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Title: Performance Testing PPT

Description: Performance Testing PPT

The subject of P2P attracts much interest in the networking community, even though many disagree on its exact meaning. P2P technology promises to radically change the future of networking, yet the concept has existed for years. P2P also raises interesting cultural issues despite its policy free architecture. All in all, these apparent paradoxes of P2P only add to its mystique.

Peer to peer networks are gaining widespread acceptance as a scalable and robust model for data-sharing Internet applications. Building on the successful, though technically deficient, legacy of Napster and Gnutella, these systems strive to provide a scalable, decentralized, fault-tolerant, and self-stabilizing architecture for large scale data sharing applications. The broad vision of P2P systems, however, goes well beyond the sharing of music files

Peer-to-peer is a type of network in which each work-station has equivalent capabilities and responsibilities. This differs from client/server architecture in which some computers are dedicated to serve others.

Peer-to-peer (P2P) networks are increasingly becoming popular because they offer opportunities for real-time communication, ad-hoc collaboration and information sharing in a large-scale distributed environment. Peer-to-peer computing is defined as the sharing of computer resources and information through direct exchange.

The most distinct characteristic of P2P computing is that there is symmetric communication between the peers; each peer has both a client and a server role. The advantages of the P2P systems are multi-dimensional; they improve scalability by enabling direct and real timesharing of services and information; enable knowledge sharing by aggregating information and resources from nodes that are located on geographically distributed and potentially heterogeneous platforms; and, provide high availability by eliminating the need for a single centralized component.

In the ubiquitous network society, where individuals can easily access their information any time and anywhere, people are also faced with the risk that others can easily access the same information anytime and anywhere. Because of this risk, personal identification technology is used which includes Passwords, personal identification numbers and identification cards. However, cards can be stolen and passwords and numbers can be guessed or forgotten. To solve these problems, Fujitsu developed four methods: fingerprints, faces, voice prints and palm veins. Among these, because of its high accuracy, contact less palm vein authentication technology is being incorporated into various financial solution products for use in public places. This paper palm vein authentication technologies and some examples of its application to financial solutions.



veins absorbs near-infrared rays, illuminating the hemoglobin, causing it to be visible to the scanner. Arteries and capillaries, whose blood contains oxygenated hemoglobin, which does not absorb near-infrared light, are invisible to the sensor. The still image captured by the camera, which photographs in the near-infrared range, appears as a black network, reflecting the palm's vein pattern against the lighter background of the palm.

An individual's palm vein image is converted by algorithms into data points, which is then compressed, encrypted, and stored by the software and registered along with the other details in his profile as a reference for future comparison. Then, each time a person logs in attempting to gain access by a palm scan to a particular bank account or secured entryway, etc., the newly captured image is likewise processed and compared to the registered one or to the bank of stored files for verification, all in a period of seconds. Numbers and positions of veins and their crossing points are all compared and, depending on verification, the person is either granted or denied access.

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