Sishuai Gong

dblp:290/7801 · DBLP profile ↗
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7ranked-venue papers
3as first author
7since 2021 · last 2025
0000-0002-2784-2617ORCID · corroborated

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

Software engineering, systems software and programming languages · 6 · 3 first-author · 6 since 2021Systems, architecture and hardware · 3 · 1 first-author · 3 since 2021
YearPublicationVenuePosition
2025 Snowplow: Effective Kernel Fuzzing with a Learned White-box Test Mutator
abstract
Kernel fuzzers rely heavily on program mutation to automatically generate new test programs based on existing ones. In particular, program mutation can alter the test's control and data flow inside the kernel by inserting new system calls, changing the values of call arguments, or performing other program mutations. However, due to the complexity of the kernel code and its user-space interface, finding the effective mutation that can lead to the desired outcome such as increasing the coverage and reaching a target code location is extremely difficult, even with the widespread use of manually-crafted heuristics.
Sishuai Gong, Wang Rui, Deniz Altinbüken, Pedro Fonseca 0001, Petros Maniatis
ASPLOS (2)1
2025 KRR: Efficient and Scalable Kernel Record Replay
Sishuai Gong, Pedro Fonseca 0001
OSDI2
2024 VeriSMo: A Verified Security Module for Confidential VMs
Ziqiao Zhou, Anjali, Weiteng Chen, Sishuai Gong, Chris Hawblitzel, Weidong Cui
OSDI4
2023 KIT: Testing OS-Level Virtualization for Functional Interference Bugs
abstract
Container isolation is implemented through OS-level virtualization, such as Linux namespaces. Unfortunately, these mechanisms are extremely challenging to implement correctly and, in practice, suffer from functional interference bugs, which compromise container security. In particular, functional interference bugs allow an attacker to extract information from another container running on the same machine or impact its integrity by modifying kernel resources that are incorrectly isolated. Despite their impact, functional interference bugs in OS-level virtualization have received limited attention in part due to the challenges in detecting them. Instead of causing memory errors or crashes, many functional interference bugs involve hard-to-catch logic errors that silently produce semantically incorrect results.
Congyu Liu, Sishuai Gong, Pedro Fonseca 0001
ASPLOS (2)2
2023 Snowcat: Efficient Kernel Concurrency Testing using a Learned Coverage Predictor
abstract
Random-based approaches and heuristics are commonly used in kernel concurrency testing due to the massive scale of modern kernels and corresponding interleaving space. The lack of accurate and scalable approaches to analyze concurrent kernel executions makes existing testing approaches heavily rely on expensive dynamic executions to measure the effectiveness of a new test. Unfortunately, the high cost incurred by dynamic executions limits the breadth of the exploration and puts latency pressure on finding effective concurrent test inputs and schedules, hindering the overall testing effectiveness.
Sishuai Gong, Dinglan Peng, Deniz Altinbüken, Pedro Fonseca 0001, Petros Maniatis
SOSP1
2021 On-demand-fork: a microsecond fork for memory-intensive and latency-sensitive applications
abstract
Fork has long been the process creation system call for Unix. At its inception, fork was hailed as an efficient system call due to its use of copy-on-write on memory shared between parent and child processes. However, application memory demand has increased drastically since the early days and the cost incurred by fork to simply set up virtual memory (e.g., copy page tables) is now a concern, even for applications that only require hundreds of MBs of memory. In practice, fork performance already holds back system efficiency and latency across a range of uses cases that fork large processes, such as fault-tolerant systems, serverless frameworks, and testing frameworks.
Kaiyang Zhao 0002, Sishuai Gong, Pedro Fonseca 0001
EuroSys2
2021 Snowboard: Finding Kernel Concurrency Bugs through Systematic Inter-thread Communication Analysis
abstract
Kernel concurrency bugs are challenging to find because they depend on very specific thread interleavings and test inputs. While separately exploring kernel thread interleavings or test inputs has been closely examined, jointly exploring interleavings and test inputs has received little attention, in part due to the resulting vast search space. Using precious, limited testing resources to explore this search space and execute just the right concurrent tests in the proper order is critical.
Sishuai Gong, Deniz Altinbüken, Pedro Fonseca 0001, Petros Maniatis
SOSP1