Remotely Accessible, Low Power Network Attached Storage Device

Author(s):  
Anirudh Lanka ◽  
Arjun Gargeyas
2017 ◽  
Vol MCSP2017 (01) ◽  
pp. 7-10 ◽  
Author(s):  
Subhashree Rath ◽  
Siba Kumar Panda

Static random access memory (SRAM) is an important component of embedded cache memory of handheld digital devices. SRAM has become major data storage device due to its large storage density and less time to access. Exponential growth of low power digital devices has raised the demand of low voltage low power SRAM. This paper presents design and implementation of 6T SRAM cell in 180 nm, 90 nm and 45 nm standard CMOS process technology. The simulation has been done in Cadence Virtuoso environment. The performance analysis of SRAM cell has been evaluated in terms of delay, power and static noise margin (SNM).


Author(s):  
N Poornima ◽  
Seetharaman Gopalakrishnan ◽  
Tughrul Arsalan ◽  
T. N. Prabakar ◽  
M. Santhi

2016 ◽  
Vol E99.C (8) ◽  
pp. 909-917
Author(s):  
Akram BEN AHMED ◽  
Hiroki MATSUTANI ◽  
Michihiro KOIBUCHI ◽  
Kimiyoshi USAMI ◽  
Hideharu AMANO

IEEE Micro ◽  
1995 ◽  
Vol 15 (3) ◽  
pp. 18-25 ◽  
Author(s):  
R. Coggins ◽  
M. Jabri ◽  
B. Flower ◽  
S. Pickard

2019 ◽  
Vol 6 (3) ◽  
pp. 309
Author(s):  
R.M. Nasrul Halim

<p>Kebutuhan penyimpanan data yang semakin besar seiring dengan berkembangnya teknologi informasi, dibutuhkanlah suatu sistem penyimpanan data yang dapat melayani kebutuhan data secara cepat serta dapat diakses melalui jaringan lokal, salah satunya menggunakan <em>Network Attached Storage</em> (NAS). NAS adalah perangkat penyimpanan yang tersambung ke jaringan yang memungkinkan penyimpanan dan pengambilan data dari lokasi terpusat untuk pengguna jaringan. Sistem NAS fleksibel dan dapat disesuaikan jika memerlukan penyimpanan tambahan. Proses penyimpanan data di LP3SDM AZRA Palembang selama ini masih menggunakan media <em>flashdisk</em> dan e-mail untuk pertukaran data sedangkan penyimpanan data dilakukan di laptop masing-masing pegawai dan disimpan di <em>flashdisk</em>. Penggunaan Raspberry pi dalam penelitian ini berfungsi sebagai NAS <em>Server</em> sebagai pengganti PC ataupun server <em>dedicated</em>, dikarenakan harga Raspberry yang cukup murah dibanding PC dan Raspberry tidak membutuhkan spesifikasi perangkat keras yang tinggi serta tidak membutuhkan lisensi perangkat lunak. Hasil dari penelitian ini berupa sistem penyimpanan data menggunakan Raspberry Pi sebagai <em>file server</em> pengganti PC, yang dapat melayani proses penyimpanan dan pertukaran data di LP3SDM AZRA Palembang sehingga dapat memudahkan pekerjaan karyawannya.</p><p> </p><p><strong><em>Abstract</em></strong></p><p class="Judul2"> <em>The need for data storage is increasing along with the development of information technology,  it is necessary to a data storage system is needed that can serve data needs quickly that can serve the needs of data quickly and can be accessed through the local network, which one of them using Network Attached Storage (NAS). NAS is a network-connected storage device that allows storage and retrieval of data from a centralized location for network users. The NAS system is flexible and customizable if it requires additional storage. The process of data storage in LP3SDM AZRA Palembang so far still uses flash disk and e-mail for data exchange while data storage is done in each employee laptop and uses flash disk. The use of raspberry pi in this research serves as a NAS Server as a replacement for PC or dedicated server, because the price of raspberry is quite cheap compared to PC and Raspberry does not require high hardware specifications and does not require software licenses. The result of this research is data storage system using Raspberry Pi as a PC replacement file server, that can serve the storage and data exchange process in LP3SDM AZRA Palembang so it can facilitates the work of its employees.</em></p><p class="Abstract"> </p>


2020 ◽  
Vol 2 (3) ◽  
pp. 158-168
Author(s):  
Muhammad Raza Naqvi

Mostly communication now days is done through SoC (system on chip) models so, NoC (network on chip) architecture is most appropriate solution for better performance. However, one of major flaws in this architecture is power consumption. To gain high performance through this type of architecture it is necessary to confirm power consumption while designing this. Use of power should be diminished in every region of network chip architecture. Lasting power consumption can be lessened by reaching alterations in network routers and other devices used to form that network. This research mainly focusses on state-of-the-art methods for designing NoC architecture and techniques to reduce power consumption in those architectures like, network architecture, network links between nodes, network design, and routers.


2018 ◽  
Vol 7 (1) ◽  
pp. 299-308 ◽  
Author(s):  
Pierre Bellier ◽  
Philippe Laurent ◽  
Serguei Stoukatch ◽  
François Dupont ◽  
Laura Joris ◽  
...  

Abstract. In this work, we developed and characterised an autonomous micro-platform including several types of sensors, an advanced power management unit (PMU) and radio frequency (RF) transmission capabilities. Autonomy requires integration of an energy harvester, an energy storage device, a PMU, ultra-low-power components (including sensors) and optimized software. Our choice was to use commercial off-the-shelf components with low-power consumption, low cost and compactness as selection criteria. For the multi-purpose micro-platform, we choose to include the most common sensors (such as temperature, humidity, luminosity, acceleration, etc.) and to integrate them in one miniaturised autonomous device. A processing unit is embedded in the system. It allows for data acquisition from each sensor individually, simple data processing, and storing and/or wireless data transmission. Such a system can be used as stand-alone, with an internal storage in a non-volatile memory, or as a node in a wireless network, with bi-directional communication with a hub device where data can be analysed further. According to specific application requirements, system settings can be adjusted, such as the sampling rate, the resolution and the processing of the sensor data. Parallel to full autonomous functionality, the low-power design enables us to power the system by a small battery leading to a high degree of autonomy at a high sampling rate. Therefore, we also developed an alternative battery-powered version of the micro-platform that increases the range of applications. As such, the system is highly versatile and due to its reduced dimensions, it can be used nearly everywhere. Typical applications include the Internet of Things, Industry 4.0, home automation and building structural health monitoring.


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