Controlled Data Races in Enclaves: Attacks and Detection Chen S, Lin Z, Zhang Y. 2023. Controlled Data Races in Enclaves: Attacks and Detection. 32nd USENIX Security Symposium (USENIX Security 23). :4069--4086. Read more about Controlled Data Races in Enclaves: Attacks and DetectionDBLPLog in to post commentsGoogle ScholarBibTeX
{BalanceProofs}: Maintainable Vector Commitments with Fast Aggregation Wang W, Ulichney A, Papamanthou C. 2023. {BalanceProofs}: Maintainable Vector Commitments with Fast Aggregation. 32nd USENIX Security Symposium (USENIX Security 23). :4409--4426. Read more about {BalanceProofs}: Maintainable Vector Commitments with Fast AggregationDBLPLog in to post commentsGoogle ScholarBibTeX
autofz: Automated Fuzzer Composition at Runtime Fu Y-F, Lee J, Kim T. 2023. autofz: Automated Fuzzer Composition at Runtime. 32nd USENIX Security Symposium (USENIX Security 23). :1901--1918. Read more about autofz: Automated Fuzzer Composition at RuntimeDBLPLog in to post commentsGoogle ScholarBibTeX
{Multi-Factor} Key Derivation Function ({{{{{MFKDF}}}}}) for Fast, Flexible, Secure, & Practical Key Management Nair V, Song D. 2023. {Multi-Factor} Key Derivation Function ({{{{{MFKDF}}}}}) for Fast, Flexible, Secure, & Practical Key Management. 32nd USENIX Security Symposium (USENIX Security 23). :2097--2114. Read more about {Multi-Factor} Key Derivation Function ({{{{{MFKDF}}}}}) for Fast, Flexible, Secure, & Practical Key ManagementDBLPLog in to post commentsGoogle ScholarBibTeX
Tubes Among Us: Analog Attack on Automatic Speaker Identification Ahmed S, Wani Y, Shamsabadi AShahin, Yaghini M, Shumailov I, Papernot N, Fawaz K. 2023. Tubes Among Us: Analog Attack on Automatic Speaker Identification. 32nd USENIX Security Symposium (USENIX Security 23). :265--282. Read more about Tubes Among Us: Analog Attack on Automatic Speaker IdentificationDBLPLog in to post commentsGoogle ScholarBibTeX
Practical Asynchronous High-threshold Distributed Key Generation and Distributed Polynomial Sampling Das S, Xiang Z, Kokoris-Kogias L, Ren L. 2023. Practical Asynchronous High-threshold Distributed Key Generation and Distributed Polynomial Sampling. 32nd USENIX Security Symposium (USENIX Security 23). :5359--5376. Read more about Practical Asynchronous High-threshold Distributed Key Generation and Distributed Polynomial SamplingDBLPLog in to post commentsGoogle ScholarBibTeX
Every Vote Counts: {Ranking-Based} Training of Federated Learning to Resist Poisoning Attacks Mozaffari H, Shejwalkar V, Houmansadr A. 2023. Every Vote Counts: {Ranking-Based} Training of Federated Learning to Resist Poisoning Attacks. 32nd USENIX Security Symposium (USENIX Security 23). :1721--1738. Read more about Every Vote Counts: {Ranking-Based} Training of Federated Learning to Resist Poisoning AttacksDBLPLog in to post commentsGoogle ScholarBibTeX
Hidden Reality: Caution, Your Hand Gesture Inputs in the Immersive Virtual World are Visible to All! Gopal SReddy Kala, Shukla D, Wheelock JDavid, Saxena N. 2023. Hidden Reality: Caution, Your Hand Gesture Inputs in the Immersive Virtual World are Visible to All!. 32nd USENIX Security Symposium (USENIX Security 23). :859--876. Read more about Hidden Reality: Caution, Your Hand Gesture Inputs in the Immersive Virtual World are Visible to All!DBLPLog in to post commentsGoogle ScholarBibTeX
{ARI}: Attestation of Real-time Mission Execution Integrity Wang J, Wang Y, Li A, Xiao Y, Zhang R, Lou W, Y. Hou T, Zhang N. 2023. {ARI}: Attestation of Real-time Mission Execution Integrity. 32nd USENIX Security Symposium (USENIX Security 23). :2761--2778. Read more about {ARI}: Attestation of Real-time Mission Execution IntegrityDBLPLog in to post commentsGoogle ScholarBibTeX
{XCheck}: Verifying Integrity of 3D Printed {Patient-Specific} Devices via Computing Tomography Yu Z, Chang Y, Zhai S, Deily N, Ju T, Wang XF, Jammalamadaka U, Zhang N. 2023. {XCheck}: Verifying Integrity of 3D Printed {Patient-Specific} Devices via Computing Tomography. 32nd USENIX Security Symposium (USENIX Security 23). :2815--2832. Read more about {XCheck}: Verifying Integrity of 3D Printed {Patient-Specific} Devices via Computing TomographyDBLPLog in to post commentsGoogle ScholarBibTeX