrupt the grid operations. Existing works on FDI are based on a simple threat model in which a single grid operator has access to all the data, and only some meters can be compromised. Daniël Reijsbergen, Aung Maw, Tien Tuan Anh Dinh, Wen-Tai Li, Chau Yuen |
CODASPY | 2 |
| 2022 | Protecting the Integrity of IoT Sensor Data and Firmware With A Feather-Light Blockchain InfrastructureabstractSmart cities deploy large numbers of sensors and collect a tremendous amount of data from them. For example, Advanced Metering Infrastructures (AMIs), which consist of physical meters that collect usage data about public utilities such as power and water, are an important building block in a smart city. In a typical sensor network, the measurement devices are connected through a computer network, which exposes them to cyber attacks. Furthermore, the data is centrally managed at the operator’s servers, making it vulnerable to insider threats.Our goal is to protect the integrity of data collected by large-scale sensor networks and the firmware in measurement devices from cyber attacks and insider threats. To this end, we first develop a comprehensive threat model for attacks against data and firmware integrity, which can target any of the stakeholders in the operation of the sensor network. Next, we use our threat model to analyze existing defense mechanisms, including signature checks, remote firmware attestation, anomaly detection, and blockchain-based secure logs. However, the large size of the Trusted Computing Base and a lack of scalability limit the applicability of these existing mechanisms. We propose the Feather-Light Blockchain Infrastructure (FLBI) framework to address these limitations. Our framework leverages a two-layer architecture and cryptographic threshold signature chains to support large networks of low-capacity devices such as meters and data aggregators. We have fully implemented the FLBI’s end-to-end functionality on the Hyperledger Fabric and private Ethereum blockchain platforms. Our experiments show that the FLBI is able to support millions of end devices. Daniël Reijsbergen, Aung Maw, Sarad Venugopalan, Dianshi Yang, Tien Tuan Anh Dinh, Jianying Zhou 0001 |
ICBC | 2 |
| 2021 | Transparent Electricity Pricing with Privacy
Daniël Reijsbergen, Zheng Yang 0001, Aung Maw, Tien Tuan Anh Dinh, Jianying Zhou 0001 |
ESORICS (2) | 3 |
| 2019 | ICS-BlockOpS: Blockchain for operational data security in industrial control system
Aung Maw, Sridhar Adepu, Aditya P. Mathur |
Pervasive Mob. Comput. | 1 |