Content deleted Content added
Citation bot (talk | contribs) Alter: title, template type. Add: chapter-url, chapter, bibcode, arxiv. Removed or converted URL. Removed parameters. Some additions/deletions were parameter name changes. | Use this bot. Report bugs. | Suggested by Countercheck | #UCB_webform |
repairing links to DAB pages |
||
Line 5:
Due to the [[Unitarity (physics)|unitarity]] of [[quantum mechanics]], [[quantum circuit]]s are reversible, as long as they do not "[[wave function collapse|collapse]]" the [[quantum state]]s on which they operate.<ref name="Williams">{{cite book |author=Williams |first=Colin P. |title=Explorations in Quantum Computing |publisher=[[Springer Science+Business Media|Springer]] |year=2011 |isbn=978-1-84628-887-6 |pages=25–29}}</ref>
±==Reversibility<!--'Logical reversibility', 'Charge recovery logic', and 'Adiabatic computing' redirect here-->==
There are two major, closely related types of reversibility that are of particular interest for this purpose: [[Reversible process (thermodynamics)|physical reversibility]] and '''logical reversibility'''<!--boldface per WP:R#PLA-->.<ref>{{Cite web | url=http://www.cise.ufl.edu/research/revcomp/ |title = The Reversible and Quantum Computing Group (Revcomp)}}</ref>
A process is said to be ''physically reversible'' if it results in no increase in physical [[entropy]]; it is [[isentropic]]. There is a style of circuit design ideally exhibiting this property that is referred to as '''charge recovery logic'''<!--boldface per WP:R#PLA-->, [[adiabatic circuit]]s, or '''adiabatic computing'''<!--boldface per WP:R#PLA--> (see [[Adiabatic process]]). Although ''in practice'' no nonstationary physical process can be ''exactly'' physically reversible or isentropic, there is no known limit to the closeness with which we can approach perfect reversibility, in systems that are sufficiently well isolated from interactions with unknown external environments, when the [[Physics|laws of physics]] describing the system's evolution are precisely known.
A motivation for the study of technologies aimed at implementing reversible computing is that they offer what is predicted to be the only potential way to improve the computational
==Relation to thermodynamics==
|