Design Methodologies of Transaction-Safe Cluster Allocations in TFAT File System for Embedded Storage Devices

Author(s):  
Keshava Munegowda ◽  
G.T. Raju ◽  
Veera Manikandan Raju ◽  
T.N. Manjunath
2016 ◽  
Vol 22 (4) ◽  
pp. 163-169 ◽  
Author(s):  
Jaehwan Lee ◽  
Donghun Koo ◽  
Kyungmin Park ◽  
Jiksoo Kim ◽  
Soonwook Hwang

2014 ◽  
Vol 38 ◽  
pp. 65-75 ◽  
Author(s):  
Luigi Catuogno ◽  
Hans Löhr ◽  
Marcel Winandy ◽  
Ahmad-Reza Sadeghi
Keyword(s):  

2021 ◽  
Vol 17 (1) ◽  
pp. 1-22
Author(s):  
Wen Cheng ◽  
Chunyan Li ◽  
Lingfang Zeng ◽  
Yingjin Qian ◽  
Xi Li ◽  
...  

In high-performance computing (HPC), data and metadata are stored on special server nodes and client applications access the servers’ data and metadata through a network, which induces network latencies and resource contention. These server nodes are typically equipped with (slow) magnetic disks, while the client nodes store temporary data on fast SSDs or even on non-volatile main memory (NVMM). Therefore, the full potential of parallel file systems can only be reached if fast client side storage devices are included into the overall storage architecture. In this article, we propose an NVMM-based hierarchical persistent client cache for the Lustre file system (NVMM-LPCC for short). NVMM-LPCC implements two caching modes: a read and write mode (RW-NVMM-LPCC for short) and a read only mode (RO-NVMM-LPCC for short). NVMM-LPCC integrates with the Lustre Hierarchical Storage Management (HSM) solution and the Lustre layout lock mechanism to provide consistent persistent caching services for I/O applications running on client nodes, meanwhile maintaining a global unified namespace of the entire Lustre file system. The evaluation results presented in this article show that NVMM-LPCC can increase the average read throughput by up to 35.80 times and the average write throughput by up to 9.83 times compared with the native Lustre system, while providing excellent scalability.


2020 ◽  
Vol 2020 (4) ◽  
pp. 239-254
Author(s):  
Chen Chen ◽  
Anrin Chakraborti ◽  
Radu Sion

AbstractProtecting sensitive data stored on local storage devices e.g., laptops, tablets etc. is essential for privacy. When adversaries are powerful enough to coerce users to reveal encryption keys/passwords, encryption alone becomes insufficient for data protection. Additional mechanisms are required to hide the very presence of sensitive data.Plausibly deniable storage systems (PDS) are designed to defend against such powerful adversaries. Plausible deniability allows a user to deny the existence of certain stored data even when an adversary has access to the storage medium. However, existing plausible deniability solutions leave users at the mercy of adversaries suspicious of their very use. Indeed, it may be difficult to justify the use of a plausible deniability system while claiming that no sensitive data is being hidden.This work introduces INFUSE, a plausibly-deniable file system that hides not only contents but also the evidence that a particular system is being used to hide data. INFUSE is “invisible” (identical layout with standard file system), provides redundancy, handles overwrites, survives data loss, and is secure in the presence of multi-snapshot adversaries. INFUSE is efficient. Public data operations are orders of magnitude faster than existing multi-snapshot resilient PD systems, and only 15% slower than a standard non-PD baseline, and hidden data operations perform comparably to existing systems.


Author(s):  
Yongseok Son ◽  
Nae Young Song ◽  
Hyuck Han ◽  
Hyeonsang Eom ◽  
Heon Young Yeom
Keyword(s):  

2015 ◽  
Vol 44 (17) ◽  
pp. 6230-6257 ◽  
Author(s):  
Kunfeng Chen ◽  
Shuyan Song ◽  
Fei Liu ◽  
Dongfeng Xue

This review elucidates the structural design methodologies toward high-performance graphene-based electrode materials for electrochemical energy storage devices.


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