Haoran Zhang 0009

dblp:95/4452-9 · DBLP profile ↗
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6ranked-venue papers
3as first author
5since 2021 · last 2024
0000-0002-5759-5637ORCID · conflict

Domains — the database's venue-derived domains; a paper can count in several

Software engineering, systems software and programming languages · 4 · 1 first-author · 3 since 2021Computer networks · 1 · 1 first-author · 1 since 2021Databases, data management, data science and information retrieval · 1 · 1 first-author · 1 since 2021
YearPublicationVenuePosition
2024 MuCache: A General Framework for Caching in Microservice Graphs
Haoran Zhang 0009, Konstantinos Kallas, Spyros Pavlatos, Rajeev Alur, Sebastian Angel, Vincent Liu 0001
NSDI1
2024 Beaver: Practical Partial Snapshots for Distributed Cloud Services
Liangcheng Yu, Haoran Zhang 0009, John Sonchack, Dan R. K. Ports, Vincent Liu 0001
OSDI3
2024 CausalMesh: A Causal Cache for Stateful Serverless Computing
abstract
Stateful serverless workflows consist of multiple serverless functions that access state on a remote database. Developers sometimes add a cache layer between the serverless runtime and the database to improve I/O latency. However, in a serverless environment, functions in the same workflow may be scheduled to different nodes with different caches, which can cause non-intuitive anomalies. This paper presents CausalMesh, a novel approach to causally consistent caching in serverless computing. CausalMesh is the first cache system that supports coordination-free and abort-free read/write operations and read transactions when clients roam among multiple servers. CausalMesh also supports read-write transactional causal consistency in the presence of client roaming, but at the cost of abort-freedom. Our evaluation shows that CausalMesh has lower latency and higher throughput than existing proposals.
Haoran Zhang 0009, Shuai Mu 0001, Sebastian Angel, Vincent Liu 0001
Proc. VLDB Endow.1
2023 XFaaS: Hyperscale and Low Cost Serverless Functions at Meta
abstract
Function-as-a-Service (FaaS) has become a popular programming paradigm in Serverless Computing. As the responsibility of resource provisioning shifts from users to cloud providers, the ease of use of FaaS for users may come at the expense of extra hardware costs for cloud providers. Currently, there is no report on how FaaS platforms address this challenge and the level of hardware utilization they achieve.
Alireza Sahraei, Soteris Demetriou, Amirali Sobhgol, Haoran Zhang 0009, Abhigna Nagaraja, Neeraj Pathak, Girish Joshi, Carla Souza, Wyatt Cook, Andrii Golovei, Pradeep Venkat, Andrew Mcfague, Dimitrios Skarlatos 0002, Vipul Patel, Ravinder Thind, Ernesto Gonzalez, Yun Jin, Chunqiang Tang
SOSP4
2023 Executing Microservice Applications on Serverless, Correctly
abstract
While serverless platforms substantially simplify the provisioning, configuration, and management of cloud applications, implementing correct services on top of these platforms can present significant challenges to programmers. For example, serverless infrastructures introduce a host of failure modes that are not present in traditional deployments. Individual serverless instances can fail while others continue to make progress, correct but slow instances can be killed by the cloud provider as part of resource management, and providers will often respond to such failures by re-executing requests. For functions with side-effects, these scenarios can create behaviors that are not observable in serverful deployments. In this paper, we propose mu2sls, a framework for implementing microservice applications on serverless using standard Python code with two extra primitives: transactions and asynchronous calls. Our framework orchestrates user-written services to address several challenges, such as failures and re-executions, and provides formal guarantees that the generated serverless implementations are correct. To that end, we present a novel service specification abstraction and formalization of serverless implementations that facilitate reasoning about the correctness of a given application’s serverless implementation. This formalization forms the basis of the mu2sls prototype, which we then use to develop a few real-world microservice applications and show that the performance of the generated serverless implementations achieves significant scalability (3-5× the throughput of a sequential implementation) while providing correctness guarantees in the context of faults, re-execution, and concurrency.
Konstantinos Kallas, Haoran Zhang 0009, Rajeev Alur, Sebastian Angel, Vincent Liu 0001
Proc. ACM Program. Lang.2
2020 Fault-tolerant and transactional stateful serverless workflows
Haoran Zhang 0009, Adney Cardoza, Peter Baile Chen, Sebastian Angel, Vincent Liu 0001
OSDI1